4.7 Article

A new asymmetric yield criterion based on Yld 2000-2d under both associated and non-associated flow rules: Modeling and validation

Journal

MECHANICS OF MATERIALS
Volume 167, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.mechmat.2022.104245

Keywords

Yield criterion; Yld 2000-2d; Convexity; Strength differential effect; Non-associated flow rule

Funding

  1. BK21 program at KAIST, Republic of Korea
  2. Future Defense Innovation Technology Development Program - National Research Foundation of Korea [2019M3F6A111008112]
  3. Technology Innovation Program - Ministry of Trade, Industry & Energy (MOTIE, Republic of Korea) [20004365]
  4. Korea Evaluation Institute of Industrial Technology (KEIT) [20004365] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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A new asymmetric yield criterion is developed, which guarantees the convexity and can predict the strength differential effect of materials.
A new asymmetric yield criterion is developed by introducing asymmetrical parameters into Yld 2000-2d. It has been proved that the convexity of the proposed yield criterion is guaranteed. A 'sum' form of yield functions is used to increase the flexibility of the yield criterion. One of the advantages of the developed yield criterion is that the convexity of yield criterion is independent of the anisotropic parameters. Besides, the proposed yield criterion not only possesses the inherent characteristics of Yld 2000-2d under tensile stress states but also can be used to predict material's strength differential (SD) effect. By applying the constructed yield criterion to FCC and HCP materials, the accuracy and flexibility of the proposed yield criterion are verified. The results show that both the 11 and 16 parameters yield criteria for non-associated and associated flows, respectively, can accurately capture the SD effects of these materials. In addition, the proposed yield criterion not only can predict the tension-compression asymmetry along the rolling and transverse directions but also can accurately predict the SD effect along the diagonal direction.

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