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A study of the axial crush response of hydroformed aluminum alloy tubes.

机译:液压成形铝合金管轴向挤压响应的研究。

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摘要

There exists considerable motivation to reduce vehicle weight through the adoption of lightweight materials, such as aluminum alloys, while maintaining energy absorption and component integrity under crash conditions. To this end, it is of particular interest to study the crash behaviour of lightweight tubular hydroformed structures to determine how the forming behaviour affects the axial crush response. Thus, the current research has studied the dynamic crush response of both non-hydroformed and hydroformed EN-AW 5018 and AA5754 aluminum alloy tubes using both experimental and numerical methods.;Explicit dynamic finite element simulations of the hydroforming and crash events were carried out with particular attention to the transfer of forming history from the hydroforming simulations to the crash models. The results showed that increases in the strength of the material due to work hardening during hydroforming were beneficial in increasing energy absorption during crash. However, it was shown that thinning in the corners of the tube during hydroforming decreased the energy absorption capabilities during axial crush. Residual stresses resulting from hydroforming had little effect on the energy absorption characteristics during axial crush.;The current research has shown that, in addition to capturing the forming history in the crash models, it is also important to account for effects of material non-linearity such as kinematic hardening, anisotropy, and strain-rate effects in the finite element models. A model combining a non-linear kinematic hardening model, the Johnson-Cook rate sensitive model, and the Yld2000-2d anisotropic model was developed and implemented in the finite element simulations. This combined model did not account for the effect of rotational hardening (plastic spin) due to plastic deformation. It is recommended that a combined constitutive model, such as the one described in this research, be utilized for the finite element study of materials that show sensitivity to the Bauschinger effect, strain-rate effects, and anisotropy.;Experiments were performed in which hydroforming process parameters were varied in a parametric fashion after which the crash response was measured. Experimental parameters included the tube thickness and the hydroformed corner radii of the tubes.
机译:有相当大的动机通过采用轻质材料(例如铝合金)来减轻车辆重量,同时在碰撞条件下保持能量吸收和部件完整性。为此,特别重要的是研究轻型管状液压成形结构的碰撞行为,以确定成形行为如何影响轴向挤压响应。因此,目前的研究使用实验和数值方法研究了非液压成形和液压成形的EN-AW 5018和AA5754铝合金管的动态挤压响应;进行了液压成形和碰撞事件的显式动态有限元模拟。特别要注意将成形历史从液压成形模拟转移到碰撞模型的过程。结果表明,由于液压成形过程中的工作硬化而使材料的强度增加,有利于增加碰撞时的能量吸收。但是,已经表明,在液压成形过程中,管角变薄会降低轴向挤压过程中的能量吸收能力。液压成形产生的残余应力对轴向挤压过程中的能量吸收特性影响很小。;目前的研究表明,除了捕获碰撞模型中的成形历史外,考虑材料非线性的影响也很重要。例如有限元模型中的运动硬化,各向异性和应变率效应。开发了将非线性运动硬化模型,Johnson-Cook速率敏感模型和Yld2000-2d各向异性模型组合在一起的模型,并将其应用于有限元模拟中。该组合模型未考虑由于塑性变形而引起的旋转硬化(塑性旋转)的影响。建议将组合本构模型(例如本研究中描述的模型)用于对Bauschinger效应,应变率效应和各向异性敏感的材料的有限元研究。过程参数以参数方式变化,然后测量碰撞响应。实验参数包括管的厚度和管的液压成型角半径。

著录项

  • 作者

    Williams, Bruce W.;

  • 作者单位

    University of Waterloo (Canada).;

  • 授予单位 University of Waterloo (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 246 p.
  • 总页数 246
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:39:12

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