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Energy dissipation mechanisms in hollow metallic microlattices

机译:空心金属微晶格中的能量耗散机理

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摘要

When properly designed at ultra-low density, hollow metallic microlattices can fully recover from compressive strains in excess of 50%, while dissipating a considerable portion of the elastic strain energy. This article investigates the physical mechanisms responsible for energy loss upon compressive cycling, and attributes the most significant contribution to a unique form of structural damping, whereby elastic local buckling of individual bars releases energy upon loading. Subsequently, a simple mechanical model is presented to capture the relationship between lattice geometry and structural damping. The model is used to optimize the microlattice geometry for maximum damping performance. The conclusions show that hollow metallic microlattices exhibit exceptionally large values of the damping figure of merit, (Young's modulus)~(1/3)(loss coefficient)/(density), but this performance requires very low relative densities (<1%), thus limiting the amount of energy that can be dissipated.
机译:当以超低密度正确设计时,中空金属微晶格可以从超过50%的压缩应变中完全恢复,同时耗散了相当一部分弹性应变能。本文研究了造成压缩循环能量损失的物理机制,并将最重要的贡献归功于独特形式的结构阻尼,从而使单个钢筋的弹性局部屈曲在加载时释放能量。随后,提出了一个简单的机械模型来捕捉晶格几何形状与结构阻尼之间的关系。该模型用于优化微晶格几何形状,以实现最大的阻尼性能。结论表明,中空金属微晶格具有优异的阻尼品质因数,(杨氏模量)〜(1/3)(损耗系数)/(密度),但是这种性能要求非常低的相对密度(<1%) ,从而限制了可以耗散的能量。

著录项

  • 来源
    《Journal of Materials Research》 |2014年第16期|1755-1770|共16页
  • 作者单位

    Mechanical and Aerospace Engineering Department, University of California, Irvine, USA;

    HRL Laboratories, LLC, Malibu, California, USA;

    Mechanical and Aerospace Engineering Department, University of California, Irvine, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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