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	<title>Thermal Expansion Coefficient - Revision history</title>
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	<updated>2026-09-08T17:41:22Z</updated>
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		<id>https://en.wiki.polymerservice-merseburg.de/index.php?title=Thermal_Expansion_Coefficient&amp;diff=1760&amp;oldid=prev</id>
		<title>Oluschinski: Created page with &quot;{{Language_sel|LANG=ger|ARTIKEL=Thermischer Ausdehnungskoeffizient}} {{PSM_Infobox}} &lt;span style=&quot;font-size:1.2em;font-weight:bold;&quot;&gt;Thermal expansion coefficient&lt;/span&gt; __FORCETOC__  ==General principles==  As the loading temperature increases, plastics undergo lengthwise expansion, which is generally significantly greater than that of metallic materials.  This thermal expansion (see also: thermomechanical analysiss) is described by...&quot;</title>
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		<updated>2026-09-07T09:22:23Z</updated>

		<summary type="html">&lt;p&gt;Created page with &amp;quot;{{Language_sel|LANG=ger|ARTIKEL=Thermischer Ausdehnungskoeffizient}} {{PSM_Infobox}} &amp;lt;span style=&amp;quot;font-size:1.2em;font-weight:bold;&amp;quot;&amp;gt;Thermal expansion coefficient&amp;lt;/span&amp;gt; __FORCETOC__  ==General principles==  As the loading temperature increases, &lt;a href=&quot;/index.php/Plastics&quot; title=&quot;Plastics&quot;&gt;plastics&lt;/a&gt; undergo lengthwise expansion, which is generally significantly greater than that of metallic &lt;a href=&quot;/index.php/Material_%26_Werkstoff&quot; title=&quot;Material &amp;amp; Werkstoff&quot;&gt;materials&lt;/a&gt;.  This thermal expansion (see also: thermomechanical analysiss) is described by...&amp;quot;&lt;/p&gt;
&lt;p&gt;&lt;b&gt;New page&lt;/b&gt;&lt;/p&gt;&lt;div&gt;{{Language_sel|LANG=ger|ARTIKEL=Thermischer Ausdehnungskoeffizient}}&lt;br /&gt;
{{PSM_Infobox}}&lt;br /&gt;
&amp;lt;span style=&amp;quot;font-size:1.2em;font-weight:bold;&amp;quot;&amp;gt;Thermal expansion coefficient&amp;lt;/span&amp;gt;&lt;br /&gt;
__FORCETOC__&lt;br /&gt;
&lt;br /&gt;
==General principles==&lt;br /&gt;
&lt;br /&gt;
As the loading temperature increases, [[Plastics|plastics]] undergo lengthwise expansion, which is generally significantly greater than that of metallic [[Material &amp;amp; Werkstoff|materials]].&lt;br /&gt;
&lt;br /&gt;
This thermal expansion (see also: thermomechanical analysiss) is described by the plastic’s mean linear (&amp;#039;&amp;#039;α&amp;#039;&amp;#039;) or cubic (&amp;#039;&amp;#039;β&amp;#039;&amp;#039;) thermal expansion coefficient (see also: [[Thermomechanical Analysis|thermomechanical analysis]]) and also provides information about important phase-transition phenomena during heating.&lt;br /&gt;
&lt;br /&gt;
The thermal expansion coefficient &amp;#039;&amp;#039;α&amp;#039;&amp;#039;&amp;lt;sub&amp;gt;Th&amp;lt;/sub&amp;gt;, also known as the thermal expansion number, describes the change in length Δ&amp;#039;&amp;#039;L&amp;#039;&amp;#039; of a body for a temperature increase of 1 °C and is expressed in K⁻¹ [1]. Within a limited temperature range, the linear expansion for a temperature increase of Δ&amp;#039;&amp;#039;T&amp;#039;&amp;#039; is given by &amp;#039;&amp;#039;&amp;#039;Eq. (1)&amp;#039;&amp;#039;&amp;#039;.&lt;br /&gt;
&lt;br /&gt;
{|&lt;br /&gt;
|-&lt;br /&gt;
|width=&amp;quot;20px&amp;quot;|&lt;br /&gt;
|width=&amp;quot;500px&amp;quot; | &amp;lt;math&amp;gt;\Delta L_{Th} = \alpha _{Th} \ L \ \Delta T \!&amp;lt;/math&amp;gt;&lt;br /&gt;
|width=&amp;quot;50px&amp;quot; |(1)&lt;br /&gt;
|}&lt;br /&gt;
&lt;br /&gt;
Over a wider temperature range, non-linearities may occur in various plastics, caused by local movements of small groups of molecules (secondary relaxation) and cooperative movements of entire molecular segments (main relaxation), whereby the expansion coefficients may also change abruptly when phase transition regions are reached.&lt;br /&gt;
&lt;br /&gt;
==Methods for determining the thermal expansion coefficient==&lt;br /&gt;
&lt;br /&gt;
The linear coefficient of expansion can be determined on very small specimens using the dilatometer method or [[Thermomechanical Analysis|thermomechanical analysis]] (TMA) [1], or on [[Multipurpose Test Specimen|multipurpose test specimens]] using [[Thermal Strain Analysis|thermal strain analysis]] [2–4]. It should be noted that the first heating cycle of a TMA or thermal strain analysis is influenced by the specimen’s thermo-mechanical history. During this process, volatile components may escape, or the breakdown of [[Tensile Test Residual Stresses Orientations|orientations and residual stresses]] may be initiated at higher temperatures; in semi-crystalline plastics (see: [[Crystallinity|crystallinity]]), post-crystallisation processes may occur. These processes cause shrinkage (see also: [[Shrinkage Test|shrinkage test]]) and distort the absolute value of the thermal expansion coefficient. In [[Thermosets|thermosetting plastics]], post-curing processes may occur, and in [[Fibre-reinforced Plastics|reinforced]] or [[Particle-filled Thermoplastics|filled]] [[Plastics|plastics]], anisotropy effects resulting from the manufacturing process can cause the expansion coefficient to vary depending on the direction.&lt;br /&gt;
&lt;br /&gt;
==Example of the temperature dependence of the expansion coefficient==&lt;br /&gt;
&lt;br /&gt;
Thermal stresses must be taken into account when designing and dimensioning [[Plastic Component|plastic components]]. This is particularly important in the case of hybrid components made from plastics and other [[Material &amp;amp; Werkstoff|materials]] that have significantly different expansion coefficients. Large-area plastic components, such as panels for façade design, can, depending on their colour, exhibit very severe warping or distortion of their geometry under thermal stress, which is due to the temperature-dependent nature of thermal expansion (&amp;#039;&amp;#039;&amp;#039;Fig. 1&amp;#039;&amp;#039;&amp;#039;). If thermal expansion is restricted due to the installation conditions, the build-up of internal stresses gives rise to so-called thermal stresses, which, if the component is overloaded, can lead to [[Crack|cracks]] or component failure (see: [[Component Failure|component failure]]). Depending on external temperature differences, tensile or compressive stresses (see: [[Tensile Test|tensile test]] and [[Compression Test|compression test]]) may then occur, particularly in force-fit or form-fit connections.&lt;br /&gt;
&lt;br /&gt;
[[File:Thermal_Expansion_Coefficient_Fig1.jpg|400px]]&lt;br /&gt;
{| &lt;br /&gt;
|- valign=&amp;quot;top&amp;quot;&lt;br /&gt;
|width=&amp;quot;50px&amp;quot;|&amp;#039;&amp;#039;&amp;#039;Fig. 1&amp;#039;&amp;#039;&amp;#039;: &lt;br /&gt;
|width=&amp;quot;600px&amp;quot; |Thermal expansion behaviour and expansion coefficient of PMMA (a) and PVC (b) as determined by [[Thermal Strain Analysis|thermal strain analysis]]&lt;br /&gt;
|}&lt;br /&gt;
&lt;br /&gt;
A comprehensive review of the thermal expansion coefficients for numerous plastics is provided in [5].&lt;br /&gt;
&lt;br /&gt;
==Siehe auch==&lt;br /&gt;
&lt;br /&gt;
* [[Thermomechanical Analysis|Thermomechanical analysis]]&lt;br /&gt;
* [[Thermal Stress Analysis|Thermal stress analysis]]&lt;br /&gt;
* [[Thermoelastic Effect|Thermoelastic effect]]&lt;br /&gt;
* [[Glass Transition Temperature|Glass transition temperature]]&lt;br /&gt;
* [[Shrinkage Test|Shrinkage test]]&lt;br /&gt;
* [[Viscoelastic Material Behaviour|Viscoelastic material behaviour]]&lt;br /&gt;
* [[Anisotropy]]&lt;br /&gt;
&lt;br /&gt;
==References==&lt;br /&gt;
&lt;br /&gt;
{|&lt;br /&gt;
|-valign=&amp;quot;top&amp;quot;&lt;br /&gt;
|[1]&lt;br /&gt;
|[[Grellmann,_Wolfgang|Grellmann, W.]], [[Seidler,_Sabine|Seidler, S.]] (Eds.): Kunststoffprüfung. Carl Hanser, Munich (2025) 4th Edition, pp. 307–310 (ISBN 978-3-446-44718-9; E-Book: ISBN 978-3-446-48105-3; see [[AMK-Library]] under A 23) &lt;br /&gt;
|-valign=&amp;quot;top&amp;quot;&lt;br /&gt;
|[2]&lt;br /&gt;
|Sirch, C., [[Bierögel, Christian|Bierögel, C.]], [https://www.researchgate.net/profile/Wolfgang-Grellmann Grellmann, W.]: Wirkung von Eigenspannungen auf die lokale Dehnung von Kunststoffen. In: Langer, B., Rödel, T. (Eds.): Polymerwerkstoffe. Tagungsband PolyMerTec 2014, CD-ROM, Merseburg (2014) 556–561 &lt;br /&gt;
|-valign=&amp;quot;top&amp;quot;&lt;br /&gt;
|[3]&lt;br /&gt;
|Sirch, C., Bierögel, C., [https://de.wikipedia.org/wiki/Wolfgang_Grellmann Grellmann, W.]: Wirkung von Eigenspannungen auf die lokale Dehnung von Kunststoffen. In: Christ, H.-J. (Eds.): Fortschritte in der Werkstoffprüfung für Forschung und Praxis. Proceedings Werkstoffprüfung 2013, Publishing House Stahleisen GmbH, Düsseldorf (2013) 181–186 (ISBN 978-3-514-60806-9; see [[AMK-Library]] under M 26) &lt;br /&gt;
|-valign=&amp;quot;top&amp;quot;&lt;br /&gt;
|[4]&lt;br /&gt;
|Grellmann, W., Bierögel, C., Sirch, C., Oluschinski, A.: Thermische Spannungs- und Dehnungsanalyse an Kunststoffen. In: Pohl, M. (Eds.): Konstruktion, Werkstoffentwicklung und Schadensanalyse. Proceedings Werkstoffprüfung 2010, Publishing House Stahleisen GmbH, Düsseldorf (2010) 365–370 (ISBN 978-3-514-00778-9, see [[AMK-Library]] under M 18) &lt;br /&gt;
|-valign=&amp;quot;top&amp;quot;&lt;br /&gt;
|[5]&lt;br /&gt;
|Archodoulaki, V.-M., Seidler, S.: Thermomechanical properties. In: Grellmann, W., Seidler, S.: Mechanical and Thermomechanical Properties of Polymers. Landolt-Börnstein. Volume VIII/6A3, Springer, Berlin (2014) 34–44, (ISBN 978-3-642-55165-9; see [[AMK-Library]] under A 16) &lt;br /&gt;
|}&lt;br /&gt;
&lt;br /&gt;
[[Category:Thermoanalytical Methods]]&lt;/div&gt;</summary>
		<author><name>Oluschinski</name></author>
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