首页> 美国卫生研究院文献>Journal of Biomechanical Engineering >HYDROSTATIC PRESSURIZATION AND DEPLETION OF TRAPPED LUBRICANT POOL DURING CREEP CONTACT OF A RIPPLED INDENTER AGAINST A BIPHASIC ARTICULAR CARTILAGE LAYER
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HYDROSTATIC PRESSURIZATION AND DEPLETION OF TRAPPED LUBRICANT POOL DURING CREEP CONTACT OF A RIPPLED INDENTER AGAINST A BIPHASIC ARTICULAR CARTILAGE LAYER

机译:疏水性加压和贫化的润滑剂池 翻盖式进气道对双侧关节的蠕动接触期间 软骨层

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摘要

This study presents an analysis of the contact of a rippled rigid impermeable indenter against a cartilage layer, which represents a first simulation of the contact of rough cartilage surfaces with lubricant entrapment. Cartilage was modeled with the biphasic theory for hydrated soft tissues, to account for fluid flow into or out of the lubricant pool. The findings of this study demonstrate that under contact creep, the trapped lubricant pool gets depleted within a time period on the order of seconds or minutes as a result of lubricant flow into the articular cartilage. Prior to depletion, hydrostatic fluid load across the contact interface may be enhanced by the presence of the trapped lubricant pool, depending on the initial geometry of the lubricant pool. According to friction models based on the biphasic nature of the tissue, this enhancement in fluid load support produces a smaller minimum friction coefficient than would otherwise be predicted without a lubricant pool. The results of this study support the hypothesis that trapped lubricant decreases the initial friction coefficient following load application, independently of squeeze-film lubrication effects.
机译:这项研究提出了波纹状刚性不渗透压头与软骨层接触的分析,这是粗糙的软骨表面与润滑剂截留的接触的首次模拟。用两相理论对水合的软组织的软骨建模,以说明流体流入或流出润滑剂池的情况。这项研究的结果表明,在接触蠕变下,由于润滑剂流入关节软骨,被困的润滑剂池在几秒钟或几分钟的时间内就会耗尽。在耗尽之前,取决于润滑剂池的初始几何形状,可以通过存在被困的润滑剂池来增加整个接触界面上的静液压流体负荷。根据基于组织的双相性的摩擦模型,与没有润滑剂池的情况相比,在流体负荷支持方面的这种增强产生的最小摩擦系数更小。这项研究的结果支持这样的假设,即被困润滑剂在施加载荷后会降低初始摩擦系数,而与挤压膜润滑效果无关。

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