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THERMO-MECHANICAL COUPLING FINITE ELEMENT ANALYSIS OF SHEET METAL EXTRUSION PROCESS

机译:板料挤压过程的热力耦合有限元分析

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摘要

In sheet metal forming process, the forming limit and strain distribution are governed by plastic instability and fracture following strain localization. It has been proved that the temperature gradient caused by plastic deformation as well as friction is one of the crucial factors to induce the strain localization in high-speed metal forming processes. In this paper, a numerical simulation of the sheet metal extrusion process has been conducted by using thermal-mechanical coupling finite element method. An improved mixed finite element method has been used to solve the large deformation elasto-plastic problem. In thermal phase, the transient heat transfer finite element method together with the Crank-Nicholson algorithm has been employed to determine the temperature field. Both the numerical results and the experimental observations reveal that the temperature gradient plays an important role in inducing the strain localization, which eventually leads to fracture failure in the sheet metal extrusion process.
机译:在钣金成形过程中,成形极限和应变分布受塑性不稳定性和应变局部化后断裂的支配。事实证明,塑性变形以及摩擦引起的温度梯度是引起高速金属成形过程中应变局部化的关键因素之一。本文利用热力耦合有限元方法对板料挤压过程进行了数值模拟。一种改进的混合有限元方法已被用来解决大变形弹塑性问题。在热阶段,瞬态传热有限元方法与Crank-Nicholson算法一起用于确定温度场。数值结果和实验观察均表明,温度梯度在引起应变局部化方面起着重要作用,最终导致板材挤压过程中的断裂破坏。

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