Strashnov Stanislav, Alexandrov Sergei, Lang Lihui
General Education Courses Department, Peoples' Friendship University of Russia (RUDN University), 6 Miklukho-Maklaya St, 117198 Moscow, Russia.
School of Mechanical Engineering and Automation, Beihang University, No. 37 Xueyuan Road, Beijing 100191, China.
Materials (Basel). 2022 Aug 26;15(17):5888. doi: 10.3390/ma15175888.
The present study consists of two parts. The first part supplies an exact semi-analytical solution for a general model of rigid plastic strain hardening material at large strains. The second part applies this solution to tube hydroforming design. The solution provides stress and velocity fields in a hollow cylinder subject to simultaneous expansion and elongation/contraction. No restriction is imposed on the hardening law. A numerical method is only required to evaluate ordinary integrals. The solution is facilitated using Lagrangian coordinates. The second part of the paper is regarded as an alternative to the finite element design of tube hydroforming processes, restricted to rather simple final shapes. An advantage of this approach is that the hardening law is not required for calculating many process parameters. Therefore, the corresponding design is universally valid for all strain hardening materials if these parameters are of concern. In particular, the prediction of fracture initiation at the outer surface is independent of the hardening law for widely used ductile fracture criteria. The inner pressure is the only essential process parameter whose value is controlled by the hardening law.
本研究由两部分组成。第一部分为大应变下刚塑性应变硬化材料的一般模型提供了精确的半解析解。第二部分将该解应用于管材液压成形设计。该解给出了空心圆柱体在同时发生膨胀和伸长/收缩时的应力场和速度场。对硬化规律没有限制。仅需要一种数值方法来计算普通积分。使用拉格朗日坐标便于求解。本文的第二部分被视为管材液压成形工艺有限元设计的一种替代方法,限于相当简单的最终形状。这种方法的一个优点是,计算许多工艺参数时不需要硬化规律。因此,如果关注这些参数,相应的设计对所有应变硬化材料普遍有效。特别是,对于广泛使用的韧性断裂准则,外表面断裂起始的预测与硬化规律无关。内压是唯一受硬化规律控制其值的基本工艺参数。