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圆柱双相关节软骨层无摩擦滚动接触的理论解决方案。

A theoretical solution for the frictionless rolling contact of cylindrical biphasic articular cartilage layers.

作者信息

Ateshian G A, Wang H

机构信息

Department of Mechanical Engineering, Columbia University, New York, NY 10032, USA.

出版信息

J Biomech. 1995 Nov;28(11):1341-55. doi: 10.1016/0021-9290(95)00008-6.

Abstract

Previous studies have shown that interstitial fluid pressurization plays an important role in the load support mechanism of articular cartilage under normal step loading. These studies have demonstrated that interstitial fluid pressurization decreases with time if the applied load is maintained constant. In the present study, a theoretical solution is obtained for another common loading of articular cartilage, namely the contact of surfaces in rolling motion. Pure rolling of symmetrical frictionless cylindrical cartilage layers is analyzed under steady state. The linear biphasic model of Mow et al. [J. Biomech. Engng 102, 73-84 (1980)] is used to describe the mechanical response of articular cartilage. The solution of this contact problem reduces to simultaneously solving a set of four integral equations, akin to the dual integral problem of elastic contact. It is found that the solution is dependent on four non-dimensional parameters: Rh = Vb/HAk, W/2 mu b, R/b, and v, where V is the surface velocity, b the cartilage thickness, HA the aggregate modulus, mu the shear modulus, v Poisson's ratio, k the permeability, R the radius of cylindrical surfaces, and W the applied load per unit cylinder length. For Rh << 1, interstitial fluid pressurization is found to be negligible, and all the applied load is supported by the solid collagen-proteoglycan phase of the tissue, thus causing significant cartilage deformation. As Rh increases to a physiological level (Rh approximately 10(4)), interstitial fluid pressurization may support more than 90% of the total applied load, shielding the solid matrix from high effective stresses and reducing matrix strains and deformation. The protective effect of interstitial fluid pressurization is observed to increase with increasing joint congruence (R/b); similarly, as the applied load (W/2 mu b) is increased, a greater proportion of it is supported by the fluid. In degenerative cartilage, Rh may drop by one or more orders of magnitude, primarily as a result of increased permeability. Thus, the protective stress-shielding effect of interstitial fluid pressurization may become less effective in diseased tissue, possibly setting a pathway for further tissue degeneration.

摘要

先前的研究表明,在正常的步加载情况下,组织液压力在关节软骨的负载支撑机制中起着重要作用。这些研究表明,如果施加的载荷保持恒定,组织液压力会随时间降低。在本研究中,针对关节软骨的另一种常见加载情况,即滚动运动中的表面接触,获得了一个理论解。分析了对称无摩擦圆柱形软骨层在稳态下的纯滚动。采用Mow等人[《生物力学工程杂志》102, 73 - 84 (1980)]的线性双相模型来描述关节软骨的力学响应。这个接触问题的解归结为同时求解一组四个积分方程,类似于弹性接触的对偶积分问题。结果发现,该解取决于四个无量纲参数:Rh = Vb/HAk、W/2μb、R/b和v,其中V是表面速度,b是软骨厚度,HA是聚集模量,μ是剪切模量,v是泊松比,k是渗透率,R是圆柱表面半径,W是单位圆柱长度上施加的载荷。当Rh << 1时,发现组织液压力可忽略不计,所有施加的载荷由组织的固体胶原 - 蛋白聚糖相支撑,从而导致软骨显著变形。当Rh增加到生理水平(Rh约为10⁴)时,组织液压力可能支撑超过90%的总施加载荷,使固体基质免受高有效应力作用,并减少基质应变和变形。观察到组织液压力的保护作用随着关节贴合度(R/b)的增加而增强;同样,随着施加载荷(W/2μb)增加,其中更大比例由流体支撑。在退变软骨中,Rh可能下降一个或多个数量级,主要是由于渗透率增加。因此,组织液压力的保护应力屏蔽作用在患病组织中可能变得不那么有效,这可能为进一步的组织退变开辟了一条途径。

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