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Large Strain Mechanical Behavior of HSLA-100 Steel Over a Wide Range of Strain Rates

机译:HSLA-100钢在大应变率范围内的大应变力学行为

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摘要

High-strength low alloy steels (HSLA) have been designed to replace high-yield (HY) strength steels in naval applications involving impact loading as the latter, which contain more carbon, require complicated welding processes. The critical role of HSLA-100 steel requires achieving an accurate understanding of its behavior under dynamic loading. Accordingly, in this paper, we experimentally investigate its behavior, establish a model for its constitutive response at high-strain rates, and discuss its dynamic failure mode. The large strain and high-strain-rate mechanical constitutive behavior of high strength low alloy steel HSLA-100 is experimentally characterized over a wide range of strain rates, ranging from 10~(-3) s~(-1) to 10~4 s~(-1). The ability of HSLA-100 steel to store energy of cold work in adiabatic conditions is assessed through the direct measurement of the fraction of plastic energy converted into heat. The susceptibility of HSLA-100 steel to failure due to the formation and development of adiabatic shear bands (ASB) is investigated from two perspectives, the well-accepted failure strain criterion and the newly suggested plastic energy criterion [1]. Our experimental results show that HSLA-100 steel has apparent strain rate sensitivity at rates exceeding 3000 s~(-1) and has minimal ability to store energy of cold work at high deformation rate. In addition, both strain based and energy based failure criteria are effective in describing the propensity of HSLA-100 steel to dynamic failure (adiabatic shear band). Finally, we use the experimental results to determine constants for a Johnson-Cook model describing the constitutive response of HSLA-100. The implementation of this model in a commercial finite element code gives predictions capturing properly the observed experimental behavior. High-strain rate, thermomechanical processes, constitutive behavior, failure, finite elements, Kolsky bar, HSLA-100.
机译:高强度低合金钢(HSLA)旨在替代涉及冲击负荷的海军应用中的高屈服强度(HY)强度钢,因为后者含有更多的碳,需要复杂的焊接工艺。 HSLA-100钢的关键作用需要准确了解其在动态载荷下的行为。因此,在本文中,我们通过实验研究其行为,建立其在高应变速率下的本构响应模型,并讨论其动态破坏模式。高强度低合金钢HSLA-100的大应变和高应变速率机械本构行为在10〜(-3)s〜(-1)至10〜4的宽应变率范围内进行了实验表征s〜(-1)。 HSLA-100钢在绝热条件下储存冷作功的能量的能力是通过直接测量转化为热量的塑性能的分数来评估的。从公认的破坏应变准则和新提出的塑性能准则两个角度研究了HSLA-100钢由于绝热剪切带(ASB)的形成和发展而导致的失效敏感性[1]。我们的实验结果表明,HSLA-100钢在超过3000 s〜(-1)的速率下具有明显的应变速率敏感性,并且在高变形速率下具有最小的冷加工能量存储能力。此外,基于应变和基于能量的破坏准则都可以有效地描述HSLA-100钢的动态破坏倾向(绝热剪切带)。最后,我们使用实验结果来确定描述HSLA-100的本构响应的Johnson-Cook模型的常数。该模型在商业有限元代码中的实现可提供正确捕获所观察到的实验行为的预测。高应变率,热机械过程,本构行为,破坏,有限元,Kolsky钢筋,HSLA-100。

著录项

  • 来源
    《Journal of engineering materials and technology》 |2012年第1期|p.011005.1-011005.9|共9页
  • 作者单位

    Graduate Aerospace Laboratories, California Institute of Technology, 1200 E.California Boulevard, Pasadena, CA 91125-5000 Mechanical Engineering Department, Stony Brook University, Stony Brook, NY 11794-2300;

    Graduate Aerospace Laboratories, California Institute of Technology, 1200 E. California Boulevard, Pasadena, CA 91125-5000;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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