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	<title>高温機械試験アプリケーションノート - NANOVEA: 材料試験用高機能プロフィロメーター、トライボメーター、ナノインデンター、スクラッチテスター</title>
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	<title>高温機械試験アプリケーションノート - NANOVEA: 材料試験用高機能プロフィロメーター、トライボメーター、ナノインデンター、スクラッチテスター</title>
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		<title>High Temperature Brinell Hardness Testing</title>
		<link>https://nanovea.com/ja/high-temperature-hardness-testing-of-steel/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=high-temperature-hardness-testing-of-steel</link>
					<comments>https://nanovea.com/ja/high-temperature-hardness-testing-of-steel/#respond</comments>
		
		<dc:creator><![CDATA[Andrew Shore]]></dc:creator>
		<pubDate>Thu, 20 Aug 2026 23:22:06 +0000</pubDate>
				<category><![CDATA[Application Notes]]></category>
		<category><![CDATA[High Temperature Mechanical Testing]]></category>
		<category><![CDATA[High Temperature Tribology]]></category>
		<category><![CDATA[Indentation | Hardness and Elastic]]></category>
		<category><![CDATA[Laboratory Testing]]></category>
		<guid ispermalink="false">https://nanovea.com/?p=26582</guid>

					<description><![CDATA[<p>Application Note &#124; High Temperature Mechanical Testing High Temperature Hardness Testing of Steel Using Brinell Indentation Mapping Steel Hardness Loss from Room Temperature to 925°C with NANOVEA T2000 Tribometer Request High Temperature Hardness Testing Speak with an Application Engineer Research &#38; Experimental Testing Frank Liu Visual Design &#38; Editorial Andrew Shore Introduction High temperature hardness testing provides insight into how the mechanical behavior of metals changes as temperature increases. Materials that exhibit high hardness at room temperature can soften significantly when exposed to elevated temperatures, making temperature-dependent hardness an important consideration when selecting materials for applications such as jet engines, high-temperature processing equipment, and other thermally demanding environments. In this [&#8230;]</p>
<p>The post <a href="https://nanovea.com/ja/high-temperature-hardness-testing-of-steel/">High Temperature Brinell Hardness Testing</a> appeared first on <a href="https://nanovea.com/ja">NANOVEA: Advanced Profilometers, Tribometers, Nanoindenters, and Scratch Testers for Materials Testing</a>.</p>
]]></description>
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									<p>Application Note | High Temperature Mechanical Testing</p>								</div>
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					<h1 class="elementor-heading-title elementor-size-default">High Temperature Hardness Testing of Steel Using Brinell Indentation</h1>				</div>
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					<h2 class="elementor-heading-title elementor-size-default">Mapping Steel Hardness Loss from Room Temperature to 925°C with NANOVEA T2000 Tribometer</h2>				</div>
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															<img fetchpriority="high" decoding="async" width="1400" height="420" src="https://nanovea.com/wp-content/uploads/2026/08/high-temperature-hardness-testing-steel-brinell.jpg" class="attachment-full size-full wp-image-26554" alt="Material performance testing under extreme temperature conditions for aerospace and defense applications" />															</div>
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					<p class="elementor-heading-title elementor-size-default">Research &amp; Experimental Testing</p>				</div>
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					<p class="elementor-heading-title elementor-size-default">Frank Liu</p>				</div>
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					<p class="elementor-heading-title elementor-size-default">アンドリュー・ショア</p>				</div>
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					<h2 class="elementor-heading-title elementor-size-default">はじめに</h2>				</div>
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									<p class="isSelectedEnd">High temperature hardness testing provides insight into how the mechanical behavior of metals changes as temperature increases. Materials that exhibit high hardness at room temperature can soften significantly when exposed to elevated temperatures, making temperature-dependent hardness an important consideration when selecting materials for applications such as jet engines, high-temperature processing equipment, and other thermally demanding environments.</p><p>In this study, a steel sample was evaluated using Brinell indentation with the <a href="https://nanovea.com/instruments/t2000/">NANOVEA T2000 Tribometer</a>. Hardness measurements were performed at 25, 200, 400, 600, 800, and 925°C to map the change in steel hardness with temperature. The results show a gradual reduction in hardness through approximately 600°C, followed by a much sharper decline at higher temperatures, resulting in an 84% decrease in hardness between room temperature and 925°C.</p>								</div>
				</div>
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					<h2 class="elementor-heading-title elementor-size-default">Why High Temperature Hardness Testing Matters</h2>				</div>
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									<p class="isSelectedEnd">Hardness is a mechanical property that describes a material’s resistance to localized deformation. Higher hardness generally corresponds to greater resistance to indentation and permanent surface deformation.</p><p class="isSelectedEnd">Temperature can significantly alter this behavior. A material that remains hard at room temperature may soften as temperature increases, changing its mechanical response under elevated-temperature conditions. For materials intended for high-temperature applications, understanding these changes is important when evaluating their mechanical limits.</p><p><a href="https://nanovea.com/high-temperature-mechanical-tester/">High temperature hardness testing</a> makes it possible to measure these changes directly as temperature increases rather than relying only on room-temperature properties. In this study, the steel sample provides a clear example of how hardness can remain relatively stable over part of the temperature range before declining rapidly at higher temperatures.</p>								</div>
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					<h2 class="elementor-heading-title elementor-size-default">測定目的</h2>				</div>
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									<p class="isSelectedEnd">The objective of this study was to evaluate how the Brinell hardness of steel changes as temperature increases from room temperature to 925°C.</p><p>Using a 10 mm tungsten carbide (WC) ball, a load of 1000 N (~100 kgf) was applied to the steel sample at 25, 200, 400, 600, 800, and 925°C. The resulting indentations were measured using NANOVEA’s 3D Line Sensor to determine their diameter for <a href="https://nanovea.com/instrumented-indentation-hardness-elastic-modulus/">Brinell hardness calculation</a>.</p>								</div>
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							<img decoding="async" width="300" height="264" src="https://nanovea.com/wp-content/uploads/2026/01/nanovea-t2000-high-load-pneumatic-tribometer.jpg" class="elementor-animation-grow attachment-medium size-medium wp-image-25797" alt="NANOVEA T2000 high load pneumatic tribometer for friction and wear testing" />								</a>
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					<h2 class="elementor-heading-title elementor-size-default">試験方法</h2>				</div>
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									<p class="isSelectedEnd">High temperature Brinell hardness testing was performed with the steel sample mounted inside the NANOVEA T2000 heated chamber. The sample was tested at six temperatures from 25°C to 925°C using a 10 mm tungsten carbide (WC) ball with an applied test force of 1000 N (~100 kgf).</p><p>The test parameters used throughout the study are summarized below.</p>								</div>
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															<img decoding="async" width="1026" height="683" src="https://nanovea.com/wp-content/uploads/2026/08/high-temperature-hardness-testing-t2000-heated-chamber.jpg" class="attachment-full size-full wp-image-26564" alt="Steel sample mounted inside the NANOVEA T2000 high temperature chamber for Brinell hardness testing" />															</div>
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									<p>Steel sample mounted in the NANOVEA T2000 high temperature chamber for Brinell hardness testing from 25°C to 925°C.</p>								</div>
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					<h2 class="elementor-heading-title elementor-size-default">テスト・パラメーター</h2>				</div>
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<table class="measurement-table">
<thead>
<tr>
<th>Test Parameter</th>
<th>High Temperature Brinell Hardness Setup</th>
</tr>
</thead>
<tbody>
<tr>
<td>温度</td>
<td>25, 200, 400, 600, 800, 925°C</td>
</tr>
<tr>
<td>Test force</td>
<td>1000 N (~100 kgf)</td>
</tr>
<tr>
<td>Force-diameter ratio</td>
<td>1</td>
</tr>
<tr>
<td>Ball material</td>
<td>Tungsten carbide (WC)</td>
</tr>
<tr>
<td>Ball diameter</td>
<td>10mm</td>
</tr>
</tbody>
</table>
</div>								</div>
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															<img loading="lazy" decoding="async" width="1200" height="618" src="https://nanovea.com/wp-content/uploads/2026/08/high-temperature-hardness-testing-steel-samples.jpg" class="attachment-full size-full wp-image-26565" alt="Steel samples used for high temperature Brinell hardness testing from 25°C to 925°C" />															</div>
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									<p>Steel samples used in the high temperature Brinell hardness study from room temperature to 925°C.</p>								</div>
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					<h2 class="elementor-heading-title elementor-size-default">結果および考察</h2>				</div>
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				</div>
				<section class="elementor-section elementor-top-section elementor-element elementor-element-55f91f5 elementor-section-boxed elementor-section-height-default elementor-section-height-default" data-id="55f91f5" data-element_type="section">
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									<p class="isSelectedEnd">Brinell hardness was calculated from the applied force, ball diameter, and measured indentation diameter using the equation below:</p>								</div>
				</div>
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															<img loading="lazy" decoding="async" width="964" height="352" src="https://nanovea.com/wp-content/uploads/2026/08/brinell-hardness-equation.jpg" class="attachment-full size-full wp-image-26567" alt="Brinell hardness equation using applied force, ball diameter, and measured indentation diameter" />															</div>
				</div>
				<div class="elementor-element elementor-element-8401aeb elementor-widget elementor-widget-text-editor" data-id="8401aeb" data-element_type="widget" data-widget_type="text-editor.default">
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									<p class="isSelectedEnd">Where F (kgf) is the applied force expressed in kilogram-force, D is the ball diameter, and d is the measured indentation diameter. Two diameter measurements were taken for each indent and averaged to determine the value of d used in the hardness calculation.</p>								</div>
				</div>
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															<img loading="lazy" decoding="async" width="1045" height="597" src="https://nanovea.com/wp-content/uploads/2026/08/high-temperature-brinell-hardness-load-time-curve.jpg" class="attachment-full size-full wp-image-26568" alt="Load versus time curve showing the 1000 N indentation load used during high temperature Brinell hardness testing of steel" />															</div>
				</div>
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									<p>Load vs. time profile for the 1000 N Brinell indentations performed during high temperature hardness testing.</p>								</div>
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									<p class="isSelectedEnd">The loading curve shows the applied load profile used during indentation. A consistent 1000 N (~100 kgf) test force was used throughout the temperature series so that the resulting indentation dimensions and calculated hardness values could be compared across each test condition.</p>								</div>
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															<img loading="lazy" decoding="async" width="865" height="872" src="https://nanovea.com/wp-content/uploads/2026/08/high-temperature-brinell-hardness-indentation-800c.jpg" class="attachment-full size-full wp-image-26569" alt="Brinell indentation on steel measured at 800°C with diameters of 1.807 mm and 1.830 mm" />															</div>
				</div>
				<div class="elementor-element elementor-element-b802905 elementor-widget elementor-widget-text-editor" data-id="b802905" data-element_type="widget" data-widget_type="text-editor.default">
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									<div class="measurement-table-wrapper">
<table class="measurement-table">
<thead>
<tr>
<th>距離</th>
<th>Unit</th>
<th>A</th>
<th>B</th>
</tr>
</thead>
<tbody>
<tr>
<td>HDist</td>
<td>ミリメートル</td>
<td>1.807</td>
<td>1.830</td>
</tr>
</tbody>
</table>
</div>								</div>
				</div>
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									<p>Brinell indentation measured at 800°C. Two diameter measurements of 1.807 mm and 1.830 mm were averaged to determine the indentation diameter used for hardness calculation.</p>								</div>
				</div>
				<div class="elementor-element elementor-element-bcfbf9d elementor-widget elementor-widget-text-editor" data-id="bcfbf9d" data-element_type="widget" data-widget_type="text-editor.default">
				<div class="elementor-widget-container">
									<p class="isSelectedEnd">At 800°C, the measured indentation diameters were 1.807 mm and 1.830 mm, producing an average diameter of approximately 1.819 mm. The indentation diameter increased substantially at the higher test temperatures as the steel became softer under the same applied load.</p><p>The measured indentation diameters were then used to calculate Brinell hardness at each temperature. The results show a relatively gradual decrease from 96.12 HBW at 25°C to 79.69 HBW at 600°C, followed by a much sharper decrease to 38.18 HBW at 800°C and 15.40 HBW at 925°C.</p>								</div>
				</div>
					</div>
		</div>
					</div>
		</section>
				<section class="elementor-section elementor-top-section elementor-element elementor-element-0284660 elementor-section-boxed elementor-section-height-default elementor-section-height-default" data-id="0284660" data-element_type="section">
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					<h4 class="elementor-heading-title elementor-size-default">Brinell Hardness Results</h4>				</div>
				</div>
				<div class="elementor-element elementor-element-3d7472e elementor-widget elementor-widget-text-editor" data-id="3d7472e" data-element_type="widget" data-widget_type="text-editor.default">
				<div class="elementor-widget-container">
									<div class="measurement-table-wrapper">
<table class="measurement-table pore-statistics-table">
<tbody>
<tr class="section-header">
<td colspan="5">High Temperature Brinell Hardness Results</td>
</tr>
<tr>
<th>Temperature (°C)</th>
<th>Diameter 1 (mm)</th>
<th>Diameter 2 (mm)</th>
<th>Average Diameter (mm)</th>
<th>HBW (10/100)</th>
</tr>
<tr>
<td>25</td>
<td>1.153</td>
<td>1.145</td>
<td>1.149</td>
<td>96.12</td>
</tr>
<tr>
<td>200</td>
<td>1.150</td>
<td>1.201</td>
<td>1.176</td>
<td>91.82</td>
</tr>
<tr>
<td>400</td>
<td>1.165</td>
<td>1.261</td>
<td>1.213</td>
<td>86.21</td>
</tr>
<tr>
<td>600</td>
<td>1.265</td>
<td>1.258</td>
<td>1.262</td>
<td>79.69</td>
</tr>
<tr>
<td>800</td>
<td>1.807</td>
<td>1.830</td>
<td>1.819</td>
<td>38.18</td>
</tr>
<tr>
<td>925</td>
<td>2.858</td>
<td>2.833</td>
<td>2.846</td>
<td>15.40</td>
</tr>
</tbody>
</table>
</div>								</div>
				</div>
				<div class="elementor-element elementor-element-a0c9cbf elementor-widget elementor-widget-image" data-id="a0c9cbf" data-element_type="widget" data-widget_type="image.default">
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															<img loading="lazy" decoding="async" width="1200" height="672" src="https://nanovea.com/wp-content/uploads/2026/08/high-temperature-hardness-testing-brinell-hardness-vs-temperature-graph.jpg" class="attachment-full size-full wp-image-26570" alt="Graph showing Brinell hardness of steel decreasing from 96.12 HBW at 25°C to 15.40 HBW at 925°C" />															</div>
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				<div class="elementor-element elementor-element-ebbf9c2 elementor-widget elementor-widget-text-editor" data-id="ebbf9c2" data-element_type="widget" data-widget_type="text-editor.default">
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									<p class="isSelectedEnd">The temperature-dependent trend is clear. Steel hardness decreased moderately between room temperature and 600°C, then declined rapidly at higher temperatures. Between 25°C and 925°C, the measured Brinell hardness decreased from 96.12 to 15.40 HBW, representing an overall hardness loss of approximately 84%.</p><p>These results demonstrate why hardness measured at room temperature alone may not fully represent material behavior in high-temperature applications. For this steel sample, the most substantial loss in hardness occurred above approximately 600°C.</p>								</div>
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		</section>
				<section class="elementor-section elementor-top-section elementor-element elementor-element-683f81e elementor-section-boxed elementor-section-height-default elementor-section-height-default" data-id="683f81e" data-element_type="section">
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					<h2 class="elementor-heading-title elementor-size-default">結論</h2>				</div>
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									<p class="isSelectedEnd">High temperature hardness testing revealed a strong temperature-dependent change in the Brinell hardness of the steel sample. Hardness decreased gradually as temperature increased from 25°C to 600°C, then declined much more sharply at higher temperatures. By 925°C, the measured hardness had fallen from 96.12 HBW to 15.40 HBW, representing an overall decrease of approximately 84%.</p><p class="isSelectedEnd">The study demonstrates the ability of the NANOVEA T2000 Tribometer to perform Brinell hardness measurements under elevated-temperature conditions. Using a 1000 N (~100 kgf) test force, the steel sample was evaluated from 25°C to 925°C, allowing its change in hardness to be measured directly across the tested temperature range.</p><p>The results also highlight the importance of selecting an appropriate force-diameter ratio across a wide temperature range. Because of the large difference in hardness between room temperature and high temperature, the study recommends a force-diameter ratio of 5 or 10 at lower temperatures, while a ratio of 1 is suitable above 900°C.</p>								</div>
				</div>
					</div>
		</div>
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		</section>
				<section class="elementor-section elementor-top-section elementor-element elementor-element-a2dee8e elementor-section-boxed elementor-section-height-default elementor-section-height-default" data-id="a2dee8e" data-element_type="section" data-settings="{&quot;background_background&quot;:&quot;classic&quot;}">
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					<h2 class="elementor-heading-title elementor-size-default">Frequently Asked Questions About High Temperature Hardness Testing</h2>				</div>
				</div>
				<div class="elementor-element elementor-element-596af01 elementor-widget elementor-widget-heading" data-id="596af01" data-element_type="widget" data-widget_type="heading.default">
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					<h3 class="elementor-heading-title elementor-size-default">What is high temperature hardness testing used for?</h3>				</div>
				</div>
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									<p data-start="168" data-end="494">High temperature hardness testing evaluates how a material’s resistance to indentation changes as temperature increases. It is useful for materials intended for thermally demanding applications where room-temperature hardness may not represent mechanical behavior at operating temperature.</p>								</div>
				</div>
				<div class="elementor-element elementor-element-cbcfaa4 elementor-widget elementor-widget-heading" data-id="cbcfaa4" data-element_type="widget" data-widget_type="heading.default">
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					<h3 class="elementor-heading-title elementor-size-default">Can Brinell hardness be measured at elevated temperatures?</h3>				</div>
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									<p data-start="658" data-end="746">Yes. Elevated-temperature Brinell hardness testing applies a controlled force using a ball of known diameter while the specimen is heated to the required test temperature. In this study, steel was tested from 25°C to 925°C using a 10 mm tungsten carbide ball and a 1000 N test force.</p>								</div>
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				<div class="elementor-widget-container">
					<h3 class="elementor-heading-title elementor-size-default">Why measure hardness while the material is hot?</h3>				</div>
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									<p data-start="168" data-end="494">Testing at temperature measures hardness under the thermal condition of interest rather than only after the specimen returns to room temperature. This makes it possible to directly characterize temperature-dependent softening and identify changes that may not be represented by room-temperature hardness values.</p>								</div>
				</div>
				<div class="elementor-element elementor-element-2ae518f elementor-widget elementor-widget-heading" data-id="2ae518f" data-element_type="widget" data-widget_type="heading.default">
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					<h3 class="elementor-heading-title elementor-size-default">What equipment is used for high temperature hardness testing?</h3>				</div>
				</div>
				<div class="elementor-element elementor-element-1d77659 elementor-widget elementor-widget-text-editor" data-id="1d77659" data-element_type="widget" data-widget_type="text-editor.default">
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									<p data-start="168" data-end="494">High temperature hardness testing requires controlled specimen heating, precise mechanical loading and measurement of the resulting indentation. The NANOVEA T2000 can integrate high-temperature environmental control with mechanical testing for evaluating material behavior under elevated-temperature conditions.</p>								</div>
				</div>
				<div class="elementor-element elementor-element-3d372dd elementor-widget elementor-widget-heading" data-id="3d372dd" data-element_type="widget" data-widget_type="heading.default">
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					<h3 class="elementor-heading-title elementor-size-default">Can high temperature hardness testing be used for aerospace materials?</h3>				</div>
				</div>
				<div class="elementor-element elementor-element-b1dd455 elementor-widget elementor-widget-text-editor" data-id="b1dd455" data-element_type="widget" data-widget_type="text-editor.default">
				<div class="elementor-widget-container">
									<p data-start="168" data-end="494">Yes. Elevated-temperature hardness measurements are relevant when evaluating materials intended for thermally demanding aerospace environments, including jet-engine and other high-temperature components. Testing helps characterize how hardness changes as exposure temperature increases.</p>								</div>
				</div>
				<div class="elementor-element elementor-element-5cbc604 elementor-widget elementor-widget-heading" data-id="5cbc604" data-element_type="widget" data-widget_type="heading.default">
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					<h3 class="elementor-heading-title elementor-size-default">Can NANOVEA perform high temperature hardness testing as a laboratory service?</h3>				</div>
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				<div class="elementor-element elementor-element-82a2d66 elementor-widget elementor-widget-text-editor" data-id="82a2d66" data-element_type="widget" data-widget_type="text-editor.default">
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									<p data-start="168" data-end="494">NANOVEA provides materials testing services using its mechanical testing and tribology platforms. Application requirements, temperature range, load, specimen geometry and measurement method can be reviewed with a NANOVEA applications engineer to determine an appropriate high-temperature testing approach.</p>								</div>
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					<h2 class="elementor-heading-title elementor-size-default">Need High Temperature Hardness Testing for Your Material?</h2>				</div>
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				</div><p>The post <a href="https://nanovea.com/ja/high-temperature-hardness-testing-of-steel/">High Temperature Brinell Hardness Testing</a> appeared first on <a href="https://nanovea.com/ja">NANOVEA: Advanced Profilometers, Tribometers, Nanoindenters, and Scratch Testers for Materials Testing</a>.</p>
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		<title>トライボメータによる高温スクラッチ硬度測定</title>
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		<dc:creator><![CDATA[nanovea]]></dc:creator>
		<pubDate>Thu, 14 Jul 2022 16:56:16 +0000</pubDate>
				<category><![CDATA[Application Notes]]></category>
		<category><![CDATA[High Temperature Mechanical Testing]]></category>
		<category><![CDATA[High Temperature Tribology]]></category>
		<category><![CDATA[Laboratory Testing]]></category>
		<category><![CDATA[Mechanical Testing]]></category>
		<category><![CDATA[Scratch Testing | Scratch Hardness]]></category>
		<category><![CDATA[Scratch Testing Tribology]]></category>
		<category><![CDATA[Tribology Testing]]></category>
		<guid ispermalink="false">https://nanovea.com/?p=21189</guid>

					<description><![CDATA[<p>HIGH TEMPERATURE SCRATCH HARDNESS USING A TRIBOMETER Prepared by DUANJIE, PhD INTRODUCTION Hardness measures the resistance of materials to permanent or plastic deformation. Originally developed by a German mineralogist Friedrich Mohs in 1820, scratch hardness test determines the hardness of a material to scratches and abrasion due to friction from a sharp object1. The Mohs&#8217; scale is a comparative index rather than a linear scale, therefore a more accurate and qualitative scratch hardness measurement was developed as described in ASTM standard G171-032. It measures the average width of the scratch created by a diamond stylus and calculates the scratch hardness number (HSP). IMPORTANCE OF SCRATCH HARDNESS MEASUREMENT AT HIGH TEMPERATURES [&#8230;]</p>
<p>The post <a href="https://nanovea.com/ja/%e9%ab%98%e6%b8%a9%e3%82%b9%e3%82%af%e3%83%a9%e3%83%83%e3%83%81%e3%83%8f%e3%83%bc%e3%83%89%e3%83%8d%e3%82%b9%e3%83%bb%e3%83%a6%e3%83%bc%e3%82%b8%e3%83%b3%e3%82%b0%e3%83%bb%e3%82%a2%e3%83%bb%e3%83%88/">High Temperature Scratch Hardness using a Tribometer</a> appeared first on <a href="https://nanovea.com/ja">NANOVEA: Advanced Profilometers, Tribometers, Nanoindenters, and Scratch Testers for Materials Testing</a>.</p>
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					<h1 class="elementor-heading-title elementor-size-default">トライボメーターによる高温スクラッチ硬度</h1>				</div>
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					<h2 class="elementor-heading-title elementor-size-default">トライボメータによる</h2>				</div>
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															<img loading="lazy" decoding="async" width="768" height="217" src="https://nanovea.com/wp-content/uploads/2022/07/High-Temperature-Tribology.jpg" class="attachment-medium_large size-medium_large wp-image-21179" alt="" />															</div>
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					<h2 class="elementor-heading-title elementor-size-default">作成者</h2>				</div>
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					<h2 class="elementor-heading-title elementor-size-default">DUANJIE, PhD</h2>				</div>
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					<h2 class="elementor-heading-title elementor-size-default">はじめに</h2>				</div>
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									<p>硬度は、材料の永久変形や塑性変形に対する抵抗力を測定するものである。1820年にドイツの鉱物学者フリードリヒ・モースによって開発された硬さ試験で、鋭利な物体との摩擦による傷や摩耗に対する材料の硬さを測定する。<sup>1</sup>.モース硬度はリニアスケールではなく比較指数であるため、より正確で定性的なスクラッチ硬度測定がASTM規格G171-03に記載されているように開発されました。<sup>2</sup>.ダイヤモンドの触針でできた傷の平均幅を測定し、傷の硬さ（HSP）を算出するものです。</p>								</div>
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					<h2 class="elementor-heading-title elementor-size-default">高温下でのスクラッチ硬度測定の重要性</h2>				</div>
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									<p>材料は、サービス要件に基づいて選択されます。大きな温度変化や温度勾配を伴う用途では、高温での材料の機械的特性を調査し、機械的限界を十分に認識することが重要です。材料、特にポリマーは通常、高温になると軟化します。多くの機械的故障は、高温でのみ起こるクリープ変形や熱疲労によって引き起こされます。したがって、高温用途の材料を適切に選択するために、高温での硬度を測定する信頼性の高い技術が必要とされています。</p>								</div>
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									<p style="text-align: left;">測定目的</p>								</div>
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									<p>この研究では、NANOVEA T50 トライボメーターを使用して、室温から 300℃ までのさまざまな温度でテフロン サンプルの引っかき硬度を測定します。 NANOVEA は、高温での引っかき硬度測定を実行できる機能を備えています。 <a href="https://nanovea.com/tribometers/">トライボメータ </a>高温用途の材料の摩擦学的および機械的評価のための多用途システムです。</p>								</div>
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									<p style="text-align: left;">ナノビア</p>								</div>
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									<p style="text-align: left;">T50</p>								</div>
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									<span class="elementor-button-text">詳しくはこちら</span>
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																<a href="https://nanovea.com/instruments/t50">
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					<h2 class="elementor-heading-title elementor-size-default">試験条件</h2>				</div>
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									<p>NANOVEA T50 Free Weight Standard Tribometerを使用して、室温（RT）から300℃の温度範囲でテフロンサンプルの引っかき硬度試験を実施しました。テフロンの融点は326.8°Cです。先端角120°、先端半径200μmの円錐型ダイヤモンドスタイラスを使用しました。テフロン試料は、回転式試料ステージにステージ中心から10 mmの距離で固定した。試料をオーブンで加熱し、常温、50℃、100℃、150℃、200℃、250℃、300℃の温度で試験した。</p>								</div>
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									<p style="text-align: center;">テストパラメーター</p>								</div>
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									<p>テストパラメーター</p>								</div>
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<td style="width: 50%; text-align: left;"><em><strong style="color: #1b96cf;">ノーマルフォース</strong></em></td>
<td style="width: 50%; text-align: right;"><em><strong>2 N</strong></em></td>
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<td style="width: 50%; text-align: left;"><em><strong style="color: #1b96cf;">滑りスピード</strong></em></td>
<td style="width: 50%; text-align: right;"><em><strong>1mm/s</strong></em></td>
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<td style="width: 50%; text-align: left;"><em><strong style="color: #1b96cf;">滑り距離</strong></em></td>
<td style="width: 50%; text-align: right;"><em><strong>8mm/temp</strong></em></td>
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<td style="width: 50%; text-align: left;"><em><strong style="color: #1b96cf;">大気</strong></em></td>
<td style="width: 50%; text-align: right;"><em><strong>空気</strong></em></td>
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<td style="width: 50%; text-align: left;"><em><strong style="color: #1b96cf;">温度</strong></em></td>
<td style="width: 50%; text-align: right;"><em><strong>RT、50°C、100°C、150°C、200°C、250°C、300°C</strong></em></td>
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					<h2 class="elementor-heading-title elementor-size-default">結果・考察</h2>				</div>
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									<p style="text-align: left;">図1には、異なる高温でのスクラッチ硬度を比較するために、異なる温度でのテフロンサンプルのスクラッチトラックプロファイルが示されています。スタイラスが2Nの一定荷重で移動しながらテフロンサンプルに突入し、スクラッチトラック内の材料を横に押し出し変形させることで、スクラッチトラック端に材料の山が形成されます。</p><p>図2に示すように、スクラッチトラックを光学顕微鏡で観察した。顕微鏡で測定したスクラッチ痕の幅と、計算で求めたスクラッチ硬度（HSP）を図3にまとめて比較しました。 顕微鏡で測定したスクラッチ痕の幅は、NANOVEAプロファイラーで測定した幅と一致し、テフロンサンプルは高温でより広いスクラッチ幅を示しています。温度が常温から300℃に上昇すると、スクラッチトラックの幅は281μmから539μmに増加し、HSPは65MPaから18MPaに減少しています。</p><p>NANOVEA T50トライボメータは、高温下でのスクラッチ硬度を高精度かつ高再現性で測定することができます。他の硬度測定とは異なるソリューションを提供し、ナノビアトライボメータを高温トライボメカニックの総合評価システムとしてより完成度の高いものにしています。</p>								</div>
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															<img loading="lazy" decoding="async" width="980" height="783" src="https://nanovea.com/wp-content/uploads/2022/07/Scratch-Hardness-High-Temperature.jpg" class="attachment-large size-large wp-image-21182" alt="" />															</div>
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									<p style="text-align: center;"><span class="fontstyle0" style="color: #1b96cf;">図1:</span><span class="fontstyle0" style="color: #1b96cf;"><span style="color: #000000;"><span class="fontstyle0"> </span>異なる温度でのスクラッチ硬度試験後のスクラッチトラックプロファイル。</span></p>								</div>
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															<img loading="lazy" decoding="async" width="460" height="403" src="https://nanovea.com/wp-content/uploads/2022/07/High-Temperature-Scratch-Hardness-Test.jpg" class="attachment-large size-large wp-image-21175" alt="" />															</div>
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									<p style="text-align: center;"><span class="fontstyle0" style="color: #1b96cf;">図2:</span><span class="fontstyle0" style="color: #000000;"> 異なる温度で測定した後の顕微鏡下でのスクラッチ痕。</span></p>								</div>
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									<p style="text-align: center;"><span class="fontstyle0" style="color: #1b96cf;">図3:</span><span class="fontstyle0" style="color: #000000;"> スクラッチトラック幅とスクラッチ硬度の温度に対する変化。</span></p>								</div>
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									<p>この研究では、ASTM G171-03に準拠した高温でのナノビアトライボメータによるスクラッチ硬度測定方法を紹介します。一定荷重でのスクラッチ硬度測定は、トライボメータを用いた材料の硬度比較のための代替的な簡易ソリューションとなります。高温でのスクラッチ硬さ測定が可能なナノビアトライボメータは、材料の高温トライボメカニカル特性の評価に理想的なツールです。</p><p>ナノビアトライボメータは、ISOおよびASTMに準拠した回転モードとリニアモードによる精密で再現性の高い摩耗・摩擦試験を提供し、オプションで高温摩耗、潤滑、トライボコロージョンを一つの統合済みシステムとして利用することも可能です。オプションの3D非接触プロファイラを使用すると、粗さなどの表面測定に加えて、摩耗痕の高解像度3Dイメージングを行うことができます。</p>								</div>
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									<p><span class="fontstyle0">1 </span><span class="fontstyle2">Wredenberg, Fredrik; PL Larsson (2009).「金属と高分子のスクラッチ試験。Experiments and numerics".Wear 266 (1-2):76<br></span><span class="fontstyle0">2 </span><span class="fontstyle2">ASTM G171-03 (2009), "Standard Test Method for Scratch Hardness of Materials Using Diamond Stylus" ダイヤモンドスタイラスを用いた材料のスクラッチ硬度に関する標準試験方法。</span> </p>								</div>
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		<title>ナノインデンテーションDMAによるローカルスポットガラス転移測定</title>
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		<pubDate>Tue, 14 May 2019 16:14:41 +0000</pubDate>
				<category><![CDATA[Application Notes]]></category>
		<category><![CDATA[High Temperature Mechanical Testing]]></category>
		<category><![CDATA[Indentation | Hardness and Elastic]]></category>
		<category><![CDATA[Indentation | Loss and Storage]]></category>
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					<description><![CDATA[<p>ナノインデンテーションDMAによるガラス転移の精密な局所化 詳細はこちら</p>
<p>The post <a href="https://nanovea.com/ja/%e3%83%8a%e3%83%8e%e3%82%a4%e3%83%b3%e3%83%87%e3%83%b3%e3%83%86%e3%83%bc%e3%82%b7%e3%83%a7%e3%83%b3%e3%81%ab%e3%82%88%e3%82%8b%e7%b2%be%e5%af%86%e5%b1%80%e6%89%80%e3%82%ac%e3%83%a9%e3%82%b9%e8%bb%a2/">Precise Localized Glass Transition with Nanoindentation DMA</a> appeared first on <a href="https://nanovea.com/ja">NANOVEA: Advanced Profilometers, Tribometers, Nanoindenters, and Scratch Testers for Materials Testing</a>.</p>
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									ナノインデンテーションDMAによるローカルスポットガラス転移測定
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									バルク材が一定の速度で均一に加熱されるシナリオを想像してください。バルク材が加熱され、融点に近づくにつれて、その剛性は失われ始めます。同じ力で定期的に圧痕（硬さ試験）を行うと、試料が柔らかくなっているため、圧痕の深さは常に増しているはずです（図1参照）。これは、試料が溶け始めるまで続く。このとき、圧痕の深さが大きく増加することが確認される。このように、一定の振幅の力で振動させ、その変位を測定することにより、材料の相変化を観察することができる。

&nbsp;

<a href="http://nanovea.com/App-Notes/Precise-localized-glass-transition-with-nanoindentation-dma.pdf"><strong>ガラス転移の精密な局所化について読む!</strong></a>

<a href="http://nanovea.com/App-Notes/Precise-localized-glass-transition-with-nanoindentation-dma.pdf"><img loading="lazy" decoding="async" class="alignnone wp-image-5380" src="https://nanovea.com/wp-content/uploads/2019/05/Cover-DMA-FINAL.jpg" alt="" width="541" height="710"></a>								</div>
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									<p>ナノインデンテーションによる応力緩和測定</p><p>詳細はこちら</p>								</div>
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					<h2 class="elementor-heading-title elementor-size-default"><b>さて、次はアプリケーションについてです。</b></h2>				</div>
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				</div><p>The post <a href="https://nanovea.com/ja/%e3%83%8a%e3%83%8e%e3%82%a4%e3%83%b3%e3%83%87%e3%83%b3%e3%83%86%e3%83%bc%e3%82%b7%e3%83%a7%e3%83%b3%e3%81%ab%e3%82%88%e3%82%8b%e7%b2%be%e5%af%86%e5%b1%80%e6%89%80%e3%82%ac%e3%83%a9%e3%82%b9%e8%bb%a2/">Precise Localized Glass Transition with Nanoindentation DMA</a> appeared first on <a href="https://nanovea.com/ja">NANOVEA: Advanced Profilometers, Tribometers, Nanoindenters, and Scratch Testers for Materials Testing</a>.</p>
]]></content:encoded>
					
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		<title>ASTM D7187 ナノスクラッチによる温度効果</title>
		<link>https://nanovea.com/ja/astm-d7187-%e3%83%8a%e3%83%8e%e3%82%b9%e3%82%af%e3%83%a9%e3%83%83%e3%83%81/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=astm-d7187-nanoscratching</link>
					<comments>https://nanovea.com/ja/astm-d7187-%e3%83%8a%e3%83%8e%e3%82%b9%e3%82%af%e3%83%a9%e3%83%83%e3%83%81/#respond</comments>
		
		<dc:creator><![CDATA[nanovea]]></dc:creator>
		<pubDate>Thu, 29 Jun 2017 16:04:10 +0000</pubDate>
				<category><![CDATA[Application Notes]]></category>
		<category><![CDATA[High Temperature Mechanical Testing]]></category>
		<category><![CDATA[Laboratory Testing]]></category>
		<category><![CDATA[Mechanical Testing]]></category>
		<category><![CDATA[Scratch Testing | Cohesive Failure]]></category>
		<category><![CDATA[ASTM D7187]]></category>
		<category><![CDATA[mar resistance]]></category>
		<category><![CDATA[nanoscratching]]></category>
		<category><![CDATA[Scratch Resistance]]></category>
		<guid ispermalink="false">http://nanovea.com/?p=2877</guid>

					<description><![CDATA[<p>ASTM D7187, the resistance of the paint to scratch and mar plays a vital role in its end use. Automotive paint susceptible to scratches makes it difficult and costly to maintain and repair. Different coating architectures of the primer, basecoat, and clearcoat have been developed to achieve the best scratch/mar resistance. Nanoscratch testing has been developed as a standard test method to measure the mechanistic aspects of scratch/mar behavior of paint coatings as described in ASTM D7187. Different elementary deformation mechanisms, namely elastic deformation, plastic deformation and fracture, occur at different loads during the scratch test. It provides a quantitative assessment of the plastic resistance and fracture resistance of the [&#8230;]</p>
<p>The post <a href="https://nanovea.com/ja/astm-d7187-%e3%83%8a%e3%83%8e%e3%82%b9%e3%82%af%e3%83%a9%e3%83%83%e3%83%81/">ASTM D7187 Temperature Effect Using Nanoscratching</a> appeared first on <a href="https://nanovea.com/ja">NANOVEA: Advanced Profilometers, Tribometers, Nanoindenters, and Scratch Testers for Materials Testing</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>ASTM D7187では、塗料の傷や汚れに対する耐性が、最終用途において重要な役割を果たします。自動車用塗料は傷の影響を受けやすいため、メンテナンスや修理が難しく、コストがかかります。最高の耐スクラッチ／マー性を達成するために、プライマー、ベースコート、クリアコートのさまざまなコーティング構造が開発されてきました。 <a href="https://nanovea.com/nano-scratch-tester/">ナノスクラッチテスト</a> は，ASTM D7187 に記載されているように，塗膜のスクラッチ／マー挙動のメカニズ ム的側面を測定するための標準試験法として開発されたものである。<a href="#_edn1" name="_ednref1"></a>.スクラッチテストでは，弾性変形，塑性変形，破壊という異なる素変形機構が異なる荷重で発生する。これにより，塗膜の耐塑性，耐破壊性を定量的に評価することができる。</p>
<p><a href="https://nanovea.com/App-Notes/astm-d7187-temperature.pdf">ASTM D7187 ナノスクラッチによる温度効果</a></p><p>The post <a href="https://nanovea.com/ja/astm-d7187-%e3%83%8a%e3%83%8e%e3%82%b9%e3%82%af%e3%83%a9%e3%83%83%e3%83%81/">ASTM D7187 Temperature Effect Using Nanoscratching</a> appeared first on <a href="https://nanovea.com/ja">NANOVEA: Advanced Profilometers, Tribometers, Nanoindenters, and Scratch Testers for Materials Testing</a>.</p>
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		<title>高温でのテフロン機械特性</title>
		<link>https://nanovea.com/ja/%e3%83%86%e3%83%95%e3%83%ad%e3%83%b3%e3%83%a1%e3%82%ab%e3%83%8b%e3%82%ab%e3%83%ab%e9%ab%98%e6%b8%a9%e7%89%b9%e6%80%a7/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=teflon-mechanical-properties-high-temperature</link>
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		<dc:creator><![CDATA[nanovea]]></dc:creator>
		<pubDate>Wed, 27 Jul 2016 20:06:33 +0000</pubDate>
				<category><![CDATA[Application Notes]]></category>
		<category><![CDATA[High Temperature Mechanical Testing]]></category>
		<category><![CDATA[Teflon Mechanical Properties]]></category>
		<guid ispermalink="false">http://nanovea.com/?p=2440</guid>

					<description><![CDATA[<p>高温では、熱によって硬度や粘弾性などのテフロンの機械的特性が変化し、機械的な故障につながる可能性があります。高温用途の候補材料を定量的に評価するには、ポリマー材料の熱機械的挙動の信頼性の高い測定が必要です。Nanovea 機械試験機のナノ モジュールは、高精度のピエゾで負荷をかけ、力と変位の変化を測定することで、硬度、ヤング率、クリープを調べます。高度なオーブンにより、ナノインデンテーション テスト全体にわたってインデンテーション チップとサンプル表面の周囲に均一な温度が作られ、熱ドリフトの影響が最小限に抑えられます。ナノインデンテーションを使用した高温でのテフロンの機械的特性</p>
<p>The post <a href="https://nanovea.com/ja/%e3%83%86%e3%83%95%e3%83%ad%e3%83%b3%e3%83%a1%e3%82%ab%e3%83%8b%e3%82%ab%e3%83%ab%e9%ab%98%e6%b8%a9%e7%89%b9%e6%80%a7/">Teflon Mechanical Properties at High Temperature</a> appeared first on <a href="https://nanovea.com/ja">NANOVEA: Advanced Profilometers, Tribometers, Nanoindenters, and Scratch Testers for Materials Testing</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>高温では、熱により硬度や粘弾性などのテフロンの機械的特性が変化し、機械的故障が発生する可能性があります。高温用途の候補材料を定量的に評価するには、ポリマー材料の熱機械的挙動の信頼できる測定が必要です。の <a href="https://nanovea.com/nano-indentation-tester/">ナノモジュール</a> ナノベアの <a href="https://nanovea.com/mechanical-testers/">メカニカルテスター</a> 高精度ピエゾで荷重を加え、力と変位の変化を測定することで、硬度、ヤング率、クリープを研究します。高度なオーブンは、熱ドリフトの影響を最小限に抑えるために、ナノインデンテーション試験全体を通して、インデンテーションチップとサンプル表面の周囲に均一な温度を作り出します。</p>
<p><a href="https://nanovea.com/App-Notes/temperature-nanoindentation.pdf">ナノインデンテーションによる高温下でのテフロン機械特性の評価</a></p><p>The post <a href="https://nanovea.com/ja/%e3%83%86%e3%83%95%e3%83%ad%e3%83%b3%e3%83%a1%e3%82%ab%e3%83%8b%e3%82%ab%e3%83%ab%e9%ab%98%e6%b8%a9%e7%89%b9%e6%80%a7/">Teflon Mechanical Properties at High Temperature</a> appeared first on <a href="https://nanovea.com/ja">NANOVEA: Advanced Profilometers, Tribometers, Nanoindenters, and Scratch Testers for Materials Testing</a>.</p>
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		<title>ナノインデンテーションによるはんだのサーモメカニカル解析</title>
		<link>https://nanovea.com/ja/%e3%83%8a%e3%83%8e%e3%82%a4%e3%83%b3%e3%83%87%e3%83%b3%e3%83%86%e3%83%bc%e3%82%b7%e3%83%a7%e3%83%b3%e3%82%92%e7%94%a8%e3%81%84%e3%81%9f%e3%81%af%e3%82%93%e3%81%a0%e3%81%ae%e7%86%b1%e5%8a%9b%e5%ad%a6/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=thermomechanical-analysis-of-solder-using-nanoindentation</link>
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		<dc:creator><![CDATA[nanovea]]></dc:creator>
		<pubDate>Tue, 24 Nov 2015 15:44:44 +0000</pubDate>
				<category><![CDATA[Application Notes]]></category>
		<category><![CDATA[High Temperature Mechanical Testing]]></category>
		<category><![CDATA[Mechanical Properties]]></category>
		<category><![CDATA[nanoindentation]]></category>
		<category><![CDATA[thermomechanical analysis]]></category>
		<guid ispermalink="false">http://nanovea.com/?p=2143</guid>

					<description><![CDATA[<p>Solder joints are subjected to thermal and/or external stress when the temperature exceeds 0.6 Tm where Tm is the melting point of the material in Kelvin. The creep behavior of solders at elevated temperatures can directly influence the reliability of solder interconnections.  As a result, a reliable and quantitative thermomechanical analysis of the solder at different temperatures is in need. The Nano module of the Nanovea Mechanical Tester applies the load by a high-precision piezo and directly measures the evolution of force and displacement. The advanced heating oven provides a uniform temperature at the tip and sample surface, which ensures measuring accuracy and minimizes the influence of thermal drift. Thermomechanical [&#8230;]</p>
<p>The post <a href="https://nanovea.com/ja/%e3%83%8a%e3%83%8e%e3%82%a4%e3%83%b3%e3%83%87%e3%83%b3%e3%83%86%e3%83%bc%e3%82%b7%e3%83%a7%e3%83%b3%e3%82%92%e7%94%a8%e3%81%84%e3%81%9f%e3%81%af%e3%82%93%e3%81%a0%e3%81%ae%e7%86%b1%e5%8a%9b%e5%ad%a6/">Thermomechanical Analysis of Solder Using Nanoindentation</a> appeared first on <a href="https://nanovea.com/ja">NANOVEA: Advanced Profilometers, Tribometers, Nanoindenters, and Scratch Testers for Materials Testing</a>.</p>
]]></description>
										<content:encoded><![CDATA[<p>はんだ接合部は、0.6℃を超えると熱応力や外的応力を受ける。 <em>T</em><sub>m</sub> どこ <em>T</em><sub>m</sub> は材料の融点 (ケルビン) です。高温下でのはんだのクリープ挙動は、はんだ接続の信頼性に直接影響します。<a href="#_edn1" name="_ednref1">. </a> その結果、さまざまな温度におけるはんだの信頼性の高い定量的な熱機械分析が必要となります。の <a href="https://nanovea.com/nano-indentation-tester/">ナノモジュール</a> ナノベアの <a href="https://nanovea.com/mechanical-testers/">メカニカルテスター</a> 高精度ピエゾによって荷重を加え、力と変位の変化を直接測定します。高度な加熱オーブンは、チップとサンプル表面の温度を均一にし、測定精度を確保し、熱ドリフトの影響を最小限に抑えます。</p>
<p><a href="https://nanovea.com/wp-content/themes/wp-nanovea/Application%20Notes/thermomechanical-analysis.pdf" target="_blank" rel="noopener noreferrer">ナノインデンテーションによるはんだのサーモメカニカル解析</a></p>
<p>&nbsp;</p><p>The post <a href="https://nanovea.com/ja/%e3%83%8a%e3%83%8e%e3%82%a4%e3%83%b3%e3%83%87%e3%83%b3%e3%83%86%e3%83%bc%e3%82%b7%e3%83%a7%e3%83%b3%e3%82%92%e7%94%a8%e3%81%84%e3%81%9f%e3%81%af%e3%82%93%e3%81%a0%e3%81%ae%e7%86%b1%e5%8a%9b%e5%ad%a6/">Thermomechanical Analysis of Solder Using Nanoindentation</a> appeared first on <a href="https://nanovea.com/ja">NANOVEA: Advanced Profilometers, Tribometers, Nanoindenters, and Scratch Testers for Materials Testing</a>.</p>
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		<title>トライボメータによる高温スクラッチ硬度測定</title>
		<link>https://nanovea.com/ja/%e9%ab%98%e6%b8%a9%e3%82%b9%e3%82%af%e3%83%a9%e3%83%83%e3%83%81%e3%83%8f%e3%83%bc%e3%83%89%e3%83%8d%e3%82%b9%e3%83%bb%e3%83%a6%e3%83%bc%e3%82%ba%e3%83%89%e3%83%bb%e3%83%88%e3%83%a9%e3%82%a4%e3%83%9c/?utm_source=rss&#038;utm_medium=rss&#038;utm_campaign=high-temperature-scratch-hardness-using-tribometer</link>
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		<dc:creator><![CDATA[nanovea]]></dc:creator>
		<pubDate>Tue, 24 Nov 2015 15:34:17 +0000</pubDate>
				<category><![CDATA[Application Notes]]></category>
		<category><![CDATA[High Temperature Mechanical Testing]]></category>
		<category><![CDATA[High Temperature Tribology]]></category>
		<category><![CDATA[Laboratory Testing]]></category>
		<category><![CDATA[Mechanical Testing]]></category>
		<category><![CDATA[Scratch Testing | Scratch Hardness]]></category>
		<category><![CDATA[Scratch Testing Tribology]]></category>
		<category><![CDATA[Tribology Testing]]></category>
		<category><![CDATA[high temperature]]></category>
		<category><![CDATA[scratch hardness]]></category>
		<category><![CDATA[tribology]]></category>
		<category><![CDATA[tribometer]]></category>
		<guid ispermalink="false">http://nanovea.com/?p=2139</guid>

					<description><![CDATA[<p>Materials are selected based on the service requirements. For applications involving significant temperature changes and thermal gradients, it is critical to investigate the mechanical properties of materials at high temperatures to be fully aware of the mechanical limits. Materials, especially polymers, usually soften at high temperatures. A lot of mechanical failures are caused by creep deformation and thermal fatigue taking place only at elevated temperatures. Therefore, a reliable technique for measuring high temperature scratch hardness is in need to ensure proper selection of the materials for high temperature applications. High Temperature Scratch Hardness Using Tribometer &#160;</p>
<p>The post <a href="https://nanovea.com/ja/%e9%ab%98%e6%b8%a9%e3%82%b9%e3%82%af%e3%83%a9%e3%83%83%e3%83%81%e3%83%8f%e3%83%bc%e3%83%89%e3%83%8d%e3%82%b9%e3%83%bb%e3%83%a6%e3%83%bc%e3%82%ba%e3%83%89%e3%83%bb%e3%83%88%e3%83%a9%e3%82%a4%e3%83%9c/">High Temperature Scratch Hardness Using Tribometer</a> appeared first on <a href="https://nanovea.com/ja">NANOVEA: Advanced Profilometers, Tribometers, Nanoindenters, and Scratch Testers for Materials Testing</a>.</p>
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										<content:encoded><![CDATA[<p>材料は、サービス要件に基づいて選択されます。大きな温度変化や温度勾配を伴う用途では、高温での材料の機械的特性を調査し、機械的限界を十分に認識することが重要です。材料、特にポリマーは通常、高温になると軟化します。多くの機械的故障は、高温でのみ起こるクリープ変形や熱疲労によって引き起こされます。したがって、高温用途の材料を適切に選択するために、信頼性の高い高温スクラッチ硬さ測定技術が必要とされています。</p>
<p><a href="https://nanovea.com/wp-content/themes/wp-nanovea/Application%20Notes/high-temperature-tribology.pdf" target="_blank" rel="noopener noreferrer">トライボメータによる高温スクラッチ硬度測定</a></p>
<p>&nbsp;</p><p>The post <a href="https://nanovea.com/ja/%e9%ab%98%e6%b8%a9%e3%82%b9%e3%82%af%e3%83%a9%e3%83%83%e3%83%81%e3%83%8f%e3%83%bc%e3%83%89%e3%83%8d%e3%82%b9%e3%83%bb%e3%83%a6%e3%83%bc%e3%82%ba%e3%83%89%e3%83%bb%e3%83%88%e3%83%a9%e3%82%a4%e3%83%9c/">High Temperature Scratch Hardness Using Tribometer</a> appeared first on <a href="https://nanovea.com/ja">NANOVEA: Advanced Profilometers, Tribometers, Nanoindenters, and Scratch Testers for Materials Testing</a>.</p>
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