The use of finite element models for backface deformation and body armour design: a systematic review.

IF 1.7 4区 医学 Q3 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS Computer Methods in Biomechanics and Biomedical Engineering Pub Date : 2025-01-01 Epub Date: 2023-11-14 DOI:10.1080/10255842.2023.2281275
Abd Alhamid R Sarhan, Melanie Franklyn, Peter V S Lee
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Abstract

While injuries sustained from body armour backface deformation (BFD) have not been well-documented in military injury trauma registries, data from US law enforcement officers, animal tests and currently available data pertaining to military combatants has shown that BFD can not only cause minor injuries, but also result in serious trauma. However, the nature and severity of injuries sustained depends on a multitude of factors including the projectile type, the impact location and velocity, and the specific type of body armour worn. The difficulties involved in current measurement techniques for ballistic testing has led researchers to seek alternative techniques to evaluate the level of protection from body armour, such as the finite element (FE) method. In the current study, a systematic review of the open literature was undertaken using the Preferred Reporting Items for Systematic Reviews and Meta-Analyses methodology. The aim was to summarise the literature pertaining to the development and application of FE models to investigate body armour BFD and behind armour blunt trauma (BABT), and included FE models representing the projectile, clay-based mediums, ballistic gelatine and the human torso. Using the keywords 'behind armour*', 'ballistic blunt trauma', 'BABT', 'backface signature', 'backface deformation', 'BFS', 'BFD', 'wound ballistic', 'ballistic impact testing', 'body armour', 'bullet proof vest', 'ballistic vest', 'Finite Element*' and 'FE', an electronic database search of EBSCOhost, Google Scholar, ProQuest, Scopus, Standards, Web of Science and PubMed was conducted, and included peer-reviewed journal articles, review papers, research reports, conference papers, and MSc or PhD theses. While this research demonstrates the potential of FE analysis for recreating realistic blunt impact scenarios and enhancing the current understanding of BABT mechanisms, a common limitation in most studies is the lack of validation. Thus, in order to address this issue, it is proposed that injury predictions from FE models be correlated with trauma data from soldiers who have sustained BABT. Consequently, pressure and energy distributions within the organs can be used to interpret the effects of non-penetrating ballistic impacts on the human torso. Bridging the gap between simulation and real-world data is essential in order to validate FE models and enhance their utility in optimising body armour design and employing injury mitigation strategies.

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有限元模型在背脸变形和防弹衣设计中的应用:系统综述。
虽然在军事伤害创伤登记中没有很好的记录防弹衣背面变形(BFD)造成的伤害,但来自美国执法人员、动物试验和目前有关军事战斗人员的可用数据表明,BFD不仅会造成轻伤,还会导致严重创伤。然而,持续伤害的性质和严重程度取决于多种因素,包括弹丸类型,撞击位置和速度,以及所穿的特定类型的防弹衣。目前的弹道测试测量技术所涉及的困难促使研究人员寻求替代技术来评估防弹衣的防护水平,例如有限元(FE)方法。在当前的研究中,使用系统评价和荟萃分析方法的首选报告项目对公开文献进行了系统评价。目的是总结有关发展和应用有限元模型的文献,以研究防弹衣BFD和装甲后钝性创伤(BABT),包括代表弹丸,粘土基介质,弹道明胶和人体躯干的有限元模型。利用关键词“behind armour*”、“ballistic blunt trauma”、“BABT”、“backface signature”、“backface deformation”、“BFS”、“BFD”、“wound ballistic”、“ballistic impact testing”、“body armor”、“bullet防弹背心”、“ballistic背心”、“Finite Element*”和“FE”,对EBSCOhost、b谷歌Scholar、ProQuest、Scopus、Standards、Web of Science和PubMed进行了电子数据库检索,检索结果包括同行评议的期刊文章、综述论文、研究报告、会议论文、硕士或博士论文。虽然这项研究证明了有限元分析在重建真实的钝器撞击情景和增强当前对BABT机制的理解方面的潜力,但大多数研究的一个共同限制是缺乏验证。因此,为了解决这一问题,我们建议将FE模型的损伤预测与持续BABT的士兵的创伤数据相关联。因此,器官内的压力和能量分布可以用来解释非穿透性弹道对人体躯干的影响。为了验证有限元模型并增强其在优化防弹衣设计和采用减轻伤害策略方面的效用,弥合模拟和实际数据之间的差距至关重要。
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来源期刊
CiteScore
4.10
自引率
6.20%
发文量
179
审稿时长
4-8 weeks
期刊介绍: The primary aims of Computer Methods in Biomechanics and Biomedical Engineering are to provide a means of communicating the advances being made in the areas of biomechanics and biomedical engineering and to stimulate interest in the continually emerging computer based technologies which are being applied in these multidisciplinary subjects. Computer Methods in Biomechanics and Biomedical Engineering will also provide a focus for the importance of integrating the disciplines of engineering with medical technology and clinical expertise. Such integration will have a major impact on health care in the future.
期刊最新文献
The use of finite element models for backface deformation and body armour design: a systematic review. Significance of peripheral layer: the case of mucus flow through a ciliated tube using Rabinowitsch model. A high-fidelity biomechanical modeling framework for injury prediction during frontal car crash. Multivariable identification based MPC for closed-loop glucose regulation subject to individual variability. Research on MI EEG signal classification algorithm using multi-model fusion strategy coupling.
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