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首页> 外文期刊>Journal of biomedical materials research, Part A >Nano finite element modeling of the mechanical behavior of biocomposites using multi-scale (virtual internal bond) material models.
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Nano finite element modeling of the mechanical behavior of biocomposites using multi-scale (virtual internal bond) material models.

机译:使用多尺度(虚拟内部键)材料模型对生物复合材料的力学行为进行纳米有限元建模。

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It is evident that biocomposites, specifically mineralized Type-I collagen fibrils, have strong mechanical properties, such as a desirable combination of elastic modulus, fracture toughness, and fracture strength. The mineral Hydroxyapatite [Hap] by itself is stiffer, and it is not clear whether a collagen fiber by itself has a lower breaking strength than the mineralized fiber. Hence, the objective of this paper is to develop, outline, apply, and demonstrate issues involving a new nano explicit finite element based framework, by which the mechanical behavior of mineralized collagen fibrils and their constituents can be studied. A multi-scale virtual internal bond model is used to model the material behavior and failure of such biocomposites. In this research two models have been studied. The first model attempts to illustrate the hypothesis that materials are less sensitive to flaws at nanoscale and the second model studies the mechanical behavior of a nano sized dahlite mineral crystal commonly foundin collagen fibril. Two important implementation characteristics have been introduced and illustrated, namely that scaled properties can be used at the micro and nano length scales along with scaled dimensions and secondly the loading time can be appropriately scaled without the loading becoming a dynamic loading.
机译:显然,生物复合材料,特别是矿化的I型胶原纤维,具有很强的机械性能,例如弹性模量,断裂韧性和断裂强度的理想组合。矿物羟基磷灰石[Hap]本身较硬,尚不清楚胶原纤维本身是否具有比矿化纤维低的断裂强度。因此,本文的目的是开发,概述,应用和证明涉及新的基于纳米显式有限元框架的问题,通过该框架可以研究矿化的胶原原纤维及其成分的力学行为。使用多尺度虚拟内部键合模型对此类生物复合材料的材料行为和破坏进行建模。在这项研究中,已经研究了两种模型。第一个模型试图说明一种假设,即材料对纳米级缺陷的敏感性较低,第二个模型研究通常存在于胶原纤维中的纳米级辉石矿物晶体的机械行为。引入并说明了两个重要的实现特征,即可以在微米和纳米长度刻度上使用缩放的属性以及缩放的尺寸,其次可以在不使负载变为动态负载的情况下适当地缩放加载时间。

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