基于分形理论的粗糙表面弹塑性接触力学模型

IF 4.5 2区 工程技术 Q1 Engineering
Yuan Yuan, Li Gan, Kai Liu, Xiaohui Yang
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引用次数: 25

摘要

由于MB分形模型的结果与经典接触力学相矛盾,基于分形理论建立了一个修正的单凸体弹塑性接触模型。单个凹凸的临界面积与尺度有关,随着接触载荷和接触面积的增加,从弹性、弹塑性到全塑性变形依次发生转变。在考虑尺寸分布函数的情况下,得到了总接触载荷与接触表面实际接触面积之间的解析表达式。弹性、弹塑性和全塑性接触载荷分别由最大凸体的临界弹性接触面积和单个凸体的最大接触面积得到。结果表明,粗糙表面首先发生弹性变形。随着载荷的增加,发生弹塑性或全塑性变形。对于恒定的特征长度尺度G,载荷-面积关系的斜率与分形维数D成正比。对于恒定的分形维数D,载荷-区域关系的斜率则与G成反比。对于常数D和G,载荷面积关系的斜度与材料的性质成反比,即在相同的载荷下,粗糙表面的材料更软,并且总接触面积更大。接触力学模型为研究粗糙表面的摩擦、磨损和密封性能提供了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Elastoplastic contact mechanics model of rough surface based on fractal theory
Because the result of the MB fractal model contradicts with the classical contact mechanics, a revised elastoplastic contact model of a single asperity is developed based on fractal theory. The critical areas of a single asperity are scale dependent, with an increase in the contact load and contact area, a transition from elastic, elastoplastic to full plastic deformation takes place in this order. In considering the size distribution function, analytic expression between the total contact load and the real contact area on the contact surface is obtained. The elastic, elastoplastic and full plastic contact load are obtained by the critical elastic contact area of the biggest asperity and maximun contact area of a single asperity. The results show that a rough surface is firstly in elastic deformation. As the load increases, elastoplastic or full plastic deformation takes place. For constant characteristic length scale G, the slope of load-area relation is proportional to fractal dimension D. For constant fractal dimension D, the slope of load-area relation is inversely proportional to G. For constant D and G, the slope of load-area relation is inversely proportional to property of the material ϕ, namely with the same load, the material of rough surface is softer, and the total contact area is larger. The contact mechanics model provides a foundation for study of the friction, wear and seal performance of rough surfaces.
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来源期刊
CiteScore
5.60
自引率
4.80%
发文量
3097
审稿时长
8 months
期刊介绍: Chinese Journal of Mechanical Engineering (CJME) was launched in 1988. It is a peer-reviewed journal under the govern of China Association for Science and Technology (CAST) and sponsored by Chinese Mechanical Engineering Society (CMES). The publishing scopes of CJME follow with: Mechanism and Robotics, including but not limited to -- Innovative Mechanism Design -- Mechanical Transmission -- Robot Structure Design and Control -- Applications for Robotics (e.g., Industrial Robot, Medical Robot, Service Robot…) -- Tri-Co Robotics Intelligent Manufacturing Technology, including but not limited to -- Innovative Industrial Design -- Intelligent Machining Process -- Artificial Intelligence -- Micro- and Nano-manufacturing -- Material Increasing Manufacturing -- Intelligent Monitoring Technology -- Machine Fault Diagnostics and Prognostics Advanced Transportation Equipment, including but not limited to -- New Energy Vehicle Technology -- Unmanned Vehicle -- Advanced Rail Transportation -- Intelligent Transport System Ocean Engineering Equipment, including but not limited to --Equipment for Deep-sea Exploration -- Autonomous Underwater Vehicle Smart Material, including but not limited to --Special Metal Functional Materials --Advanced Composite Materials --Material Forming Technology.
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