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首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Swelling of fiber -reinforced soft tissues is affected by fiber orientation, fiber stiffness, and lamella structure
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Swelling of fiber -reinforced soft tissues is affected by fiber orientation, fiber stiffness, and lamella structure

机译:纤维 - 纤维的软组织肿胀受纤维取向,纤维刚度和薄片结构的影响

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Native and engineered fiber-reinforced tissues are composites comprised of stiff collagen fibers embedded within an extrafibrillar matrix that is capable of swelling by absorbing water molecules. Tissue swelling is important for understanding stress distributions between collagen fibers and extrafibrillar matrix, as well as for understanding mechanisms of tissue failure. The swelling behavior of fiber-reinforced tissues in the musculoskeletal system has been largely attributed to the glycosaminoglycan content. Recent work demonstrated anisotropy in the swelling response of the annulus fibrosus in the intervertebral disc. It is well known that collagen fiber orientation affects elastic behavior, but the effect of collagen fiber network on tissue swelling behavior is not well understood. In this study, we developed three series of models to evaluate the effect of collagen fiber orientation, fiber network architecture (i.e., single or multi-fiber families within a layer), and fiber stiffness on bulk tissue swelling, which was simulated by describing the extrafibrillar matrix as a triphasic material, as proposed by Lai et al. Model results were within one standard deviation of reported mean values for changes in tissue volume, width, and thickness under free swelling conditions. The predicted swelling response of single-fiber family structures was highly dependent on fiber orientation and the number of lamellae in the bulk tissue. Moreover, matrix swelling resulted in tissue to twist, which reduced fiber deformations, demonstrating a balance between fiber deformation and matrix swelling. Large changes in fiber stiffness (20 x increase) had a relatively small effect on tissue swelling (similar to 2% decrease in swelling). In conclusion, fiber angle, fiber architecture (defined as single-versus multiple fiber families in a layer), and the number of layers in a single fiber family structure directly affected tissue swelling behavior, including fiber stretch, fiber reorientation, and tissue deformation. These findings support the need to develop computational models that closely mimic the native architecture in order to understand mechanisms of stress distributions and tissue failure.
机译:本机和工程化纤维增强组织是由嵌入于通过吸收水分子的预纤维状基质中的硬质胶原纤维组成的复合材料,其能够吸收水分子。组织肿胀对于了解胶原纤维和预纤维形基质之间的应力分布以及理解组织衰竭机制是重要的。肌肉骨骼系统中纤维增强组织的肿胀行为在很大程度上归因于糖胺聚糖含量。最近的工作表明了椎间盘环纤维杆菌的肿胀反应中的各向异性。众所周知,胶原纤维取向会影响弹性行为,但胶原纤维网络对组织肿胀行为的影响并不了解。在这项研究中,我们开发了三个系列模型来评估胶原纤维取向,光纤网络架构(即层内或多纤维家族,单纤维家族)的效果,并通过描述散装组织肿胀上的纤维刚度。 Extrafibrillar基质作为三足材料,如Lai等人所提出的。模型结果在报告的单个标准偏差范围内,其在自由溶胀条件下的组织体积,宽度和厚度变化的平均值的标准偏差。单纤维家族结构的预测溶胀响应高度依赖于纤维取向和散装组织中的薄片的数量。此外,基质肿胀导致组织扭曲,这减少了纤维变形,展示了纤维变形和基质溶胀之间的平衡。纤维刚度的大变化(20 x增加)对组织肿胀的影响(类似于溶胀的2%)。总之,光纤角度,光纤架构(定义为层中的单纤维家族),以及单纤维家族结构中的层数直接影响组织膨胀行为,包括纤维拉伸,光纤重新定向和组织变形。这些调查结果支持开发密切模拟本机架构的计算模型,以便理解应力分布和组织失效的机制。

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