Finite Pure Plane Strain Bending of Inhomogeneous Anisotropic Sheets

Author:

Alexandrov SergeiORCID,Lyamina Elena,Hwang Yeong-Maw

Abstract

The present paper concerns the general solution for finite plane strain pure bending of incompressible, orthotropic sheets. In contrast to available solutions, the new solution is valid for inhomogeneous distributions of plastic properties. The solution is semi-analytic. A numerical treatment is only necessary for solving transcendent equations and evaluating ordinary integrals. The solution’s starting point is a transformation between Eulerian and Lagrangian coordinates that is valid for a wide class of constitutive equations. The symmetric distribution relative to the center line of the sheet is separately treated where it is advantageous. It is shown that this type of symmetry simplifies the solution. Hill’s quadratic yield criterion is adopted. Both elastic/plastic and rigid/plastic solutions are derived. Elastic unloading is also considered, and it is shown that reverse plastic yielding occurs at a relatively large inside radius. An illustrative example uses real experimental data. The distribution of plastic properties is symmetric in this example. It is shown that the difference between the elastic/plastic and rigid/plastic solutions is negligible, except at the very beginning of the process. However, the rigid/plastic solution is much simpler and, therefore, can be recommended for practical use at large strains, including calculating the residual stresses.

Funder

Russian Foundation for Basic Research

Ministry of Science and Technology, Taiwan

Ministry of Science and Higher Education of the Russian Federation

Publisher

MDPI AG

Subject

Physics and Astronomy (miscellaneous),General Mathematics,Chemistry (miscellaneous),Computer Science (miscellaneous)

Cited by 5 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Ideal Flow Design of the Bending of Bi-Material Sheets;2023 18th International Microsystems, Packaging, Assembly and Circuits Technology Conference (IMPACT);2023-10-25

2. Ideal Flow Design of Plane-Strain Bending Driven by Springback;Processes;2022-08-13

3. Analysis of Strain-Hardening Viscoplastic Wide Sheets Subject to Bending under Tension;Metals;2022-01-07

4. An Efficient Method for Describing Plane Strain Bending of Viscoplastic Sheets at Large Strains;Advanced Materials Modelling for Mechanical, Medical and Biological Applications;2021-11-15

5. Plastic Bending at Large Strain: A Review;Processes;2021-02-24

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