Pintar F A, Kumaresan S, Yoganandan N, Yang A, Stemper B, Gennarelli T A
Department of Neurosurgery, Medical College of Wisconsin, USA.
Biomed Sci Instrum. 2001;37:429-34.
Due to advances in emergency medical care and modern techniques, treatment of gunshot wounds to the brain have improved and saved many lives. These advances were largely achieved using retrospective analysis of patients with recommendations for treatment. Biomechanical quantification of intracranial deformation/stress distribution associated with the type of weapon (e.g., projectile geometry) will advance clinical understanding of the mechanics of penetrating trauma. The present study was designed to delineate the biomechanical behavior of the human head under penetrating impact of two different projectile geometry using a nonlinear, three-dimensional finite element model. The human head model included the skull and brain. The qualitative comparison of the model output with each type of projectile during various time steps indicated that the deformation/stress progressed as the projectile penetrated the tissues. There is also a distinct difference in the patterns of displacement for each type of projectile. This observation matches our previous study using a physical gelatin model of delineate the penetrating wound profiles for different projectile types. The present study is a first step in the study of biomechanical modeling of penetrating traumatic brain injuries.
由于紧急医疗护理和现代技术的进步,脑枪伤的治疗得到了改善,挽救了许多生命。这些进步很大程度上是通过对患者进行回顾性分析并提出治疗建议而实现的。与武器类型(例如弹丸几何形状)相关的颅内变形/应力分布的生物力学量化将推动对穿透性创伤力学的临床理解。本研究旨在使用非线性三维有限元模型,描绘两种不同弹丸几何形状对人体头部进行穿透冲击时的生物力学行为。人体头部模型包括颅骨和大脑。在不同时间步长下,对模型输出与每种弹丸类型进行定性比较表明,随着弹丸穿透组织,变形/应力不断发展。每种弹丸类型的位移模式也存在明显差异。这一观察结果与我们之前使用物理明胶模型描绘不同弹丸类型穿透伤口轮廓的研究相匹配。本研究是穿透性创伤性脑损伤生物力学建模研究的第一步。