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Nature Inspired Strategy to Enhance Mechanical Properties via Liquid Reinforcement

机译:自然启发战略通过液体加固来提高机械性能

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>Solid–solid interface mechanism understanding of composite inclusions, when extended to solid–liquid interface design of composite using Eshelby theory, indicates a possibility of decreasing effective stiffness with increasing liquid inclusion in a solid matrix. In contrast, experimental evidence in the current paper suggests high stiffness and enhanced dynamic energy absorption in a soft polymer (polydimethylsiloxane) with high bulk modulus liquid inclusions (gallium). The basic deformation mechanism is governed by hydrostatic stress causing shape change of the liquid inclusion in large deformation regime and strain hardening of a soft polymer matrix. In addition, dynamic viscoelasticity and fluid motion also play a significant role. These understandings are developed here based on analytical modeling and a detailed finite element with smooth particle hydrodynamic simulations. The large deformation with viscoelasticity of gallium composite shows higher energy absorption and dissipation. Similar strategies of liquid reinforcement to compliant solid matrices are abundant in nature, for example, the intervertebral discs in the spinal cord and deep sea animal skin and lungs.
机译: >固体固体界面机制对复合夹杂物的理解,当使用eShelby理论延伸到复合材料的固液界面设计时,表明在固体基质中增加液体包含液体夹杂度降低有效刚度的可能性。相比之下,目前纸张中的实验证据表明,具有高批量模量液体夹杂物(镓)的软聚合物(聚二甲基硅氧烷)中的高刚度和增强的动态能量吸收。基本变形机制由静压应力引起液体夹杂物中的液体夹杂物的形状变化,以及软聚合物基质的应变硬化。此外,动态粘弹性和流体运动也发挥了重要作用。这些谅解基于分析建模和具有平滑粒子流体动力模拟的详细的有限元在这里开发。镓复合材料粘弹性的大变形表现出较高的能量吸收和耗散。柔性固体基质的类似策略本质上丰富,例如,脊髓和深海动物皮肤和肺中的椎间盘。

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