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Influence of the Determination of FLC's and FLSC's and Their Application for Deep Drawing Process with Additional Force Transmission

机译:FLC和FLSC的测定的影响及其对额外力传递的深绘制过程的应用

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This contribution deals with the experimental and numerical analysis of the material fracture behavior of steel sheet material HCT 600 X + Z (1.0941) in thickness s_0 = 1.0 mm using the Nakajima test. Firstly, the Nakajima test is carried out, whereby the major and minor strains are measured with the optical measuring system ARAMIS. Here, two different estimation methods for determination of the strains are applied and sensitivity of estimated results related to different strain gauge lengths was analyzed. Hereby, the forming limit curve (FLC) is determined experimentally. Subsequently, the FEA of a Nakajima test was carried out and compared with corresponding experimental results. The flow behavior of HCT 600 is modelled using a planar anisotropic material model based on the Hill's 1948 criterion, which was validated in previous work. Using FLC the simulation-based determination of the forming limit stress curve (FLSC) is carried out. Furthermore, two deep drawing processes, conventional and process with activation of additional force transmission are carried out producing the rectangle cups. Here, the larger process window is achieved. Within the numerical investigation of the material fracture behavior the FLC and FLSC are applied by FEA of both deep drawing processes. Finally, the assessment of the performed material modelling is presented.
机译:该贡献涉及使用Nakajima测试的厚度S_0 = 1.0mm的钢板材料HCT 600 x + Z(1.0941)的材料断裂行为的实验和数值分析。首先,进行Nakajima测试,其中主要和次要菌株用光学测量系统芳族测量。这里,对菌株的两种不同的估计方法施加,并分析了与不同应变仪长度相关的估计结果的敏感性。因此,实验确定成形限制曲线(FLC)。随后,进行Nakajima测试的FEA并与相应的实验结果进行比较。 HCT 600的流动性能使用基于Hill 1948标准的平面各向异性材料模型进行建模,该模型在以前的工作中验证。使用FLC,进行基于模拟的成形限应应力曲线(FLSC)的测定。此外,在制造矩形杯中,执行两个具有额外力传递的深层拉伸过程,传统和过程,其产生额外的力传递。这里,实现了较大的过程窗口。在物质骨折行为的数值研究中,FLC和FLSC通过深层拉伸过程的FEA施加。最后,提出了对所执行的材料建模的评估。

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