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首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part H. Journal of Engineering in Medicine >Friction of composite cushion bearing for total knee joint replacements under adverse lubrication conditions
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Friction of composite cushion bearing for total knee joint replacements under adverse lubrication conditions

机译:复合式缓冲轴承的摩擦,在不利的润滑条件下可进行全膝关节置换

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Conventional joint replacements consist of a polished metallic or ceramic component articulating against a layer of polyethylene. Although the friction in the contact between these articulating surfaces is low, polyethylene wear is produced as aresult of a boundary/mixed lubrication regime. Wear debris is generated by direct asperity contact, abrasion, adhesion and fatigue, and has been shown to cause adverse tissue reactions which can lead to joint failure. The introduction of soft compliantmaterials, similar in stiffness to articular cartilage, has shown that with cyclic loading and relative motion between the articulating surfaces typical of normal walking, a fluid film can be maintained through combined entraining and squeeze-filmactions, and hence wear can be minimized.For 95 per cent of the time, however, we are not walking but standing still or moving slowly. A pendulum simulator has been used in the present study to investigate the effect of adverse tribological conditions which may lead to fluid film breakdown, such as severe cyclic loading, particularly in the swing phase, reduced sliding velocity, reduced stroke length and start-up after a period of constant loading. Friction of a model composite cushion knee bearing, manufactured from a graded modulus (20-1000MPa) layer of polyurethane, sliding against a polished metal cylinder has been measured for various lubricants and the results have been analysed using a Stribeck assessment. Severe cyclic loading, decreased sliding velocity and decreased stroke lengthhave been found to limit the degree of fluid entrainment previously allowed during the swing phase of normal walking, thus allowing breakdown of fluid films and elevated levels of friction and surface damage. Soft layer joint replacements must thereforebe designed to operate with thick elastohydrodynamic fluid films to provide some degree of protection when tribological conditions become severe, or alternatively incorporate alternative boundary or mixed lubrication mechanisms. This study quantifies apotential limitation of the cushion bearing concept.
机译:常规的接头替换包括与聚乙烯层铰接的抛光金属或陶瓷组件。尽管这些铰接表面之间的接触中的摩擦很小,但是由于边界/混合润滑方式而产生了聚乙烯磨损。磨损残渣是由直接的粗糙接触,磨损,粘附和疲劳产生的,并且已显示会引起不良的组织反应,从而导致关节衰竭。引入柔软的顺应性材料,其刚度类似于关节软骨,已经表明,在周期性载荷和正常行走典型关节表面之间的相对运动下,可以通过结合夹带和挤压膜作用来保持液膜,从而可以磨损但是,在95%的时间内,我们不是走路而是静止不动或缓慢移动。本研究中已使用摆锤模拟器来研究不利的摩擦学条件的影响,这些条件可能导致流体膜破裂,例如严重的周期性载荷,尤其是在摆动阶段,减小的滑动速度,减小的行程长度以及启动后的启动一段持续的负载。已经测量了由梯度模量(20-1000MPa)的聚氨酯层制成的模型复合坐垫膝关节轴承在抛光金属圆柱上滑动时的摩擦力,并使用Stribeck评估对结果进行了分析。已经发现,严重的周期性载荷,减小的滑动速度和减小的冲程长度限制了先前在正常行走的摆动阶段允许的流体夹带程度,从而允许流体膜破裂以及摩擦和表面损伤水平升高。因此,必须设计软层连接替换件,使其与厚的弹性流体动力流体膜配合使用,以在摩擦条件变得很严重时提供某种程度的保护,或者采用其他边界润滑或混合润滑机制。这项研究量化了缓冲轴承概念的潜在局限性。

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