首页> 外文期刊>Journal of Materials Processing Technology >Evaluation of dynamic hardening models for BCC, FCC, and HCP metals at a wide range of strain rates
【24h】

Evaluation of dynamic hardening models for BCC, FCC, and HCP metals at a wide range of strain rates

机译:在各种应变速率下评估BCC,FCC和HCP金属的动态硬化模型

获取原文
获取原文并翻译 | 示例
       

摘要

This paper is concerned with dynamic hardening models of metallic materials for various crystalline structures. The dynamic response of metallic materials is indispensable for the analysis of deformation in the high-speed condition. The description of the dynamic behavior, however, can be hardly suggested with a unique model that is capable of representing the dynamic hardening characteristics of all types of materials because the dynamic hardening behavior of a material is inherent characteristics which are different in materials. It is important to select the most adequate model that is capable of representing the dynamic hardening characteristics of a material accurately. In this paper, the fitting characteristics of several well-known models are investigated and verified by experiments at a wide range of strain rates. By comparing the characteristics of the models with experimental results, the effective selecting of the most adequate model has been carried out to apply experimental stress-strain curves to the numerical analysis accurately and effectively. Several hardening models reported have been investigated and evaluated using the dynamic hardening characteristics of three kinds of materials: 4340Steel (BCC); OFHC (FCC); and Ti6Al4V (HCP). Three well-known models have been constructed and evaluated for the Johnson-Cook model, the Zerilli-Armstrong model, and the Preston-Tonks-Wallace model using the test results of three materials. Several models suggested by the authors have also been compared for the modified Johnson-Cook model and the modified Khan-Huang model. Another novel dynamic hardening model is newly proposed and compared to the other models. The changes in the strain rate and the temperature during the deformation process were considered for the accurate application of the hardening models. The most applicable model for each material has been suggested by comparison of results investigated.
机译:本文涉及用于各种晶体结构的金属材料的动态硬化模型。金属材料的动态响应对于高速条件下的变形分析是必不可少的。然而,几乎不能用能够代表所有类型材料的动态硬化特性的独特模型来建议动态特性的描述,因为材料的动态硬化特性是材料中固有的固有特性。重要的是选择最合适的模型,该模型能够准确地表示材料的动态硬化特性。在本文中,研究了几种知名模型的拟合特性,并通过在宽应变率范围内的实验进行了验证。通过将模型的特征与实验结果进行比较,进行了最合适模型的有效选择,以将实验应力-应变曲线准确有效地应用于数值分析。使用三种材料的动态强化特性,对几种报告的强化模型进行了研究和评估:4340Steel(BCC); OFHC(FCC);和Ti6Al4V(HCP)。使用三种材料的测试结果,构建了三个著名的模型,并对其进行了Johnson-Cook模型,Zerilli-Armstrong模型和Preston-Tonks-Wallace模型的评估。还针对改进的Johnson-Cook模型和改进的Khan-Huang模型,比较了作者建议的几种模型。新提出了另一种新颖的动态强化模型,并将其与其他模型进行了比较。考虑了变形过程中应变率和温度的变化,以精确应用硬化模型。通过比较研究结果,提出了每种材料最适用的模型。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号