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EFFECTIVE THERMOPHYSICAL PROPERTIES OF THERMAL INTERFACE MATERIALS: PART II - EXPERIMENTS AND DATA

机译:热界面材料的有效热物理特性:第二部分 - 实验和数据

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A new method for determining effective thermal conductivity and Young's modulus in thermal interface materials is demonstrated. The method denoted as the Bulk Resistance Method (BRM) uses empircal thermal resistance data and analytical modeling to accurately predict thermophysical properties that account for in-situ changes in material thickness due to external loading and thermal expansion. The BRM is demonstrated using commercially available sheets of Grafoil GTA. Tests were performed on thermal joints consisting of two Al 2024 machined surfaces with layers of Grafoil GTA in the interface. Test conditions included a vacuum environment, 0.2 -6.5 MPa contact pressure, a nominal 50°C mean interface temperature and a continuous loading and unloading cycle. Test results indicated that the BRM consistently predicted thermal conductivity independent of the number of layers tested and that the predicted results were significantly lower than values reported using conventional ASTM test procedures.
机译:证明了一种确定热界面材料中有效导热性和杨氏模量的新方法。表示为散装电阻法(BRM)的方法使用Empircal热阻数据和分析建模,以准确地预测由于外部装载和热膨胀导致的原位原位变化的热物理性质。使用商业上可获得的Grafoil GTA来证明BRM。在由两个Al 2024机加工表面组成的热关节上进行测试,该表面在界面中具有Grafoil GTA层。测试条件包括真空环境,0.2-6.5MPa接触压力,标称50°C平均界面温度和连续装载和卸载循环。测试结果表明,BRM始终预测导热率与所测试的层数无关,并且预测结果显着低于使用传统ASTM测试程序所报告的值。

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