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Dynamic self-strengthening of a bio-nanostructured armor - conch shell

机译:生物纳米结构铠装的动态自强化

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摘要

Bio-nanowire structured - armors conch shells, which are often collected as art pieces, possess a special function - an unusual resilience against high speed predatory attacks. Under high-strain-rate compression (strain rate similar to 10(3)s-(1)) conch shells highlight significantly high fracture strength vis--vis under quasi-static loading (strain rate = 10(-2)/s). The dynamic fracture strength reaches a strikingly high value of 600 MPa, 67% enhancement with reference to that of quasi-static loading with the fracture strength 360 MPa. Upon dynamic impact loading, conch shells ingeniously activated a new defense mechanism - intra-lamella fracture, which differs from the inter-lamella fracture damage under quasi-static loading. The lengthy third-order lamellae with a length of hundreds of micrometers were pulverized into rods with the length ranging from 0.4 mu m and 2.5 mu m upon dynamic loading, whereas the third-order lamellae in the quasi-statically fractured segments maintained the length of hundreds of micrometers. Multiple energy-dissipating mechanisms - intra-lamella fracture, nanoparticle rotation and dislocation enabled nanoparticle deformation in a synergistical fashion contribute to the high strain rate fracture strength of conch shells. This dynamic self-strengthening strategy provides a new guideline for designing dynamically robust materials.
机译:生物纳米线结构 - 铠装套管壳,通常被收集为艺术件,具有特殊功能 - 对高速掠夺性攻击的不寻常的弹性。在高菌株率压缩下(应变速率类似于10(3)S-(1))尖锐壳突出显着高的裂缝强度Vis-Vis(应变率<= 10(2)/ s) )。动态断裂强度达到600MPa的惊人值,参照骨折强度360MPa的准静态载荷的增强量为600MPa。在动态冲击载荷后,胆壳巧妙地激活了一种新的防御机制 - 薄层骨折骨折,与苜蓿内静态载荷下的薄膜间骨折损伤不同。具有长度数百微米的冗长的三阶薄片被粉碎成杆,长度在动态载荷时长度为0.4μm和2.5μm,而准静态裂缝段中的三阶薄片保持长度数百微米。多种能量消散机制 - 薄膜内骨折,纳米颗粒旋转和位错,使得纳米粒子变形以促进的方式有助于锥形壳的高应变率断裂强度。这种动态自我加强策略为设计动态强大的材料提供了新的准则。

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