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Development of high-performance energy absorption component based on the structural design and nanocrystallization

机译:基于结构设计和纳米结晶的高性能能量吸收组件的开发

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摘要

HighlightsSurface Mechanical Attrition Treatment was utilized to enhance the material properties of energy absorption components.The newly-designed crash box is more light-weighted, with lower initial peak force and higher energy-absorption ability.A new Surface Mechanical Attrition Treatment system was developed to treat the interior surface of tube structures.Graphical abstractDisplay OmittedAbstractOver the past decades, to meet the ever-increasing energy-saving and environmental-friendly needs, light-weight vehicles, e.g., electric cars, have been widely advocated. Due to significant deterioration in the capability of energy dissipation, crashworthiness enhancement becomes again the most critical issue for the light-weighted vehicles. However, the design based on conventional structure has been more difficult, and the employment of high-strength materials induces much higher cost. To achieve both large safety margin and low cost, this study implemented both material enhancement and structure optimization in the energy absorber design. Since most light-weight structures involve thin-walled frames, the surface mechanical attrition treatment (SMAT), able to induce nanostructures in metals for strength enhancement without sacrificing ductility, is the perfect choice. Based on the structure of energy absorber, SMAT technology was intensively improved to take full advantage of the excellent performance of the advanced steel material and fulfill real-life application. Structure optimization was also explored through extensive experiments and numerical simulations. The final products was examined by real tests, and the results revealed that it was lighter, stronger and have high-safety impact levels compared to similar products on the present market as expected.
机译: 突出显示 使用表面机械磨损处理来增强能量吸收组件的材料性能。 新设计的崩溃框更多重量轻,具有较低的初始峰值力和较高的能量吸收能力。 开发了一种新的表面机械磨损处理系统来处理管结构的内表面。 图形摘要 省略显示 摘要 < ce:abstract-sec id =“ as0005” view =“ all”> 在过去的几十年中,为了满足日益增长的节能和环保要求,为了满足友好的需求,人们广泛提倡轻型汽车,例如电动汽车。由于能量消耗能力的显着降低,提高耐撞性再次成为轻型车辆最关键的问题。然而,基于常规结构的设计更加困难,并且使用高强度材料引起更高的成本。为了实现大的安全裕度和低成本,本研究在吸能器设计中实现了材料增强和结构优化。由于大多数轻质结构都涉及薄壁框架,因此表面机械磨损处理(SMAT)能够诱导金属中的纳米结构以增强强度而又不牺牲延展性,是理想的选择。基于能量吸收器的结构,对SMAT技术进行了重大改进,以充分利用先进钢材的优异性能并满足实际应用。还通过广泛的实验和数值模拟来探索结构优化。最终产品通过实际测试进行了检验,结果表明,与目前市场上的同类产品相比,它更轻,更坚固并且具有较高的安全影响等级。

著录项

  • 来源
    《Materials & design》 |2018年第1期|214-225|共12页
  • 作者单位

    Department of Mechanical and Biomedical Engineering, City University of Hong Kong,Center for Advanced Structural Materials, City University of Hong Kong Shenzhen Research Institute;

    Department of Mechanical and Biomedical Engineering, City University of Hong Kong;

    Department of Mechanical and Biomedical Engineering, City University of Hong Kong;

    Center for Advanced Structural Materials, City University of Hong Kong Shenzhen Research Institute;

    Department of Mechanical and Biomedical Engineering, City University of Hong Kong,Center for Advanced Structural Materials, City University of Hong Kong Shenzhen Research Institute;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Energy absorption structure; Lightweight; Surface mechanical attrition treatment; Nanocrystallization; Structure design; Finite element analysis;

    机译:能量吸收结构;轻量化;表面机械磨损处理;纳米晶化;结构设计;有限元分析;
  • 入库时间 2022-08-17 13:16:51

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