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不同跑速对大鼠股骨皮质骨结构微观失效应变的影响:有限元研究。

Effects of different running intensities on the micro-level failure strain of rat femoral cortical bone structures: a finite element investigation.

机构信息

Department of Traffic Engineering, Yangzhou Polytechnic Institute, Yangzhou, 225127, People's Republic of China.

Department of Aerospace Engineering, Jilin Institute of Chemical Technology, Jilin, 132022, People's Republic of China.

出版信息

Biomed Eng Online. 2023 Sep 12;22(1):89. doi: 10.1186/s12938-023-01151-6.

Abstract

BACKGROUND

Running with the appropriate intensity may produce a positive influence on the mechanical properties of cortical bone structure. However, few studies have discussed the effects of different running intensities on the mechanical properties at different levels, especially at the micro-level, because the micromechanical parameters are difficult to measure experimentally.

METHODS

An approach that combines finite element analysis and experimental data was proposed to predict a micromechanical parameter in the rat femoral cortical bone structure, namely, the micro-level failure strain. Based on the previous three-point bending experimental information, fracture simulations were performed on the femur finite element models to predict their failure process under the same bending load, and the micro-level failure strains in tension and compression of these models were back-calculated by fitting the experimental load-displacement curves. Then, the effects of different running intensities on the micro-level failure strain of rat femoral cortical bone structure were investigated.

RESULTS

The micro-level failure strains of the cortical bone structures expressed statistical variations under different running intensities, which indicated that different mechanical stimuli of running had significant influences on the micromechanical properties. The greatest failure strain occurred in the cortical bone structure under low-intensity running, and the lowest failure strain occurred in the structure under high-intensity running.

CONCLUSIONS

Moderate and low-intensity running were effective in enhancing the micromechanical properties, whereas high-intensity running led to the weakening of the micromechanical properties of cortical bone. Based on these, the changing trends in the micromechanical properties were exhibited, and the effects of different running intensities on the fracture performance of rat cortical bone structures could be discussed in combination with the known mechanical parameters at the macro- and nano-levels, which provided the theoretical basis for reducing fracture incidence through running exercise.

摘要

背景

以适当的强度跑步可能会对皮质骨结构的机械性能产生积极影响。然而,很少有研究讨论不同的跑步强度对不同水平的机械性能的影响,特别是在微观水平上,因为微观力学参数很难通过实验测量。

方法

提出了一种结合有限元分析和实验数据的方法,用于预测大鼠股骨皮质骨结构中的一个微观力学参数,即微观水平失效应变。基于之前的三点弯曲实验信息,对股骨有限元模型进行了断裂模拟,以预测在相同弯曲载荷下的断裂过程,并通过拟合实验载荷-位移曲线,反算这些模型在拉伸和压缩下的微观水平失效应变。然后,研究了不同跑步强度对大鼠股骨皮质骨结构微观水平失效应变的影响。

结果

不同跑步强度下皮质骨结构的微观水平失效应变表现出统计学差异,表明不同的跑步力学刺激对微观力学性能有显著影响。低强度跑步下皮质骨结构的失效应变最大,高强度跑步下皮质骨结构的失效应变最小。

结论

适度和低强度的跑步可以有效增强微观力学性能,而高强度的跑步会导致皮质骨微观力学性能的减弱。基于这些,展示了微观力学性能的变化趋势,并结合宏观和纳米尺度已知的力学参数讨论了不同跑步强度对大鼠皮质骨结构断裂性能的影响,为通过跑步运动减少骨折发生率提供了理论依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e68a/10496390/df54a95b676f/12938_2023_1151_Fig1_HTML.jpg

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