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首页> 外文期刊>Journal of Materials Science >Modeling microarchitecture and mechanical behavior of nacre using 3D finite element techniques - Part I - Elastic properties
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Modeling microarchitecture and mechanical behavior of nacre using 3D finite element techniques - Part I - Elastic properties

机译:使用3D有限元技术对珍珠母的微结构和力学行为建模-第一部分-弹性

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摘要

Three dimensional finite element models of nacre were constructed based on reported microstructural studies on the 'brick and mortar' micro-architecture of nacre. 3D eight noded isoparametric brick elements were used to design the microarchitecture of nacre. Tensile tests were simulated using this model. The tests were conducted at low stresses of 2 MPa which occur well within the elastic regime of nacre and thus effects related to locus and extent of damage were ignored. Our simulations show that using the reported values of elastic moduli of organic (0.005 GPa) and aragonitic platelets (205 GPa), the displacements observed in nacre are extremely large and correspond to a very low modulus of 0.011 GPa. The reported elastic modulus of nacre is of the order of 50 GPa. The reason for this inconsistency may arise from two possibilities. Firstly, the organic layer due to its multilayered structure is possibly composed of distinct layers of different elastic moduli. The continuously changing elastic modulus within the organic layer may approach modulus of aragonite near the organic-inorganic interface. Simulations using variable elastic moduli for the organic phase suggest that an elastic modulus of 15 GPa is consistent with the observed elastic behavior of nacre. Another explanation for the observed higher elastic modulus may arise from localized platelet-platelet contact. Since the observed modulus of nacre lies within the above two extremes (i.e. 15 GPa and 205 GPa) it is suggested that a combination of the two possibilities, i.e. a higher modulus of the organic phase near the organic-inorganic interface and localized platelet-platelet contact can result in the observed elastic properties of nacre. (C) 2001 Kluwer Academic Publishers. [References: 27]
机译:基于已报道的有关珍珠质“砖和砂浆”微结构的微观结构研究,构建了珍珠质的三维有限元模型。 3D八节点等参砖单元用于设计珍珠质的微体系结构。使用该模型模拟了拉伸试验。测试是在珍珠层的弹性范围内发生的2 MPa低应力下进行的,因此忽略了与轨迹和损伤程度有关的影响。我们的模拟显示,使用有机(0.005 GPa)和石蜡薄片(205 GPa)的弹性模量的报告值,珍珠母中观察到的位移非常大,对应于0.011 GPa的极低模量。报道的珍珠母弹性模量约为50 GPa。这种不一致的原因可能来自两种可能性。首先,由于其多层结构,有机层可能由具有不同弹性模量的不同层组成。有机层内连续变化的弹性模量可以接近有机-无机界面附近的文石模量。使用有机相的可变弹性模量进行的模拟表明,15 GPa的弹性模量与观察到的珍珠母的弹性行为一致。观察到的较高弹性模量的另一种解释可能是由于局部血小板-血小板接触引起的。由于观察到的珍珠母模量处于上述两个极限值(即15 GPa和205 GPa)内,因此建议将两种可能性结合起来,即靠近有机-无机界面的有机相的较高模量和局部的血小板-血小板接触可导致观察到珍珠母的弹性。 (C)2001 Kluwer学术出版社。 [参考:27]

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