首页> 外文会议>ASME International Mechanical Engineering Congress and Exposition >THE EFFECT OF MICRO GROOVING ON GOAT TOTAL KNEE REPLACEMENT: A FINITE ELEMENT STUDY
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THE EFFECT OF MICRO GROOVING ON GOAT TOTAL KNEE REPLACEMENT: A FINITE ELEMENT STUDY

机译:微槽对山羊总膝盖替换的影响:有限元研究

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A method to improve the mechanical fixation of a tola! knee replacement (TKR) implant is clinically important and is the purpose of this study. More than one million joint replacement procedures are performed in people each year in the United States, and experts predict the number to increase six-fold by the year 2030. Whether cemented or uncemented, joint prostheses may destabilize over time and necessitate revision. Approximately 40,000 hip arthroplasty surgeries have to be revised each year and the rate is expected to increase by approximately 140% (and by 600% for total knee replacement) over the next 25 years. In veterinary surgery, joint replacement has a long history and the phenomenon of surgical revision is also well recognized. For the betterment of both people and animals, improving the longevity of arthroplasty devices is of the utmost clinical importance, and towards that end, several strategies are under investigation. One approach that we explore in the present research is to improve the biomechanical performance of cemented implant systems by altering the implant surface architecture in a way that facilitates its cement bonding capacity. Beginning with the Charnley system, early femoral stems were polished smooth, but a number of subsequent designs have featured a roughened surface-created with bead or grit blasting-to improve cement bonding. Failure at the implant-cement interface remains an issue with these newer designs, leading us to explore in this present research an alternate, novel approach to surface alteration - specifically, laser microgrooving. This study used various microgrooves architectures that is feasible using a laser micromachining process on a tibia tray (TT) for the goat TKR. Developing the laser microgrooving (LM) procedure, we hypothesized feasibility in producing parallel microgrooves of precise dimensions and spacing on both flat and round metallic surfaces. We further hypothesized that laser microgrooving would increase surface area and roughness of the cement interface of test metallic implants and that such would translate into an improved acute mechanical performance as assessed in vitro under both static and cyclic loads. The objective was to develop a computational model to determine the effect of LIM on the tibial tray to the mechanical stimuli distributions from implant to bone using the finite element method. This study designed goat TT 3D solid model from a computer topography (CT) images, out of which three different laser microgrooves were engraved on TT sample by varying depth, height and space between two adjacent grooves. The simulation test results concluded that microgrooves acchitecures positively influence microstrain behavior around the implant bone interfaces. There is a higher amount of strain observed for microgroove implant'bone samples compared to non-groove implant'bone samples. Thus, the laser-induced microgrooves have the potential to be used clinically in TKR components.
机译:一种改善托拉机械固定的方法!膝关节置换(TKR)植入物是临床上重要的,是本研究的目的。每年在美国的人们中进行超过一百万的联合更换程序,专家预测2030年的六倍增加的数量。无论是巩固或未削弱,关节假体是否可能会随着时间的推移破坏并需要修改。每年必须修订大约40,000名髋关节置换术手术,预计未来25年将增加约140%(膝关节置换率为600%)。在兽医手术中,联合替代历史悠久,手术修订的现象也得到了很好的认可。为了提高人类和动物,提高关节成形术设备的寿命是最大的临床重要性,并朝到这一点,正在调查几种策略。我们在本研究中探索的一种方法是通过以促进其水泥粘接能力的方式改变植入物表面架构来改善水泥植入系统的生物力学性能。从Charnley系统开始,早期的股骨头抛光光滑,但是随后的许多设计具有用珠子或砂砾喷射的粗糙表面产生 - 以改善水泥键合。植入水泥界面的失败仍然是这些较新的设计问题,导致我们在本发明的研究中探索一种替代的新颖方法 - 具体而言,激光微换机。本研究使用了各种微型血管架构,可行使用激光微加工过程在山羊Tkr上的胫骨托盘(TT)上。开发激光微换机(LM)程序,我们假设在平坦和圆形金属表面上产生平行微型尺寸和间隔的平行微型腔。我们进一步假设激光微换机将增加试验金属植入物的水泥界面的表面积和粗糙度,并且这种情况将转化为在静态和环状负载下在体外评估的改善的急性机械性能。目的是开发一种计算模型,以确定利用有限元方法从植入物到骨骼到机械刺激分布的胫骨托盘的效果。本研究通过电脑形貌(CT)图像设计了山羊TT 3D实体模型,其中通过两个相邻凹槽之间的深度,高度和空间在TT样品上刻有三种不同的激光微侵蚀。仿真试验结果得出结论,微血管accoves acchitecures呈正常影响植入物骨界面周围的微纹行为。与非沟槽植入物的网样品相比,对于微血管植入物的样品,观察到较高量的菌株。因此,激光诱导的微型血管缺口具有临床在TKR部件中临床使用的可能性。

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