Zivkovic I, Gonzalez M, Amirouche F
Biomechanics Research Laboratory, University of Illinois at Chicago, 842 West Taylor Street, Room 1039, Chicago, IL 60607-7039, USA.
J Biomech Eng. 2010 Apr;132(4):041008. doi: 10.1115/1.2913228.
This paper explores the effect of under-reaming on micromotion at the cup/bone interface of a press-fit acetabular cup. A cadaver experiment was performed on 11 acetabuli implanted with a cementless acetabular cup. The loading profile simulated hip impingement at the extremes of motion and subluxation relocation of the hip joint. Micromotion of each cup was measured in a custom made jig with linear variable differential transducers. A CAT scan and DEXA scan of the acetabulum and femoral head respectively were used to construct a three-dimensional patient specific finite element model of the hemi-pelvis. The model predicted cup micromotion under loading conditions and stresses in the acetabulum as a result of cup insertion. Micromotion was then calculated as a function of variable bone density and variable degree of underreaming. Simulated cup insertion with under-reaming of 2 mm or more approached or exceeded the yield strength of bone in acetabula with reduced bone mass density.
本文探讨了扩孔对压配式髋臼杯杯/骨界面微动的影响。对11个植入非骨水泥髋臼杯的髋臼进行了尸体实验。加载情况模拟了髋关节在运动极限时的撞击以及髋关节半脱位复位。每个髋臼杯的微动通过定制夹具中的线性可变差动传感器进行测量。分别对髋臼和股骨头进行CAT扫描和DEXA扫描,以构建半骨盆的三维患者特异性有限元模型。该模型预测了加载条件下髋臼杯的微动以及髋臼杯植入后髋臼内的应力。然后根据可变骨密度和可变扩孔程度计算微动。在骨质量密度降低的髋臼中,模拟扩孔2毫米或更多的髋臼杯插入接近或超过了骨的屈服强度。