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A probabilistic finite element analysis of the stresses in the augmented vertebral body after vertebroplasty

机译:椎体成形术后椎体增大应力的概率有限元分析

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Fractured vertebral bodies are often stabilized by vertebroplasty. Several parameters, including fracture type, cement filling shape, cement volume, elastic moduli of cement, cancellous bone and fractured region, may all affect the stresses in the augmented vertebral body and in bone cement. The aim of this study was to determine numerically the effects of these input parameters on the stresses caused. In a probabilistic finite element study, an osteoligamentous model of the lumbar spine was employed. Seven input parameters were simultaneously and randomly varied within appropriate limits for >110 combinations thereof. The maximum von Mises stresses in cancellous and cortical bone of the treated vertebral body L3 and in bone cement were calculated. The loading cases standing, flexion, extension, lateral bending, axial rotation and walking were simulated. In a subsequent sensitivity analysis, the coefficients of correlation and determination of the input parameters on the von Mises stresses were calculated. The loading case has a strong influence on the maximum von Mises stress. In cancellous bone, the median value of the maximum von Mises stresses for the different input parameter combinations varied between 1.5 (standing) and 4.5 MPa (flexion). The ranges of the stresses are large for all loading cases studied. Depending on the loading case, up to 69% of the maximum stress variation could be explained by the seven input parameters. The fracture shape and the elastic modulus of the fractured region have the highest influence. In cortical bone, the median values of the maximum von Mises stresses varied between 31.1 (standing) and 61.8 MPa (flexion). The seven input parameters could explain up to 80% of the stress variation here. It is the fracture shape, which has always the highest influence on the stress variation. In bone cement, the median value of the maximum von Mises stresses varied between 3.8 (standing) and 12.7 MPa (flexion). Up to 75% of the maximum stress variation in cement could be explained by the seven input parameters. Fracture shape, and the elastic moduli of bone cement and of the fracture region are those input parameters with the highest influence on the stress variation. In the model with no fracture, the maximum von Mises stresses are generally low. The present probabilistic and sensitivity study clearly showed that in vertebroplasty the maximum stresses in the augmented vertebral body and in bone cement depend mainly on the loading case and fracture shape. Elastic moduli of cement, fracture region and cancellous bone as well as cement volume have sometimes a moderate effect while number and symmetry of cement plugs have virtually no effect on the maximum stresses.
机译:骨折的椎体通常通过椎体成形术来稳定。包括骨折类型,骨水泥填充形状,骨水泥体积,骨水泥的弹性模量,松质骨和骨折区域在内的几个参数都可能影响椎体和骨水泥中的应力。这项研究的目的是从数值上确定这些输入参数对所引起的应力的影响。在概率有限元研究中,采用了腰椎的骨韧带模型。七个输入参数在大于110个组合的适当范围内同时随机变化。计算了处理过的椎体L3的松质骨和皮质骨以及骨水泥中的最大von Mises应力。模拟了载荷工况的站立,屈曲,伸展,横向弯曲,轴向旋转和行走。在随后的敏感性分析中,计算了冯·米塞斯应力上的相关系数和输入参数的确定。加载工况对最大冯·米塞斯应力有很大影响。在松质骨中,不同输入参数组合的最大冯·米塞斯应力的中值在1.5(站立)和4.5 MPa(屈曲)之间变化。对于所有研究的载荷情况,应力范围都很大。根据不同的负载情况,七个输入参数最多可以解释最大应力变化的69%。断裂形状和断裂区域的弹性模量影响最大。在皮质骨中,最大冯·米塞斯应力的中值在31.1(站立)和61.8 MPa(屈曲)之间变化。这七个输入参数可以解释高达80%的应力变化。断裂形状对应力变化的影响最大。在骨水泥中,最大冯·米塞斯应力的中值在3.8(站立)和12.7 MPa(屈曲)之间变化。七个输入参数可以解释水泥中最大应力变化的75%。骨折形状,骨水泥和骨折区域的弹性模量是对应力变化影响最大的输入参数。在没有断裂的模型中,最大冯·米塞斯应力通常较低。目前的概率和敏感性研究清楚地表明,在椎体成形术中,椎体增大和骨水泥中的最大应力主要取决于载荷情况和骨折形状。水泥的弹性模量,骨折区域和松质骨以及水泥的体积有时会产生中等程度的影响,而水泥塞的数量和对称性实际上对最大应力没有影响。

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