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层状纳米复合材料的高应变速率变形。

High strain rate deformation of layered nanocomposites.

机构信息

Department of Materials Science and Engineering, MIT, Cambridge, Massachusetts 02139, USA.

出版信息

Nat Commun. 2012;3:1164. doi: 10.1038/ncomms2166.

Abstract

Insight into the mechanical behaviour of nanomaterials under the extreme condition of very high deformation rates and to very large strains is needed to provide improved understanding for the development of new protective materials. Applications include protection against bullets for body armour, micrometeorites for satellites, and high-speed particle impact for jet engine turbine blades. Here we use a microscopic ballistic test to report the responses of periodic glassy-rubbery layered block-copolymer nanostructures to impact from hypervelocity micron-sized silica spheres. Entire deformation fields are experimentally visualized at an exceptionally high resolution (below 10 nm) and we discover how the microstructure dissipates the impact energy via layer kinking, layer compression, extreme chain conformational flattening, domain fragmentation and segmental mixing to form a liquid phase. Orientation-dependent experiments show that the dissipation can be enhanced by 30% by proper orientation of the layers.

摘要

需要深入了解纳米材料在极高变形率和极大应变极端条件下的力学行为,以提高对新型防护材料开发的认识。应用包括为人体装甲提供防御子弹、卫星防御微流星体以及喷气发动机涡轮叶片防御高速粒子冲击。在这里,我们使用微观弹道测试来报告周期性玻璃态橡胶层状嵌段共聚物纳米结构对超高速微米尺寸二氧化硅球冲击的响应。通过实验在极高分辨率(低于 10nm)下可视化整个变形场,我们发现微结构如何通过层扭结、层压缩、极端链构象扁平化、畴碎裂和段混合形成液相来耗散冲击能。各向异性实验表明,通过适当的层取向,耗散能力可以提高 30%。

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