An Analytical Adhesion Model for Elastic Contact Electrification

Author:

Xu Yang12,Mulvihill Daniel M.33,Wu Yue45,Li Xiaobao6

Affiliation:

1. Hefei University of Technology School of Mechanical Engineering, , Hefei 230009 , China ;

2. Hefei 230009 Anhui Province Key Laboratory of Digital Design and Manufacturing , China

3. University of Glasgow Materials and Manufacturing Research Group, James Watt School of Engineering, , Glasgow G12 8QQ , UK

4. Shanghai Advanced Research Institute Shanghai Advanced Research Institute, , Shanghai 201210 , China

5. Chinese Academy of Sciences Shanghai Advanced Research Institute, , Shanghai 201210 , China

6. Hefei University of Technology School of Civil Engineering, , Hefei 230009 , China

Abstract

Abstract Contact electrification is a universal phenomenon that commonly occurs in almost every solid–solid contact pair. The tribo-charges deposited on two surfaces by contact electrification can significantly affect adhesion; however, contact electrification is often overlooked in the study of adhesive contact. Here, we develop an analytical model to investigate electroadhesion during the contact phase between two initially uncharged dielectric surfaces, namely, an elastic parabolic surface and a rigid flat. A system of nonlinear equations is derived to describe the relationship between the indentation, normal load, radius of contact area, and radius of the charged zone using the Barthel–Maugis–Dugdale model (Barthel, 1999, “Modelling the Adhesion of Spheres: When the Form of the Interaction Is Complex, Colloids. Surf., A., 149, pp. 99105.). The analytical results show good agreement with the numerical results of the full self-consistent contact model. When contact electrification leads to a higher tribo-charge density and a larger charged zone, it has a greater impact on the normal traction, interfacial gap, force-approach curves, jump-out, and dissipated energy. The analytical model developed in this study serves as the foundation for advances in rough surface electroadhesive contact and electroadhesion testing, and it sheds light on the usage of adhesive joints in ultra-high vacuum environments and outer space, where contact electrification has a significant impact.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Anhui Province

Publisher

ASME International

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