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Effect of in-plane biaxial strain paths on the variation of normal anisotropy and texture of steel sheet

机译:面内双轴应变路径对钢板正常各向异性和纹理变化的影响

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Normal anisotropy is crucial for deep drawability of sheet metal. Texture of the sheet determines the normal anisotropy. It is often observed that the forming conditions remaining unchanged, sheets having similar tensile properties do not always show similar drawability in press working. It was therefore thought that strain and strain path dependent change in the normal anisotropy of two sheets could hold the key to this behaviour. Hence studies were undertaken to ascertain as to whether such a strain path dependent change in the anisotropy does occur. While in the literature, strain dependent change in anisotropy has been investigated, dependence on the strain path has not been reported. Studies on the strain dependent variation in texture of non-ferrous materials (Al alloys and brass in particular) have been widely reported. Literature on the strain and strain path dependence of texture and the anisotropy of steel sheet is not easily available. An experimental program was therefore undertaken to stretch the sheet in-plane to different strain levels for each of the five strain paths considered. Two strain paths characterised the negative minor strain and two characterised biaxial tension. The fifth one was close to plane strain. Special tooling with a 200 mm diameter flat (but relieved) bottom punch was fabricated. Specimens for R-value, texture and Modul-r measurements were all cut from the flat, in-plane stretched (punch bottom) region of the sheet. Results indicated significant dependence of the R-value and texture on the strain and strain path. The R-values were found to decrease with increasing strain in all the three methods of testing. The rate of decrease was found to be strain path dependent. The inferences from the mechanical measurements of R-value based on the ASTM procedure and those predicted from texture measurements were in excellent agreement. Thus texture studies throw light on macroscopic mechanical behaviour (strain and strain path dependent variation in anisotropy).
机译:正常各向异性为金属板的深冲性是至关重要的。片材的纹理确定正常各向异性。它经常被观察到,形成条件保持不变,具有片材类似的拉伸特性不总是显示在冲压加工类似拉丝加工性。因此,有人认为,在两个片材的正常各向异性应变和应变路径相关的变化可以保持键不此行为。因此研究开展了,以确定以在各向异性的应变路径相关的变化是否确实发生。尽管在文献中,在应变的各向异性相关的变化进行了研究,目前尚未见报道的应变路径的依赖。研究在非铁材料(铝合金,特别是黄铜)的质地的应变有关的变化已被广泛报道。关于纹理的应变和应变路径依赖和钢板的各向异性文献不易获得。因此一个实验方案进行拉伸片材的面内,以不同的应变水平为每个所考虑的五个应变路径。两个应变路径,其特征在于所述负次应变和两个特征双轴拉伸。第五个是接近平面应变。用200mm直径的平(但缓解)底部冲头特殊工具被制造的。用于R值,纹理和MODUL-R测量样本从所有平切,面内拉伸的片材(冲头底部)区。结果表明R值和纹理的应变和应变路径上的显著依赖性。被发现的R值在测试的所有三种方法增加应变减小。降低的速率被认为是应变路径依赖的。基于所述ASTM方法从R值的机械测量的推论和那些从纹理测量预测是非常一致。因此纹理研究扔在宏观力学行为(应变和应变路径在各向异性有关的变化)的光。

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