胫骨外侧平台骨折中植骨钢板的应力和变形。

IF 1.3 4区 医学 Q4 ENGINEERING, BIOMEDICAL
Matthias Münch, Tobias Barth, Annika Studt, Julius Dehoust, Klaus Seide, Maximilian Hartel, Karl-Heinz Frosch
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引用次数: 2

摘要

本研究的目的是研究应用前外侧锁定钢板固定侧裂骨折时的应变和应力。为了模拟复杂的断裂情况,将三段分开。通过有限元分析,确定了具有代表性的应变和应力测量点。用应变计固定固定钢板,并在骨折和非骨折锯骨模型上进行测试。为了模拟不同的载荷情况,采用四个不同的受力点,从髁突中心到后侧15mm位置,内侧-外侧载荷分布为60:40。模拟和生物力学试验表明,两种变形主导了钢板上的载荷:向后方向弯曲和钢板头部凸起。将应用点移至后向导致最大应力增加,分别从1.16到6.32 MPa(有限元分析)和3.04到7.00 MPa(生物力学研究)。此外,非骨折模型和骨折模型的比较显示,最大应力分别增加了2.06-2.2倍(生物力学研究)和1.5-3.3倍(有限元分析)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Stresses and deformations of an osteosynthesis plate in a lateral tibia plateau fracture.

This study has the aim to investigate the strain and stress in an anterolateral locking plate applied for the fixation of a lateral split fracture. To simulate a complex fracture situation, three segments were separated. With a FEM analysis, representative places for strain and stress measurement were determined. A locked osteosynthesis plate was instrumented with strain gauges and tested on a fractured and a non-fractured Saw Bone model. To simulate different loading situations, four different points of force application, from the center of the condyles to a 15 mm posterior position, were used with a medial-lateral load distribution of 60:40. The simulations as well as the biomechanical tests demonstrated that two deformations dominate the load on the plate: a bending into posterior direction and a bulging of the plate head. Shifting the point of application to the posterior direction resulted in increasing maximum stress, from 1.16 to 6.32 MPa (FEM analysis) and from 3.04 to 7.00 MPa (biomechanical study), respectively. Furthermore, the comparison of the non-fractured and fractured models showed an increase in maximum stress by the factor 2.06-2.2 (biomechanical investigation) and 1.5-3.3 (FEM analysis), respectively.

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来源期刊
CiteScore
3.50
自引率
5.90%
发文量
58
审稿时长
2-3 weeks
期刊介绍: Biomedical Engineering / Biomedizinische Technik (BMT) is a high-quality forum for the exchange of knowledge in the fields of biomedical engineering, medical information technology and biotechnology/bioengineering. As an established journal with a tradition of more than 60 years, BMT addresses engineers, natural scientists, and clinicians working in research, industry, or clinical practice.
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