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An Experimental Investigation of Deformation and Fracture of Nacre-Mother of Pearl

机译:珍珠母母母母母骨折的实验研究

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Nacre, also known as mother-of-pearl, is a hard biological composite found in the inside layer of many shells such as oyster or abalone. It is composed of microscopic ceramic tablets arranged in layers and tightly stacked to form a three-dimensional brick wall structure, where the mortar is a thin layer of biopolymers (20-30 nm). Although mostly made of a brittle ceramic, the structure of nacre is so well designed that its toughness is several order of magnitudes larger that the ceramic it is made of. How the microstructure of nacre controls its mechanical performance has been the focus of numerous studies over the past two decades, because such understanding may inspire novel composite designs though biomimetics. This paper presents in detail uniaxial tension experiment performed on miniature nacre specimens. Large inelastic deformations were observed in hydrated condition, which were explained by sliding of the tablets on one another and progressive locking generated by their microscopic waviness. Fracture experiments were also performed, and for the first time the full crack resistance curve was established for nacre. A rising resistance curve is an indication of the robustness and damage tolerance of that material. These measurements are then discussed and correlated with toughening extrinsic mechanisms operating at the microscale. Moreover, specific features of the microstructure and their relevance to associated toughening mechanisms were identified. These features and mechanisms, critical to the robustness of the shell, were finely tuned over millions of years of evolution. Hence, they are expected to serve as a basis to establish guidelines for the design of novel man-made composites.
机译:羊皮,也称为珍珠母珍珠,是一种在许多炮弹的内层中发现的硬生物学复合材料,如牡蛎或鲍鱼。它由布置在层中的微观陶瓷片组成并将其紧密堆叠以形成三维砖墙结构,其中砂浆是薄的生物聚合物(20-30nm)。虽然主要由脆性陶瓷制成,但是珍珠虫的结构很好地设计成其韧性是陶瓷所制造的陶瓷较大的几个阶数。 Nacre控制其机械性能的微观结构是过去二十年来众多研究的重点,因为这种理解也可能激发新的复合设计虽然是生物体。本文详细介绍了在微型珍珠标本上进行的单轴张力实验。在水合条件下观察到大的非弹性变形,其通过将片剂彼此滑动和通过它们的微观波纹产生的渐进锁定来解释。还进行了骨折实验,并且首次为珍珠菌建立了全裂纹抗性曲线。耐高温曲线是该材料的稳健性和损害耐受性的指示。然后讨论这些测量并与在微尺度操作的增韧外在机构相关。此外,鉴定了微观结构的具体特征及其与相关增韧机制的相关性。这些特征和机制对于壳体的鲁棒性至关重要,在数百万年的进化中被精细调整。因此,它们有望作为建立新型人造复合材料设计指导的基础。

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