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首页> 外文期刊>International Journal of Thermal Sciences >Hyperbolic heat conduction at a microscopic sliding contact with account of adhesion-deformational heat generation and wear
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Hyperbolic heat conduction at a microscopic sliding contact with account of adhesion-deformational heat generation and wear

机译:微曲线在微观滑动接触处与粘合 - 变形发热和磨损的叙述

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Different non-Fourier models were proposed to simulate temperatures in materials subjected to extremely fast thermal disturbances, when the speed of heat propagation should be concerned. The present study investigated temperature and heat balance at a microscopic sliding contact during a single frictional interaction based on the Cattaneo-Vernotte hyperbolic heat conduction equation. Two fundamental features of friction, namely, adhesion-deformational heat generation and wear, were taken into account. By applying the Laplace transform approach, non-stationary temperature expressions were derived for the hyperbolic and classical parabolic heat conduction equations. Parametric analysis was then done for parameter ranges typical of brake materials. It was found that the hyperbolic heat conduction generally results in a higher temperature at the sliding surface compared to the parabolic heat conduction. The influence of the heat propagation speed can be significant for thermal relaxation time of the order above microsecond. It becomes stronger with an increase in the contribution of the adhesive heat generation. Another finding obtained is that a considerable fraction of heat is removed from the contact zone along with wear debris, resulting in a lower temperature. This fraction is larger for the hyperbolic heat conduction.
机译:提出了不同的非傅立叶型号,以模拟材料的材料温度,当加热传播速度应该涉及时。本研究在基于Cattaneo-vernotte双曲线导热方程的单一摩擦相互作用期间研究了在微观滑动触点处的温度和热平衡。考虑了两个摩擦的基本特征,即粘附 - 变形发热和磨损。通过施加拉普拉斯变换方法,推导出用于双曲线和经典抛物线导热方程的非静止温度表达。然后对制动材料典型的参数范围进行参数分析。结果发现,与抛物线的热传导相比,双曲线热传导通常导致滑动表面的较高温度。热传播速度的影响对于高于微秒的散热时间可能是显着的。随着粘合剂发热的贡献而变得更强。得到的另一个发现是从接触区和磨损碎片中从接触区移除相当大的热量,导致温度较低。对于双曲线导热,该级分较大。

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