首页> 外文会议>Bioengineering Conference (NEBEC), 2012 38th Annual Northeast >Biaxial tensile testing and constitutive modeling of human supraspinatus tendon
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Biaxial tensile testing and constitutive modeling of human supraspinatus tendon

机译:人脊上肌腱的双轴拉伸试验和本构模型

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The heterogeneous composition, collagen fiber organization and mechanical properties of the supraspinatus tendon (SST) offer an opportunity for studying the structure-function relationships of fibrous musculoskeletal connective tissues. The objective of this study was to evaluate the contribution of collagen fiber organization to the planar tensile mechanics of the human SST. This was accomplished by fitting biaxial tensile data with a structural constitutive model that incorporates a sample-specific angular distribution of nonlinear fibers. Biaxial testing was employed to avoid the limitation of non-physiologic traction-free boundary conditions present during uniaxial testing. Samples were tested under a range of boundary conditions with simultaneous monitoring of collagen fiber orientation via polarized light imaging. The experimental data were input into a hyperelastic constitutive model incorporating the contributions of the uncrimped fibers. The model fit the longitudinal stresses well and was successfully validated. The transverse stresses were fit less well with greater errors observed for less aligned samples. Additional strain energy terms representing fiber-fiber interactions are likely necessary to provide closer approximation of the transverse stresses. This approach demonstrated that the longitudinal tensile mechanics of the SST are primarily dependent on the moduli, crimp, and angular distribution of its collagen fibers.
机译:棘上肌腱(SST)的异质组成,胶原纤维组织和力学性能为研究纤维性肌肉骨骼结缔组织的结构-功能关系提供了机会。这项研究的目的是评估胶原纤维组织对人类SST的平面拉伸力学的贡献。这是通过将双轴拉伸数据与结构本构模型进行拟合来完成的,该模型包含了特定样本的非线性纤维的角度分布。采用双轴测试以避免单轴测试过程中存在的非生理无牵引边界条件的限制。在一系列边界条件下测试样品,同时通过偏振光成像同时监测胶原纤维的取向。将实验数据输入到结合了未卷曲纤维贡献的超弹性本构模型中。该模型很好地拟合了纵向应力,并已成功验证。横向应力拟合得不太好,对于较少对准的样品观察到较大的误差。表示纤维-纤维相互作用的其他应变能项可能是提供横向应力的更近似值所必需的。这种方法表明,SST的纵向拉伸力学主要取决于其胶原纤维的模量,卷曲度和角分布。

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