Influence of an optical strain rate controlled tensile testing method on mechanical properties of sheet metals

David Naumann
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Abstract

Abstract. Precise material characterization is a key factor not only for representative finite-element-analysis (FEA) in production technology, but also for product development in general. Hereby, the tensile test is of particular importance, as it can be used to determine the most relevant material parameters. These are used to ensure a better process and tool design but therefore material behavior has to be determined to a high level of precision [1]. Especially in the field of metal forming, strain rate sensitive material properties like work hardening, yield point or tensile strength need to be measured at constant strain rate to provide coherent data for material models in numerical forming simulations [2]. Current testing procedures control the strain rate with a feedback control, in which various measuring systems can be used. From this comes the necessity to investigate the influence of a strain rate controlled tensile testing procedure compared to a conventional crosshead-displacement controlled one. Thus, in the scope of this study, an optical strain rate controlled (OSRC) tensile test procedure with a digital image correlation (DIC) system, and a universal testing machine (UTM) was developed. The resulting mechanical properties and the evolution of the strain rate during the test of the steel DP600 (CR330Y590T-DH) and DC05 (CR4) were analyzed at a nominal strain rate of 0.4 %/s. In addition, the results obtained from displacement strain rate controlled (DSRC) tensile tests were compared. The results demonstrate that OSRC testing method enables the measurement of mechanical material properties at a higher level of precision in terms of constant strain rate compared to DSRC procedure.
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光学应变速率控制拉伸测试法对金属板机械性能的影响
摘要精确的材料表征不仅是生产技术中代表性有限元分析(FEA)的关键因素,也是一般产品开发的关键因素。因此,拉伸试验尤为重要,因为它可用于确定最相关的材料参数。这些参数用于确保更好的工艺和工具设计,因此必须高精度地确定材料行为[1]。特别是在金属成型领域,需要在恒定应变速率下测量对应变速率敏感的材料特性,如加工硬化、屈服点或拉伸强度,以便为数值成型模拟中的材料模型提供一致的数据[2]。目前的测试程序通过反馈控制来控制应变速率,其中可使用各种测量系统。因此,有必要研究应变速率控制拉伸试验程序与传统的十字头位移控制拉伸试验程序相比的影响。因此,在本研究范围内,开发了一种光学应变速率控制(OSRC)拉伸试验程序,该程序采用了数字图像相关(DIC)系统和万能试验机(UTM)。在 0.4 %/s 的名义应变速率下,分析了 DP600 (CR330Y590T-DH) 和 DC05 (CR4) 钢在试验过程中产生的机械性能和应变速率的变化。此外,还比较了位移应变速率控制(DSRC)拉伸试验的结果。结果表明,与 DSRC 程序相比,OSRC 测试方法能够以更高的精度测量恒定应变率的机械材料特性。
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