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MODELING ARTICULATED HUMAN BODY DYNAMICS UNDER A REPRESENTATIVE BLAST LOADING

机译:代表性爆炸载荷下的人工人体动力学模型

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Blast waves resulting from both industrial explosions and terrorist attacks cause devastating effects to exposed humans and structures. Blast related injuries are frequently reported in the international news and are of great interest to agencies involved in military and civilian protection. Mathematical models of explosion blast interaction with structures and humans can provide valuable input in the design of protective structures and practices, in injury diagnostics and forensics. Accurate simulation of blast wave interaction with a human body and the human body biodynamic response to the blast loading is very challenging and to the best of our knowledge has not been reported yet. A high-fidelity computational fluid dynamic (CFD) model is required to capture the reflections, diffractions, areas of stagnation, and other effects when the shock and blast waves respond to an object placed in the field. In this effort we simulated a representative free field blast event with a standing human exposed to the threat using the Second Order Hydrodynamic Automatic Mesh Refinement Code (SHAMRC). During the CFD analysis the pressure time history around the human body is calculated, along with the fragment loads. Subsequently these blast loads are applied to a fully articulated human body using the multi-physics code CoBi. In CoBi we developed a novel computational model for the articulated human body dynamics by utilizing the anatomical geometry of human body. The articulated human body dynamics are computed by an implicit multi-body solver which ensures the unconditional stability and guarantees the quadratic rate of convergence. The developed solver enforces the kinematic constraints well while imposing no limitation on the time step size. The main advantage of the model is the anatomical surface representation of a human body which can accurately account for both the surface loading and the surface interaction. The inertial properties are calculated using a finite element method. We also developed an efficient interface to apply the blast wave loading on the human body surface. The numerical results show that the developed model is capable of reasonably predicting the human body dynamics and can be used to study the primary injury mechanism. We also demonstrate that the human body response is affected by many factors such as human inertia properties, contact damping and the coefficient of friction between the human body and the environment. By comparing the computational results with the real scenario, we can calibrate these input parameters to improve the accuracy of articulated human body model.
机译:由于工业爆炸和恐怖主义袭击产生的爆炸波导致暴露的人类和结构的破坏性效果。在国际新闻中经常报告爆炸相关伤害,对参与军事和民用保护的机构非常感兴趣。爆炸爆炸互动的数学模型与结构和人类可以在损伤诊断和取证中提供有价值的保护性和实践的设计。准确模拟与人体的爆炸波相互作用和对爆炸载荷的人体生物动力学反应是非常挑战性的,并且尚未报告我们的知识。需要高保真计算流体动态(CFD)模型来捕获反射,衍射,停滞区域,以及当震动波浪响应放置在场中的物体时。在这项努力中,我们使用二阶流体动力学自动网格精制代码(SHAMRC)模拟了具有暴露于威胁的常设人的代表性自由场爆炸事件。在CFD分析期间,计算人体周围的压力时间历史以及片段负载。随后使用多物理代码COBI将这些爆炸载荷应用于完全铰接的人体。在COBI中,利用人体解剖学几何形状,开发了一种新的铰接式人体动态的计算模型。铰接式的人体动态由隐式多体求解器计算,确保无条件稳定性并保证二次收敛速率。开发的求解器良好地强制了运动约束,同时对时间步长而施加限制。该模型的主要优点是人体的解剖表面表示,其可以准确地考虑表面负载和表面相互作用。使用有限元方法计算惯性性质。我们还开发了一种有效的界面,以应用人体表面上的爆炸波浪。数值结果表明,开发的模型能够合理地预测人体动力学,可用于研究初级损伤机制。我们还证明人体反应受到人体惯性性质,接触阻尼和人体之间的摩擦系数等因素的影响。通过将计算结果与实际情况进行比较,我们可以校准这些输入参数以提高铰接式人体模型的准确性。

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