首页> 外文期刊>Journal of orthopaedic research >Viscoelastic properties of the human medial collateral ligament under longitudinal, transverse and shear loading.
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Viscoelastic properties of the human medial collateral ligament under longitudinal, transverse and shear loading.

机译:人内侧副韧带在纵向,横向和剪切载荷下的粘弹性质。

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Ligament viscoelasticity controls viscous dissipation of energy and thus the potential for injury or catastrophic failure. Viscoelasticity under different loading conditions is likely related to the organization and anisotropy of the tissue. The objective of this study was to quantify the strain- and frequency-dependent viscoelastic behavior of the human medial collateral ligament (MCL) in tension along its longitudinal and transverse directions, and under shear along the fiber direction. The overall hypothesis was that human MCL would exhibit direction-dependent viscoelastic behavior, reflecting the composite structural organization of the tissue. Incremental stress relaxation testing was performed, followed by the application of small sinusoidal strain oscillations at three different equilibrium strain levels. The peak and equilibrium stress-strain curves for the longitudinal, transverse and shear tests demonstrate that the instantaneous and long-time stress-strain response of the tissue differs significantly between loading conditions of along-fiber stretch, cross-fiber stretch and along-fiber shear. The reduced relaxation curves demonstrated at least two relaxation times for all three test modes. Relaxation resulted in stresses that were 60-80% of the initial stress after 1000 s. Incremental stress relaxation proceeded faster at the lowest strain level for all three test configurations. Dynamic stiffness varied greatly with test mode and equilibrium strain level, and showed a modest but significant increase with frequency of applied strain oscillations for longitudinal and shear tests. Phase angle was unaffected by strain level (with exception of lowest strain level for longitudinal samples) but showed a significant increase with increasing strain oscillation frequency. There was no effect of test type on the phase angle. The increase in phase and thus energy dissipation at higher frequencies may protect the tissue from injury at faster loading rates. Results suggest that the long-time relaxation behavior and the short-time dynamic energy dissipation of ligament may be governed by different viscoelastic mechanisms, yet these mechanisms may affect tissue viscoelasticity similarly under different loading configurations.
机译:韧带的粘弹性控制能量的粘性耗散,从而控制受伤或灾难性破坏的可能性。在不同负荷条件下的粘弹性可能与组织的组织和各向异性有关。这项研究的目的是量化人内侧副韧带(MCL)在沿其纵向和横向方向的拉伸以及在沿纤维方向的剪切力下的应变和频率相关的粘弹性行为。总体假设是,人类MCL将表现出方向依赖性的粘弹性行为,反映了组织的复合结构组织。进行了增量应力松弛测试,然后在三个不同的平衡应变水平下应用了小的正弦应变振荡。纵向,横向和剪切试验的峰值和平衡应力-应变曲线表明,在沿纤维拉伸,跨纤维拉伸和沿纤维的加载条件下,组织的瞬时和长期应力-应变响应存在显着差异剪。减小的弛豫曲线表明,对于所有三种测试模式,至少有两个弛豫时间。松弛导致的应力为1000 s后初始应力的60-80%。对于所有三种测试配置,在最低应变水平下,增量应力松弛过程进行得更快。动态刚度随测试模式和平衡应变水平的不同而有很大变化,并且在纵向和剪切测试中,随施加的应变振荡频率的增加而显示出适度但显着的增加。相角不受应变水平的影响(纵向样品的最低应变水平除外),但随应变振荡频率的增加而显着增加。测试类型对相角没有影响。相位的增加以及因此在较高频率下的能量耗散可以在更快的加载速率下保护组织免受损伤。结果表明,韧带的长时间松弛行为和短时动态能量耗散可能受不同的粘弹性机制控制,但是这些机制在不同的载荷配置下可能会类似地影响组织的粘弹性。

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