...
首页> 外文期刊>International Journal of Automotive Technology >CRASH ANALYSIS OF AUTO-BODY STRUCTURES CONSIDERING THE STRAIN-RATE HARDENING EFFECT
【24h】

CRASH ANALYSIS OF AUTO-BODY STRUCTURES CONSIDERING THE STRAIN-RATE HARDENING EFFECT

机译:考虑应变率硬化效应的车身结构的碰撞分析

获取原文
获取原文并翻译 | 示例

摘要

The crashworthiness of vehicles with finite element methods depends on the geometry modeling and the material properties. The vehicle body structures are generally composed of various members such as frames, stamped panels and deep-drawn parts from sheet metals. In order to ensure the impact characteristics of auto-body structures, the dynamic behavior of sheet metals must be examined to provide the appropriate constitutive relation. In this paper, high strain-rate tensile tests have been carried out with a tension type split Hopkinson bar apparatus specially designed for sheet metals. Experimental results from both static and dynamic tests with the tension split Hopkinson bar apparatus are interpolated to construct the Johnson-Cook and a modified Johnson-Cook equation as the constitutive relation, that should be applied to simulation of the dynamic behavior of auto-body structures. Simulation of auto-body structures has been carried out with an elasto-plastic finite element method with explicit time integration. The stress integration scheme with the plastic predictor-elastic corrector method is adopted in order to accurately keep track of the stress-strain relation for the rate-dependent model accurately. The crashworthiness of the structure with quasi-static constitutive relation is compared to the one with the rate-dependent constitutive model. Numerical simulation has been carried out for frontal frames and a hood of an automobile. Deformed shapes and the impact energy absorption of the structure are investigated with the variation of the strain rate.
机译:采用有限元方法的车辆的耐撞性取决于几何模型和材料特性。车身结构通常由各种构件组成,例如框架,冲压面板和金属板的深冲部件。为了确保车身结构的冲击特性,必须检查钣金的动态行为以提供适当的本构关系。在本文中,已经使用专门为钣金设计的拉力式霍普金森直杆装置进行了高应变率拉力测试。内插张力分裂霍普金森杆装置的静态和动态测试的实验结果被内插以构造Johnson-Cook和经修改的Johnson-Cook方程作为本构关系,应将其应用于模拟车身结构的动力学行为。车身结构的仿真已通过具有明确时间积分的弹塑性有限元方法进行。为了准确跟踪速率依赖模型的应力-应变关系,采用了采用塑性预测器-弹性校正器方法的应力积分方案。将具有准静态本构关系的结构的抗撞性与具有速率依赖本构模型的结构的抗撞性进行比较。已经对汽车的前框架和引擎盖进行了数值模拟。随着应变率的变化,研究了结构的变形形状和冲击能量吸收。

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