在治疗骨折的不同骨愈合阶段,固定装置的应力如何变化?胫骨骨折外固定的有限元研究。

IF 1.8 2区 医学 Q2 ORTHOPEDICS
Orthopaedic Surgery Pub Date : 2024-11-01 Epub Date: 2024-09-02 DOI:10.1111/os.14195
Xuehai Jia, Changyong Shen, Bin Luo, Yi Yang, Kerui Zhang, Yi Deng, Jun Wen, Litai Ma
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引用次数: 0

摘要

背景:尽管胫骨骨折治疗过程中外固定器的应力变化与骨愈合过程之间的具体关系仍不清楚,但人们认为外固定器支架的应力变化可在一定程度上反映胫骨愈合的进展:本研究旨在提出一种无创方法,通过监测胫骨骨折愈合过程中外固定支架-胫骨系统的应力传递、应力敏感点位置和位移的变化,评估骨折愈合程度:本研究建立了不同愈合阶段的胫骨骨折有限元模型。模拟生理条件,包括胫骨上的轴向、扭转和弯曲负荷,以评估正常生理负荷条件下外固定支架-胫骨系统内的应力和应变:结果表明,在愈合的不同阶段,外固定支架与胫骨之间的应力分布存在变化。在骨折愈合的早期阶段,外固定器在所有三种加载条件下作为主要承重单元发挥着至关重要的作用。随着骨折愈合的进展,胫骨上的应力逐渐增加,在轴向和扭转加载时集中在胫骨内侧,在弯曲加载时集中在上下两端以及胫骨前后中部。胼胝处的应力逐渐增加,而微动减少。外部支架内的应力逐渐减小,连杆有将应力向螺钉转移的趋势。在整个骨折愈合过程中,外固定器的最大应力位置保持不变。在轴向和扭转负荷下,最大应力位于最低螺钉与骨皮质的交汇处,而在弯曲负荷下,最大应力位于第二螺钉与连接杆的交汇处:结论:在骨愈合过程中,应力在外固定架和骨之间传递。结论:在骨愈合过程中,应力在外侧固定架和骨之间传递。随着骨愈合的进展,外侧固定架的连接杆和螺钉上的应力会减小,应力变化的幅度也会减小。当达到完全稳固的融合时,应力变化趋于稳定,外固定架上最大应力的位置保持不变。最低螺钉与骨皮质以及第二螺钉与连接杆的交叉点可作为监测骨愈合程度的敏感点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

How Does the Stress in the Fixation Device Change during Different Stages of Bone Healing in the Treatment of Fractures? A Finite Element Study of External Fixation for Tibial Fractures.

How Does the Stress in the Fixation Device Change during Different Stages of Bone Healing in the Treatment of Fractures? A Finite Element Study of External Fixation for Tibial Fractures.

Background: Although the specific relationship between the stress changes in the external fixator during tibial fracture treatment and the bone healing process remains unclear, it is believed that stress variations in the external fixator scaffold can, to a certain extent, reflect the progress of tibial healing.

Objective: This study aims to propose a non-invasive method for assessing the degree of fracture healing by monitoring the changes in stress transmission, the locations of stress-sensitive points, and displacement in the external fixator-tibia system during the healing process of tibial fractures.

Methods: In this study, finite element models of tibial fractures at various healing stages were developed. Physiological conditions, including axial, torsional, and bending loads on the tibia, were simulated to evaluate stress and strain within the external scaffold-tibia system under normal physiological loading conditions.

Results: The results indicate variations in the stress distribution between the external fixator and the tibia during different stages of healing. In the early phase of fracture healing, the external fixator plays a crucial role as the primary load-bearing unit under all three loading conditions. As the fracture healing progresses, the stress on the tibia gradually increases, concentrating on the medial part of the tibia under axial and torsional loading, and at the upper and lower ends, as well as the central part of the anterior and posterior tibia during bending loading. The stress at the callus gradually increases, while micro-movements decrease. The stress within the external bracket gradually decreases, with a tendency for the connecting rod to transfer stress towards the screws. Throughout the fracture healing process, the location of maximum stress in the external fixator remains unchanged. Under axial and torsional loading, the maximum stress is located at the intersection of the lowest screw and the bone cortex, while under bending loading, it is at the intersection of the second screw and the connecting rod.

Conclusion: During the bone healing process, stress is transferred between the external fixation frame and the bone. As bone healing advances, the stress on the connecting rods and screws of the external fixation frame decreases, and the amplitude of stress changes diminishes. When complete and robust fusion is achieved, stress variations stabilize, and the location of maximum stress on the external fixation frame remains unchanged. The intersections of the lowest screw and the bone cortex, as well as the second screw and the connecting rod, can serve as sensitive points for monitoring the degree of bone healing.

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来源期刊
Orthopaedic Surgery
Orthopaedic Surgery ORTHOPEDICS-
CiteScore
3.40
自引率
14.30%
发文量
374
审稿时长
20 weeks
期刊介绍: Orthopaedic Surgery (OS) is the official journal of the Chinese Orthopaedic Association, focusing on all aspects of orthopaedic technique and surgery. The journal publishes peer-reviewed articles in the following categories: Original Articles, Clinical Articles, Review Articles, Guidelines, Editorials, Commentaries, Surgical Techniques, Case Reports and Meeting Reports.
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