J. Mater. Sci. Technol. ›› 2025, Vol. 225: 261-276.DOI: 10.1016/j.jmst.2024.12.003

• Research Article • Previous Articles     Next Articles

Breaking through the plasticity modeling limit in plane strain and shear loadings of sheet metals by a novel additive-coupled analytical yield criterion

Kai Dua,*, Jianhua Cuia, Yong Houb,*, Yanqiang Rena, Jiaqing Youa, Liang Yingc, Xiaoqiang Lid, Xiaojiao Zuoa, Hongjun Huanga, Xiaoguang Yuane,*   

  1. aSchool of Materials Science and Engineering, Shenyang University of Technology, Shenyang 110870, China;
    bInstitute of Forming Technology and Lightweight Components (IUL), TU Dortmund University, Dortmund 44227, Germany;
    cSchool of Mechanical Engineering, Dalian University of Technology, Dalian 116024, China;
    dSchool of Mechanical Engineering and Automation, Beihang University, Beijing 100191, China;
    eLiaoning Vocational University of Technology, Jinzhou 121007, China
  • Received:2024-11-06 Revised:2024-11-28 Accepted:2024-12-04 Published:2025-08-01 Online:2024-12-13
  • Contact: *E-mail addresses: dukai@sut.edu.cn (K. Du), Yong.Hou@iul.tu-dortmund.de (Y. Hou), yuanxg@sut.edu.cn (X. Yuan).

Abstract: The automotive industry increasingly relies on numerical simulations to predict the geometry and forming processes of complex curved parts. Accurate yield stress functions that cover a wide range of stress states, such as uniaxial tension, equi-biaxial tension, near-plane strain tension, and simple shear, are essential for implementing virtual manufacturing technologies. In this work, a new additive-coupled analytical yield stress function, CPN2025, is proposed to accurately describe plastic anisotropy under various loading conditions. CPN2025 integrates the Poly4 anisotropic yield criterion with the Hosford isotropic yield criterion under a non-associated flow rule. A non-fixed-exponent calibration strategy is introduced, overcoming the limitations of existing yield criteria that typically offer curvature adjustment with only positive or negative correlations. CPN2025 is compared with other non-associated yield functions, including SY2009, CQN2017, and NAFR-Poly4, to evaluate its performance in predicting the plastic anisotropy of DP490, QP1180, AA5754-O, and AA6016-T4. Results show that, while meeting convexity requirements, the additive-coupled approach not only provides greater flexibility than the multiplicative-coupled but also simplifies the acquisition of partial derivative information. CPN2025 delivers the highest accuracy in characterizing anisotropic yield behavior, particularly for near-plane strain tension and simple shear loadings. Additionally, incorporating more uniaxial tensile yield stress-calibrated material parameters significantly improves the prediction capacity of in-plane anisotropic behavior. The use of anisotropic hardening concepts enhances the model's capability to capture the subsequent yield behavior across the entire plastic strain range.

Key words: Plastic anisotropy, Yield criterion, Non-associated flow rule Subsequent yield behavior, Sheet metals