Abstract
The damping performance of metal rubber is highly correlated with the tribological properties of the internal metal wires. In this paper, the friction and wear characteristics of 316L stainless-steel wire are investigated under different temperatures, loads, crossing angles, and working strokes. Results show that the friction coefficient increases from 0.415 to 0.635 and the wear depth increases from 34 μm to 51 μm, with the temperature rising from 20 °C to 400 °C. High temperature will soften metal materials and promote the oxidation of metal. Softened materials can be easily sheared and removed under friction action, resulting in high wear depth. However, when a continuous oxide film with high hardness is formed under higher temperature, the oxide film can work as a wear-resisting layer to prevent further wear of the wire to a certain degree. At the same temperature, the loads, crossing angles, and working strokes change the wear resistance by affecting the surface stress, debris removal efficiency, etc., and high temperature will aggravate this change. The results pave the way for the design and selection of materials for high-temperature metal rubber components.
Funder
National Natural Science Foundation of China
Science and Technology Innovation Special Fund, Foshan
Subject
General Materials Science
Reference32 articles.
1. Zheng, X., Ren, Z., Shen, L., Zhang, B., and Bai, H. (2021). Dynamic Performance of Laminated High-Damping and High-Stiffness Composite Structure Composed of Metal Rubber and Silicone Rubber. Materials, 14.
2. Zheng, X., Wang, W., Wu, Y., and Bai, H. (2022). Study of the Dynamic Model and Vibration Performance of Pot-Shaped Metal Rubber. Materials, 15.
3. Finite element simulation of fretting wear and fatigue in thin steel wires;Cruzado;Int. J. Fatigue,2013
4. Study of surface appearance and composition effect on AISI 304 and 304L stainless steel wear against nylon wire;Chattrakul;Mater. Today: Proc.,2018
5. Corrosion fatigue behaviors of steel wires used in coalmine;Wang;Mater. Des.,2014
Cited by
5 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献