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Article

Elastoplastic Mechanical Properties and Kinematic Hardening Model of 35CrNi3MoVR

Key Laboratory of Safety Science of Pressurized System, Ministry of Education, East China University of Science and Technology, 130 Meilong Road, Shanghai 200237, China
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Author to whom correspondence should be addressed.
Materials 2024, 17(13), 3223; https://doi.org/10.3390/ma17133223
Submission received: 31 May 2024 / Revised: 22 June 2024 / Accepted: 25 June 2024 / Published: 1 July 2024
(This article belongs to the Section Metals and Alloys)

Abstract

The existing tensile–compression elastoplastic models are not suitable for varies of materials. An accurate constitutive model of the elastoplastic mechanical properties more suitable for 35CrNi3MoVR was produced by optimizing the existing fitting equations based on uniaxial tensile–compression tests, which are able to describe the elastoplastic stress–strain relation and Bauschinger effect varying with the maximum tensile plastic strain. A UMAT subroutine of the constitutive model in ABAQUS was proposed and conducted for FEM calculation. Hydraulic autofrettage tests were carried out under different pressures on thick-walled 35CrNi3MoVR tubes, and the results were compared with those of FEM calculations to further validate the accuracy of the fitting model. The results show that the constructed power function kinematic hardening model can effectively describe the elastoplastic mechanical properties of 35CrNi3MoVR and can be applied to the autofrettage calculation of this material. The comparison among the calculation results of different models proved that the model proposed in this research has better performance compared to other existing models. Taking the Mises stress at the inner surface of the thick-walled tubes as the evaluation criterion, the error of the power function kinematic hardening model reaches less than 3%, decreasing the error by at least 50%.
Keywords: elastoplasticity; constitutive model; Bauschinger effect; autofrettage; residual stress; kinematic hardening model; ultra-high pressure elastoplasticity; constitutive model; Bauschinger effect; autofrettage; residual stress; kinematic hardening model; ultra-high pressure

Share and Cite

MDPI and ACS Style

Zhang, Z.; Wang, X.; Chen, Q. Elastoplastic Mechanical Properties and Kinematic Hardening Model of 35CrNi3MoVR. Materials 2024, 17, 3223. https://doi.org/10.3390/ma17133223

AMA Style

Zhang Z, Wang X, Chen Q. Elastoplastic Mechanical Properties and Kinematic Hardening Model of 35CrNi3MoVR. Materials. 2024; 17(13):3223. https://doi.org/10.3390/ma17133223

Chicago/Turabian Style

Zhang, Zhao, Xuesheng Wang, and Qinzhu Chen. 2024. "Elastoplastic Mechanical Properties and Kinematic Hardening Model of 35CrNi3MoVR" Materials 17, no. 13: 3223. https://doi.org/10.3390/ma17133223

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