A Simplistic Approach to Bone Healing Simulation.

Q3 Engineering
Chander Sen, Jitendra Prasad
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引用次数: 0

Abstract

A simple computational approach to simulation of healing in long bone fractures is presented. In particular, an algorithm that could simulate the formation, maturation, and resorption of fracture callus is developed and validated. The simplicity of the approach lies in the fact that the algorithm uses only the applied load and a single constraint parameter for the entire simulation. The work hypothesizes bone healing as a comprehensive energy minimization process where mechanical stimulation is proposed as the primary precursor for the beginning of different stages (i.e., callus formation, mineralization, and resorption). As such, the hypothesis is derived from the second law of thermodynamics which states that the energy of a closed system should be minimum at equilibrium. Alternatively, each stage of healing bone healing may be termed a state of homeostasis. The validation is done through a multi-material, time-based simulation of bone healing in a damaged tibia. The simulation uses a cross-section-based finite element model and an advanced version of an already validated structural optimization algorithm. The optimization objective is to minimize overall strain energy for the entire process, subject to a polar first moment of mass constraint. The simulation results show different stages of healing, where the algorithm generates a callus geometry similar to those observed experimentally. Eventually, a geometry similar to that in an intact cross-section is achieved by resorption of the callus from the unwanted sites.

骨愈合模拟的简单方法。
提出了一种模拟长骨骨折愈合的简单计算方法。特别是,开发并验证了一种可以模拟骨折愈伤组织形成、成熟和再吸收的算法。该方法的简单性在于该算法在整个模拟过程中只使用应用负载和单个约束参数。该研究假设骨愈合是一个全面的能量最小化过程,其中机械刺激被认为是不同阶段(即骨痂形成、矿化和再吸收)开始的主要前驱。因此,这个假设是从热力学第二定律推导出来的,热力学第二定律指出,一个封闭系统的能量在平衡状态下应该是最小的。或者,骨愈合的每个阶段可以被称为体内平衡状态。该验证是通过多材料、基于时间的胫骨损伤骨愈合模拟完成的。仿真使用基于截面的有限元模型和已经验证的结构优化算法的高级版本。优化目标是使整个过程的总应变能最小化,并受到极一质量矩的约束。模拟结果显示了愈合的不同阶段,其中算法生成的愈伤组织几何形状与实验观察到的相似。最终,通过从不需要的部位吸收愈伤组织,获得与完整横截面相似的几何形状。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Critical Reviews in Biomedical Engineering
Critical Reviews in Biomedical Engineering Engineering-Biomedical Engineering
CiteScore
1.80
自引率
0.00%
发文量
25
期刊介绍: Biomedical engineering has been characterized as the application of concepts drawn from engineering, computing, communications, mathematics, and the physical sciences to scientific and applied problems in the field of medicine and biology. Concepts and methodologies in biomedical engineering extend throughout the medical and biological sciences. This journal attempts to critically review a wide range of research and applied activities in the field. More often than not, topics chosen for inclusion are concerned with research and practice issues of current interest. Experts writing each review bring together current knowledge and historical information that has led to the current state-of-the-art.
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