Comparison of femur strain under different loading scenarios: Experimental testing

Author:

Levadnyi Ievgen123ORCID,Awrejcewicz Jan34,Zhang Yan123,Gu Yaodong12

Affiliation:

1. Faculty of Sports Science, Ningbo University, Ningbo, China

2. Research Academy of Grand Health Interdisciplinary, Ningbo University, Ningbo, China

3. Department of Automation, Biomechanics and Mechatronics, Lodz University of Technology, Lodz, Poland

4. Institute of Vehicles, Warsaw University of Technology, Warsaw, Poland

Abstract

Bone fracture, formation and adaptation are related to mechanical strains in bone. Assessing bone stiffness and strain distribution under different loading conditions may help predict diseases and improve surgical results by determining the best conditions for long-term functioning of bone-implant systems. In this study, an experimentally wide range of loading conditions (56) was used to cover the directional range spanned by the hip joint force. Loads for different stance configurations were applied to composite femurs and assessed in a material testing machine. The experimental analysis provides a better understanding of the influence of the bone inclination angle in the frontal and sagittal planes on strain distribution and stiffness. The results show that the surface strain magnitude and stiffness vary significantly under different loading conditions. For the axial compression, maximal bending is observed at the mid-shaft, and bone stiffness is also maximal. The increased inclination leads to decreased stiffness and increased magnitude of maximum strain at the distal end of the femur. For comparative analysis of results, a three-dimensional, finite element model of the femur was used. To validate the finite element model, strain gauges and digital image correlation system were employed. During validation of the model, regression analysis indicated robust agreement between the measured and predicted strains, with high correlation coefficient and low root-mean-square error of the estimate. The results of stiffnesses obtained from multi-loading conditions experiments were qualitatively compared with results obtained from a finite element analysis of the validated model of femur with the same multi-loading conditions. When the obtained numerical results are qualitatively compared with experimental ones, similarities can be noted. The developed finite element model of femur may be used as a promising tool to estimate proximal femur strength and identify the best conditions for long-term functioning of the bone-implant system in future study.

Funder

the National Science Centre of Poland

ningbo university

Publisher

SAGE Publications

Subject

Mechanical Engineering,General Medicine

Cited by 7 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Strains on the human femur after revision total knee arthroplasty: An in vitro study using digital image correlation;PLOS ONE;2024-06-13

2. Tensile Yield Strain of Human Cortical Bone from the Femoral Diaphysis Is Constant among Healthy Adults and across the Anatomical Quadrants;Bioengineering;2024-04-19

3. Finite element analysis (FEA) of femur to predict biomechanical properties and its validation;Proceedings of the Institution of Mechanical Engineers, Part C: Journal of Mechanical Engineering Science;2023-07-05

4. Study of Image-Based Finite Element Model for Predicting the Biomechanical Properties of Femur Bone: A Review;Journal of The Institution of Engineers (India): Series C;2023-04-12

5. Finite element analysis of a new dual locking plate for femoral shaft fracture;PROCEEDING OF THE 7TH INTERNATIONAL CONFERENCE OF SCIENCE, TECHNOLOGY, AND INTERDISCIPLINARY RESEARCH (IC-STAR 2021);2023

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