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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Surface and interior residual stress analysis of a deep-drawn 1180-MPa class ultra-high strength steel sheet with scratch marks
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Surface and interior residual stress analysis of a deep-drawn 1180-MPa class ultra-high strength steel sheet with scratch marks

机译:1180 MPa级超高强度钢板表面和内部残余应力分析

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摘要

This study examined the residual stresses on the surface and in the interior of a deep-drawn cup made from a 1180-MPa class ultra-high strength steel sheet. A high residual stress causes a delayed material fracture, and an accurate evaluation of residual stress reduces failure risks. Nevertheless, the residual stress in the vicinity of the scratch marks, induced by galling in the stamping process, remains unclear. This study accordingly presented X-ray diffraction measurements of the considerable residual compressive stress associated with the scratch marks. Measurements obtained using the hole drilling method revealed a previously unknown high residual tensile stress (exceeding 1000 MPa) in the interior at the scratch mark locations, corresponding to a 0.1-mm-thick compressive zone. These measurements were then compared with the results of a finite element (FE) simulation of the deep drawing process performed without the formation of the scratch marks; the simulated residual stress in the scratch mark region considerably deviated from the measurements. A compressive stress of approximately 1000 MPa was therefore imposed on the local surface area to account for the formation of the scratch marks. The prediction of the actual residual stress on the surface and in the interior of the scratch mark region was then discussed. A simple surface stress modification technique for scratch mark prediction was realized from the comparison between the measured and FE simulation results. The stored friction work, modified by the equivalent plastic strain induced by deep drawing, could be adopted to accurately predict the location of the scratch mark region.
机译:本研究检查了由1180MPa级超高强度钢板制成的深冲杯表面和内部的残余应力。高残余应力会导致材料断裂延迟,而对残余应力的准确评估可降低失效风险。然而,在冲压过程中由磨损引起的划痕附近的残余应力仍不清楚。因此,本研究提出了与划痕相关的相当大的残余压应力的X射线衍射测量值。使用钻孔方法获得的测量结果显示,在划痕位置的内部存在以前未知的高残余拉伸应力(超过1000 MPa),对应于0.1毫米厚的压缩区。然后将这些测量结果与未形成划痕的深冲过程的有限元 (FE) 模拟结果进行比较;划痕区域的模拟残余应力与测量值有很大偏差。因此,在局部表面积上施加了大约 1000 MPa 的压应力,以解释划痕的形成。然后讨论了划痕区域表面和内部实际残余应力的预测。通过实测结果与有限元仿真结果的对比,实现了一种简单的表面应力修正技术,用于划痕预测。利用深冲引起的等效塑性应变来修正的储存摩擦功,可以准确预测划痕区域的位置。

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