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Mechanisms Of Fracturing In Structures Built From Topologically Interlocked Blocks

机译:由拓扑互锁块构建的结构中的压裂机理

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摘要

Failure of materials is in many cases associated with initiation and subsequent propagation of macroscopic fractures. Consequently, in order to increase the strength, one needs to inhibit either crack initiation or propagation. The principle of topological interlocking provides a unique opportunity to construct materials and structures in which both routes of the strength increase can be realised. Materials and structures built on the basis of this principle consist of many elements which are hold together by the special geometry of their shape, together with an external constrain. The absence of the binder phase between the elements allows the interfaces to arrest macroscopic crack propagation. In addition, with sufficiently small size of the elements an increase in local strength and, possibly, in the stress for crack initiation can be achieved by capitalising on the size effect. Furthermore, the ability of some interlocking structures to tolerate missing elements can serve to prevent the avalanche-type failure initiated by failure of one of the elements. In this paper, experimental results and a theoretical analysis with regard to this possibility are presented.
机译:在许多情况下,材料的破坏与宏观裂缝的发生和随后的蔓延有关。因此,为了增加强度,需要抑制裂纹的产生或扩展。拓扑互锁原理为构造可以实现强度增加的两种途径的材料和结构提供了独特的机会。基于此原理构建的材料和结构由许多元素组成,这些元素通过其形状的特殊几何形状以及外部约束而保持在一起。元素之间不存在粘结相,可使界面阻止宏观裂纹的扩展。另外,在元件的尺寸足够小的情况下,可以通过利用尺寸效应来实现局部强度的增加以及裂纹萌生的应力的增加。此外,一些互锁结构容忍丢失的元件的能力可以用来防止由其中一个元件的故障引发的雪崩型故障。在本文中,给出了关于这种可能性的实验结果和理论分析。

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