首页> 外文期刊>The Journal of Strain Analysis for Engineering Design >Improved prediction of strain distribution during mechanical and hydro-mechanical deep drawing processes using microstructure-based dynamic strain hardening and anisotropy
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Improved prediction of strain distribution during mechanical and hydro-mechanical deep drawing processes using microstructure-based dynamic strain hardening and anisotropy

机译:使用基于微观结构的动态应变硬化和各向异性,改进了机械和液压机械深冲过程中应变分布的预测

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摘要

Interstitial free (IF) and drawing quality (DQ) steel sheets were subjected to conventional mechanical deep drawing and hydro-mechanical deep drawing operations. Detailed macroscopic strain measurements were made at different cup depths. These were simulated using PAM-STAMP, a commercial finite element-based software. For continuum-based finite element simulations, the required key material properties are strain hardening exponent (n) and anisotropy index (r-bar). These were kept either constant or dynamically varied during the simulation. The constant properties were taken from conventional tensile tests of the original material, while the dynamic variation in properties was extrapolated from developments in the crystallographic texture and in-grain misorientation. Considering dynamic properties during simulation provided a superior prediction of macroscopic strains. This study clearly demonstrates the need for considering evolution of critical continuum properties, such as work hardening and anisotropy index, through appropriate micro-structural inputs for more realistic macroscopic predictions.
机译:无间隙(IF)和拉深质量(DQ)的钢板经过常规的机械深冲和液压机械深冲操作。在不同杯深度下进行了详细的宏观应变测量。这些是使用PAM-STAMP(基于有限元素的商业软件)进行仿真的。对于基于连续体的有限元模拟,所需的关键材料属性是应变硬化指数(n)和各向异性指数(r-bar)。在仿真过程中,这些参数保持恒定或动态变化。恒定的性能来自原始材料的常规拉伸测试,而性能的动态变化是从晶体学织构和晶粒取向不良的发展推断出来的。在仿真过程中考虑动态特性可提供宏观应变的出色预测。这项研究清楚地表明,需要通过适当的微观结构输入来考虑关键连续体特性(例如加工硬化和各向异性指数)的演变,以实现更现实的宏观预测。

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