Investigation of the Flow Stress Model for Cr4Mo4V Bearing Steel under Ultrasonic Vibration Conditions

Author:

Luan Zhenmeng1,Zhao Man12ORCID,Mao Jian123,Liu Gang1234,Zhang Liqiang12,Feng Yixuan5ORCID,Liang Steven Y.5ORCID

Affiliation:

1. School of Mechanical and Automotive Engineering, Shanghai University of Engineering Science, Shanghai 201620, China

2. Key Laboratory of Intelligent Manufacturing Technology for Large Complex Thin-Walled Parts of Aviation for Machinery Industry, Shanghai 201620, China

3. Sichuan Research Institute, Shanghai Jiao Tong University, Chengdu 610213, China

4. Chengdu Zhiyuan Advanced Manufacturing Technology Research Institute, Chengdu 610000, China

5. School of Mechanical Engineering, Georgia Institute of Technology, North Ave NW, Atlanta, GA 30332, USA

Abstract

To investigate the mechanisms behind the effect of ultrasonic vibration on the plastic deformation of materials, the flow stress model of Cr4Mo4V was established according to the dislocation dynamics and thermal activation theory, which considers the effect of dislocation density evolution on plastic deformation under ultrasonic vibration conditions. The effect of amplitude and strain rate on the flow stress was analyzed by fitting the stress-strain data obtained from an ultrasonic vibration-assisted tensile (UVAT) single-factor test. To investigate the influence of strain rate and vibration duration on the acoustic effect, comparative tests with and without vibration were performed for various strain rates. The results showed that the flow stress decreased significantly in the tensile test with ultrasound compared to the test without ultrasound, and the degree of reduction increased with increasing amplitude. In addition, the nonlinear relationship between the acoustic softening effect and the strain rate was analyzed. The result demonstrates that the dislocation density absorbs the ultrasonic vibration energy, which results in slip and proliferation. Macroscopically, due to a greater susceptibility to plastic deformation, the dislocation density shows residual hardening at the end of the ultrasound. Finally, the average absolute relative error (AARE) between predicted flow stresses and experimental results under three ultrasonic conditions using the developed model were 4.49%, 1.27%, and 5.64%, which proved the validity of the model.

Funder

National Natural Science Foundation of China Youth Program

Shanghai Pujiang Program

Young Scientific Research Team Cultivation Program of SUES

Publisher

MDPI AG

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