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		<title>Thermal, Mechanical, and Dimensional Characterization of Substrates for Electronics</title>
		<link>https://pages.waters.com/Thermal-Mechanical-and-Dimensional-Characterization-of-Substrates-for-Electronics-On-Demand-Registration.html?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=thermal-mechanical-and-dimensional-characterization-of-substrates-for-electronics</link>
		
		<dc:creator><![CDATA[Juli Varvarezis]]></dc:creator>
		<pubDate>Wed, 26 Aug 2026 18:46:14 +0000</pubDate>
				<category><![CDATA[Videos]]></category>
		<category><![CDATA[Webinars]]></category>
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		<title>Using the Double Wall Ring for Interfacial Measurements on the Discovery™ HR</title>
		<link>https://www.tainstruments.com.cn/using-the-double-wall-ring-for-interfacial-measurements-on-the-discovery-hr/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=using-the-double-wall-ring-for-interfacial-measurements-on-the-discovery-hr</link>
		
		<dc:creator><![CDATA[Juli Varvarezis]]></dc:creator>
		<pubDate>Thu, 20 Aug 2026 20:33:00 +0000</pubDate>
				<category><![CDATA[技术技巧]]></category>
		<category><![CDATA[流变学]]></category>
		<guid isPermaLink="false">https://www.tainstruments.com.cn/?p=107178</guid>

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			<h3>Overview</h3>
<p>In this tech tip, learn how to use the Double Wall Ring (DWR) interfacial accessory on TA Instruments HRX rheometers to perform quantitative interfacial measurements, complete essential calibrations, accurately position the ring at the liquid interface, and optimize oscillatory testing conditions.</p>

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</div><p>The post <a href="https://www.tainstruments.com.cn/using-the-double-wall-ring-for-interfacial-measurements-on-the-discovery-hr/">Using the Double Wall Ring for Interfacial Measurements on the Discovery™ HR</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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		<title>Selecting Candidates &#038; Optimizing Drug Formulations – Leveraging Heat, Weight, and Flow</title>
		<link>https://www.tainstruments.com.cn/selecting-candidates-optimizing-drug-formulations-leveraging-heat-weight-and-flow/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=selecting-candidates-optimizing-drug-formulations-leveraging-heat-weight-and-flow</link>
		
		<dc:creator><![CDATA[Juli Varvarezis]]></dc:creator>
		<pubDate>Wed, 19 Aug 2026 21:11:11 +0000</pubDate>
				<category><![CDATA[Videos]]></category>
		<category><![CDATA[Webinars]]></category>
		<category><![CDATA[微量热]]></category>
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		<guid isPermaLink="false">https://www.tainstruments.com.cn/?p=107150</guid>

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			<p>Webinar</p>
<h3><strong>Selecting Candidates &amp; Optimizing Drug Formulations – Leveraging Heat, Weight, and Flow</strong></h3>

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<p>Selecting the right drug candidates and formulating them for success requires more than isolated data points—it demands a holistic understanding of how biomolecules behave and interact with each other. In this webinar, we will demonstrate how <strong>microcalorimetry</strong>, <strong>thermal analysis</strong>, and <strong>rheology</strong> deliver complementary insights into the properties that matter most: <strong>binding energetics</strong>, <strong>molecular and thermal stability</strong>, <strong>phase behavior</strong>, <strong>moisture content</strong>, and <strong>flow performance</strong>. By connecting heat, weight, and flow measurements, researchers can <strong>rapidly differentiate promising candidates</strong>, <strong>de-risk formulations</strong>, and <strong>resolve common development challenges</strong> before they reach late-stage testing.</p>
<p>Join us to see how integrating these techniques into your workflow can accelerate the path to a high-quality biopharmaceutical product by:</p>
<ul>
<li class="x_MsoListParagraph">shortening development timelines</li>
<li class="x_MsoListParagraph">improving formulation robustness</li>
<li class="x_MsoListParagraph">increasing confidence in critical go/no go decisions</li>
</ul>
<h5>To view this webinar, complete the form to the right →</h5>
</div>

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			<h4 style="margin-top: 30px;">Meet the Speaker</h4>
<div style="float: left; margin-right: 20px;"><img fetchpriority="high" decoding="async" width="300" height="300" class="size-medium wp-image-107156" style="max-width: 90px !important; height: auto !important; width: auto !important;" src="https://www.tainstruments.com.cn/wp-content/uploads/Viviana-Headshot-300x300.png" alt="Viviana Costa" srcset="https://www.tainstruments.com.cn/wp-content/uploads/Viviana-Headshot-300x300.png 300w, https://www.tainstruments.com.cn/wp-content/uploads/Viviana-Headshot-1024x1024.png 1024w, https://www.tainstruments.com.cn/wp-content/uploads/Viviana-Headshot-150x150.png 150w, https://www.tainstruments.com.cn/wp-content/uploads/Viviana-Headshot-768x768.png 768w, https://www.tainstruments.com.cn/wp-content/uploads/Viviana-Headshot.png 1080w" sizes="(max-width: 300px) 100vw, 300px" /></div>
<div style="margin-left: 20px;"><strong>Viviana Costa, PhD</strong><br />
Applications Scientist<br />
Waters Materials Sciences (formerly Waters TA Instruments)</div>
<div style="clear: both;">
<p>Viviana Costa earned her master’s degree in chemical engineering from the University of Coimbra, Portugal and her Ph.D. in Chemistry from Texas Christian University, Fort Worth, Texas. Dr. Costa joined TA instruments in 2023 as an Applications Scientist, based in Lindon, Utah. She supports the microcalorimetry product line and related applications.</p>
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</div><p>The post <a href="https://www.tainstruments.com.cn/selecting-candidates-optimizing-drug-formulations-leveraging-heat-weight-and-flow/">Selecting Candidates & Optimizing Drug Formulations – Leveraging Heat, Weight, and Flow</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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		<item>
		<title>Using the Cox-Merz Transformation in TRIOS™ Software</title>
		<link>https://www.tainstruments.com.cn/using-the-cox-merz-transformation-in-trios-software/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=using-the-cox-merz-transformation-in-trios-software</link>
		
		<dc:creator><![CDATA[Super Admin]]></dc:creator>
		<pubDate>Wed, 19 Aug 2026 16:35:19 +0000</pubDate>
				<category><![CDATA[技术技巧]]></category>
		<category><![CDATA[流变学]]></category>
		<guid isPermaLink="false">http://www.tainstruments.com.cn/trios-cox-merz-transformation/?lang=zh-hans</guid>

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			<h3>Overview</h3>
<p>In this tech tip, learn how to apply the Cox-Merz rule in Trios software to predict high-shear polymer melt behavior from frequency sweep data and validate the results against steady-state flow measurements.</p>

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	</div>
</div></div></div></div>
</div><p>The post <a href="https://www.tainstruments.com.cn/using-the-cox-merz-transformation-in-trios-software/">Using the Cox-Merz Transformation in TRIOS™ Software</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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		<title>Part II: Advanced Rheometric Applications for Aging/Mutating Systems</title>
		<link>https://www.tainstruments.com.cn/part-ii-advanced-rheometric-applications-for-aging-mutating-systems-download/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=part-ii-advanced-rheometric-applications-for-aging-mutating-systems-download</link>
		
		<dc:creator><![CDATA[Juli Varvarezis]]></dc:creator>
		<pubDate>Thu, 16 Jul 2026 19:18:26 +0000</pubDate>
				<category><![CDATA[Videos]]></category>
		<category><![CDATA[Webinars]]></category>
		<category><![CDATA[流变学]]></category>
		<category><![CDATA[电池]]></category>
		<category><![CDATA[batterywebinar]]></category>
		<category><![CDATA[biopharmawebinar]]></category>
		<category><![CDATA[electronics]]></category>
		<category><![CDATA[polymerwebinar]]></category>
		<guid isPermaLink="false">https://www.tainstruments.com.cn/?p=107094</guid>

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			<p>Webinar</p>
<h3><strong>Part II: Advanced Rheometric Applications for Aging/Mutating Systems</strong></h3>

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<p>In this second part of the webinar series on rheometric applications, we explore advanced applications of <a href="https://www.tainstruments.com.cn/fast-frequency-chirps/">Optimally Windowed Chirps (or OWCh)</a> to characterize complex material systems, including aging thixotropic systems such as clay dispersions. We describe how user control of the initial phase and the frequency slew rate of the chirp, which is a new approach to rapidly obtain frequency dependent material behavior, can be leveraged to improve data quality for very short chirps or highly viscoelastic samples.</p>
<p>We also introduce a recent Thermally Optimized Ramped Chirp (TORCh) protocol, which applies a user‑controlled heating rate to the sample while repeatedly applying windowed chirp pulses. This approach enables rapid construction of time–temperature master curves for polymer samples over a wide range of reduced frequencies.</p>
<p>With these tools, rheologists can design chirp‑based testing techniques and quality control protocols that significantly improve sample throughput. Compared with other approaches, the chirp-based ones increase data quality and density—supporting future data‑driven scientific machine learning (SciML) applications.</p>
<p>What you&#8217;ll learn:</p>
<ul>
<li>Discover how optimally‑windowed exponential chirps (OWCh) deliver rapid, broadband viscoelastic spectra for mutating materials in seconds.</li>
<li>Learn how to minimize spectral leakage, tune chirp parameters, and implement protocols in MATLAB or instrument firmware for high‑quality, time‑resolved data.</li>
<li>Learn how to use Thermally Optimized Ramped Chirp (TORCh) protocols to produce time-temperature superposition master curves in significantly less time.</li>
</ul>
</div>

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			<h4 style="margin-top: 30px;">Meet the Speaker</h4>
<div style="float: left; margin-right: 20px;"><img decoding="async" class="size-full wp-image-107162" style="max-width: 90px !important; height: auto !important; width: auto !important;" src="https://www.tainstruments.com.cn/wp-content/uploads/Gareth-McKinley.jpg" alt="Gareth Mckinley" width="128" height="126" /></div>
<div style="margin-left: 20px;"><strong>Gareth McKinley</strong><br />
<em>Professor of Mechanical Engineering • MIT</em></div>
<div style="clear: both;">
<p>Gareth H. McKinley is a renowned mechanical engineer and professor at the Massachusetts Institute of Technology (MIT), where he serves as the School of Engineering Professor of Teaching Innovation and Professor of Mechanical Engineering.</p>
<p>McKinley is internationally recognized for his expertise in fluid dynamics and rheology—the study of how complex materials flow and deform. His research explores non-Newtonian fluids, microfluidics, hydrogels, and advanced materials, with applications ranging from industrial processes to biotechnology. His work has led to important advances in understanding phenomena such as bubble formation in liquids and the behavior of viscoelastic materials, as well as practical innovations like techniques for harvesting drinking water from fog in arid environments.</p>
<p>He earned his Ph.D. from MIT in 1991 after completing a B.A. and M.Eng. at the University of Cambridge. Over his career, McKinley has published more than 275 scientific papers and has played a significant role in shaping the field of rheology.</p>
<p>His achievements have been widely honored. He is a Fellow of the Royal Society and the American Physical Society and a member of the U.S. National Academy of Engineering. He has also received major awards such as the Bingham Medal and the Gold Medal of the British Society of Rheology.</p>
<p>In addition to his research, McKinley has held several leadership roles at MIT and is known for his dedication to teaching and mentoring, influencing the next generation of engineers and scientists.</p>
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</div><p>The post <a href="https://www.tainstruments.com.cn/part-ii-advanced-rheometric-applications-for-aging-mutating-systems-download/">Part II: Advanced Rheometric Applications for Aging/Mutating Systems</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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		<title>Part I: Basics of the Optimally-Windowed Exponential Chirp</title>
		<link>https://www.tainstruments.com.cn/part-i-basics-of-the-optimally-windowed-exponential-chirp-download/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=part-i-basics-of-the-optimally-windowed-exponential-chirp-download</link>
		
		<dc:creator><![CDATA[Juli Varvarezis]]></dc:creator>
		<pubDate>Thu, 16 Jul 2026 19:16:16 +0000</pubDate>
				<category><![CDATA[Videos]]></category>
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		<guid isPermaLink="false">https://www.tainstruments.com.cn/?p=107090</guid>

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										<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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			<p>Webinar</p>
<h3><strong>Part I: Basics of the Optimally-Windowed Exponential Chirp</strong></h3>

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<p>In this two‑part webinar, we illustrate how modern broadband rheometric techniques can be used to measure the material functions of what may broadly be referred to as <em>mutating materials</em> (or changing materials), with rheological properties that are both time‑ and frequency‑dependent.</p>
<p>Numerous approaches have been proposed in the past for developing time‑resolved rheometric protocols capable of providing both time‑and frequency‑resolved measurements on aging, curing, or crosslinking gel systems. These include multi‑wave techniques, random/white noise sequences, short‑time Fourier transforms, and repeated step‑strain pulses.</p>
<p>In <strong>Part I</strong> of this webinar series, we show how a common audio signal processing sequence—<em>the exponential chirp</em>—can be adapted to rheometry, and explain why it offers several benefits, including a frequency‑independent amplitude and a continuously varying phase. This enables the linear viscoelastic properties, such as G′ and G″, of a time‑evolving material (e.g., a thermally or chemically crosslinking gel) to be rapidly determined over several decades in frequency within just a few minutes.</p>
<p>However, closer investigation of data on model polymer networks shows that measurement precision is compromised at the highest and lowest test frequencies due to &#8220;leakage&#8221; of material information into side lobes of the signal&#8217;s power spectrum. Taking inspiration from chirp sequences used by bats and dolphins in echolocation, we explain how these inaccuracies can be mitigated by adding a carefully chosen windowing function or envelope to the chirp.</p>
<p>The resulting waveforms can be readily encoded in MATLAB or implemented directly through instrument firmware such as <a href="https://www.tainstruments.com.cn/fast-frequency-chirps/">Fast Frequency Chirps</a>, and then used to impose optimal deformations in controlled‑strain or controlled‑stress rheometers. Numerical computations and experimental measurements show that the error magnitude can be reduced exponentially with correct selection of window parameters and careful signal conditioning.</p>
<p>We first demonstrate basic applications of the technique using a semi‑dilute entangled polymer solution, a wormlike micellar fluid, and a time‑evolving crosslinked biopolymer gel. These examples show that the resulting <em>Optimally Windowed Chirp (OWCh)</em> technique can rapidly and accurately extract the entire linear viscoelastic spectrum of a time‑evolving complex material in less than 15 seconds (the time typically required to obtain the complex modulus at a single low frequency).</p>
<p>What you&#8217;ll learn:</p>
<ul>
<li>Discover how optimally‑windowed exponential chirps (OWCh) deliver rapid, broadband viscoelastic spectra for mutating materials in seconds.</li>
<li>Learn how to minimize spectral leakage, tune chirp parameters, and implement protocols in MATLAB or instrument firmware for high‑quality, time‑resolved data.</li>
</ul>
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			<h4 style="margin-top: 30px;">Meet the Speaker</h4>
<div style="float: left; margin-right: 20px;"><img decoding="async" width="128" height="126" class="size-full wp-image-107162" style="max-width: 90px !important; height: auto !important; width: auto !important;" src="https://www.tainstruments.com.cn/wp-content/uploads/Gareth-McKinley.jpg" alt="Gareth Mckinley" /></div>
<div style="margin-left: 20px;"><strong>Gareth McKinley</strong><br />
<em>Professor of Mechanical Engineering • MIT</em></div>
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<p>Gareth H. McKinley is a renowned mechanical engineer and professor at the Massachusetts Institute of Technology (MIT), where he serves as the School of Engineering Professor of Teaching Innovation and Professor of Mechanical Engineering.</p>
<p>McKinley is internationally recognized for his expertise in fluid dynamics and rheology—the study of how complex materials flow and deform. His research explores non-Newtonian fluids, microfluidics, hydrogels, and advanced materials, with applications ranging from industrial processes to biotechnology. His work has led to important advances in understanding phenomena such as bubble formation in liquids and the behavior of viscoelastic materials, as well as practical innovations like techniques for harvesting drinking water from fog in arid environments.</p>
<p>He earned his Ph.D. from MIT in 1991 after completing a B.A. and M.Eng. at the University of Cambridge. Over his career, McKinley has published more than 275 scientific papers and has played a significant role in shaping the field of rheology.</p>
<p>His achievements have been widely honored. He is a Fellow of the Royal Society and the American Physical Society and a member of the U.S. National Academy of Engineering. He has also received major awards such as the Bingham Medal and the Gold Medal of the British Society of Rheology.</p>
<p>In addition to his research, McKinley has held several leadership roles at MIT and is known for his dedication to teaching and mentoring, influencing the next generation of engineers and scientists.</p>
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</div><p>The post <a href="https://www.tainstruments.com.cn/part-i-basics-of-the-optimally-windowed-exponential-chirp-download/">Part I: Basics of the Optimally-Windowed Exponential Chirp</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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		<title>Rheology Simplified</title>
		<link>https://www.tainstruments.com.cn/rheology-simplified/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=rheology-simplified</link>
		
		<dc:creator><![CDATA[Juli Varvarezis]]></dc:creator>
		<pubDate>Thu, 02 Jul 2026 21:47:39 +0000</pubDate>
				<category><![CDATA[Product Videos]]></category>
		<category><![CDATA[Rheology Videos]]></category>
		<category><![CDATA[Videos]]></category>
		<guid isPermaLink="false">https://www.tainstruments.com.cn/?p=107041</guid>

					<description><![CDATA[]]></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>Basics of Rheology</strong></h2>

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<p>Welcome to our Basics of Rheology video series, your gateway to understanding how materials deform and flow. Whether you&#8217;re new to the field or looking to sharpen your knowledge, these videos break down complex concepts like viscosity, viscoelasticity, and the behavior of Newtonian and non-Newtonian materials using clear explanations and relatable examples. You&#8217;ll also discover how rheometers work, how to measure viscoelastic properties, and how to analyze unknown materials through specialized tests. Dive in and learn how rheology reveals the hidden behaviors of everything from honey to biological tissues.</p>
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			<h4>What is Rheology? &#8211; Episode 1</h4>
<p>In the first episode on rheology basics, the focus is on how materials deform and flow under force. The concept of viscosity is introduced, highlighting the differences between Newtonian and non-Newtonian materials, with examples like water and honey. The episode explains viscoelasticity, which combines properties of viscous and elastic materials, and discusses how most materials exhibit rate-dependent behavior. Stress and strain are defined, along with their relationship through the modulus. The episode concludes with a teaser for the next installment.</p>

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			<h4>Basics of Rheology &#8211; Episode 2</h4>
<p>In this episode of the basics of rheology, the focus is on measuring viscoelasticity using rheometers instead of viscometers. Rheometers apply force or motion to materials and measure their responses through raw signals like torque and angular displacement. The episode explains the importance of translating these signals using rheometry software and highlights the three types of deformation: rotational, transient, and oscillatory. It emphasizes the advantages of rheometers, such as better temperature control and the ability to detect small torques, which are crucial for studying delicate material behaviors. The episode concludes by mentioning the different types of rheometers available and their applications.</p>

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			<h4>Basics of Rheology &#8211; Episode 3</h4>
<p>In this episode of the basics of rheology, the focus is on uncovering the properties of a mysterious material, starting with viscosity. The flow sweep test is introduced to measure viscosity profiles, distinguishing between Newtonian and non-Newtonian fluids. The importance of defining the linear viscoelastic region (LVR) is emphasized, where the material&#8217;s response to small deformations is linear and reversible. Through oscillatory tests, the material&#8217;s behavior is analyzed using the concepts of storage and loss modulus, illustrated with examples like syrup and PDMS. The episode concludes by outlining the steps to analyze an unknown material and hints at further exploration in the next episode.</p>

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			<h4>Basics of Rheology &#8211; Episode 4</h4>
<p>In this episode, the focus is on the importance of identifying the linear viscoelastic region (LVR) for conducting rheological tests. The video explains how frequency sweep tests assess material responses to varying time scales of deformation, measuring key parameters like storage modulus and tan delta to determine material behavior. Time sweeps are introduced as a method to observe material evolution over time, particularly during curing processes, while temperature ramps help analyze thermal transitions. The episode concludes by hinting at the next topic, which will cover transient tests such as creep and stress relaxation.</p>

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			<h4>Basics of Rheology &#8211; Episode 5</h4>
<p>In the final episode of the Basics of Rheology, the focus is on transient tests that demonstrate how materials relax, recover, or deform permanently. The narrator explains the concept of elasticity and how viscoelastic materials behave between elasticity and viscosity. Through examples like orthodontic braces and asphalt under traffic, the episode illustrates how materials respond to stress over time. The series concludes by emphasizing the complexity and enjoyment of studying rheology.</p>

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			<p>EPISODE #6</p>
<h4>Sunscreen</h4>
<p>To learn more about rheology with sunscreen, check out our <a href="https://www.tainstruments.com/dont-let-bad-rheology-data-burn-you-blog/">Don’t Let Bad Rheology Data Burn You</a> blog post.</p>

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			<h2><strong>Beyond the Basics</strong></h2>

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<p>Welcome to Beyond the Basics of Rheology, the next chapter in your learning journey. In the Basics of Rheology series, we built the foundation — viscosity, viscoelasticity, shear flow, oscillatory methods, transient tests, and all the essential tools for understanding how materials deform and flow. But rheology doesn&#8217;t end with the fundamentals.</p>
<p>This series takes you further. Here, we move from knowing the basics to applying them—interpreting complex behavior and using advanced techniques to tackle real‑world challenges. Understanding the fundamentals is powerful, but going beyond them is where you truly start solving real‑world problems.</p>
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			<h4>Beyond the Basics Episode 1: Yield Stress &amp; Wall Slip</h4>
<p>Yield stress is one of the most important—yet often misunderstood—properties in rheology, influencing everything from whether a coating sags to whether a 3D‑printed layer holds its shape. In this first episode of Beyond the Basics, we dig into what really defines yield‑stress behavior, explore the difference between dynamic and static yield stress, uncover how wall slip can distort your measurements, and share practical guidance for choosing the right testing approach. If you work with gels, pastes, coatings, or food products, this episode gives you the clarity you need to measure yield stress with confidence.</p>

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			<h4>Beyond the Basics Episode 2: Thixotropy</h4>
<p>In Episode 2, we take the next step into one of the most fascinating topics in rheology: thixotropy. This behavior appears everywhere—from coatings and food to 3D printing materials. So, what is thixotropy? Let’s go back to a simple example: paint. When you roll it onto a wall, you want it to thin just enough to spread smoothly. But if it rebuilds too quickly, you’ll see brush marks. If it rebuilds too slowly, it will sag and drip. Thixotropy closely ties together with yield stress and wall slip. These effects are deeply interconnected, and understanding how they influence each other is key to making your rheology measurements both reliable and meaningful.</p>

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			<h3>Other Resources</h3>

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<div class="standard-arrow list-divider bullet-top"><ul>
<li>Video Series &#8211; <a href="https://www.tainstruments.com/why-rheology-is-relevant-and-accessible-dispelling-5-myths-about-rheology/">Why Rheology is Relevant and Accessible: Dispelling 5 Myths About Rheology</a></li>
<li>Video Series &#8211; <a href="https://www.tainstruments.com/rheology-is-fun/">Welcome to Rheology is Fun!</a></li>
<li>Blog &#8211; <a href="https://www.tainstruments.com/why-rheology-is-relevant-and-accessible-dispelling-5-myths-about-rheology-blog/">Why Rheology is Relevant and Accessible: Dispelling 5 Myths About Rheology</a></li>
<li>Blog &#8211; <a href="https://www.tainstruments.com/viscometer-vs-rheometer-discover-why-a-rheometer-offers-more-than-just-viscosity-measurement/">Viscometer vs Rheometer: Discover Why a Rheometer Offers More Than Just Viscosity Measurement</a></li>
<li>Product &#8211; <a href="https://www.tainstruments.com/discovery-core-rheometer/">Discovery Core Rheometer</a></li>
<li>Product &#8211; <a href="https://www.tainstruments.com/products/rheology/discovery-hybrid-rheometers/">Discovery Hybrid Rheometers</a></li>
</ul>
</div></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-simplified/">Rheology Simplified</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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		<title>Bridging Material-Level and Cell-Level Safety: A New Thermal Analysis Technique for Battery Safety Screening</title>
		<link>https://pages.waters.com/webinar-thermal-analysis-technique-for-battery-safety-screening-On-Demand-Registration.html?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=bridging-material-level-and-cell-level-safety-a-new-thermal-analysis-technique-for-battery-safety-screening</link>
		
		<dc:creator><![CDATA[Juli Varvarezis]]></dc:creator>
		<pubDate>Wed, 24 Jun 2026 16:16:41 +0000</pubDate>
				<category><![CDATA[Videos]]></category>
		<category><![CDATA[Webinars]]></category>
		<category><![CDATA[热分析]]></category>
		<category><![CDATA[电池]]></category>
		<guid isPermaLink="false">https://www.tainstruments.com.cn/?p=107029</guid>

					<description><![CDATA[<p>用您老旧的 TA Instruments DHR 1、2 或 3 型流变仪置换新设备，升级到新一代 Discovery™ 混合流变仪平台。该平台旨在为各种材料提供卓越的灵敏度、易用性和多功能性。</p>
<p>The post <a href="https://pages.waters.com/webinar-thermal-analysis-technique-for-battery-safety-screening-On-Demand-Registration.html">Bridging Material-Level and Cell-Level Safety: A New Thermal Analysis Technique for Battery Safety Screening</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></description>
										<content:encoded><![CDATA[<p></p><p>The post <a href="https://pages.waters.com/webinar-thermal-analysis-technique-for-battery-safety-screening-On-Demand-Registration.html">Bridging Material-Level and Cell-Level Safety: A New Thermal Analysis Technique for Battery Safety Screening</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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		<title>纽扣电池差示扫描量热仪简介</title>
		<link>https://www.tainstruments.com.cn/introducing-the-coin-cell-differential-scanning-calorimeter-demo-form/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=introducing-the-coin-cell-differential-scanning-calorimeter-demo-form</link>
		
		<dc:creator><![CDATA[Juli Varvarezis]]></dc:creator>
		<pubDate>Tue, 09 Jun 2026 04:34:07 +0000</pubDate>
				<category><![CDATA[Product Videos]]></category>
		<category><![CDATA[Thermal Analysis Videos]]></category>
		<category><![CDATA[Videos]]></category>
		<guid isPermaLink="false">https://www.tainstruments.com.cn/?p=106879</guid>

					<description><![CDATA[<p>差示扫描量热法是一项评估材料热特性的成熟技术，包括相变、起始温度和反应热。</p>
<p>The post <a href="https://www.tainstruments.com.cn/introducing-the-coin-cell-differential-scanning-calorimeter-demo-form/">纽扣电池差示扫描量热仪简介</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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			<p>产品演示</p>
<h3><strong>纽扣电池差示扫描量热仪简介</strong></h3>
<h4>电池安全测试领域的最新创新</h4>

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<h3>早期高效评估电池安全性</h3>
<p>Waters TA Instruments Coin Cell DSC 为电池开发人员提供了一种更快速、更可靠的方式，在研发早期阶段评估安全性与稳定性。该仪器专为完整的 20 mm 纽扣电池而设计，其宽广的温度范围覆盖 –80℃ 至 600℃，能够揭示电池从极寒环境到灾难性热事件中的行为表现，从而更深入地洞悉化学体系的稳定性。凭借逸出气体分析和电压监测的集成选件，它能够展示材料作为一个完整系统如何相互作用，助您满怀信心地设计更安全、更稳定的电池。</p>
<h5>准备好观看 Coin Cell DSC 的实际操作了吗？观看视频，探索：</h5>
<ul>
<li><strong>整颗电芯热特性真实数据</strong> — 直接测量完整纽扣电池的热流和反应行为，获得真实的安全与性能洞见。</li>
<li><strong>卓越的重复性</strong> — 高灵敏度 20 mm 传感器和电池专用样品舱确保每次运行都能获得一致、可靠的起始温度检测结果。</li>
<li><strong>全面的化学过程可视性</strong> — 连接 MS、FTIR 或 GC-MS 识别分解气体，详细了解失效路径。</li>
<li><strong>电化学关联</strong> — 集成电压监测功能，将热事件与荷电状态、短路及循环行为关联起来，实现更深层次的诊断。</li>
<li><strong>更早、更安全的决策</strong> — 在早期开发阶段即可生成可指导行动的数据，以此减少重新设计次数，加快验证进程，并提升电池稳定性。</li>
</ul>
<p>亲身体验<a href="https://www.tainstruments.com.cn/coin-cell-dsc/">纽扣电池差示扫描量热仪</a>如何助力您的实验室取得突破。</p>
<p>填写右侧表单，立即获取访问权限 →</p>
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<span data-contrast="auto">Ensuring short-term thermal stability is essential for maintaining the quality and achieving regulatory approval of antibody drug products. The TA Instruments<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;" /> RS-DSC (Rapid Screening-Differential Scanning Calorimeter) offers an advanced platform for thermal stability screening of buffer formulations and protein sequence modifications, enabling the simultaneous analysis of up to 24 samples at formulation strength concentrations. </span><span data-ccp-props="{"201341983":0,"335559739":160,"335559740":259}"> </span>

<span data-contrast="auto">Watch this short demo to learn:</span><span data-ccp-props="{"201341983":0,"335559739":160,"335559740":259}"> </span>




<ul>
 	



<li data-leveltext="" data-font="Symbol" data-listid="1" aria-setsize="-1" data-aria-posinset="1" data-aria-level="1"><span data-contrast="auto">Current thermal stability tools: Benefits and limitations</span><span data-ccp-props="{"201341983":0,"335559739":160,"335559740":259}"> </span></li>




 	



<li data-leveltext="" data-font="Symbol" data-listid="1" aria-setsize="-1" data-aria-posinset="2" data-aria-level="1"><span data-contrast="auto">Overview of the RS-DSC's groundbreaking capabilities</span><span data-ccp-props="{"201341983":0,"335559739":160,"335559740":259}"> </span>




<ul>
 	



<li data-leveltext="" data-font="Symbol" data-listid="1" aria-setsize="-1" data-aria-posinset="3" data-aria-level="1"><span data-contrast="auto">Flexible High Throughput</span><span data-ccp-props="{"201341983":0,"335559739":160,"335559740":259}"> </span></li>




 	



<li data-leveltext="" data-font="Symbol" data-listid="1" aria-setsize="-1" data-aria-posinset="3" data-aria-level="1"><span data-contrast="auto">Dilution Free</span><span data-ccp-props="{"201341983":0,"335559739":160,"335559740":259}"> </span></li>




 	



<li data-leveltext="" data-font="Symbol" data-listid="1" aria-setsize="-1" data-aria-posinset="3" data-aria-level="1"><span data-contrast="auto">No Cleaning</span><span data-ccp-props="{"201341983":0,"335559739":160,"335559740":259}"> </span></li>




 	



<li data-leveltext="" data-font="Symbol" data-listid="1" aria-setsize="-1" data-aria-posinset="3" data-aria-level="1"><span data-contrast="auto">Automated Analysis</span><span data-ccp-props="{"201341983":0,"335559739":160,"335559740":259}"> </span></li>




</ul>




</li>




 	



<li data-leveltext="" data-font="Symbol" data-listid="1" aria-setsize="-1" data-aria-posinset="4" data-aria-level="1"><span data-contrast="auto">Introduction to RS-DSC sample prep tool</span><span data-ccp-props="{"201341983":0,"335559739":160,"335559740":259}"> </span></li>




 	



<li data-leveltext="" data-font="Symbol" data-listid="1" aria-setsize="-1" data-aria-posinset="4" data-aria-level="1"><span data-contrast="auto">Demonstration of the sample prep workflow</span><span data-ccp-props="{"201341983":0,"335559739":160,"335559740":259}"> </span></li>




 	



<li data-leveltext="" data-font="Symbol" data-listid="1" aria-setsize="-1" data-aria-posinset="4" data-aria-level="1"><span data-contrast="auto">How RS-DSC simplifies thermal stability testing</span><span data-ccp-props="{"201341983":0,"335559739":160,"335559740":259}"> </span></li>




</ul>




<span data-contrast="auto">Complete the form to the right for immediate access to this valuable resource.</span><span data-ccp-props="{"201341983":0,"335559739":160,"335559740":259}"> </span></div>




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			<h3>演讲嘉宾</h3>

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			<div class="vc_single_image-wrapper  "><img loading="lazy" decoding="async" width="540" height="540" src="https://www.tainstruments.com.cn/wp-content/uploads/Jared-cirlce-1-1.png" class="vc_single_image-img attachment-large" alt="Jared Sachs" title="Jared Sachs" srcset="https://www.tainstruments.com.cn/wp-content/uploads/Jared-cirlce-1-1.png 540w, https://www.tainstruments.com.cn/wp-content/uploads/Jared-cirlce-1-1-300x300.png 300w, https://www.tainstruments.com.cn/wp-content/uploads/Jared-cirlce-1-1-150x150.png 150w" sizes="auto, (max-width: 540px) 100vw, 540px"  data-dt-location="https://www.tainstruments.com.cn/introducing-the-coin-cell-differential-scanning-calorimeter-demo-form/jared-cirlce-1-1/" /></div>
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			<h5><strong>Jared Sachs</strong></h5>
<h5>电池事业部销售负责人</h5>
<h6>TA Instruments</h6>
<p>Jared 是 TA Instruments 美洲区电池事业部销售负责人，常驻纽约州首府地区。他拥有纽约州立大学奥尔巴尼分校物理学硕士学位，专攻 X 射线光学、分析和成像。在加入 TA Instruments 之前，他曾在微 X 射线荧光行业担任研究科学家、研发实验室经理和技术销售经理。工作之余，Jared 喜欢与妻子 Cassandra 以及他们的两只狗 Denver 和 Winter 一起旅行。闲暇时，他热衷于单板滑雪、打高尔夫球，并保持积极运动的生活方式。</p>

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			<h4>观看演示</h4>

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</div><p>The post <a href="https://www.tainstruments.com.cn/introducing-the-coin-cell-differential-scanning-calorimeter-demo-form/">纽扣电池差示扫描量热仪简介</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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		<title>TA Instruments 纽扣电池差示扫描量热仪</title>
		<link>https://www.tainstruments.com.cn/waters-ta-instruments-coin-cell-differential-scanning-calorimeter/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=waters-ta-instruments-coin-cell-differential-scanning-calorimeter</link>
		
		<dc:creator><![CDATA[Juli Varvarezis]]></dc:creator>
		<pubDate>Tue, 09 Jun 2026 04:28:47 +0000</pubDate>
				<category><![CDATA[Product Videos]]></category>
		<category><![CDATA[Thermal Analysis Videos]]></category>
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		<guid isPermaLink="false">https://www.tainstruments.com.cn/?p=106918</guid>

					<description><![CDATA[<p>差示扫描量热法是一项评估材料热特性的成熟技术，包括相变、起始温度和反应热。</p>
<p>The post <a href="https://www.tainstruments.com.cn/waters-ta-instruments-coin-cell-differential-scanning-calorimeter/">TA Instruments 纽扣电池差示扫描量热仪</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></description>
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<p>Coin Cell DSC 可对纽扣电池进行热评估，揭示能量释放与反应情况，为安全与性能评估提供依据。</p>

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</div><p>The post <a href="https://www.tainstruments.com.cn/waters-ta-instruments-coin-cell-differential-scanning-calorimeter/">TA Instruments 纽扣电池差示扫描量热仪</a> first appeared on <a href="https://www.tainstruments.com.cn">TA仪器</a>.</p>]]></content:encoded>
					
		
		
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