You-Hua Li , Liao-Liang Ke , Gang-Gang Chang , Mehmet Ali Güler , Fei Shen
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引用次数: 0
Abstract
Electrical contact resistance (ECR) serves as a critical performance parameter for assessing the reliability and durability of electrical contact systems. Accurate ECR prediction remains challenging due to three predominant factors: the interface complexity introduced by surface roughness, the presence of multi-physics coupling phenomena, and the nonlinear nature of elastoplastic deformation characteristics. Although classical analytical models, such as Holm’s theory, Timsit’s formulation, and Greenwood’s approach, have provided fundamental insights, their practical utility is often constrained by oversimplified assumptions and inherent limitations in addressing real-world operational complexities. This paper presents an efficient numerical method for predicting the ECR of rough surface electrical contacts by incorporating the influences of both multi-physics coupling and elastoplastic material deformation. For Gaussian rough surfaces, the proposed numerical approach systematically quantifies ECR across a wide range of fractal parameters and loading conditions. A comparative analysis of this method against existing ECR models reveals that the Greenwood-based predictions exhibit significant deviations under a high-load condition. Based on the predictive data, this study establishes a novel and accurate model that quantifies load-dependent ECR of Gaussian surfaces. To verify the developed ECR model, electrical contact experiments were conducted. This new model enables rapid and reliable ECR estimation, providing a valuable tool for the design and optimization of electrical connectors.
期刊介绍:
The International Journal of Solids and Structures has as its objective the publication and dissemination of original research in Mechanics of Solids and Structures as a field of Applied Science and Engineering. It fosters thus the exchange of ideas among workers in different parts of the world and also among workers who emphasize different aspects of the foundations and applications of the field.
Standing as it does at the cross-roads of Materials Science, Life Sciences, Mathematics, Physics and Engineering Design, the Mechanics of Solids and Structures is experiencing considerable growth as a result of recent technological advances. The Journal, by providing an international medium of communication, is encouraging this growth and is encompassing all aspects of the field from the more classical problems of structural analysis to mechanics of solids continually interacting with other media and including fracture, flow, wave propagation, heat transfer, thermal effects in solids, optimum design methods, model analysis, structural topology and numerical techniques. Interest extends to both inorganic and organic solids and structures.