生物组织模拟器创伤弹道建模

IF 0.2 Q4 MEDICINE, GENERAL & INTERNAL
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引用次数: 1

摘要

现代武器造成严重的损害,伴随着高并发症和死亡率。考虑到自2022年2月以来俄罗斯对乌克兰的战争一直处于活跃阶段,对这类武器的调查非常有必要。为了了解枪伤内外发生的病理过程,我们采用数学模拟的方法进行了实验研究。本文的结果将有助于选择合适的手术方法,提高治疗效果。本研究的目的是研究和评估5.45 mm 7N6M子弹和5.45 mm V-max膨胀子弹的损伤效果,并对弹道弹伤口管道进行数值模拟。利用Ansys Explicit Dynamics工程软件对子弹的运动进行了动力学模拟。通过显式动力学分析解决的基本方程,在拉格朗日坐标系中表达了质量、动量和能量守恒。它们与材料模型、初始条件和边界条件集合一起确定了问题的完全解。考虑到子弹的初始速度为1185米/秒,质量为3.9克,我们获得能量2740 J.所有这些能量作用在150mm深的伤口管区域。传统的7N6M子弹伤害的特点是它穿过块体,只损失部分动能。仿真结果表明,子弹在出口的速度为220 m/s。考虑子弹的初始速度为918 m/s,质量为3.4 g,我们得到作用在200 mm伤口管壁上的动能约为830 J.数学分析表明,膨胀子弹具有软核,在穿透组织后立即变形并将所有动能转移到组织中。子弹动能损失(ΔE, J)定义为子弹受伤时的动能(Ec, J)与子弹离开材料时的剩余能量(Er, J)之差。在生物组织模拟器中对伤口弹道进行数值模拟,使我们能够高精度地确定不同动能子弹的伤管形成特征和组织对损伤的响应。这有助于在枪伤手术中选择适当的手术处理方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling of wound ballistics in biological tissues simulators
Modern weapons cause severe damage, accompanied by high rates of complications and mortality. The investigation of such kinds of weapons is in high demand considering the ongoing active phase of russia's war against Ukraine since February 2022. In order to understand the pathological processes that occur in and outside the gunshot wound, we conducted an experimental study using mathematical simulation. The results presented in the article will help to choose the appropriate surgical management and improve the results of treatment. The aim of this study was to investigate and evaluate the damaging effect of a 5.45 mm 7N6M bullet and a 5.45 mm V-max expansive bullet using numerical modeling of wound canals in ballistic plasticine. The Ansys Explicit Dynamics engineering complex was used to simulate the dynamics of the bullet’s motion. The basic equations, solved by the explicit dynamic analysis, express the conservation of mass, momentum, and energy in Lagrange coordinates. Together with the material model and the set of initial and boundary conditions, they determine the complete solution to the problem. Taking into account that the initial velocity of the bullet is 1185 m/s at a mass of 3.9 g, we obtain energy 2740 J. All this energy acts at the area of the wound canal with a depth of 150 mm. Injury with a conventional 7N6M bullet is characterized by the fact that it passes through the block and loses only part of the kinetic energy. The simulation results showed that the velocity of the bullet at the outlet is 220 m/s. Taking into account the initial velocity of the bullet 918 m/s with a mass of 3.4 g, we obtain the kinetic energy acting on the walls of the wound canal with a depth of 200 mm of about 830 J. Mathematic analyses showed that the expansive bullet has a soft core that deforms and transfers all the kinetic energy to the tissues immediately after penetration into the tissues. The loss of kinetic energy of the bullet (ΔE, J) is defined as the difference between the kinetic energy at the time of injury (Ec, J) and the residual energy of the bullet when leaving the material (Er, J). Numerical modeling of wound ballistics in biological tissue simulators allows us to determine with high accuracy the features of wound canal formation and tissue response to damage of bullets having different kinetic energy, which contributes to the choice of adequate surgical management during surgery for gunshot wounds.
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来源期刊
Medical Perspectives-Medicni Perspektivi
Medical Perspectives-Medicni Perspektivi MEDICINE, GENERAL & INTERNAL-
CiteScore
0.40
自引率
0.00%
发文量
85
审稿时长
9 weeks
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