机械超材料在同位体弹性刚性的理论极限
J B Berger1,2, H N G Wadley3, R M McMeeking1,2,4,5
1Materials Department, University of California, Santa Barbara, California 93106-5050, USA.
Nature
|February 21, 2017
概括
研究人员发现了一种实现理论弹性极限的新材料几何. 这种低密度的机械超材料具有卓越的刚性,能量吸收和可调的声学特性,可通过简单的折叠方法制造.
科学领域:
- 材料科学
- 机械工程
- 超材料
背景情况:
- 高性能应用需要在应力和低密度下控制形状的材料.
- 生物灵感的结构如蜂和网格提供了极好的硬度与重量比率.
- 3D打印的进步使得这些机械超材料的复杂,低成本制造成为可能.
研究的目的:
- 确定达到同位体弹性和应变能量存储的理论上限的材料几何形状 (哈辛-施特里克曼上限).
- 了解压力能量如何在各种材料几何形状下分布.
- 在机械超材料中发现与高弹性性能相关的形态特征.
主要方法:
- 使用有限元素模型和分析方法来评估应变能量分布.
- 使用启发式优化方案来识别最佳的材料几何形状.
- 与现有的木架网络和异型蜂巢网络进行性能比较.
主要成果:
- 确定了一种新的材料几何,可以达到同位体弹性刚性的哈辛-施特里克曼上限.
- 坚固,分布良好的板块网络对于有效的负载传输至关重要.
- 证明这种设计超越了以前的超物质限制.
结论:
- 这种基于板块的新型超材料设计达到理论上的弹性极限.
- 这种材料具有优越的性能,包括高能吸收,可调节的声带间隙和热绝缘.
- 这种设计可以使用简单的,类似于原创的折叠和粘合技术来制造.
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