Analysis of the tribological behavior of the high-speed and heavy-load braking interface with dynamic wear of brake pads

Author:

Jie Hao12ORCID,Xiaowei Yin12ORCID,Shuang Zhu12ORCID,Jungang Ren12ORCID,Xiaokun Liu12ORCID

Affiliation:

1. Shenyang Institute of Engineering, Mechanics Institute, Shenyang, China

2. Energy and Power Equipment Reliability and Health Management Key Laboratory of Liaoning Province, Shenyang, China

Abstract

Using a megawatt wind turbine disc brake as a case study, this work analyzes the effects and action mechanism of dynamic wear on the braking interface of the braking pad on tribological behaviors as contact state, temperature field, and pressure distribution. The Archard wear model was incorporated into the solution of the tribological problem of the braking interface in ABAQUS using the arbitrary Lagrangian–Eulerian (ALE) technique through the UMESHMOTION subroutine. The wear interface meshes were changed without modifying other finite element analysis variables. Moreover, wear testing on the inertia braking tester validated the coupled heat-stress-wear model of the brake pad. The differences in the tribological behaviors of the braking interface with and without the dynamic wear of the braking pad were analyzed based on the simulation results of friction and wear in a braking cycle. The study revealed that the tribological behaviors of the braking interface were significantly affected by the dynamic wear of the braking pad. Specifically, the wear evolution changed the contact state, the area of stress concentration, and the temperature field distribution during the braking process. Hence, the wear properties of the brake pad were modified as a result of these tribological behaviors.

Funder

Education Department of Liaoning Province, China

Publisher

SAGE Publications

Subject

Surfaces, Coatings and Films,Surfaces and Interfaces,Mechanical Engineering

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