Study on Adhesive Friction Process Considering Electrostatic Interaction

IF 2.9 3区 工程技术 Q2 ENGINEERING, CHEMICAL
Hongsheng Lu, Pengzhe Zhu, Rao Li, Jiacheng Rong, Ying Yin
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引用次数: 0

Abstract

Adhesive friction considering electrostatic interaction is an important problem in practical engineering. However, the friction mechanism considering electrostatic interaction and adhesion of elastoplastic materials on the contact interfaces remains poorly understood. A sliding friction model considering the van der Waals attraction, repulsive and electrostatic interactions is established in this work. The effect of charge density on the normal force, friction force, contact area and stress distribution is thoroughly investigated. And the repeated sliding friction process is also quantitatively analyzed. It is shown that adhesion enhances with the increase of surface charge density. Moreover, the contribution of electrostatic interaction to adhesion in the contact process is always greater than that to friction in the sliding friction process under the conditions studied. In the initial stage of friction, the friction will gradually increase and the normal force will gradually decrease. It is also found that a higher charge density results in a lower normal force in the friction process. Furthermore, the increase of charge density leads to a bigger contact diameter and the increased asymmetry of stress field, resulting in the increase of friction force, equivalent plastic strain and friction coefficient. In addition, both normal force and friction force arrive at a steady state after several repeated friction circles for elastoplastic materials, which is due to the fact that the contact diameter tends to be constant because of the accumulation of plastic deformation. This work reveals the contribution of electrostatic interaction to friction during adhesive sliding process and provides some insights into the adhesive friction problem considering electrostatic interaction.

考虑静电相互作用的粘合剂摩擦过程研究
考虑静电相互作用的粘着摩擦是实际工程中的一个重要问题。然而,考虑静电相互作用和弹塑性材料在接触界面上的粘附作用的摩擦机制仍然知之甚少。建立了考虑范德华引力、斥力和静电相互作用的滑动摩擦模型。研究了电荷密度对法向力、摩擦力、接触面积和应力分布的影响。并对重复滑动摩擦过程进行了定量分析。结果表明,随着表面电荷密度的增加,附着力增强。此外,在所研究的条件下,静电相互作用对接触过程中粘附的贡献始终大于滑动摩擦过程中摩擦的贡献。在摩擦初始阶段,摩擦力会逐渐增大,法向力会逐渐减小。研究还发现,电荷密度越高,摩擦过程中的法向力越小。电荷密度增大,接触直径增大,应力场不对称性增大,摩擦力增大,等效塑性应变增大,摩擦系数增大。此外,对于弹塑性材料,法向力和摩擦力经过多次重复摩擦循环后都达到稳态,这是由于接触直径由于塑性变形的积累而趋于恒定。这项工作揭示了静电相互作用对胶粘剂滑动过程中摩擦的贡献,并为考虑静电相互作用的胶粘剂摩擦问题提供了一些见解。
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来源期刊
Tribology Letters
Tribology Letters 工程技术-工程:化工
CiteScore
5.30
自引率
9.40%
发文量
116
审稿时长
2.5 months
期刊介绍: Tribology Letters is devoted to the development of the science of tribology and its applications, particularly focusing on publishing high-quality papers at the forefront of tribological science and that address the fundamentals of friction, lubrication, wear, or adhesion. The journal facilitates communication and exchange of seminal ideas among thousands of practitioners who are engaged worldwide in the pursuit of tribology-based science and technology.
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