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The mechanical properties ofuda three-dimensional stochastic fibrous network with cross-linking

机译:ud的机械性能具有交联的三维随机纤维网络

摘要

Fibrous materials are promising for a wide range of engineering applications due to their low density and high stiffness and strength. Stochastic filamentous networks can be widely found in biomaterials at the micro- and nano-scales. The objective of this study is to investigate the mechanical properties of macro-sized, micro-sized and nano-sized stochastic fibrous networks with cross-linking.udA continuum mechanics-based three-dimensional periodic beam model has been developed to describe stochastic fibrous materials by the Finite Element Method (FEM). Relative density is a key parameter to elucidate the mechanical properties of porous fibrous materials. The relative density of the beam model developed in this study can be adjusted by changing the concentration of the cross-linker, the fibre aspect ratio and the coefficient of overlap. In general, the non-dimensional Young’s moduli and shear moduli increase with increasing relative density. The simulation and analytical model have suggested that strut bending is the dominant deformation mechanism for stochastic fibrous materials.udBased on the total strain energy density, scalar measures of characteristic stress and strain have been applied to reveal the yielding of stochastic fibrous materials. The effect of relative density on uniaxial yield strength of stochastic fibrous materials shows a quadratic function in the x direction and a cubic function in the z direction.udWhen the dimensions of fibrous structures are reduced to the micro- or nano-scale, the stiffness is much different from that of their macro-sized counterparts. Strain gradient effects at the micro-meter scale, and the surface elasticity and initial stress effects at the nano-meter scale have been incorporated into the deformation mechanism of fibrous materials. For both of the micro- and nano-sized fibrous structure, the smaller the diameter, the larger the non-dimensional Young’s moduli and shear moduli. Generally speaking, the dimensionless stiffness of nano-sized stochastic fibrous structures is larger than their micro-sized counterparts. The size-dependent effects investigated in this study could provide good reference points for scientists in tissue engineering and serve as a guide in the design of MEMS and NEMS.
机译:由于纤维材料的低密度,高刚度和强度,它们有望在广泛的工程应用中使用。随机丝状网络可以在微米和纳米尺度上广泛地发现于生物材料中。这项研究的目的是研究具有交联作用的宏观,微观和纳米级随机纤维网络的力学性能。 ud建立了一种基于连续力学的三维周期梁模型来描述随机纤维材料通过有限元方法(FEM)。相对密度是阐明多孔纤维材料机械性能的关键参数。可以通过更改交联剂的浓度,纤维纵横比和重叠系数来调整在此研究中开发的光束模型的相对密度。通常,无量纲的杨氏模量和剪切模量随相对密度的增加而增加。仿真和分析模型表明,支杆弯曲是随机纤维材料的主要变形机制。 ud基于总应变能密度,采用特征应力和应变的标量方法揭示了随机纤维材料的屈服。相对密度对随机纤维材料单轴屈服强度的影响在x方向上显示二次函数,在z方向上显示三次函数。 ud当纤维结构的尺寸减小到微米或纳米级时,刚度与它们的大型同类产品有很大不同。微米尺度的应变梯度效应,以及纳米尺度的表面弹性和初始应力效应已被纳入纤维材料的变形机理。对于微米级和纳米级的纤维结构,直径越小,无量纲的杨氏模量和剪切模量就越大。一般而言,纳米级随机纤维结构的无量纲刚度大于其微尺度对应物。在这项研究中研究的尺寸依赖性效应可以为组织工程学的科学家提供良好的参考点,并可以作为MEMS和NEMS设计的指南。

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    Ma Yanhui;

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  • 年度 2016
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