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Percolation mechanisms in orthopedic implants.

机译:骨科植入物中的渗流机制。

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摘要

Orthopedic implants have greatly increased the quality of human life; however, when it comes to friction and wear properties, they have much room for improvement. "Percolation" is a mechanism of lubricant entrainment that increases the volume of lubricant in a bearing when a load is applied, theoretically reducing both friction and wear. Percolation effects can be divided into surface transport effects and volume transport effects. The former relies on changes in surface geometry to increase lubricant entrainment, while the latter relies on the material properties of the bulk material. This research tests the uses of surface transport to improve the tribological performance of artificial hips, and the uses of volume transport in developing a new biomaterial for cartilage replacement.;For the improvement of artificial hips, dimpled surfaces were created using laser surface texturing (LST) and then tested in a reciprocating wear tester. Friction and wear were measured and compared to surfaces without dimples for both metal-on-metal and metal-on-plastic contacts. The results showed a positive effect of surface texturing on the friction coefficients and wear rates of the textured surfaces, consistent with increased lubricant entrainment.;A numerical model of a lubricated contact was made using a multilevel relaxation approach. The lubrication of smooth, roughened, and dimpled contacts was modeled. Numerical studies showed an increase in the theoretical central and minimum film thickness for dimpled surface. Numerical studies also show an optimized dimple placement and morphology for future studies.;A new biomaterial, consisting of a three-dimensional woven composite of selected polymers was also examined for wear properties in bi-directional wear. Results of wear testing were mixed, at first showing increases in life due to specific woven parameters but being difficult to repeat.
机译:骨科植入物极大地提高了人们的生活质量;但是,在摩擦和磨损性能方面,它们还有很大的改进空间。 “渗滤”是一种润滑剂夹带的机制,当施加载荷时,该机制会增加轴承中润滑剂的体积,从理论上减少摩擦和磨损。渗滤作用可分为表面输送作用和体积输送作用。前者依靠表面几何形状的变化来增加润滑剂的夹带,而后者则依靠散装材料的材料特性。这项研究测试了使用表面运输来改善人造髋关节的摩擦学性能,以及使用体积运输来开发一种新的软骨替代生物材料。为了改善人造髋关节,使用激光表面纹理化(LST)创建了凹陷的表面),然后在往复式磨损测试仪中进行测试。对于金属对金属和金属对塑料的接触,测量了摩擦和磨损并将其与没有凹痕的表面进行比较。结果表明,表面纹理化对带纹理的表面的摩擦系数和磨损率具有积极影响,与润滑剂的夹带增加相一致。;使用多级松弛方法建立了润滑接触的数值模型。对光滑,粗糙和凹陷的触点的润滑进行了建模。数值研究表明,凹坑表面的理论中心厚度和最小薄膜厚度有所增加。数值研究还显示了优化的酒窝放置和形态,以备将来研究。还研究了一种新型生物材料,该材料由选定聚合物的三维机织复合材料组成,还研究了双向磨损的磨损特性。磨损测试的结果好坏参半,起初显示由于特定的织造参数而导致使用寿命增加,但难以重复。

著录项

  • 作者

    Jones, Kyle E.;

  • 作者单位

    University of Notre Dame.;

  • 授予单位 University of Notre Dame.;
  • 学科 Engineering Biomedical.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 174 p.
  • 总页数 174
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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