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首页> 外文期刊>International Journal of Material Forming: Official Journal of the European Scientific Association for Material Forming - ESAFORM >Cylindrical cup drawing of a commercially pure titanium sheet: experiment and crystal plasticity finite-element simulation
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Cylindrical cup drawing of a commercially pure titanium sheet: experiment and crystal plasticity finite-element simulation

机译:商业纯钛板的圆柱形杯图:实验和晶体塑性有限元模拟

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摘要

Because of the strong anisotropy in mechanical properties, press forming of commercially pure titanium (CP-Ti) sheets often creates significant defects, including earing formation during drawing. However, the predictive accuracy of CP-Ti sheet drawing processes by finite-element simulations is still not satisfactory because it is difficult to accurately represent the strong anisotropy with phenomenological constitutive models. In this study, a crystal plasticity model is employed to conduct finite-element simulations of a cold-rolled Grade 2 CP-Ti sheet cup drawing process, and its applicability to the process is examined in detail by comparing it with experimental results. Experimentally, the maximum cup height appears at an angle of approximately 50 degrees from the rolling direction, and the heights at 0 degrees and 90 degrees are similar. The thickness strain distribution evolution is strongly dependent on the direction. Twinning activity during drawing is the largest at 90 degrees, followed by 45 degrees, and then 0 degrees. The simulation qualitatively captures the overall tendencies well, but non-negligible discrepancies are also involved in the cup height at 90 degrees, and the thickening at the cup edge at 0 degrees and 90 degrees. The mechanisms that yield the discrepancies between the experiment and the simulation are examined. Moreover, parametric studies are conducted to discuss the effects of twinning activity and friction on the drawability.
机译:由于机械性能具有很强的各向异性,商业纯钛 (CP-Ti) 板材的冲压成型通常会产生重大缺陷,包括拉拔过程中的耳形。然而,由于难以用现象学本构模型准确表示强各向异性,有限元模拟对CP-Ti图纸绘制过程的预测精度仍然不尽如人意。本研究采用晶体塑性模型对冷轧2级CP-Ti片杯拉拔工艺进行了有限元模拟,并与实验结果进行了详细对比,验证了其对工艺的适用性。在实验上,最大杯子高度与滚动方向成大约 50 度角,0 度和 90 度处的高度相似。厚度应变分布的演变与方向有很大关系。绘图过程中的孪生活动最大,为 90 度,其次是 45 度,然后是 0 度。仿真定性地很好地捕捉了整体趋势,但 90 度的杯高以及 0 度和 90 度的杯边增厚也涉及不可忽视的差异。研究了导致实验和模拟之间差异的机制。此外,还进行了参数化研究,讨论了孪晶活动和摩擦力对拉伸性的影响。

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