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首页> 外文期刊>Frontiers in Mechanical Engineering >A Multiscale Theoretical Analysis of the Mechanical, Thermal, and Electrical Characteristics of Rough Contact Interfaces Demonstrating Fractal Behavior
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A Multiscale Theoretical Analysis of the Mechanical, Thermal, and Electrical Characteristics of Rough Contact Interfaces Demonstrating Fractal Behavior

机译:粗糙接触界面的机械,热和电气特性的多尺度理论分析,展示了分形行为

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The highly complex contact interface phenomena require analysis at different length scales ranging from nanometer up to nearly centimeter scales. When two nominally smooth surfaces are brought into contact, solid-solid interaction across their contact interface is confined at multiple protrusions (asperities) of various shapes and sizes. The deformation mechanisms encountered at the asperity level control the surface conformity, which, in turn, influences the transmission of traction, heat, and electric current across the contact interface. Thus, the multiscale roughness of real surfaces necessitates the advance of methodologies and contact models that bridge the spectrum of relevant length scales. Rough surfaces have been traditionally characterized by statistical parameters, which cannot be uniquely determined because they depend on the sampling interval and the resolution of the measuring device. On the contrary, the scale-invariant parameters employed in fractal geometry provide an unbiased representation of the surface topography. This article provides an appraisal of the multiscale mechanical, thermal, and electrical characteristics of rough contact interfaces demonstrating fractal behavior. Theoretical treatments of elastic, elastic-plastic, and fully plastic deformation, heat conduction, temperature rise, and electrical contact resistance are presented for contact interfaces characterized by fractal geometry, providing a fundamental basis for developing multiscale thermo-electro-mechanics analytical treatments for contacting solid bodies.
机译:高度复杂的接触界面现象需要在不同的长度范围内的分析,从纳米到近厘米的尺度。当两个标称光滑的表面被带到接触时,其接触界面的固体固体相互作用被限制在各种形状和尺寸的多个突起(粗糙度)。在粗糙度水平下遇到的变形机制控制表面符合性,又影响牵引界面的牵引力,热和电流的传输。因此,实体表面的多尺度粗糙度需要提前桥接相关长度尺度的频谱的方法和接触模型。粗糙表面传统上以统计参数为特征,这不能唯一地确定,因为它们取决于采样间隔和测量装置的分辨率。相反,在分形几何形状中使用的鳞片不变参数提供了表面形貌的无偏析表示。本文提供了粗略接触界面的多尺度机械,热和电气特性的评估,展示了分形行为。弹性,弹性塑料和完全塑性变形,导热,升温和电接触电阻的理论处理,用于具有分形几何形状的接触界面,为开发多尺度热电机械分析处理进行联系,为开发多尺度热电机械分析处理提供基础坚实的身体。

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