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		<title>Rheology is Maza: Unveiling the Secrets of Flowing Rangoli Colors</title>
		<link>https://www.tainstruments.com.cn/rheology-is-maza-unveiling-the-secrets-of-flowing-rangoli-colors/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=rheology-is-maza-unveiling-the-secrets-of-flowing-rangoli-colors</link>
		
		<dc:creator><![CDATA[Juli Varvarezis]]></dc:creator>
		<pubDate>Mon, 28 Oct 2024 18:51:41 +0000</pubDate>
				<category><![CDATA[Blog Applications]]></category>
		<category><![CDATA[Blog Techniques]]></category>
		<category><![CDATA[Food Products]]></category>
		<category><![CDATA[Inks & Coatings]]></category>
		<category><![CDATA[制药]]></category>
		<category><![CDATA[流变]]></category>
		<category><![CDATA[电池及电池材料]]></category>
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					<description><![CDATA[<p>Powders are a big part of everyday life, from baking and laundry to cosmetics and pharmaceuticals. Understanding powder rheology—how powders flow and deform—is crucial for optimizing their use in various applications. This knowledge helps industries maintain consistency and product quality.</p>
<p>The post <a href="https://www.tainstruments.com.cn/rheology-is-maza-unveiling-the-secrets-of-flowing-rangoli-colors/">Rheology is Maza: Unveiling the Secrets of Flowing Rangoli Colors</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></description>
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			<h2><strong>Rheology is Maza: Unveiling the Secrets of Flowing Rangoli Colors</strong></h2>
<h3>Part of our Rheology is Fun series! This month, we&#8217;re celebrating Diwali so Rheology is Maza – fun in Hindi.</h3>

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			<p><strong>Behbood Abedi<br />
</strong>October 28, 2024</p>

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			<p><b>Powders are a big part of everyday life, from baking and laundry to cosmetics and pharmaceuticals. Understanding powder rheology—how powders flow and deform—is crucial for optimizing their use in various applications. This knowledge helps industries maintain consistency and product quality.</b></p>

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			<div class="vc_single_image-wrapper  "><img fetchpriority="high" decoding="async" width="2560" height="1707" src="https://www.tainstruments.com.cn/wp-content/uploads/AdobeStock_307327396-scaled.jpeg" class="vc_single_image-img attachment-full" alt="" title="Colorful Mandalas during last day of Diwali" srcset="https://www.tainstruments.com.cn/wp-content/uploads/AdobeStock_307327396-scaled.jpeg 2560w, https://www.tainstruments.com.cn/wp-content/uploads/AdobeStock_307327396-300x200.jpeg 300w, https://www.tainstruments.com.cn/wp-content/uploads/AdobeStock_307327396-1024x683.jpeg 1024w, https://www.tainstruments.com.cn/wp-content/uploads/AdobeStock_307327396-768x512.jpeg 768w, https://www.tainstruments.com.cn/wp-content/uploads/AdobeStock_307327396-1536x1024.jpeg 1536w, https://www.tainstruments.com.cn/wp-content/uploads/AdobeStock_307327396-2048x1365.jpeg 2048w" sizes="(max-width: 2560px) 100vw, 2560px"  data-dt-location="https://www.tainstruments.com.cn/rheology-is-maza-unveiling-the-secrets-of-flowing-rangoli-colors/colorful-mandalas-during-last-day-of-diwali/" /></div>
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<p>As October ends and Diwali excitement fills the air, there&#8217;s a fun and colorful use of powders: the vibrant tradition of rangoli! This art form uses colorful powders to create intricate designs, symbolizing prosperity and welcoming the goddess of wealth and good luck. To achieve those beautiful, detailed designs, the powders need specific rheological properties—and that&#8217;s where powder rheology comes in.</p>
<p>Rangoli colors are as vibrant as Diwali itself, each adding joy to the festivities. Creating rangoli designs is a fun experience, especially with a variety of powders. When creating rangoli, you&#8217;ve probably noticed that sometimes, even when you get powders from the same factory, some colors flow smoothly while others can be a bit stubborn. This could be due to differences in additives and pigment properties. Differences in flow behavior due to things like additives and pigments are part of what powder rheology can help us understand.</p>
<p>As Diwali approached, we got our hands on five vibrant powders – red, blue, green, yellow, and white – all from the same factory. We thought, &#8220;Why not study their powder rheology and see how they behave?&#8221; Cool, right? So, we set up a little experiment in our backyard rheology lab using our powder rheology accessory.
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			<h3>The Great Powder Showdown: Flow Adventures!</h3>

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			<p>First up, we tested how well these powders could be compressed (see Fig. 1). It was fascinating to watch the blue and red powders compress almost twice as much as the white and yellow ones. These differences were noticeable when we pressed the powder on our rangoli designs, too. The green powder? It landed somewhere in between, not wanting to pick sides.</p>

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			<div class="vc_single_image-wrapper  "><img decoding="async" width="1399" height="851" src="https://www.tainstruments.com.cn/wp-content/uploads/Diwali-blog-Figure-01-03Oct24.jpg" class="vc_single_image-img attachment-full" alt="" title="Diwali-blog-Figure-01-03Oct24" srcset="https://www.tainstruments.com.cn/wp-content/uploads/Diwali-blog-Figure-01-03Oct24.jpg 1399w, https://www.tainstruments.com.cn/wp-content/uploads/Diwali-blog-Figure-01-03Oct24-300x182.jpg 300w, https://www.tainstruments.com.cn/wp-content/uploads/Diwali-blog-Figure-01-03Oct24-1024x623.jpg 1024w, https://www.tainstruments.com.cn/wp-content/uploads/Diwali-blog-Figure-01-03Oct24-768x467.jpg 768w" sizes="(max-width: 1399px) 100vw, 1399px"  data-dt-location="https://www.tainstruments.com.cn/rheology-is-maza-unveiling-the-secrets-of-flowing-rangoli-colors/diwali-blog-figure-01-03oct24/" /></div>
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			<p>Next, we measured the flow function of these powders (See Fig. 2). The flow function reveals how easily a powder can flow and be processed under relatively high stress. Here’s what we discovered:</p>
<ul>
<li><strong>White and yellow Powders</strong>: These powders are right on the edge of easy and free-flowing. They will flow smoothly from the squeeze bottle without any hiccups.</li>
<li><strong>Blue and Red Powders</strong>: These powders are a bit more stubborn. Their flow function is on the border of easy-flowing and cohesive flow, meaning they&#8217;ll have a tougher time flowing from the squeeze bottle.</li>
</ul>
<p>We also looked at the unconfined yield strength of these powders. This tells us how well the powders can resist forces like the wind. The blue and red powders showed twice the yield strength of the white and yellow ones. So, if you&#8217;re working on your rangoli outside in a windy area and pressing your powders down onto your design, the blue and red ones will hold their ground better.</p>

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			<div class="vc_single_image-wrapper  "><img decoding="async" width="1445" height="862" src="https://www.tainstruments.com.cn/wp-content/uploads/Diwali-blog-Figure-02-03Oct24.jpg" class="vc_single_image-img attachment-full" alt="" title="Diwali-blog-Figure-02-03Oct24" srcset="https://www.tainstruments.com.cn/wp-content/uploads/Diwali-blog-Figure-02-03Oct24.jpg 1445w, https://www.tainstruments.com.cn/wp-content/uploads/Diwali-blog-Figure-02-03Oct24-300x179.jpg 300w, https://www.tainstruments.com.cn/wp-content/uploads/Diwali-blog-Figure-02-03Oct24-1024x611.jpg 1024w, https://www.tainstruments.com.cn/wp-content/uploads/Diwali-blog-Figure-02-03Oct24-768x458.jpg 768w" sizes="(max-width: 1445px) 100vw, 1445px"  data-dt-location="https://www.tainstruments.com.cn/rheology-is-maza-unveiling-the-secrets-of-flowing-rangoli-colors/diwali-blog-figure-02-03oct24/" /></div>
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			<div class="vc_single_image-wrapper  "><img loading="lazy" decoding="async" width="874" height="300" src="https://www.tainstruments.com.cn/wp-content/uploads/SEM-images.png" class="vc_single_image-img attachment-full" alt="" title="SEM-images" srcset="https://www.tainstruments.com.cn/wp-content/uploads/SEM-images.png 874w, https://www.tainstruments.com.cn/wp-content/uploads/SEM-images-300x103.png 300w, https://www.tainstruments.com.cn/wp-content/uploads/SEM-images-768x264.png 768w" sizes="auto, (max-width: 874px) 100vw, 874px"  data-dt-location="https://www.tainstruments.com.cn/rheology-is-maza-unveiling-the-secrets-of-flowing-rangoli-colors/sem-images/" /></div>
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			<p>From our SEM images (Fig. 3), we saw that coloring process with pigments not only altered the appearance of the blue powder but also modified its physical properties. The blue powder is made up of smaller particles than the white and has smoother, rounder surfaces. This change wasn&#8217;t just cosmetic—these tiny particles, with higher surface area to volume ratio, significantly boosted the blue powder&#8217;s compressibility and cohesion, which we saw earlier in Figures 1 and 2. It&#8217;s amazing how a bit of pigment, some shaking, and drying can dramatically change the rheology of a powder!</p>
<p>In summary, our curiosity about the rheology of rangoli powders revealed some cool insights into how rangoli powders behave under distinct flow conditions. Whether you&#8217;re looking for easy flow or better resistance to wind, now you know which powders to pick.</p>

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			<h3>The Curious Case of Turmeric and Green Powder: A Rangoli Revelation</h3>

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			<p>Sometimes, very different powders can surprise us with similar traits. Take turmeric, for example – a popular choice for rangoli. Despite looking finer and lighter than the rangoli powders we used, turmeric interestingly shares the same flow function value as the green powder (See Fig. 4).</p>
<p>Why, you ask? Well, turmeric can be compressed twice as much as the green powder (see Fig. 5), likely boosting its cohesion under higher stress. When we examined the powders using SEM (see Fig. 6), we noticed that both powders had a lot of small debris, which can affect their cohesion and flowability when compacted. </p>

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			<div class="vc_single_image-wrapper  "><img loading="lazy" decoding="async" width="864" height="292" src="https://www.tainstruments.com.cn/wp-content/uploads/SEM-images2.png" class="vc_single_image-img attachment-full" alt="" title="SEM-images2" srcset="https://www.tainstruments.com.cn/wp-content/uploads/SEM-images2.png 864w, https://www.tainstruments.com.cn/wp-content/uploads/SEM-images2-300x101.png 300w, https://www.tainstruments.com.cn/wp-content/uploads/SEM-images2-768x260.png 768w" sizes="auto, (max-width: 864px) 100vw, 864px"  data-dt-location="https://www.tainstruments.com.cn/rheology-is-maza-unveiling-the-secrets-of-flowing-rangoli-colors/sem-images2/" /></div>
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			<p>However, when it comes to unconfined and confined flow energy—where the powders aren&#8217;t under high stress – the green powder&#8217;s flow energy is significantly higher than turmeric&#8217;s (See Fig. 7). This could be due to several factors, including the rounder surface of turmeric compared to the rougher surface of the green powder.</p>
<p>So, while turmeric and green powder may look and feel different, they can behave quite similarly under certain conditions. When you flow these two powders from a squeeze bottle, you experience the same flowability. However, when you spread them on the surface to create designs with your brush or finger, turmeric flows much more easily. It&#8217;s a fascinating reminder that appearances can be deceiving, especially in the world of powders!</p>

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			<p>As we dive into the festive spirit of Diwali, the art of rangoli brings a playful twist to powder rheology. Whether it&#8217;s the smooth flow of white powder or the stubbornness of blue powder, each has its unique charm and challenges.</p>
<p>However, in industrial settings, these properties are more than just fascinating – they&#8217;re critical. So, whether you&#8217;re spreading turmeric for a beautiful rangoli or ensuring the consistency of a pharmaceutical product, understanding powder rheology is key. It&#8217;s a fascinating blend of art and science that keeps both our celebrations and industries running smoothly.</p>

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			<h3>Other Resources</h3>

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<div class="standard-arrow list-divider bullet-top"><ul>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/applications-notes/epoxy-powder-rheology-impact-of-temperature-on-flow-and-shear-properties/">Epoxy Powder Rheology: Impact of Temperature on Flow and Shear Properties</a></li>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/applications-notes/effect-of-moisture-and-substrate-material-on-wall-friction-angle-of-carboxymethyl-cellulose-powder/">Effect of Moisture and Substrate Material on Wall Friction Angle of Carboxymethyl Cellulose Powder</a></li>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/applications-notes/effect-of-moisture-on-cohesion-strength-of-carboxymethyl-cellulose-powder/">Effect of Moisture on Cohesion Strength of Carboxymethyl Cellulose Powder</a></li>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/applications-notes/powder-rheology-of-graphite-characterization-of-natural-and-synthetic-graphite-for-battery-anode-slurries/">Powder Rheology of Graphite: Characterization of Natural and Synthetic Graphite for Battery Anode Slurries</a></li>
<li>Blog &#8211; <a href="https://www.tainstruments.com/powder-rheology-for-pharmaceutical-development/">Powder Rheology for Pharmaceutical Development</a></li>
<li>Accessory &#8211; <a href="https://www.tainstruments.com/powder-rheology/">Powder Rheology</a></li>
<li>Contact &#8211; <a href="https://www.tainstruments.com/contact/">Contact TA Instruments Today</a></li>
</ul>
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</div><p>The post <a href="https://www.tainstruments.com.cn/rheology-is-maza-unveiling-the-secrets-of-flowing-rangoli-colors/">Rheology is Maza: Unveiling the Secrets of Flowing Rangoli Colors</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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		<title>Linear Viscoelastic Region: Why It’s Crucial in Materials Testing</title>
		<link>https://www.tainstruments.com.cn/linear-viscoelastic-region-why-its-crucial-in-materials-testing/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=linear-viscoelastic-region-why-its-crucial-in-materials-testing</link>
		
		<dc:creator><![CDATA[Juli Varvarezis]]></dc:creator>
		<pubDate>Mon, 09 Sep 2024 20:29:09 +0000</pubDate>
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		<category><![CDATA[Engineered Materials]]></category>
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					<description><![CDATA[<p>Our world is brimming with viscoelastic materials: The dough you knead before baking a fresh loaf, the Silly Putty your toddler slaps against the wall, the rubber gaskets that create an airtight seal on an airplane door. Testing those materials by applying controlled deformations (strains) or forces (stresses) at various timescales, temperatures, and/or humidities allows for the optimization of properties and ensures durability and safety.</p>
<p>The post <a href="https://www.tainstruments.com.cn/linear-viscoelastic-region-why-its-crucial-in-materials-testing/">Linear Viscoelastic Region: Why It’s Crucial in Materials Testing</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></description>
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			<h2><strong>Linear Viscoelastic Region: Why It&#8217;s Crucial in Materials Testing</strong></h2>

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			<p><strong>Keith Coasey | Morgan Ulrich<br />
</strong>September 9, 2024</p>

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			<p><b>Our world is brimming with viscoelastic materials: The dough you knead before baking a fresh loaf, the Silly Putty your toddler slaps against the wall, the rubber gaskets that create an airtight seal on an airplane door. Testing those materials by applying controlled deformations (strains) or forces (stresses) at various timescales, temperatures, and/or humidities allows for the optimization of properties and ensures durability and safety. Only through specialized tools in a lab setting can researchers thoroughly characterize (and thus predict in the real world) an essential material property: the linear viscoelastic region.</b></p>

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<p>Researchers and product development teams across industries (from construction to food processing to <a href="https://www.tainstruments.com/applications/pharmaceuticals/">pharmaceuticals</a> and more) work with viscoelastic materials every day. Understanding and accurately modeling viscoelastic behavior supports innovation when developing the snacks you eat, the polymer fibers that make up your clothing, and creating more durable sustainable materials for the structures where you live. Like the word itself, viscoelasticity combines two properties in materials science:</p>
<p><strong>Viscosity:</strong> The way material flows over time in response to stress such as gravity (i.e., the slow flow of honey compared to water, comparing the &#8220;thickness&#8221; of tomato juice to ketchup)</p>
<p><strong>Elasticity:</strong> The tendency of a solid to resist deformation (Such as comparing the mechanical resistance of a metal spring to that of a rubber band)</p>
<p>When a material combines both properties (in varying degrees), it&#8217;s considered <strong>viscoelastic</strong>. Ketchup, gelatin, and rubber, for example, all have viscoelastic properties. Although they are drastically different upon first glance, all share solid-like (elastic) and liquid-like (viscous) characteristics, but in different proportions. How, then, do researchers understand the ways those materials change, deform, or even fail under certain types of stress (like flowing, stretching or temperature fluctuation)?</p>
<p>You&#8217;ll need to explore the material&#8217;s <a href="https://www.tainstruments.com/applications-notes/determining-the-linear-viscoelastic-region-in-oscillatory-measurements/">linear viscoelastic region</a>.</div>
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			<h3>What is the Linear Viscoelastic Region (LVR)?</h3>

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			<p>In scientific terms, it&#8217;s the linear relationship between the complex stress put on a material and the overall magnitude of deformation (strain), which remains linear at relatively low strains. At strains/stresses that extent beyond the LVR, the relationship becomes nonlinear, with the stress typically increasing less with additional strain, indicative of the onset of network failure. A complex liquid will have a larger LVR than a brittle solid which typically fails at lower strains. In simpler terms, it&#8217;s the range in which a material predictably reacts (and can return to its original form) under different amounts of strain/stress.</p>
<p>Think of a rubber band. Pull it gently before letting go, and it will return to its original, relaxed state. Stretch it more and more, and it will still return to form – up to a point. Eventually, you might see a slight tear or a color change when it relaxes. Pull hard enough, and the band will snap altogether. Once you have materially changed the band&#8217;s properties, you&#8217;ve left the linear viscoelastic region and entered its &#8220;critical strain&#8221; — the threshold at which the material&#8217;s molecular structure fundamentally changes.</p>

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			<h3>Characteristics of the Linear Viscoelastic Region</h3>

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			<p><a href="https://www.tainstruments.com/applications-notes/determining-the-linear-viscoelastic-region-in-oscillatory-measurements/">Determining the LVR</a> should be one of the first steps when studying or testing viscoelastic materials. The LVR is a function of temperature, humidity, and the rate of the deformation. Generally, the LVR increases with increasing temperature, so once the LVR is characterized at a single deformation rate at a specific temperature, the temperature can be increased without exceeding the critical strain.</p>
<p>There are two ways to consider the LVR and its relation to strain/stress. First, when a material is within the LVR, the force (stress) required to deform the material increases or decreases in a fashion relative to the extent deformation. Once stretched beyond the critical deformation, it requires increasingly less additional force to achieve incrementally higher deformations. In another case, if considering hanging weights from a spring or rubber band, one is applying stress (force) in the form of weight in order to deform the sample. Within the LVR, if the weight is incrementally increased, the spring or rubber band will elongate in proportion to the weight. Once beyond the critical strain (which corresponds to a critical stress), the spring or rubber band starts to elongate more and more with each additional unit of stress/weight. </p>

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			<p style="text-align: center; font-size: smaller;"><a href="https://www.tainstruments.com/applications-notes/determining-the-linear-viscoelastic-region-in-oscillatory-measurements/">Figure 1</a>: Stress vs strain in an oscillation strain sweep experiment on polystyrene at 250 °C and 1 Hz. The critical strain is marked on the plot.</p>

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			<p>Say you&#8217;re developing a delicious new yogurt (itself, a viscoelastic material). But you know that the trucks headed to deliver that yogurt will traverse bumpy roads. You&#8217;ll need to test how that yogurt reacts under all of that shaking (gravitational forces). If the network structure of the yogurt is too weak, in the sense that the end of the LVR corresponds to low strains or stresses relative to those experienced in the truck, then the yogurt network structure will be disrupted. Rather than having a continuous creamy texture, the yogurt can be broken up into separate chunks, sometimes with separated liquid, and in essence more akin to the texture of cottage cheese than yogurt.</p>
<p>Understanding the characteristics within the yogurt&#8217;s LVR helps not only formulate a yogurt that is mechanically robust enough for transport, but also still has a texture/viscoelasticity that is favorable to eat. Eating creates its own characteristic stresses and deformations in the mouth, which need to be accounted for (Who would want to eat chewy yogurt?).</p>

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			<h3>Why is the Linear Viscoelastic Region Crucial in Materials Testing?</h3>

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			<p>Think of the LVR as a set of guardrails. When you use too much stress, you’ll cross the critical strain threshold and irrevocably change its structure. Add too little stress, though, and you end up with noisy data. Staying within the LVR during dynamic (oscillatory) mechanical testing allows for the ideal probing of the sample in a quasi-equilibrium state; where its mechanical structure can be probed at a variety of conditions such as at various temperatures (mimicking real-world conditions), without disrupting destroying the sample structure mechanically and with excellent data resolution/reproducibility.</p>
<p>The LVR is also essential in understanding the complete rheological characteristics of a material (how it flows through the environment around it). Practically, this helps manufacturers and product researchers choose, replace, or refine the materials they need before full-scale production begins.</p>

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			<h3>How to Determine a Material&#8217;s Linear Viscoelastic Region</h3>

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			<p>Three variables will change the LVR of any material: Temperature, humidity, and the rate of deformation (frequency). A piece of rubber pulled in sub-freezing weather 1,000 times will react differently than one pulled twice on a humid August afternoon.</p>
<p>Because our environment (and how we use materials) constantly changes, there are two accurate methods to determine LVR.</p>
<ol>
<li><strong>Experimental:</strong> Specialized lab equipment like a <a href="https://www.tainstruments.com/products/rheology/dynamic-mechanical-analyzers/">dynamic mechanical analyzer (DMA)</a> which is primarily for solids or a <a href="https://www.tainstruments.com/products/rheology/">rheometer</a> which primarily deals with liquids, provide precise data to determine the LVR. These instruments can change temperature, humidity, and stress levels—efficiently repeating a cycle thousands of times.</li>
<li><strong>Analytical:</strong> Because the LVR is, by its nature, linear, you can accurately model it using math (software like <a href="https://www.tainstruments.com/trios-software/">TA Instrument&#8217;s TRIOS</a>, makes this process easier). Leverage this information back in the lab, and you often don&#8217;t need to discern the exact critical strain of a material. Once you know the LVR, you can stick within that threshold. Conversely, the analytical approach models the minuscule stress and strain data at the range’s bottom end, meaning you don’t need to waste lab time gathering that data.</li>
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			<h3>LVR in the Real World: Top Industries &amp; Applications</h3>

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			<p>When you&#8217;re on the 60th floor of a skyscraper or swallowing a Vitamin D supplement, you rely on the predictable viscoelasticity of materials all around (and inside!) you. That&#8217;s why you will find LVR testing is crucial in a vast array of industries, including:</p>
<p><a href="https://pubs.aip.org/sor/jor/article/60/4/649/383265" target="_blank" rel="noopener"><strong>Polymer and Plastics:</strong></a> Both materials are in products we use every day (probably even every hour). Knowing when and how they fail–and, for <a href="https://www.tainstruments.com/sustainable-polymers-brochure-download/">sustainability</a> purposes, how they will react when they&#8217;re recycled–requires determining their LVR in a lab setting. With knowledge of the LVR, temperature ramps can be performed on polymers, effectively characterizing glass transitions (softening points), mechanically properties through thermal transitions (melting, crystallization), and properties such as crosslink density (essential for cured materials and rubbers – UV curable materials, epoxy, etc.)</p>
<p><strong>Pharmaceuticals and Food:</strong> Your body itself is a viscoelastic structure, and so are the methods and materials used to keep it at its healthiest. From the capsule of a pill to <a href="https://www.sciencedirect.com/science/article/pii/S002364382301188X" target="_blank" rel="noopener">plant oil emulsions</a> that could replace saturated fat–understanding a material&#8217;s properties makes for an overall better quality of life. The LVR can give knowledge of the yield stress of a therapeutic cream and therefore its shelf life, or similarly the yield stress of a yogurt.</p>
<p><strong>Construction:</strong> Cement is a fantastic example of a viscoelastic material that changes states due to time and temperature. The building you are in – right now – has not collapsed because researchers know how durable and stable <a href="https://pubs.acs.org/doi/abs/10.1021/acs.macromol.9b02634" target="_blank" rel="noopener">its materials</a> are over time and under stress. The LVR can be an effective characterization tool for paints which help maximize building material lifetime (critical for combating mold, UV, humidity, corrosion), with the LVR again characterizing shelf stability through the yield stress. The LVR can also help characterize the durability of composite materials commonly used in flooring, ceilings, and benchtops. </p>

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			<h3>Conclusion: Materials Innovation Starts in the Lab</h3>

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			<p>The world simply works better because we understand (and can innovate) viscoelastic materials: From the soap that morphs into foam when pumped from a bottle to the way a vaccine exits a syringe. These advances, however trivial or monumental, only happen because of research in the lab. Just like you can&#8217;t sprint before learning to crawl, you can&#8217;t make your product safer, healthier, lighter, cheaper, or more durable without understanding its linear viscoelastic region. If viscoelastic materials are building blocks to a better world, then the LVR is a building block to creating better versions of those materials. <a href="https://www.tainstruments.com/contact/">Contact TA Instruments</a> for expert guidance in testing and optimizing your materials.</p>

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			<h3>Other Resources</h3>

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<div class="standard-arrow list-divider bullet-top"><ul>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/applications-notes/determining-the-linear-viscoelastic-region-in-oscillatory-measurements/">Determining the Linear Viscoelastic Region in Oscillatory Measurements</a></li>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/applications-notes/temperature-and-frequency-trends-of-the-linear-viscoelastic-region/">Temperature and Frequency Trends of the Linear Viscoelastic Region</a></li>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/applications-notes/determining-the-linear-viscoelastic-region-in-creep-and-stress-relaxation-tests/">Determining the Linear Viscoelastic Region in Creep and Stress Relaxation Tests</a></li>
<li>Tech Tip &#8211; <a href="https://www.tainstruments.com/discussing-the-linear-viscoelastic-region-and-selecting-a-strain-value/">Discussing the Linear Viscoelastic Region and Selecting a Strain Value</a></li>
<li>Webinar &#8211; <a href="https://www.tainstruments.com/orthogonal-superposition-rheology-ta-instruments-webinar/">Jan Vermant – Orthogonal Superposition Rheology</a></li>
<li>Webinar &#8211; <a href="https://www.tainstruments.com/connecting-polymer-processing-and-product-performance-through-rheology-dma-on-the-new-dhr/">Connecting Polymer Processing and Product Performance through Rheology &amp; DMA on the New DHR</a></li>
<li>Contact &#8211; <a href="https://www.tainstruments.com/contact/">Contact TA Instruments Today</a></li>
</ul>
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</div><p>The post <a href="https://www.tainstruments.com.cn/linear-viscoelastic-region-why-its-crucial-in-materials-testing/">Linear Viscoelastic Region: Why It’s Crucial in Materials Testing</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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		<title>Thermal Analysis in Pharmaceutical Research, Development, and Quality Control</title>
		<link>https://www.tainstruments.com.cn/thermal-analysis-in-pharmaceutical-research-development-and-quality-control/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=thermal-analysis-in-pharmaceutical-research-development-and-quality-control</link>
		
		<dc:creator><![CDATA[Juli Varvarezis]]></dc:creator>
		<pubDate>Thu, 18 Apr 2024 18:11:20 +0000</pubDate>
				<category><![CDATA[Thermal Analysis]]></category>
		<category><![CDATA[制药]]></category>
		<guid isPermaLink="false">https://www.tainstruments.com.cn/?p=105184</guid>

					<description><![CDATA[<p>As a central pillar of modern society, the pharmaceutical industry bears the load of billions of lives around the world. In 2022, the global revenue of the pharmaceutical industry approximated $1.5 trillion, a figure reflected in two decades of significant growth.</p>
<p>The post <a href="https://www.tainstruments.com.cn/thermal-analysis-in-pharmaceutical-research-development-and-quality-control/">Thermal Analysis in Pharmaceutical Research, Development, and Quality Control</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></description>
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			<h2><strong>Thermal Analysis in Pharmaceutical Research, Development, and Quality Control</strong></h2>

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			<p><strong>Monika Schennen | Julienne Regele | Calliste Scholl | Morgan Ulrich<br />
</strong>April 18, 2024</p>

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<p><strong>As a central pillar of modern society, the pharmaceutical industry bears the load of billions of lives around the world. In 2022, the global revenue of the pharmaceutical industry approximated $1.5 trillion, a figure reflected in two decades of significant growth.<sup>1</sup> </strong></p>
<p>Pharmaceutical development is advanced by the continued search for new active pharmaceutical ingredients (APIs), including analogs, phytopharmaceuticals, and biopharmaceuticals, which have the potential to yield life-changing drugs. This enterprise is concomitant with an increasing trend toward designing new dosage forms and drug combinations, improving manufacturing processes, and exploring new indications for existing drugs.</p>
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			<h3>What is Thermal Analysis?</h3>

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<p>Addressing the needs of the pharmaceutical industry, specifically the research, development and analysis of drugs, requires a sophisticated suite of techniques for fast and effective characterization and quality control. Thermal analysis is a family of techniques that measures the change of specific properties of materials as a function of temperature to elucidate their physical and chemical characteristics.<sup>2,3</sup> While thermal analysis comprises numerous methods, this article will focus on three key examples: differential scanning calorimetry, thermogravimetric analysis, and sorption analysis.</p>
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			<h3>Thermogravimetric Analysis: Capturing the Interactions Between Temperature and Material Weight</h3>

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<p><a href="https://www.tainstruments.com.cn/%e4%ba%a7%e5%93%81/%e7%83%ad%e5%88%86%e6%9e%90/%e7%83%ad%e9%87%8d%e5%88%86%e6%9e%90%e4%bb%aa/">Thermogravimetric analysis (TGA)</a> is a valuable analytical technique employed in pharmaceutical R&amp;D to assess the thermal stability and decomposition behavior of materials. TGA involves subjecting a sample to controlled temperature increases under a controlled atmosphere while continuously monitoring its weight.<sup>4</sup></p>
<p>Material stability is of paramount importance in pharmaceuticals, as it directly affects product safety, efficacy, and shelf-life. Understanding how a pharmaceutical substance reacts to temperature variations and identifying potential degradation pathways is critical for ensuring the stability of the final product.</p>
<p>TGA offers several benefits to pharmaceutical research and development, including:</p>
<ul>
<li>Identifying optimal storage conditions and packaging materials to prevent premature drug degradation through precise degradation measurements</li>
<li>Determining the moisture content of products, which directly affects chemical stability, API crystal structure, dissolution rate, and compaction.<sup>5</sup></li>
<li>Ensuring the development of stable and effective drug formulations by selecting thermally compatible excipients and formulation components.</li>
</ul>
<p>Providing quality and regulatory compliance when coupled with mass spectrometry Fourier-transform infrared spectroscopy (FTIR). Together, these techniques can detect and quantify volatiles in pharmaceutical samples.</p>
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			<h3>Differential Scanning Calorimetry: Capturing Material Temperature Changes in Response to Environmental Temperature</h3>

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<p><a href="https://www.tainstruments.com.cn/%e4%ba%a7%e5%93%81/%e7%83%ad%e5%88%86%e6%9e%90/%e5%b7%ae%e7%a4%ba%e6%89%ab%e6%8f%8f%e9%87%8f%e7%83%ad%e4%bb%aa/">Differential scanning calorimetry (DSC)</a> is a powerful analytical technique widely used in the pharmaceutical industry to characterize APIs and excipients. DSC measures the heat flow associated with temperature changes in a sample during heating, cooling, or remaining isothermal, offering insights into phase/structural changes, chemical reactions, and physical interactions.<sup>4</sup></p>
<p>During drug research DSC is critical in identifying polymorphs, or different forms of the same chemical compound. Different polymorphs of a drug can exhibit distinct physicochemical properties, such as solubility, dissolution rate, and bioavailability. By subjecting a sample to varying temperatures, DSC can reveal different polymorphs and aid in the selection of the most desirable form, for example, optimizing for enhanced bioavailability and manufacturability.<sup>4</sup></p>
<p>Additionally, DSC provides critical insights into the glass transition temperature (Tg). This is the temperature at which an amorphous material undergoes a reversible transition from a ductile state to a hard/brittle state or vice versa. The size of the glass transition step is linearly proportional to the amount of amorphous structure in the sample, making it a valuable tool for understanding amorphous content.<sup>4</sup></p>
<p>Understanding the amorphous content of pharmaceutical solids is advantageous because it can inform decisions to improve the oral bioavailability of poorly water-soluble drugs. Amorphous pharmaceuticals are more soluble and exhibit higher dissolution rates compared to their crystalline counterparts. By monitoring and maintaining amorphous content, DSC can help ensure the stability of these valuable properties.<sup>4</sup></p>
<p>Another benefit of DSC is its ability to examine material compatibility. In pharmaceutical formulation, it is crucial to ensure that APIs are compatible with excipients, such as bulking agents and lubricants. DSC can detect incompatibilities by revealing shifts or deviations in thermal behavior, helping formulators make informed decisions to avoid potential issues during drug development. These issues could take the shape of unforeseen chemical interactions between excipients and the API, mismatching of physical properties like solubility and dissolution rates, and impairment of the API&#8217;s bioavailability.<sup>4</sup></p>
<p>Finally, knowledge of amorphous content aids in optimizing the lyophilization process. Lyophilization, or freeze-drying, is a crucial step in preserving and transporting pharmaceutical products and ensures the stability and efficacy of the final product. For more information on lyophilization, read our blog, <a href="https://www.tainstruments.com/how-to-optimize-lyophilization-with-thermal-analysis/">How to Optimize Lyophilization with Thermal Analysis</a>.</p>
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			<h3>Sorption Analysis: Capturing the Interaction of Materials and Solvents</h3>

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<p><a href="https://www.tainstruments.com.cn/%E4%BA%A7%E5%93%81/%E7%83%AD%E5%88%86%E6%9E%90/%E5%90%B8%E9%99%84%E5%88%86%E6%9E%90%E4%BB%AA/">Sorption analysis (SA)</a> is a fundamental tool in pharmaceutical R&amp;D used to measure the weight change of a material under water vapor as a function of humidity and temperature. Accordingly, SA helps quantify how moisture is absorbed or desorbed by a drug substance or formulation under various environmental conditions.<sup>4</sup> This is important because moisture content is a critical factor that affects the stability of solid dosage forms and can adversely impact the efficacy and shelf life of pharmaceutical products by promoting degradation, such as through the hydrolytic degradation of drugs with certain functional groups.<sup>5</sup></p>
<p>SA can also reveal how water sorption can decrease the glass transition temperature of the amorphous phase in a material. This reduction in Tg can soften the amorphous phase and potentially initiate unwanted crystallization, adversely affecting the product’s properties and stability.</p>
<p>Altogether, understanding the moisture sorption behavior of pharmaceutical products ensures that they maintain their desired characteristics, stability, and effectiveness throughout their shelf life. Furthermore, it allows for optimizing formulation strategies, packaging design, and storage conditions.</p>
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			<h3>Thermal Analysis: an Essential Method in the Pharmaceutical Industry</h3>

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<p>Thermal analysis, comprising techniques such as DSC, TGA, and SA, plays an indispensable role in pharmaceutical research, development, and quality control. These methods are part of a comprehensive toolkit for characterizing pharmaceutical materials and ensuring the safety, efficacy, and stability of drug products. While they can be used in isolation, their use in combination can yield deeper insights into pharmaceutical materials. For example, combining DSC and TGA allows for the detailed examination of decomposition behavior and apparent melting.</p>
<p>TA Instruments&#8217; <a href="https://www.tainstruments.com.cn/%e4%ba%a7%e5%93%81/%e7%83%ad%e5%88%86%e6%9e%90/%e5%b7%ae%e7%a4%ba%e6%89%ab%e6%8f%8f%e9%87%8f%e7%83%ad%e4%bb%aa/">DSC</a>, <a href="https://www.tainstruments.com.cn/%e4%ba%a7%e5%93%81/%e7%83%ad%e5%88%86%e6%9e%90/%e7%83%ad%e9%87%8d%e5%88%86%e6%9e%90%e4%bb%aa/">TGA</a>, and <a href="https://www.tainstruments.com.cn/%E4%BA%A7%E5%93%81/%E7%83%AD%E5%88%86%E6%9E%90/%E5%90%B8%E9%99%84%E5%88%86%E6%9E%90%E4%BB%AA/">SA</a> technology provide the most accurate and reliable information about pharmaceutical materials, facilitating the development of safe, effective, and stable drug products for patients worldwide.</p>
<p><a href="https://www.tainstruments.com.cn/sales/">Contact TA Instruments&#8217; experts</a> today to learn more about how our technology can revolutionize your research and development process, ensuring the highest standards of quality and efficiency.</p>
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			<h3>References and Further Reading:</h3>
<ol>
<li>Mikulic, M. (2023). Global pharmaceutical industry &#8211; statistics &amp; facts. Statista. Available at: <a href="https://www.statista.com/topics/1764/global-pharmaceutical-industry/#topicOverview">https://www.statista.com/topics/1764/global-pharmaceutical-industry/#topicOverview</a> (Accessed on 01 October 2023).</li>
<li>Stodghill, SP. (2010). Thermal Analysis – A Review of Techniques and Applications in the Pharmaceutical Sciences. American Pharmaceutical Review. Available at: <a href="https://www.americanpharmaceuticalreview.com/Featured-Articles/36776-Thermal-Analysis-A-Review-of-Techniques-and-Applications-in-the-Pharmaceutical-Sciences/">https://www.americanpharmaceuticalreview.com/Featured-Articles/36776-Thermal-Analysis-A-Review-of-Techniques-and-Applications-in-the-Pharmaceutical-Sciences/</a></li>
<li>Duncan, QM., et al. (2006). Thermal Analysis of Pharmaceuticals. CRC Press: Taylor &amp; Francis Group.</li>
<li>TA Instruments. [Webinar] Thermal Analysis in the Pharmaceutical Industry: Use of TGA, SA, and DSC in Research, Development, and Quality Control. Available at: <a href="https://www.tainstruments.com/thermal-analysis-in-the-pharmaceutical-industry-use-of-tga-sa-and-dsc-in-research-development-and-quality-control/">https://www.tainstruments.com/thermal-analysis-in-the-pharmaceutical-industry-use-of-tga-sa-and-dsc-in-research-development-and-quality-control/</a> (Accessed on 03 October 2023).</li>
<li>CEM Corporation. (2021). Moisture Analysis in the Pharmaceutical Industry. AZoM. Available at: <a href="https://www.azom.com/article.aspx?ArticleID=18029">https://www.azom.com/article.aspx?ArticleID=18029</a> (Accessed on 03 October 2023).</li>
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			<h3>Other Resources</h3>

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<li>eBook: <a href="https://www.tainstruments.com/pharmaceutical-discovery-and-formulation-download/">Pharmaceutical Discovery and Formulation</a></li>
<li>Webinar: <a href="https://www.tainstruments.com/kadine-mohomed-characterization-of-amorphous-pharmaceuticals-by-dsc-analysis/">Characterization of Amorphous Pharmaceuticals by DSC Analysis</a></li>
<li>Webinar: <a href="https://www.tainstruments.com/thermal-analysis-in-the-pharmaceutical-industry-use-of-tga-sa-and-dsc-in-research-development-and-quality-control/">Thermal Analysis in the Pharmaceutical Industry: Use of TGA, SA, and DSC in Research, Development, and Quality Control</a></li>
<li>App Note: <a href="https://www.tainstruments.com/applications-notes/apparent-melting-a-new-approach-to-characterizing-crystalline-structure-in-pharmaceutical-materials/">&#8220;Apparent Melting&#8221;: A New Approach to Characterizing Crystalline Structure in Pharmaceutical Materials</a></li>
<li>App Note: <a href="https://www.tainstruments.com/applications-notes/drug-excipient-incompatibility-with-discovery-x3/">Drug – Excipient Incompatibility with Discovery X3</a></li>
<li><a href="https://www.tainstruments.com/contact/">Contact Us</a></li>
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</div><p>The post <a href="https://www.tainstruments.com.cn/thermal-analysis-in-pharmaceutical-research-development-and-quality-control/">Thermal Analysis in Pharmaceutical Research, Development, and Quality Control</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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		<title>通过流变研究提高制剂性能</title>
		<link>https://www.tainstruments.com.cn/%e9%80%9a%e8%bf%87%e6%b5%81%e5%8f%98%e7%a0%94%e7%a9%b6%e6%8f%90%e9%ab%98%e5%88%b6%e5%89%82%e6%80%a7%e8%83%bd/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=%25e9%2580%259a%25e8%25bf%2587%25e6%25b5%2581%25e5%258f%2598%25e7%25a0%2594%25e7%25a9%25b6%25e6%258f%2590%25e9%25ab%2598%25e5%2588%25b6%25e5%2589%2582%25e6%2580%25a7%25e8%2583%25bd</link>
		
		<dc:creator><![CDATA[Juli Varvarezis]]></dc:creator>
		<pubDate>Mon, 11 Mar 2024 20:08:30 +0000</pubDate>
				<category><![CDATA[制药]]></category>
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		<guid isPermaLink="false">https://www.tainstruments.com.cn/?p=104998</guid>

					<description><![CDATA[<p>技术的发展日新月异。无论您是升级旧设备还是为您的工作台添加新技术，使用尖端仪器都一定会提高您实验室的效率和成果。新型仪器可提供更可靠的数据和更先进的功能，这对于始终立足于材料创新前沿而言至关重要。</p>
<p>The post <a href="https://www.tainstruments.com.cn/%e9%80%9a%e8%bf%87%e6%b5%81%e5%8f%98%e7%a0%94%e7%a9%b6%e6%8f%90%e9%ab%98%e5%88%b6%e5%89%82%e6%80%a7%e8%83%bd/">通过流变研究提高制剂性能</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></description>
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			<h2><strong>通过流变研究提高制剂性能</strong></h2>

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			<p><strong> Calliste Scholl | Julienne Regele <br />
</strong>2024 年 3 月 11 日</p>

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			<p>从制剂开发到商业制剂的进展取决于最终药物的剂量强度、内在稳定性和蛋白质自结合的程度。<sup>1 </sup>这是因为药物的研发已进入最后阶段。对药物在实际生活条件下的有效性和稳定性进行评估至关重要。近年来，高浓度抗体产品 (HCAP) 因其众多独特的优势而在治疗领域日益受到欢迎。</p>

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			<h3>HCAP 的优势</h3>

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<p> 市场上大多数抗体药物溶液均在医院环境中通过静脉给药输送给患者。HCAP 将为通过皮下注射进行疾病治疗提供机会。皮下给药产品的最大容量为 2 ml。<sup>1</sup>在此容积下，HCAP 可输送更大量的蛋白质，并可实现在医生诊所或患者家中给药。总体而言，与静脉给药相比，皮下给药可方便患者、减轻医护人员的负担且易于使用，该方法可减少住院或住院费用，并可降低治疗成本。<sup>1</sup></p>
<p> HCAP 允许患者自行皮下给药，使患者在管理用药计划方面拥有更大的灵活性和自由度，并可让患者在管理慢性疾病的同时过上更正常的生活。<sup>1</sup> 这对于需要长期用药来控制慢性疾病的患者尤其有益，并可确保患者在治疗期间的依从性。<sup>1</sup></p>
<p> 最后，HCAP 提供更实惠的制造和物流成本。<sup>1</sup> 在生产过程中，原料药被提高浓度、冷冻，然后运送到药品灌装完成地点。<sup>1</sup> 由于 HCAP 每单位体积的原料药具有较高的蛋白质浓度，因此与较低浓度溶液相比，运输、储存和库存管理的成本显著降低。</div>
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			<h3>HCAP 的组成和稳定性</h3>

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<p> HCAP 在推进药物制剂开发方面具有多种优势。然而，为确保其有效的治疗用途，药物的成分和稳定性必须在治疗中使用的条件下表现出色。为确定药物的适用性，可测量药物的聚集、pH 值、渗透压、稳定性和粘度。通常，药物最好具有较低的聚集性，因为任何聚集均可导致药物疗效和稳定性的降低。<sup>2</sup> 其次，药物在未电离且不能自由渗透细胞膜时具有最佳的吸收效果。<sup>3</sup> 因此，所需的 pH 主要取决于治疗目标位置。<sup>3</sup> 第三，药物最好具有较高的渗透压，这样可以向预定区域输送更多的药物。<sup>4</sup> 第四，如上所述，抗体本身必须足够稳定，能够在注射和不同的身体条件下保持活性，因为对抗体稳定性的任何影响都会降低其疗效。最后，粘度可被视为最重要的稳定性测量指标之一。具体而言，在将抗体配制为浓缩溶液 (> 100 mg/mL) 的 HCAP 中，由于短程蛋白质-蛋白质相互作用，预计溶液的粘度会呈指数级增长，超出皮下注射的药学可接受范围。<sup>1</sup> 这些蛋白质-蛋白质相互作用会造成更大量的蛋白质聚集，并严重降低其整体稳定性和递送至目标位置的能力。<sup>1</sup> 因此，在可能的情况下，利用粘度测量来确定并限制蛋白质相互作用至关重要，这样才能提高稳定性和功效。<!-- wpml:html_fragment </div>



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			<h3> 粘度测量在测量蛋白质-蛋白质相互作用中的优势 </h3>

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<p>测量<a href="https://www.tainstruments.com/products/rheology/discovery-hybrid-rheometers/">流变特性</a>可为了解特定抗体的稳定性提供重要信息，并且流变特性与蛋白质-蛋白质相互作用的水平更为密切相关。最近，一项研究评估了 NaCl 对非特异性蛋白质-蛋白质相互作用的影响，以及它如何影响制剂的稳定性和粘度。<sup>5</sup> 蛋白质与蛋白质之间净相互作用的性质不仅随 NaCl 浓度的变化而变化，也随抗体浓度的变化而变化。因此，从稀释和浓缩抗体样品中测量的参数可能会导致对抗体制剂稳定性的不同预测。<sup>5</sup> 这再次强调了在制剂开发阶段使用粘度测量来评估抗体稳定性和性能的潜在益处。<!-- wpml:html_fragment </div>



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			<h3>开发成功的 HCAP</h3>

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<p> 总之，药物从制剂开发到商业化制剂的过程中会存在多种多样的需要。然而，HCAP 似乎是最有希望实现高效进展的方法，这主要是因为它能够提供高剂量浓度，可为任何患者在任何场所进行皮下给药，且成本较低。在测试这些 HCAP 时，正确评估其成分和稳定性对于确定实际应用中的成功与否非常重要。具体而言，已证明使用<a href="https://www.tainstruments.com/products/rheology/discovery-hybrid-rheometers/">流变仪</a>进行粘度测量可准确确定蛋白质-蛋白质之间的相互作用。因此，研究人员利用流变来促进药物开发进程并确保其抗体产品具有适当的稳定性和行为非常重要。<!-- wpml:html_fragment </div>




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<h3>参考文献</h3>




<ol>


<li>Ghosh, I., Gutka, H., Krause, M. E., Clemens, R., &amp; Kashi, R. S. (n.d.).A systematic review of commercial high concentration antibody drug products approved in the US: Formulation composition, dosage form design and primary packaging considerations. <em>mAbs</em>, 15(1), 2205540. <a href="https://doi.org/10.1080/19420862.2023.2205540">https://doi.org/10.1080/19420862.2023.2205540</a></li>




<li>Roberts, C. J. (2014).Protein Aggregation and Its Impact on Product Quality.<em>Current Opinion in Biotechnology</em>, 0, 211–217. <a href="https://doi.org/10.1016/j.copbio.2014.08.001">https://doi.org/10.1016/j.copbio.2014.08.001</a></li>




<li>Swietach, P., Hulikova, A., Patiar, S., Vaughan-Jones, R. D., &amp; Harris, A. L. (2012).Importance of intracellular pH in determining the uptake and efficacy of the weakly basic chemotherapeutic drug, doxorubicin.<em>PloS One</em>, 7(4), e35949. <a href="https://doi.org/10.1371/journal.pone.0035949">https://doi.org/10.1371/journal.pone.0035949</a></li>




<li>Sifniotis, V., Cruz, E., Eroglu, B., &amp; Kayser, V. (2019).Current Advancements in Addressing Key Challenges of Therapeutic Antibody Design, Manufacture, and Formulation.<em>Antibodies</em>, 8(2), 36. <a href="https://doi.org/10.3390/antib8020036">https://doi.org/10.3390/antib8020036</a></li>




<li><em>Antibodies | Free Full-Text | Effects of Monovalent Salt on Protein-Protein Interactions of Dilute and Concentrated Monoclonal Antibody Formulations</em>. (n.d.).2023 年 11 月 8 日检索自 <a href="https://www.mdpi.com/2073-4468/11/2/24">https://www.mdpi.com/2073-4468/11/2/24</a></li>


</ol>




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<h3>其他来源</h3>




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<ul>


<li>网络研讨会 - <a href="https://www.tainstruments.com/biophysical-characterization-of-antibody-drug-conjugates-using-dsc/">使用 DSC 对抗体药物偶联物进行生物物理表征 (Biophysical Characterization of Antibody Drug Conjugates Using DSC)</a></li>




<li>电子书- <a href="https://www.tainstruments.com/biopharma-analytical-techniques-download/">生物制药开发商必须了解的分析技术 (Must Know Analytical Techniques for Biopharma Developers)</a></li>




<li>应用说明 - <a href="https://www.tainstruments.com/applications-notes/a-novel-thermodynamic-assay-for-predicting-and-monitoring-biomolecular-structure-stability/">用于预测和监测生物分子结构稳定性的新型热力学分析 (A Novel Thermodynamic Assay for Predicting and Monitoring Biomolecular Structure Stability)</a></li>




<li>仪器 - <a href="https://www.tainstruments.com/products/rheology/discovery-hybrid-rheometers/">Discovery 混合流变仪</a></li>




<li>联系方式 - <a href="https://www.tainstruments.com/contact/">立即联系 TA Instruments</a></li>


</ul>




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</div><p>The post <a href="https://www.tainstruments.com.cn/%e9%80%9a%e8%bf%87%e6%b5%81%e5%8f%98%e7%a0%94%e7%a9%b6%e6%8f%90%e9%ab%98%e5%88%b6%e5%89%82%e6%80%a7%e8%83%bd/">通过流变研究提高制剂性能</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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		<title>用于药物开发的粉体流变测量</title>
		<link>https://www.tainstruments.com.cn/%e7%94%a8%e4%ba%8e%e8%8d%af%e7%89%a9%e5%bc%80%e5%8f%91%e7%9a%84%e7%b2%89%e4%bd%93%e6%b5%81%e5%8f%98%e6%b5%8b%e9%87%8f/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=%25e7%2594%25a8%25e4%25ba%258e%25e8%258d%25af%25e7%2589%25a9%25e5%25bc%2580%25e5%258f%2591%25e7%259a%2584%25e7%25b2%2589%25e4%25bd%2593%25e6%25b5%2581%25e5%258f%2598%25e6%25b5%258b%25e9%2587%258f</link>
		
		<dc:creator><![CDATA[Sam Barnes]]></dc:creator>
		<pubDate>Tue, 13 Jun 2023 11:14:35 +0000</pubDate>
				<category><![CDATA[制药]]></category>
		<category><![CDATA[流变]]></category>
		<guid isPermaLink="false">https://www.tainstruments.com.cn/?p=102833</guid>

					<description><![CDATA[<p>为新产品寻找合适的配方是药物研发进程中具有挑战性的领域。在许多新型疗法中，活性药物成分价格昂贵，因此在测试和开发中尽量降低活性药物的用量非常重要。还需要考虑活性药物成分在多种加工条件下的行为，包括混合、储存、分装和压片。</p>
<p>The post <a href="https://www.tainstruments.com.cn/%e7%94%a8%e4%ba%8e%e8%8d%af%e7%89%a9%e5%bc%80%e5%8f%91%e7%9a%84%e7%b2%89%e4%bd%93%e6%b5%81%e5%8f%98%e6%b5%8b%e9%87%8f/">用于药物开发的粉体流变测量</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></description>
										<content:encoded><![CDATA[<div class="wpb-content-wrapper" id="wpb-content-root"><div class="vc_row wpb_row vc_row-fluid dt-default" style="margin-top: 0px;margin-bottom: 0px"><div class="wpb_column vc_column_container vc_col-sm-12"><div class="vc_column-inner"><div class="wpb_wrapper"><div class="vc_row wpb_row vc_inner vc_row-fluid"><div class="wpb_column vc_column_container vc_col-sm-2"><div class="vc_column-inner"><div class="wpb_wrapper"></div></div></div><div class="wpb_column vc_column_container vc_col-sm-8"><div class="vc_column-inner"><div class="wpb_wrapper">
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			<h2><strong>用于药物开发的粉体流变测量</strong></h2>

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			<p><strong>Sarah Cotts | Morgan Ulrich<br />
</strong>June 13, 2023</p>

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<p>为新产品寻找合适的配方是药物研发进程中具有挑战性的领域。在许多新型疗法中，活性<a href="https://www.tainstruments.com/applications/pharmaceuticals/">药物</a>成分价格昂贵，因此在测试和开发中尽量降低活性药物的用量非常重要。还需要考虑活性药物成分在多种加工条件下的行为，包括混合、储存、分装和压片。</p>
<p>粉体流变是加速药物制剂和开发的最佳工具之一。<a href="https://www.tainstruments.com/powder-rheology/">粉体流变</a>可用于全面表征所用粉体的物理行为、稳定性，甚至可全面表征最终片剂产品的机械行为。<sup>1</sup> 这些数据对于选择可简化工艺的粉体混合物并最大限度减少流动性或制粒性较差等问题至关重要。</p>
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			<h3>粉体流变</h3>

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<p>为加快药物开发的上市时间，TA Instruments 的 <a href="https://www.tainstruments.com/products/rheology/discovery-hybrid-rheometers/">Discovery 混合流变仪</a>系列是理想的选择。DHR 专门为处理小体积样品而设计，可提供准确的测量结果，而且不会造成对昂贵产品的不必要的浪费。Discovery 混合流变仪系列可在单一平台上提供全面的粉体流变学测量，同时仍具有易于使用的特点并可整合到现有工作流程中。</p>
<p>DHR 使用 <a href="https://www.tainstruments.com/trios-software/">TRIOS 粉体软件</a>，以帮助简化新用户的测试设置，同时仍保持工作的可定制性，对于最具挑战性的工作而言也是如此。还提供一些直观的工具来协助支持数据的再现性，包括用以确保样本加载一致性的用户提示。</p>
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			<h3>粉体流变测量包括哪些内容？</h3>

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<p>药物开发中关键的粉体流变测量包括：</p>
<ul>
<li>流动性能量</li>
<li>内聚力</li>
<li>屈服强度</li>
<li>粉体的可压缩性行为</li>
<li>测量与辅料的混合稳定性</li>
<li>干混</li>
<li>干法和湿法制粒</li>
</ul>
<p>辅料的选择至关重要，因为这会影响混合和制粒特性以及流动和压片行为。所有这些测量均通过观察粉体的剪切和流动特征而实现。</p>
<p>选择如 <a href="https://www.tainstruments.com/products/rheology/discovery-hybrid-rheometers/">Discovery 混合流变仪</a>的多功能仪器，您将获得在单一附件中测量粉体剪切和流动的独特能力，进而加速测试过程。该流变仪还可用于测量注射和外用制剂，这意味着仅需一台仪器即可完成对多种治疗药物的流变学测试。</p>
<p>Discovery 混合流变仪已用于测量不同工艺（研磨与喷雾干燥）生产的乳糖辅料的流动性和剪切应力的差异。<sup>2 </sup>通过在一系列加工速度下测量动态流动性，研磨乳糖因不规则的颗粒形态而表现出速度依赖性流动能量。这些小规模实验室测量是避免在全工业规模上进行昂贵的优化程序的关键，也是充分发挥“质量源于设计”药物开发理念的全部潜力的关键。</p>
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<p>处理粉体以及粉体的不同形态可能存在挑战。TA Instruments 是行业领先的流变仪开发和应用领域的世界级专家，与其合作可帮助您在开发过程中获得粉体流变测量的全部优势。从能够根据之前原材料的已有数据推断新配方，到能够了解料斗中的粉体流动特征，高质量的粉体流变数据可帮助药物开发过程中从混合到压片的每一个阶段。</p>
<p><a href="https://www.tainstruments.com/contact/">立即联系 TA Instruments</a>，以了解我们的粉体流变仪可如何帮助您将药物更快地推向市场。</p>
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			<h3>参考文献:</h3>
<ol>
<li>Ascani, S., Berardi, A., Bisharat, L., Bonacucina, G., Cespi, M., &amp; Palmieri, G. F. (2019). The influence of core tablets rheology on the mechanical properties of press-coated tablets. European Journal of Pharmaceutical Sciences, 135 68–76. <a href="https://doi.org/10.1016/j.ejps.2019.05.011">https://doi.org/10.1016/j.ejps.2019.05.011</a></li>
<li>TA Instruments (2022) Powder Rheology of Lactose, <a href="https://www.tainstruments.com/pdf/literature/RH123.pdf">https://www.tainstruments.com/pdf/literature/RH123.pdf</a>., accessed August 2022</li>
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			<h3>其他资源</h3>

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<div class="standard-arrow list-divider bullet-top"><ul>
<li>Product: <a href="https://www.tainstruments.com/products/rheology/discovery-hybrid-rheometers/">Discovery Hybrid Rheometers</a></li>
<li>
<div>Webinar: <a class="resource-link" href="https://www.tainstruments.com/dsc-characterization-of-crystalline-structure-in-foods-and-pharmaceuticals/" target="_blank" rel="noopener">DSC Characterization of Crystalline Structure in Foods and Pharmaceuticals</a></div>
</li>
<li>
<div>Webinar: <a class="resource-link" href="https://www.tainstruments.com/kadine-mohomed-characterization-of-amorphous-pharmaceuticals-by-dsc-analysis/" target="_blank" rel="noopener">Characterization of Amorphous Pharmaceuticals by DSC Analysis</a></div>
</li>
<li>
<div>Webinar: <a class="resource-link" href="https://tainstruments.webinato.com/archives/396214" target="_blank" rel="noopener">Achieving 21CFR11 Compliance for Thermal Analysis and Rheology Data Management Through TRIOS Guardian</a></div>
</li>
<li><a href="https://www.tainstruments.com/contact/">Contact us</a></li>
</ul>
</div></div></div></div><div class="wpb_column vc_column_container vc_col-sm-2"><div class="vc_column-inner"><div class="wpb_wrapper"></div></div></div></div><!-- Row Backgrounds --><div class="upb_color" data-bg-override="full" data-bg-color="#f5f5f5" data-fadeout="" data-fadeout-percentage="30" data-parallax-content="" data-parallax-content-sense="30" data-row-effect-mobile-disable="true" data-img-parallax-mobile-disable="true" data-rtl="false"  data-custom-vc-row=""  data-vc="9.0.1"  data-is_old_vc=""  data-theme-support=""   data-overlay="false" data-overlay-color="" data-overlay-pattern="" data-overlay-pattern-opacity="" data-overlay-pattern-size=""    ></div>
</div><p>The post <a href="https://www.tainstruments.com.cn/%e7%94%a8%e4%ba%8e%e8%8d%af%e7%89%a9%e5%bc%80%e5%8f%91%e7%9a%84%e7%b2%89%e4%bd%93%e6%b5%81%e5%8f%98%e6%b5%8b%e9%87%8f/">用于药物开发的粉体流变测量</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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		<title>经济且高效地升级实验室仪器的 4 种方法</title>
		<link>https://www.tainstruments.com.cn/%e7%bb%8f%e6%b5%8e%e4%b8%94%e9%ab%98%e6%95%88%e5%9c%b0%e5%8d%87%e7%ba%a7%e5%ae%9e%e9%aa%8c%e5%ae%a4%e4%bb%aa%e5%99%a8%e7%9a%84-4-%e7%a7%8d%e6%96%b9%e6%b3%95/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=%25e7%25bb%258f%25e6%25b5%258e%25e4%25b8%2594%25e9%25ab%2598%25e6%2595%2588%25e5%259c%25b0%25e5%258d%2587%25e7%25ba%25a7%25e5%25ae%259e%25e9%25aa%258c%25e5%25ae%25a4%25e4%25bb%25aa%25e5%2599%25a8%25e7%259a%2584-4-%25e7%25a7%258d%25e6%2596%25b9%25e6%25b3%2595</link>
		
		<dc:creator><![CDATA[Sam Barnes]]></dc:creator>
		<pubDate>Mon, 19 Sep 2022 12:25:30 +0000</pubDate>
				<category><![CDATA[Polymers]]></category>
		<category><![CDATA[Thermal Analysis]]></category>
		<category><![CDATA[制药]]></category>
		<category><![CDATA[医疗器械]]></category>
		<category><![CDATA[复合材料]]></category>
		<category><![CDATA[微量量热法]]></category>
		<category><![CDATA[机械测试]]></category>
		<category><![CDATA[流变]]></category>
		<category><![CDATA[涂料]]></category>
		<category><![CDATA[生物制药]]></category>
		<category><![CDATA[电子材料及产品]]></category>
		<category><![CDATA[电池及电池材料]]></category>
		<guid isPermaLink="false">https://www.tainstruments.com.cn/?p=101942</guid>

					<description><![CDATA[<p>技术的发展日新月异。无论您是升级旧设备还是为您的工作台添加新技术，使用尖端仪器都一定会提高您实验室的效率和成果。新型仪器可提供更可靠的数据和更先进的功能，这对于始终立足于材料创新前沿而言至关重要。</p>
<p>The post <a href="https://www.tainstruments.com.cn/%e7%bb%8f%e6%b5%8e%e4%b8%94%e9%ab%98%e6%95%88%e5%9c%b0%e5%8d%87%e7%ba%a7%e5%ae%9e%e9%aa%8c%e5%ae%a4%e4%bb%aa%e5%99%a8%e7%9a%84-4-%e7%a7%8d%e6%96%b9%e6%b3%95/">经济且高效地升级实验室仪器的 4 种方法</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></description>
										<content:encoded><![CDATA[<div class="wpb-content-wrapper" id="wpb-content-root"><div class="vc_row wpb_row vc_row-fluid dt-default" style="margin-top: 0px;margin-bottom: 0px"><div class="wpb_column vc_column_container vc_col-sm-12"><div class="vc_column-inner"><div class="wpb_wrapper"></div></div></div></div><div class="vc_row wpb_row vc_row-fluid dt-default" style="margin-top: 0px;margin-bottom: 0px"><div class="wpb_column vc_column_container vc_col-sm-12"><div class="vc_column-inner"><div class="wpb_wrapper"><div class="vc_row wpb_row vc_inner vc_row-fluid"><div class="wpb_column vc_column_container vc_col-sm-2"><div class="vc_column-inner"><div class="wpb_wrapper"></div></div></div><div class="wpb_column vc_column_container vc_col-sm-8"><div class="vc_column-inner"><div class="wpb_wrapper">
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			<h2><strong>经济且高效地升级实验室仪器的 4 种方法</strong></h2>

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			<p><strong>Sarah Cotts | Stephanie Keller | Morgan Ulrich<br />
</strong>September 19, 2022</p>

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<p>技术的发展日新月异。无论您是升级旧设备还是为您的工作台添加新技术，使用尖端仪器都一定会提高您实验室的效率和成果。新型仪器可提供更可靠的数据和更先进的功能，这对于始终立足于材料创新前沿而言至关重要。</p>
<p>但是，如何在升级仪器以获得最佳投资回报的同时最大限度地减少停机时间呢？以下是可让您无缝且轻松地升级实验室的 4 种方法。</p>
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			<h3>1. 以旧换新</h3>

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<p>用最新型号的仪器更换服务多年的老旧仪器是改善实验室结果的最简单的方法之一。更好的消息是，您可以用旧仪器换取升级折扣。</p>
<p>2000 年推出的 TA Instruments Q 系列热分析仪彻底革新了测量方法，Discovery 系列以其改进的测量和易用性延续了品牌传统。用户可对其 Q 系列 DSC、TGA、DMA、SDT、TMA 仪器<em>或竞争型号仪器</em>进行以旧换新，以节省购买新的 Discovery 系列热分析仪的费用。Discovery 系列提供无与伦比的灵敏度和准确性，可检测样品中的最小变化，并通过强大的 TRIOS 软件提供革命性的用户体验。<a href="https://www.tainstruments.com/news/promotions/q-series-trade-in/">点击此处以解更多信息</a>并联系我们以对您的热分析仪进行以旧换新。</p>
<p>同样，您可以对 TA Instruments AR 流变仪或竞争型号仪器进行以旧换新，以节省购买新的 Discovery 混合流变仪的费用。升级到 DHR 实现了卓越的功能改进 – 由于 DHR 优异的扭矩灵敏度，用户可使用更少的样品测量更低的黏度和更小的应力。该仪器的混合功能是游戏规则的改变者：可在一台含集成线性 DMA 的流变仪上进行剪切流变学、黏性/剥离、拉伸黏度测量，以及张力、弯曲和压缩测量。DHR 广泛的功能和<a href="https://www.tainstruments.com/category/dhr-accessories/">配件</a>（包括与许多 AR 配件的兼容性）可为您实验室未来可能需要的任何测量提供保障。<a href="https://www.tainstruments.com/contact/?utm_source=blog&amp;utm_medium=post&amp;utm_campaign=upgrade-blog">联系我们</a>以了解有关流变仪以旧换新的更多信息。</p>
<p>除节省成本外，对您的热分析仪或流变仪进行以旧换新也非常易于操作且回报丰厚：</p>
<ul>
<li>通过承接已有的历史数据和操作程序实现平稳过渡</li>
<li>使用新的“无人值守”自动进样器减少瓶颈（可在特定的热分析仪型号上使用）</li>
<li>借助专为每个用户级别的易用性而构建的 TRIOS 软件，最大限度地减少操作适应时间</li>
<li>通过可靠的结果和更高的准确性提高数据可信度</li>
<li>通过新功能和测量选项扩展实验室能力</li>
</ul>
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			<h3>2. 租用新仪器</h3>

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			<p>您是否知道租用新仪器比租用汽车更容易？Waters Capital 为 TA Instruments 提供灵活的租用选项和优惠价格。租用仪器可让您：</p>
<ul>
<li>通过可预测的每月付款来扩展您的预算</li>
<li>无需预付金即可在需要时立即采用新技术</li>
<li>根据每月付款金额与大量初始投资加速您的投资回报率（ROI）</li>
<li>购买前试用最新的仪器</li>
</ul>
<p>租用可避免预算超支，无需直接购买即可使用新仪器。如果您需要一项技术的时长有限，您可通过仅租用与工作相关的技术来节省大量的开支。或者，如果您决定保留该仪器，您所有的租用付款都将计入最终的购买价格。无论您选择哪种方式，租用都可让您在受益于最新技术的同时节省重要的资本。<a href="https://www.tainstruments.com/leasing-and-financing-services/">点击此处以了解有关租用新仪器的更多信息。</a></p>

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			<h3>3. 通过资助配套项目使您的资金翻倍</h3>

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			<p>学术和政府实验室，请不要错过该项目！我们重视您对研究和教育的贡献，我们希望可帮助您的实验室取得更多的成就。我们的<a href="https://www.tainstruments.com/news/promotions/academic-matching-grant-program/">学术资助配套项目</a>为我们的全新仪器提供仅限于学术用途的特殊定价，以确保您能够使用最先进的设备。</p>
<p>我们可靠耐用的仪器为各种经验水平的用户设计。从任期最长的教授到刚入校的新生，都可以轻松设置和运行测量。</p>
<p>希望保护您的投资并节省耗材和维修？我们的<a href="https://www.tainstruments.com/support/service-support-contracts/academic-support-plan/">学术支持计划</a>旨在降低拥有成本并最大限度地延长正常运行时间和产品寿命。该计划包括用品和消耗品折扣，以及我们定期安排的免学费的理论和应用培训课程。</p>
<p><a href="https://www.tainstruments.com/news/promotions/academic-matching-grant-program/">单击此处以了解更多信息</a>并<a href="https://www.tainstruments.com/news/promotions/academic-matching-grant-program/#联系我们">联系我们</a>以获取报价。</p>

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			<h3>4. 关注以获得提示和销售信息</h3>

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			<p>您最大限度地利用您的仪器吗？您是否了解新的促销和升级？</p>
<p>关注 TA Instruments 的 <a href="https://www.linkedin.com/company/ta-instruments/">LinkedIn</a>、 <a href="https://www.facebook.com/tainstruments">Facebook</a> 和 <a href="https://twitter.com/TAInstruments">Twitter</a>，以获取有关优惠、新产品和仪器使用技巧的频繁更新信息。在您购买之前，请查看 TA Instruments <a href="https://www.tainstruments.com/news/promotions/">当前的促销活动</a>，以了解是否有您需要的设备的优惠。</p>
<p>无论您何时购买，我们的销售代表都会通知您任何相关的促销活动，并帮助您选择适合您需求的技术。<a href="https://www.tainstruments.com/contact/">请联系 TA Instruments 销售代表</a>，以确保为您的实验室采购最好的仪器。</p>

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</div><p>The post <a href="https://www.tainstruments.com.cn/%e7%bb%8f%e6%b5%8e%e4%b8%94%e9%ab%98%e6%95%88%e5%9c%b0%e5%8d%87%e7%ba%a7%e5%ae%9e%e9%aa%8c%e5%ae%a4%e4%bb%aa%e5%99%a8%e7%9a%84-4-%e7%a7%8d%e6%96%b9%e6%b3%95/">经济且高效地升级实验室仪器的 4 种方法</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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		<title>如何使用热分析优化冻干工艺</title>
		<link>https://www.tainstruments.com.cn/%e5%a6%82%e4%bd%95%e4%bd%bf%e7%94%a8%e7%83%ad%e5%88%86%e6%9e%90%e4%bc%98%e5%8c%96%e5%86%bb%e5%b9%b2%e5%b7%a5%e8%89%ba/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=%25e5%25a6%2582%25e4%25bd%2595%25e4%25bd%25bf%25e7%2594%25a8%25e7%2583%25ad%25e5%2588%2586%25e6%259e%2590%25e4%25bc%2598%25e5%258c%2596%25e5%2586%25bb%25e5%25b9%25b2%25e5%25b7%25a5%25e8%2589%25ba</link>
		
		<dc:creator><![CDATA[Super Admin]]></dc:creator>
		<pubDate>Tue, 19 Jul 2022 15:22:53 +0000</pubDate>
				<category><![CDATA[Thermal Analysis]]></category>
		<category><![CDATA[制药]]></category>
		<category><![CDATA[微量量热法]]></category>
		<category><![CDATA[生物制药]]></category>
		<guid isPermaLink="false">https://tainstruments.com.cn/?p=101618</guid>

					<description><![CDATA[<p>冻干（也称为冷冻干燥）是从样品中去除水分的过程，通常用于样品的保存。冻干通常通过快速冷冻过程让样品中的水升华，进而降低样品的水含量。快速冷冻材料有助于避免因大冰晶的形成而对样品的细胞壁产生破坏。</p>
<p>The post <a href="https://www.tainstruments.com.cn/%e5%a6%82%e4%bd%95%e4%bd%bf%e7%94%a8%e7%83%ad%e5%88%86%e6%9e%90%e4%bc%98%e5%8c%96%e5%86%bb%e5%b9%b2%e5%b7%a5%e8%89%ba/">如何使用热分析优化冻干工艺</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></description>
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			<h2><strong>如何使用热分析优化冻干工艺</strong></h2>

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			<p><strong>Neil Demarse | Nicie Murphy | Morgan Ulrich<br />
</strong>July 22, 2022</p>

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<p><span lang="ZH-CN" style="font-family: SimSun;">冻干（也称为冷冻干燥）是从样品中去除水分的过程，通常用于样品的保存。冻干通常通过快速冷冻过程让样品中的水升华，进而降低样品的水含量。快速冷冻材料有助于避免因大冰晶的形成而对样品的细胞壁产生破坏。</span></p>
<p><span lang="ZH-CN" style="font-family: SimSun;">冻干的常见应用包括材料的保存，特别是用于药物运输。如果以液体形式运输，非肠道药物可能会丧失稳定性或效力。因此在用于患者之前，需要使用冻干技术来制造更易于运输和复溶的药物产品。</span></p>
<p><span lang="ZH-CN" style="font-family: SimSun;">此外，许多新型治疗药物的溶解度差，应用常规药物交付方法时通常会损失药物的生物利用度。应用冻干技术可以制造可通过固态形式运输的无定形固体分散体。</span><sup><span style="font-family: SimSun;">1</span></sup></p>
<p><span lang="ZH-CN" style="font-family: SimSun;">虽然冻干是制药行业中常规使用的技术，但该技术具有高度的特异性，并且需要高度可控的生产方案。不适当的程序可导致冷冻不足、过载以及设备或样品损坏。生物样品尤其易于遭受由冷冻引起的损害，进而降低了药品的功效和效力。因此，详细的表征对于优化样品制备、冻干和产品交付至关重要。</span></p>
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			<h3>量化冻干</h3>

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<p>研究人员需要在整个冻干过程中测量关键参数和材料性能，以优化其工艺和产品。应用<a href="https://www.tainstruments.com/products/thermal-analysis/">热分析</a>测量温度变化如何影响样品的材料性能。</p>
<h4>玻璃化转变和 DSC</h4>
<p><strong>玻璃化转变温度（</strong><strong>Tg</strong><strong>）</strong>是冻干样品从冷冻、易碎状态转变为更粘稠状态并出现流动性增加时的温度。<sup>3</sup>研究人员需要确定玻璃化转变温度，以优化冻干后样品复溶的过程。</p>
<p><a href="https://www.tainstruments.com/products/thermal-analysis/differential-scanning-calorimeters/">差示扫描量热法</a><strong>（</strong>DSC<strong>）</strong>测量与材料的热转变（包括玻璃转变）相关的温度和热流。对于样品的结晶温度接近于玻璃化转变温度的复杂情况，温度调制式差示扫描量热法可帮助确定这些材料的性能。使用线性温度斜坡调节样品温度可以测量样品的热容量以及测试期间的总热流。</p>
<p>TA Instruments 提供唯一的可用于热分析的调制动态扫描量热仪，包括可同时运行 3 个样品并可在更短的时间内提供更多数据的<a href="https://www.tainstruments.com/x3-dsc/">多样本 X3 DSC（Multi-Sample X3 DSC）</a>。X3 DSC 应用 TA Instruments 专利的 Fusion Cell 设计，可提供具有最高水平性能的最准确、最可靠的热分析测量。</p>
<p><a href="http://www.tainstruments.com/nanodsc/">纳米差示扫描量热法</a>也可用于复溶后样品的分析，以查看产品的稳定性或功效是否发生了变化。纳米差示扫描量热法 (DSC) 可有效表征分子的稳定性、确定高亲和力配体结合以及反卷积多结构域结构。</p>
<h4>干燥和 TGA</h4>
<p>冻干样品后，如何确认样品已完全干燥？<a href="https://www.tainstruments.com/products/thermal-analysis/thermogravimetric-analysis/">热重分析仪</a> (TGA) 甚至可以可靠地检测出最少量的残留水分。该分析可用于评估冻干工艺的质量，预测产品可能保持的稳定性，并确定冻干的最佳参数。<sup>2</sup></p>
<p>卡尔费休滴定法（Karl Fischer titration）是最广泛使用的检测残留水分的方法，并可在 TGA 仪器上运行；此外，TGA 还可用于测试与卡尔费休滴定法不兼容的化学品。<sup>2 </sup>TGA 还提供有关冻干样品在不同温度和压力下的表现数据。</p>
<p>TA Instruments 提供一系列的热重分析仪，可满足每个实验室的需求。<a href="https://www.tainstruments.com/tga-55/">TGA 55</a> 是一款坚固、可靠且具有成本效益的选项，配有专有的 Tru-Mass 天平，是竞争性型号中可进行最准确测量的仪器。<a href="https://www.tainstruments.com/tga-550/">TGA 550</a> 通过附加功能和可选扩展功能提供了更高的性能和灵活性。<a href="https://www.tainstruments.com/tga-5500/">TGA 5500</a> 提供了最强的性能，与任何竞争性 TGA 相比，该仪器的漂移更小并可提供最快的加热和冷却速率。对于任何实验室和冻干工艺，总有一款 TGA 可以满足您的需求并推进您的研究。</p>
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			<h3>选择您的仪器</h3>

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<p>由于冻干工艺是严格控制的过程，领先的实验室需要高度准确和高效的热分析仪器来改进程序，进而避免浪费宝贵的时间。热重分析和差示扫描量热法是优化冻干工艺的标准方法，但如前所述，有许多仪器可供选择。</p>
<p>TA Instruments 在设计和生产热分析仪器（包括 TGA 和 DSC）方面处于世界领先地位。TA 以解决方案为中心，与任何其他供应商相比，TA 已帮助更多的客户成功地将 TGA 和 DSC 集成到他们的实验室中。</p>
<p>领先的实验室依靠我们的 DSC 和 TGA 来提高其冻干工艺的生产力和适用性。我们拥有市场上最具成本效益以及具有最高功能的种类繁多的仪器，总有一款可满足您实验室的需求。</p>
<p><a href="https://www.tainstruments.com/contact/">请立即联系 TA Instruments</a>并与我们的专家交谈，以了解我们的热分析仪器将如何改善您的冻干工艺。</p>
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			<h3>参考文献:</h3>
<ol>
<li>Kasper, J. C., Winter, G., &amp; Friess, W. (2013). European Journal of Pharmaceutics and Biopharmaceutics Recent advances and further challenges in lyophilization. European Journal of Pharmaceutics and Biopharmaceutics, 85(2), 162–169. <a href="https://doi.org/10.1016/j.ejpb.2013.05.019">https://doi.org/10.1016/j.ejpb.2013.05.019</a></li>
<li>Matejtschuk, P., Duru, C., Malik, K., Ezeajughi, E., Gray, E., Raut, S., &amp; Mawas, F. (2016). Use of Thermogravimetric Analysis for Moisture Determination in Difficult Lyophilized Biological Samples. American Journal of Analytical Chemistry, 7, 260–265. <a href="https://doi.org/10.4236/ajac.2016.73023">https://org/10.4236/ajac.2016.73023</a></li>
<li>Horn, J., &amp; Friess, W. (2018). Detection of Collapse and Crystallization of Saccharide , Protein , and Mannitol Formulations by Optical Fibers in Lyophilization. Frontiers in Chemistry, 6, 1–9. <a href="https://doi.org/10.3389/fchem.2018.00004">https://doi.org/10.3389/fchem.2018.00004</a></li>
</ol>

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			<h3>其他资源</h3>

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<div class="standard-arrow list-divider bullet-top"><ul>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/pdf/literature/MCAPN-2009-01.pdf">Characterizing Virus Structure and Binding</a></li>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/pdf/literature/MCAPN-0132.pdf">Characterizing Protein &#8211; Protein Interactions by ITC</a></li>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/pdf/literature/MCAPN-2019-1.pdf">Characterization of Biopharmaceutical Stability</a></li>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/pdf/literature/MCAPN-2017-1.pdf">Advances in Native Binding Assays</a></li>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/pdf/literature/MCAPN-2011-06.pdf">Determining Thermal Stability of Antibodies with a Nano DSC</a></li>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/pdf/literature/MCAPN-2020-1.pdf">A Novel Thermodynamic Assay for Predicting and Monitoring Biomolecular Structure Stability</a></li>
</ul>
<ul>
<li>Webinar &#8211; <a title="Biophysical Characterization of Antibodies in a Suspension: Solutions for Slurries" href="https://www.tainstruments.com/biophysical-characterization-of-antibodies-in-a-suspension-solutions-for-slurries/" rel="bookmark">Biophysical Characterization of Antibodies in a Suspension: Solutions for Slurries</a></li>
<li>Webinar &#8211; <a title="Biophysical Characterization of Antibody Drug Conjugates Using DSC" href="https://www.tainstruments.com/biophysical-characterization-of-antibody-drug-conjugates-using-dsc/" rel="bookmark">Biophysical Characterization of Antibody Drug Conjugates Using DSC</a></li>
<li>Instrument &#8211; <a href="http://www.tainstruments.com/nanodsc/">Nano DSC</a></li>
<li>Instrument &#8211; <a href="https://www.tainstruments.com/products/microcalorimetry/isothermal-titration-calorimetry/">Isothermal Titration Calorimeters (ITC)</a></li>
<li>Instrument &#8211; <a href="https://www.tainstruments.com/products/microcalorimetry/isothermal-calorimetry/">Isothermal Microcalorimeters</a></li>
<li>Contact &#8211; <a href="https://www.tainstruments.com/contact/">Contact TA Instruments Today</a></li>
</ul>
</div></div></div></div><div class="wpb_column vc_column_container vc_col-sm-2"><div class="vc_column-inner"><div class="wpb_wrapper"></div></div></div></div><!-- Row Backgrounds --><div class="upb_color" data-bg-override="full" data-bg-color="#f5f5f5" data-fadeout="" data-fadeout-percentage="30" data-parallax-content="" data-parallax-content-sense="30" data-row-effect-mobile-disable="true" data-img-parallax-mobile-disable="true" data-rtl="false"  data-custom-vc-row=""  data-vc="9.0.1"  data-is_old_vc=""  data-theme-support=""   data-overlay="false" data-overlay-color="" data-overlay-pattern="" data-overlay-pattern-opacity="" data-overlay-pattern-size=""    ></div>
</div><p>The post <a href="https://www.tainstruments.com.cn/%e5%a6%82%e4%bd%95%e4%bd%bf%e7%94%a8%e7%83%ad%e5%88%86%e6%9e%90%e4%bc%98%e5%8c%96%e5%86%bb%e5%b9%b2%e5%b7%a5%e8%89%ba/">如何使用热分析优化冻干工艺</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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		<title>如何改善基因治疗的发展</title>
		<link>https://www.tainstruments.com.cn/how-to-improve-gene-therapy-development/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=how-to-improve-gene-therapy-development</link>
		
		<dc:creator><![CDATA[Sam Barnes]]></dc:creator>
		<pubDate>Mon, 09 May 2022 01:11:30 +0000</pubDate>
				<category><![CDATA[Thermal Analysis]]></category>
		<category><![CDATA[制药]]></category>
		<category><![CDATA[微量量热法]]></category>
		<category><![CDATA[生物制药]]></category>
		<guid isPermaLink="false">https://tainstruments.com.cn/?p=101292</guid>

					<description><![CDATA[<p>基因疗法是一种疾病治疗方法，没有通过药物或手术改变了患者的基因组成。基因治疗是通过激活特定的基因，修复有缺陷的基因，或引入新的基因来帮助抵御疾病。</p>
<p>The post <a href="https://www.tainstruments.com.cn/how-to-improve-gene-therapy-development/">如何改善基因治疗的发展</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></description>
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			<h2><strong>如何改善基因治疗的发展 </strong></h2>

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			<p><strong>Neil Demarse | Morgan Ulrich<br />
</strong>May 09, 2022</p>

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<p>基因疗法是一种疾病治疗方法，没有通过药物或手术改变了患者的基因组成。基因治疗是通过激活特定的基因，修复有缺陷的基因，或引入新的基因来帮助抵御疾病。</p>
<p>基因治疗可以创建个性化的医疗护理，以及使用标准药物和手术方法无法治愈的疾病。因此，开发新的基因疗法是一个非常活跃的研究领域，特别是自 2001 年美国联邦政府首次批准资助研究人类胚胎干细胞以来。<sup>1</sup></p>
<p>随着治愈衰弱性疾病的潜力和 FDA 的支持，基因治疗的发展大幅加速，但要确保基因治疗产品开发和制造的功效及可重复性仍然存在许多障碍，这需要新的分析方法来监测制剂配方和批次间的差异。测量基因治疗的热稳定性，确定是否发生了RNA污染，或确定装载量和药物产品血清类型，这些都是需要准确表征和监测的重要细节。</p>
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			<h3>差示扫描量热仪</h3>

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<p>差示扫描量热法是一种多功能工具，可以帮助解决基因治疗中的许多遗留问题。通过测量治疗产品样品与参考样品的温度的微小变化，DSC 使研究人员能够非常精确地测量样品的热容量变化，这些变化可能是由于样品的结构、溶剂环境和强制降解引起的。反过来，这些数据可以用来推断分子间相互作用的变化、空衣壳和完整衣壳的量化以及 DNA的装载、LNP 的设计和优化等信息。</p>
<p>差示扫描量热法用于基因治疗开发的一个关键优势是它可以用来建立样品在其原生溶液环境中的结构 &#8211; 性能关系。许多显微镜技术需要冷冻和固定生物分子，但差示扫描量热仪可以测量生物分子在溶液中的特性。因此，可以在更接近实际应用的条件下进行测量。</p>
<p>差示扫描量热法已成为药物设计和蛋白质结构鉴定的重要工具。该方法具有出色的灵敏度和测量特定相变的优异重复性，使其成为药物开发和生物医学研究的核心工具。<sup>2</sup></p>
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			<h3>TA Instruments – Nano DSC</h3>

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<p>TA Instruments 为基因治疗的发展提供广泛合适的差示扫描量热仪。Nano DSC 是一种简单而强大的工具，用于测量候选药物产品、配方和制造批次的相似性。<sup>3 </sup></p>
<p>Nano DSC 是一种用于测量溶液中生物材料的通用仪器，甚至可以处理极少量的蛋白质。这一优点是由于检测器的超高灵敏度，还可用于浓度低至 2µg 的样品。毛细管样品池设计成可容纳 300µL 的微量体积。</p>
<p>即使在低浓度条件，DSC 测量的灵敏度对于载体负载测量也很重要，因为只有少量的物质可渗入病毒或细胞中。这种能力可用于配方优化，以从衣壳中产生脂质纳米颗粒。</p>
<p>Nano DSC 可用于测量完整的蛋白质折叠动力学，并在进行完整热力学表征的同时确定各种蛋白质的稳定性。这类型的测量也可以用于蛋白质与其他分子的结合和相互作用。</p>
<p>通常，RNA 和 DNA 是基因治疗的靶点。治疗方法可以针对某一特定的 DNA 区域进行疾病治疗。Nano DSC 足够灵敏，可以检测到来自双链 RNA 和其他物种的潜在污染。差示扫描量热法是一种强大的技术，用于质量控制或治疗药物的释放控制，并能跟踪任何批次间的差异。</p>
<p>血清型表征在基因治疗中非常重要，因为同一物种的不同血清类型在临床安全方面可能有很大的不同。Nano DSC 对于同一物种不同血清型范围内的测量结果准确可靠。</p>
<p>请立即联系我们，详细了解 Nano DSC 如何加速您的基因治疗开发。</p>
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			<h3>参比平台:</h3>
<ol>
<li><span class="TextRun SCXW103807657 BCX9" lang="EN-US" xml:lang="EN-US" data-contrast="auto"><span class="NormalTextRun SCXW103807657 BCX9">The White House Archives, President George W. Bush (</span><span class="NormalTextRun SCXW103807657 BCX9">2008). </span></span><a class="Hyperlink SCXW103807657 BCX9" href="https://georgewbush-whitehouse.archives.gov/infocus/bushrecord/factsheets/stemcells.html" target="_blank" rel="noreferrer noopener"><span class="TextRun Underlined SCXW103807657 BCX9" lang="EN-US" xml:lang="EN-US" data-contrast="none"><span class="NormalTextRun SCXW103807657 BCX9" data-ccp-charstyle="Hyperlink">https://georgewbush-whitehouse.archives.gov/infocus/bushrecord/factsheets/stemcells.html</span></span></a><span class="TextRun SCXW103807657 BCX9" lang="EN-US" xml:lang="EN-US" data-contrast="auto"><span class="NormalTextRun SCXW103807657 BCX9">, Accessed April 2022</span></span></li>
<li><span class="TextRun SCXW63332523 BCX9" lang="FR-FR" xml:lang="FR-FR" data-contrast="auto"><span class="NormalTextRun SCXW63332523 BCX9">Chiu, M. H., &amp; </span><span class="NormalTextRun SpellingErrorV2Themed SCXW63332523 BCX9">Prenner</span><span class="NormalTextRun SCXW63332523 BCX9">, E. J. (2011). </span></span><span class="TextRun SCXW63332523 BCX9" lang="EN-US" xml:lang="EN-US" data-contrast="auto"><span class="NormalTextRun SCXW63332523 BCX9">Differential scanning </span><span class="NormalTextRun ContextualSpellingAndGrammarErrorV2Themed SCXW63332523 BCX9">calorimetry :</span> <span class="NormalTextRun ContextualSpellingAndGrammarErrorV2Themed SCXW63332523 BCX9">An</span><span class="NormalTextRun SCXW63332523 BCX9"> characterization of macromolecules and their interactions. J Pharm </span><span class="NormalTextRun SpellingErrorV2Themed SCXW63332523 BCX9">Bioall</span><span class="NormalTextRun SCXW63332523 BCX9"> Sci, 3(1), 39–59. </span></span><a class="Hyperlink SCXW63332523 BCX9" href="https://doi.org/10.4103/0975-7406.76463" target="_blank" rel="noreferrer noopener"><span class="TextRun Underlined SCXW63332523 BCX9" lang="EN-US" xml:lang="EN-US" data-contrast="none"><span class="NormalTextRun SCXW63332523 BCX9" data-ccp-charstyle="Hyperlink">https://doi.org/10.4103/0975-7406.76463</span></span></a></li>
<li><span class="TextRun SCXW58149726 BCX9" lang="EN-US" xml:lang="EN-US" data-contrast="auto"><span class="NormalTextRun SCXW58149726 BCX9">TA Instruments (2022) </span><span class="NormalTextRun SCXW58149726 BCX9">Nano DSC, </span></span><a class="Hyperlink SCXW58149726 BCX9" href="https://www.tainstruments.com/wp-content/uploads/Nano_DSC.pdf" target="_blank" rel="noreferrer noopener"><span class="TextRun Underlined SCXW58149726 BCX9" lang="EN-US" xml:lang="EN-US" data-contrast="none"><span class="NormalTextRun SCXW58149726 BCX9" data-ccp-charstyle="Hyperlink">https://www.tainstruments.com/wp-content/uploads/Nano_DSC.pdf</span></span></a><span class="TextRun SCXW58149726 BCX9" lang="EN-US" xml:lang="EN-US" data-contrast="auto"><span class="NormalTextRun SCXW58149726 BCX9">, accessed April 2022</span></span></li>
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			<h3>Other Resources</h3>

		</div>
	</div>
<div class="standard-arrow list-divider bullet-top"><ul>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/pdf/literature/MCAPN-2009-01.pdf">Characterizing Virus Structure and Binding</a></li>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/pdf/literature/MCAPN-0132.pdf">Characterizing Protein &#8211; Protein Interactions by ITC</a></li>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/pdf/literature/MCAPN-2019-1.pdf">Characterization of Biopharmaceutical Stability</a></li>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/pdf/literature/MCAPN-2017-1.pdf">Advances in Native Binding Assays</a></li>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/pdf/literature/MCAPN-2011-06.pdf">Determining Thermal Stability of Antibodies with a Nano DSC</a></li>
<li>Application Note &#8211; <a href="https://www.tainstruments.com/pdf/literature/MCAPN-2020-1.pdf">A Novel Thermodynamic Assay for Predicting and Monitoring Biomolecular Structure Stability</a></li>
</ul>
<ul>
<li>Webinar &#8211; <a title="Biophysical Characterization of Antibodies in a Suspension: Solutions for Slurries" href="https://www.tainstruments.com/biophysical-characterization-of-antibodies-in-a-suspension-solutions-for-slurries/" rel="bookmark">Biophysical Characterization of Antibodies in a Suspension: Solutions for Slurries</a></li>
<li>Webinar &#8211; <a title="Biophysical Characterization of Antibody Drug Conjugates Using DSC" href="https://www.tainstruments.com/biophysical-characterization-of-antibody-drug-conjugates-using-dsc/" rel="bookmark">Biophysical Characterization of Antibody Drug Conjugates Using DSC</a></li>
<li>Instrument &#8211; <a href="http://www.tainstruments.com/nanodsc/">Nano DSC</a></li>
<li>Instrument &#8211; <a href="https://www.tainstruments.com/products/microcalorimetry/isothermal-titration-calorimetry/">Isothermal Titration Calorimeters (ITC)</a></li>
<li>Instrument &#8211; <a href="https://www.tainstruments.com/products/microcalorimetry/isothermal-calorimetry/">Isothermal Microcalorimeters</a></li>
<li>Contact &#8211; <a href="https://www.tainstruments.com/contact/">Contact TA Instruments Today</a></li>
</ul>
</div></div></div></div><div class="wpb_column vc_column_container vc_col-sm-2"><div class="vc_column-inner"><div class="wpb_wrapper"></div></div></div></div><!-- Row Backgrounds --><div class="upb_color" data-bg-override="full" data-bg-color="#f5f5f5" data-fadeout="" data-fadeout-percentage="30" data-parallax-content="" data-parallax-content-sense="30" data-row-effect-mobile-disable="true" data-img-parallax-mobile-disable="true" data-rtl="false"  data-custom-vc-row=""  data-vc="9.0.1"  data-is_old_vc=""  data-theme-support=""   data-overlay="false" data-overlay-color="" data-overlay-pattern="" data-overlay-pattern-opacity="" data-overlay-pattern-size=""    ></div>
</div><p>The post <a href="https://www.tainstruments.com.cn/how-to-improve-gene-therapy-development/">如何改善基因治疗的发展</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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		<title>用于新产品开发或仿制药的  外用药流变学</title>
		<link>https://www.tainstruments.com.cn/rheology-of-topical-pharmaceuticals-for-new-product-development-or-generic-equivalents/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=rheology-of-topical-pharmaceuticals-for-new-product-development-or-generic-equivalents</link>
		
		<dc:creator><![CDATA[Sam Barnes]]></dc:creator>
		<pubDate>Mon, 02 May 2022 02:08:47 +0000</pubDate>
				<category><![CDATA[制药]]></category>
		<category><![CDATA[流变]]></category>
		<guid isPermaLink="false">https://tainstruments.com.cn/?p=101287</guid>

					<description><![CDATA[<p>有充分的理由将药品开发处于高度监管之下。潜在的新产品在上市前必须经过严格测试，以确保其安全性、纯度和性能是可以接受的。对于外用乳液，法规支持稳定性寿命参数，并要求在产品到达消费者手中之前识别所有杂质。</p>
<p>The post <a href="https://www.tainstruments.com.cn/rheology-of-topical-pharmaceuticals-for-new-product-development-or-generic-equivalents/">用于新产品开发或仿制药的  外用药流变学</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></description>
										<content:encoded><![CDATA[<div class="wpb-content-wrapper" id="wpb-content-root"><div class="vc_row wpb_row vc_row-fluid dt-default" style="margin-top: 0px;margin-bottom: 0px"><div class="wpb_column vc_column_container vc_col-sm-12"><div class="vc_column-inner"><div class="wpb_wrapper"><div class="vc_row wpb_row vc_inner vc_row-fluid"><div class="wpb_column vc_column_container vc_col-sm-2"><div class="vc_column-inner"><div class="wpb_wrapper"></div></div></div><div class="wpb_column vc_column_container vc_col-sm-8"><div class="vc_column-inner"><div class="wpb_wrapper">
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			<h2><strong>用于新产品开发或仿制药的 外用药流变学</strong></h2>

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			<p><strong>Morgan Ulrich | Sarah Cotts<br />
</strong>May 02, 2022</p>

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			<div style="text-align: justify; font-size: 16px; line-height: 1.75; font-weight: 400; color: #4c4c4c;"><span class="TextRun SCXW16489814 BCX9" lang="EN-US" xml:lang="EN-US" data-contrast="auto"><span class="NormalTextRun SCXW16489814 BCX9">有充分的理由将药品开发处于高度监管之下。潜在的新产品在上市前必须经过严格测试，以确保其安全性、纯度和性能是可以接受的。对于外用乳液，法规支持稳定性寿命参数，并要求在产品到达消费者手中之前识别所有杂质。 </span></span></div>

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			<div class="vc_single_image-wrapper  "><img loading="lazy" decoding="async" width="500" height="300" src="https://www.tainstruments.com.cn/wp-content/uploads/Pharmaceuticals_Drug-Formulation-and-Development.png" class="vc_single_image-img attachment-full" alt="" title="Pharmaceuticals_Drug-Formulation-and-Development" srcset="https://www.tainstruments.com.cn/wp-content/uploads/Pharmaceuticals_Drug-Formulation-and-Development.png 500w, https://www.tainstruments.com.cn/wp-content/uploads/Pharmaceuticals_Drug-Formulation-and-Development-300x180.png 300w" sizes="auto, (max-width: 500px) 100vw, 500px"  data-dt-location="https://www.tainstruments.com.cn/rheology-of-topical-pharmaceuticals-for-new-product-development-or-generic-equivalents/pharmaceuticals_drug-formulation-and-development/" /></div>
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			<h3>FDA 关于外用药物的规定</h3>

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<p>FDA 对被归类为药物的仿制药外用乳液的规定影响了局部药物开发的几个方面。任何局部治疗的核心都是活性药物成分 (API)，即让药物发挥作用的生物活性物质。</p>
<p>在外用药物中，活性成分可以以多种形式存在。FDA 坚持将溶解度和颗粒大小等性质视为生产过程的一部分。<sup>1</sup>这是因为难溶化合物可以不均匀地分散到最终产品中，导致某些区域活性成分的局部浓度较高。</p>
<p>除了调节 API，溶解度和粒径外，FDA 还要求测量局部药物的流变行为，以证明仿制药的等效性。<sup>2</sup>流变学数据用于验证仿制药的质量并确保患者对其的接受程度。流变学也可用于满足许多 FDA 测试要求。</p>
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			<h3>流变仪系列要求</h3>

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<p>流变学是提供关于外用药的体积和微观结构信息的方法之一。流变学数据有助于医疗化妆水开发，并帮助制造商满足 FDA 的要求。使用正确的仪器，流变测量可以简单易行，同时提供有关药物的应用特性及其疗效的信息。</p>
<p>流变学中测量的特性类型包括“流动曲线”（粘度与剪切速率）、屈服应力和粘弹性。流动曲线提供了关于产品在不同阶段的表现的信息，包括任何形成的乳状液的货架稳定性、产品的分装容易程度和产品的涂抹性。</p>
<p>屈服应力特性可以决定配药所需的压力，以及乳液在使用后是否有残留。流动曲线和屈服应力测量对于为新药品设计最佳包装和分配装置非常重要。</p>
<p>粘弹性衡量的是配方是否有足够的弹性以保持活性成分均匀悬浮，以及乳剂是否允许以合适的给药速率洗脱药物。</p>
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			<h3>Discovery 混合型流变仪</h3>

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<p>Discovery 混合流变仪提供的功能超越了传统粘度计。  粘度是在广泛的受控剪切率范围内测量的，以生成流动曲线，以完整地表征使用过程中的行为。  流变仪还对屈服应力进行直接测量，以及表征线性粘弹性的振荡流变学测量（存储模量 G&#8217;、损失模量 G &#8220;和 Tan Delta）。  先进的珀尔帖板提供快速、精确的温度控制，用于表征储存条件或生理温度下的流变行为。</p>
<p>由于 Discovery 混合流变仪的灵敏度，与传统粘度计相比，测量所需的样品体积要少得多，通常为 1 mL 或更少。  通过可互换的测试夹具，一台强大的仪器可用于广泛的医药产品组合，从低粘度液体（注射剂、口服制剂）、半固体（外用软膏）到固体。</p>
<p>考虑到药物开发的相关法规，以及测试设备也将被审计的事实，拥有能够满足 FDA 标准的可靠设备对药物开发的成功至关重要。TA Instrument 的 Discovery 混合流变仪是一种多功能设备，旨在提供关键的流变学数据，并制造出仿制药。<sup>2</sup></p>
<p>重要的是，Discovery 混合流变仪与符合 21-CFR 标准的 TRIOS Guardian 软件兼容，可满足所有文件要求。TRIOS Guardian 可用于设置测量程序以及结果的可视化。对所有生产阶段的药品进行准确记录是遵守 FDA 规定的一个重要部分。</p>
<p>请立即联系我们，了解 Discovery 混合流变仪如何加速您的局部药物开发。</p>
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			<h3>参比平台:</h3>
<ol>
<li data-leveltext="%1." data-font="Times New Roman" data-listid="1" aria-setsize="-1" data-aria-posinset="1" data-aria-level="1"><span class="TextRun SCXW186586439 BCX9" lang="EN-US" xml:lang="EN-US" data-contrast="auto"><span class="NormalTextRun SCXW186586439 BCX9">FDA (2022) Topical Drug Products, </span></span><a class="Hyperlink SCXW186586439 BCX9" href="https://www.fda.gov/inspections-compliance-enforcement-and-criminal-investigations/inspection-guides/topical-drug-products-794" target="_blank" rel="noreferrer noopener"><span class="TextRun Underlined SCXW186586439 BCX9" lang="EN-US" xml:lang="EN-US" data-contrast="none"><span class="NormalTextRun SCXW186586439 BCX9" data-ccp-charstyle="Hyperlink">https://www.fda.gov/inspections-compliance-enforcement-and-criminal-investigations/inspection-guides/topical-drug-products-794</span></span></a><span class="TextRun SCXW186586439 BCX9" lang="EN-US" xml:lang="EN-US" data-contrast="auto"><span class="NormalTextRun SCXW186586439 BCX9">, accessed April 2022</span></span></li>
<li data-leveltext="%1." data-font="Times New Roman" data-listid="1" aria-setsize="-1" data-aria-posinset="1" data-aria-level="1"><span class="TextRun SCXW188619670 BCX9" lang="EN-US" xml:lang="EN-US" data-contrast="auto"><span class="NormalTextRun SCXW188619670 BCX9">FDA (2017) In Vitro Bioequivalence Data for a Topical Product: Chemistry Review</span> <span class="NormalTextRun SCXW188619670 BCX9">Perspective</span><span class="NormalTextRun SCXW188619670 BCX9">, </span></span><a class="Hyperlink SCXW188619670 BCX9" href="https://www.fda.gov/media/110379/download" target="_blank" rel="noreferrer noopener"><span class="TextRun Underlined SCXW188619670 BCX9" lang="EN-US" xml:lang="EN-US" data-contrast="none"><span class="NormalTextRun SCXW188619670 BCX9" data-ccp-charstyle="Hyperlink">https://www.fda.gov/media/110379/download</span></span></a><span class="TextRun SCXW188619670 BCX9" lang="EN-US" xml:lang="EN-US" data-contrast="auto"><span class="NormalTextRun SCXW188619670 BCX9">, accessed April 2022</span></span></li>
<li data-leveltext="%1." data-font="Times New Roman" data-listid="1" aria-setsize="-1" data-aria-posinset="1" data-aria-level="1"><span class="TextRun SCXW210006200 BCX9" lang="EN-US" xml:lang="EN-US" data-contrast="auto"><span class="NormalTextRun SCXW210006200 BCX9">TA Instruments (2022) Hybrid Rheometers, </span><span class="NormalTextRun SCXW210006200 BCX9"><a href="https://www.tainstruments.com/products/rheology/discovery-hybrid-rheometers/">https://www.tainstruments.com/products/rheology/discovery-hybrid-rheometers/</a>, accessed January 2022</span></span></li>
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			<h3>Other Resources</h3>

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<div class="standard-arrow list-divider bullet-top"><ul>
<li>Product: <a href="https://www.tainstruments.com/products/rheology/discovery-hybrid-rheometers/">Discovery Hybrid Rheometers</a></li>
<li>
<div>Webinar: <a class="resource-link" href="https://www.tainstruments.com/dsc-characterization-of-crystalline-structure-in-foods-and-pharmaceuticals/" target="_blank" rel="noopener">DSC Characterization of Crystalline Structure in Foods and Pharmaceuticals</a></div>
</li>
<li>
<div>Webinar: <a class="resource-link" href="https://www.tainstruments.com/kadine-mohomed-characterization-of-amorphous-pharmaceuticals-by-dsc-analysis/" target="_blank" rel="noopener">Characterization of Amorphous Pharmaceuticals by DSC Analysis</a></div>
</li>
<li>
<div>Webinar: <a class="resource-link" href="https://tainstruments.webinato.com/archives/396214" target="_blank" rel="noopener">Achieving 21CFR11 Compliance for Thermal Analysis and Rheology Data Management Through TRIOS Guardian</a></div>
</li>
<li><a href="https://www.tainstruments.com/contact/">Contact us</a></li>
</ul>
</div></div></div></div><div class="wpb_column vc_column_container vc_col-sm-2"><div class="vc_column-inner"><div class="wpb_wrapper"></div></div></div></div><!-- Row Backgrounds --><div class="upb_color" data-bg-override="full" data-bg-color="#f5f5f5" data-fadeout="" data-fadeout-percentage="30" data-parallax-content="" data-parallax-content-sense="30" data-row-effect-mobile-disable="true" data-img-parallax-mobile-disable="true" data-rtl="false"  data-custom-vc-row=""  data-vc="9.0.1"  data-is_old_vc=""  data-theme-support=""   data-overlay="false" data-overlay-color="" data-overlay-pattern="" data-overlay-pattern-opacity="" data-overlay-pattern-size=""    ></div>
</div><p>The post <a href="https://www.tainstruments.com.cn/rheology-of-topical-pharmaceuticals-for-new-product-development-or-generic-equivalents/">用于新产品开发或仿制药的  外用药流变学</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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		<title>什么是差示扫描量热分析？</title>
		<link>https://www.tainstruments.com.cn/%e5%b7%ae%e7%a4%ba%e6%89%ab%e6%8f%8f%e9%87%8f%e7%83%ad%e4%bb%aa%e6%98%af%e4%bb%80%e4%b9%88%e6%a0%b7%e7%9a%84%ef%bc%9f/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=%25e5%25b7%25ae%25e7%25a4%25ba%25e6%2589%25ab%25e6%258f%258f%25e9%2587%258f%25e7%2583%25ad%25e4%25bb%25aa%25e6%2598%25af%25e4%25bb%2580%25e4%25b9%2588%25e6%25a0%25b7%25e7%259a%2584%25ef%25bc%259f</link>
		
		<dc:creator><![CDATA[Sam Barnes]]></dc:creator>
		<pubDate>Tue, 08 Feb 2022 15:08:30 +0000</pubDate>
				<category><![CDATA[Polymers]]></category>
		<category><![CDATA[Thermal Analysis]]></category>
		<category><![CDATA[制药]]></category>
		<guid isPermaLink="false">https://tainstruments.com.cn/?p=100731</guid>

					<description><![CDATA[<p>差示扫描量热分析是一种分析技术，用于测量样品在一定温度范围内加热或冷却时释放或吸收的热量。除了用于表征材料的热性能外，差示扫描量热仪还用于确定发生特定相变的温度，包括玻璃转变温度、熔融和结晶等相变。</p>
<p>The post <a href="https://www.tainstruments.com.cn/%e5%b7%ae%e7%a4%ba%e6%89%ab%e6%8f%8f%e9%87%8f%e7%83%ad%e4%bb%aa%e6%98%af%e4%bb%80%e4%b9%88%e6%a0%b7%e7%9a%84%ef%bc%9f/">什么是差示扫描量热分析？</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></description>
										<content:encoded><![CDATA[<div class="wpb-content-wrapper" id="wpb-content-root"><div class="vc_row wpb_row vc_row-fluid dt-default" style="margin-top: 0px;margin-bottom: 0px"><div class="wpb_column vc_column_container vc_col-sm-12"><div class="vc_column-inner"><div class="wpb_wrapper">
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			<h2><strong>什么是差示扫描量热分析？</strong></h2>

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			<p><strong>Gray Slough<br />
</strong>February 7, 2022</p>

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<p>差示扫描量热分析是一种分析技术，用于测量样品在一定温度范围内加热或冷却时释放或吸收的热量。除了用于表征材料的热性能外，差示扫描量热仪还用于确定发生特定相变的温度，包括玻璃转变温度、熔融和结晶等相变。</p>
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			<div class="vc_single_image-wrapper  "><img loading="lazy" decoding="async" width="600" height="500" src="https://www.tainstruments.com.cn/wp-content/uploads/DSC_Dx3_Beauty-Left-1.png" class="vc_single_image-img attachment-large" alt="" title="DSC_Dx3_Beauty-Left-1" srcset="https://www.tainstruments.com.cn/wp-content/uploads/DSC_Dx3_Beauty-Left-1.png 600w, https://www.tainstruments.com.cn/wp-content/uploads/DSC_Dx3_Beauty-Left-1-300x250.png 300w" sizes="auto, (max-width: 600px) 100vw, 600px"  data-dt-location="https://www.tainstruments.com.cn/x3-dsc/dsc_dx3_beauty-left-1-2/" /></div>
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			<h3>差示扫描量热仪</h3>

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<p>进行差示扫描量热实验需要使用能够提供在所需温度范围进行测试并非常精确地监测温度和热流变化的仪器。<sup>1 </sup></p>
<p>热流型DSC由单一炉体组成，样品和参比材料放置于其中。样品被封装在金属（通常为铝制）盘中，而参比通常是一个空盘。通过炉体进行加热或冷却，以观察热流如何随着温度变化。定量热流信息可通过测量样品和参比之间的温差来确定。</p>
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			<h3>DSC 应用</h3>

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<p>差示扫描量热技术在化学、生物化学、细胞生物学、药理学、纳米科学和其他领域有着 <a href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2977967/">广泛的应用。</a><sup>1</sup>聚合物通常用差示扫描量热仪进行分析，以确定其热转变点，包括玻璃转变、结晶和熔融温度。通常情况下，这些热转变将决定聚合物可达到某种特定规格要求的操作范围。一种聚合物的<a href="https://www.tainstruments.com/pdf/literature/AAN013_V_1_U_Thermoplast.pdf">可加工性和性能</a>都受到流变特性的影响，因此流变测量也可以为优化聚合物结构提供重要信息。</p>
<p>药物材料也可以通过DSC进行高效研究。可以研究多晶型的存在、结构随时间的变化、无定形含量和药物-赋形剂的兼容性等问题。通过这些数据有助于对药物的生物利用度、加工条件、储存和保质期进行研究。在许多情况下，药物材料中有效成分含量很少，因此拥有一个非常敏感的DSC仪器至关重要。</p>
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			<h3>DSC仪器</h3>

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<p>TA Instruments可提供多种<a href="https://www.tainstruments.com/products/thermal-analysis/differential-scanning-calorimeters/">差示扫描量热仪</a>。该系列仪器均采用了TA Instruments的专利Tzero<img src="https://s.w.org/images/core/emoji/17.0.2/72x72/2122.png" alt="™" class="wp-smiley" style="height: 1em; max-height: 1em;" /> DSC技术，在差示扫描量热实验中为您提供无与伦比的热流测量精度。这项技术不仅提高了准确性和精确度，而且还提高了实验的基线平直度，从而提高了转变测量分辨率和灵敏度。</p>
<p>从高分子材料到生物样品，TA Instruments的差示扫描量热仪与各种样品类型兼容，被许多研究人员用于支持他们的工作，包括开发新的电解质等具有挑战性的任务，<sup>3 </sup>多样品X3 DSC是我们众多产品中的一个型号，可以同时测量三个样品，帮助加快您的工作流程，同时保证测量质量不受影响。</p>
<p>TA Instruments设计的量热软件能够提供优质的用户体验。DSC软件包括用于仪器控制和数据分析的高级软件包，可以执行自动校准程序并纳入多个校准集。</p>
<p>如有必要，可定制所有程序，以提供许多研究工具所需的灵活性，或用于工业工作流程进行精细优化。仪器提供所有标准DSC分析功能，还提供高级分析功能和调制DSC功能。</p>
<p><a href="https://www.tainstruments.com/contact/">联系 TA Instruments </a>，了解我们的差示扫描量热仪如何轻松测量复杂的热转变现象。</p>
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			<h3>参考资料</h3>
<ol>
<li>Gill, P., Moghadam, T. T., &amp; Ranjbar, B. (2010). Differential Scanning Calorimetry Techniques: Applications in Biology and Nanoscience. Journal of Biomolecular Techniques, 21(4), 167–193.</li>
<li>TA Instruments (2021), Electrolyte Researchers Work to Creatively Solve Energy-Related Challenges, <a href="https://www.tainstruments.com/electrolyte-researchers-work-to-creatively-solve-energy-related-challenges-sign-up/">https://www.tainstruments.com/electrolyte-researchers-work-to-creatively-solve-energy-related-challenges-sign-up/</a>, accessed January 2022</li>
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			<h3>Other Resources</h3>

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<li>Applications Note &#8211; <a href="https://www.tainstruments.com/pdf/literature/TA452.pdf">Analysis of Engine Oils Using Modulated Thermogravimetric Analysis (MTGA)</a></li>
<li>Applications Note &#8211; <a href="https://www.tainstruments.com/pdf/literature/TA451.pdf">Characterization of Water Adsorption and Desorption in Wood</a></li>
<li>Webinar &#8211; <a href="https://www.tainstruments.com/advancements-in-the-characterization-of-pharmaceuticals-by-dsc/">Advancements in the Characterization of Pharmaceuticals by DSC</a></li>
<li>Webinar &#8211;<a href="https://www.tainstruments.com/polymer-analysis-using-the-new-multi-sample-discovery-x3-dsc/">Polymer Analysis Using the New Multi Sample Discovery X3 DSC</a></li>
<li>Webinar &#8211; <a href="https://www.tainstruments.com/pharmaceutical-characterization-with-the-new-multi-sample-discovery-x3-dsc/">Pharmaceutical Characterization with the New Multi Sample Discovery X3 DSC</a></li>
<li>Webinar &#8211; <a href="https://www.tainstruments.com/discover-the-possibilities-with-the-new-multi-sample-discovery-x3-differential-scanning-calorimeter/">Discover the Possibilities with the New Multi-Sample Discovery X3 Differential Scanning Calorimeter</a></li>
<li>Webinar &#8211; <a href="https://www.tainstruments.com/dsc-characterization-of-crystalline-structure-in-foods-and-pharmaceuticals/">DSC Characterization of Crystalline Structure in Foods and Pharmaceuticals</a></li>
<li>Instrument &#8211; <a href="https://www.tainstruments.com/x3-dsc/">Multi-Sample X3 DSC</a></li>
<li>Instrument &#8211; <a href="https://www.tainstruments.com/dsc-2500/">DSC 2500</a></li>
<li>Contact &#8211; <a href="https://www.tainstruments.com/contact/">Contact TA Instruments Today</a></li>
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</div><p>The post <a href="https://www.tainstruments.com.cn/%e5%b7%ae%e7%a4%ba%e6%89%ab%e6%8f%8f%e9%87%8f%e7%83%ad%e4%bb%aa%e6%98%af%e4%bb%80%e4%b9%88%e6%a0%b7%e7%9a%84%ef%bc%9f/">什么是差示扫描量热分析？</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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