基于元胞自动机的滑动接触磨损量预测

K. Mashimo, H. Nishikubo, Y. Ishimaru, Y. Okuno, S. Kawata
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引用次数: 2

摘要

在以往的研究中,通过对镀锡连接器端子进行微动分析和实验,揭示了旋转运动对微动现象建模的重要性及其优势。在振动驱动的典型微动中,旋转运动占主导地位。此外,由于微动轨迹的不对称性,线性滑动难以分析。本文提出了旋转滑动比较磨损量的预测。使用聚焦离子束(FIB)铣削和成像来估计磨损量。虽然实际的微动轨迹不是完全对称的,但可以在轴对称的基础上建立模型来解释平均磨损量。应用了一种预测旋转工况下比较磨损量的算法。它使用沿微动轨迹半径的剪应力分布。元胞自动机是这种分析方法的主要过程。单元的属性是剪切应力、磨损体积和材料强度。应力和体积(高度)在每次增量时更新。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Prediction of wear volume on sliding contacts using cellular automata
In previous research, by conducting fretting analyses and experiments on tin-plated connector terminals, the importance of rotational motion and its advantages in modeling the fretting phenomena were revealed. Rotational motion is dominant in the typical fretting driven by vibration. Additionally, linear sliding is difficult to analyze because of the asymmetry of the fretting trace. This paper presents the predictions of comparative abrasion quantities for rotational sliding. The wear volume was estimated using focused ion beam (FIB) milling and imaging. Though the actual fretting trace is not perfectly symmetric, the model can be constructed on the basis of axial symmetry for explaining average wear volume. An algorithm for the predicting comparative abrasion quantities in the rotational case was applied. It uses shear stress distribution along with the radius of the fretting traces. Cellular automaton is the main process of this analytical approach. The attributes of a cell are shear stress, wear volume, and material strength. The stress and volume (height) are updated at each increment.
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