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使用兔模型对胫骨应力性骨折进行的实验与有限元分析

Experimental and finite element analysis of tibial stress fractures using a rabbit model.

作者信息

Franklyn Melanie, Field Bruce

机构信息

Melanie Franklyn, Bruce Field, Department of Mechanical Engineering, University of Melbourne, Parkville, VIC 3010, Australia.

出版信息

World J Orthop. 2013 Oct 18;4(4):267-78. doi: 10.5312/wjo.v4.i4.267. eCollection 2013.

Abstract

AIM

To determine if rabbit models can be used to quantify the mechanical behaviour involved in tibial stress fracture (TSF) development.

METHODS

Fresh rabbit tibiae were loaded under compression using a specifically-designed test apparatus. Weights were incrementally added up to a load of 30 kg and the mechanical behaviour of the tibia was analysed using tests for buckling, bone strain and hysteresis. Structural mechanics equations were subsequently employed to verify that the results were within the range of values predicted by theory. A finite element (FE) model was developed using cross-sectional computer tomography (CT) images scanned from one of the rabbit bones, and a static load of 6 kg (1.5 times the rabbit's body weight) was applied to represent running. The model was validated using the experimental strain gauge data, then geometric and elemental convergence tests were performed in order to find the minimum number of cross-sectional scans and elements respectively required for convergence. The analysis was then performed using both the model and the experimental results to investigate the mechanical behaviour of the rabbit tibia under compressive load and to examine crack initiation.

RESULTS

The experimental tests showed that under a compressive load of up to 12 kg, the rabbit tibia demonstrates linear behaviour with little hysteresis. Up to 30 kg, the bone does not fail by elastic buckling; however, there are low levels of tensile stress which predominately occur at and adjacent to the anterior border of the tibial midshaft: this suggests that fatigue failure occurs in these regions, since bone under cyclic loading initially fails in tension. The FE model predictions were consistent with both mechanics theory and the strain gauge results. The model was highly sensitive to small changes in the position of the applied load due to the high slenderness ratio of the rabbit's tibia. The modelling technique used in the current study could have applications in the development of human FE models of bone, where, unlike rabbit tibia, the model would be relatively insensitive to very small changes in load position. However, the rabbit model itself is less beneficial as a tool to understand the mechanical behaviour of TSFs in humans due to the small size of the rabbit bone and the limitations of human-scale CT scanning equipment.

CONCLUSION

The current modelling technique could be used to develop human FE models. However, the rabbit model itself has significant limitations in understanding human TSF mechanics.

摘要

目的

确定兔模型是否可用于量化胫骨应力性骨折(TSF)发生过程中的力学行为。

方法

使用专门设计的测试装置对新鲜兔胫骨进行压缩加载。逐渐增加重量至30 kg的载荷,并通过屈曲测试、骨应变测试和滞后测试分析胫骨的力学行为。随后采用结构力学方程验证结果是否在理论预测值范围内。利用从一根兔骨扫描的横断面计算机断层扫描(CT)图像建立有限元(FE)模型,并施加6 kg(兔体重的1.5倍)的静态载荷来模拟奔跑。使用实验应变片数据对模型进行验证,然后进行几何和单元收敛测试,以分别找到收敛所需的最小横断面扫描数量和单元数量。然后使用模型和实验结果进行分析,以研究兔胫骨在压缩载荷下的力学行为并检查裂纹萌生情况。

结果

实验测试表明,在高达12 kg的压缩载荷下,兔胫骨表现出线性行为且滞后现象较小。高达30 kg时,骨不会因弹性屈曲而失效;然而,存在低水平的拉应力,主要出现在胫骨中轴前缘及其附近:这表明这些区域会发生疲劳失效,因为循环加载下的骨最初在拉伸时失效。FE模型预测结果与力学理论和应变片结果均一致。由于兔胫骨的细长比很高,该模型对外加载荷位置的微小变化高度敏感。本研究中使用的建模技术可能在人体骨FE模型的开发中具有应用价值,与兔胫骨不同,在人体骨模型中,模型对载荷位置的极小变化相对不敏感。然而,由于兔骨尺寸较小以及人体尺度CT扫描设备的局限性,兔模型本身作为理解人类TSF力学行为的工具不太有用。

结论

当前的建模技术可用于开发人体FE模型。然而,兔模型本身在理解人类TSF力学方面存在重大局限性。

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