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一种基于余弦曲线形微凸体的钢材磨削表面微接触刚度新模型。

A Novel Micro-Contact Stiffness Model for the Grinding Surfaces of Steel Materials Based on Cosine Curve-Shaped Asperities.

作者信息

An Qi, Suo Shuangfu, Lin Fuyan, Shi Jianwen

机构信息

School of Mechanical Electronic & Information Engineering, China University of Mining & Technology-Beijing, Beijing 10083, China.

Department of Mechanical Engineering, State Key Laboratory of Tribology, Tsinghua University, Beijing 100084, China.

出版信息

Materials (Basel). 2019 Oct 30;12(21):3561. doi: 10.3390/ma12213561.

Abstract

Contact stiffness is an important parameter for describing the contact behavior of rough surfaces. In this study, to more accurately describe the contact stiffness between grinding surfaces of steel materials, a novel microcontact stiffness model is proposed. In this model, the novel cosine curve-shaped asperity and the conventional Gauss distribution are used to develop a simulated rough surface. Based on this simulated rough surface, the analytical expression of the microcontact stiffness model is obtained using contact mechanics theory and statistical theory. Finally, an experimental study of the contact stiffness of rough surfaces was conducted on different steel materials of various levels of roughness. The comparison results reveal that the prediction results of the present model show the same trend as that of the experimental results; the contact stiffness increases with increasing contact pressure. Under the same contact pressure, the present model is closer to the experimental results than the already existing elastic-plastic contact (CEB) and finite-element microcontact stiffness (KE) models, whose hypothesis of a single asperity is hemispherical. In addition, under the same contact pressure, the contact stiffness of the same steel material decreases with increasing roughness, whereas the contact stiffness values of different steel materials under the same roughness show only small differences. The correctness and accuracy of the present model can be demonstrated by analyzing the measured asperity geometry of steel materials and experimental results.

摘要

接触刚度是描述粗糙表面接触行为的一个重要参数。在本研究中,为了更准确地描述钢材磨削表面之间的接触刚度,提出了一种新型的微接触刚度模型。在该模型中,采用新型余弦曲线形状的微凸体和传统高斯分布来生成模拟粗糙表面。基于此模拟粗糙表面,利用接触力学理论和统计理论得到了微接触刚度模型的解析表达式。最后,对不同粗糙度等级的不同钢材进行了粗糙表面接触刚度的实验研究。比较结果表明,本模型的预测结果与实验结果趋势相同;接触刚度随接触压力的增加而增大。在相同接触压力下,本模型比现有的弹塑性接触(CEB)模型和有限元微接触刚度(KE)模型(其单个微凸体假设为半球形)更接近实验结果。此外,在相同接触压力下,同一钢材的接触刚度随粗糙度的增加而降低,而在相同粗糙度下不同钢材的接触刚度值差异较小。通过分析测量得到的钢材微凸体几何形状和实验结果,可以证明本模型的正确性和准确性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9221/6862133/3bf9607b31b6/materials-12-03561-g001.jpg

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