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A FAST RUNNING MODEL FOR SKELETAL IMPACT BIOMECHANICS ANALYSIS

机译:骨骼影响生物力学分析的快速运行模型

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Skeletal trauma occurs in many blunt, ballistic and blast impact events. Even though the personal body armors and protective equipment were effective in stopping the penetration of bullets or fragments, the resulting impact loading could lead to the significant injuries and fractures to the thoracic skeleton and extremities. The finite element (FEM) method, with its capability to handle complex geometries and nonlinear materials, are commonly used to analyze the tissue biomechanical responses and correlate the simulation results with the injury outcomes. However, it is very difficult to construct the three-dimensional (3D) FEM model for the skeletal biomechanics analysis because of the complex geometry and different materials involved. Moreover the simulation of 3D FEM model is computationally expensive because both small element size and high speed of sound in materials lead to very small time step in an explicit transient analysis. The simulation process is often not robust enough when the model experiences the large deformation. To shorten modeling and simulation times, we have developed a fast running model based on a novel nonlinear beam element for the skeletal impact biomechanics analysis. In contrast to the conventional beam elements, the kinematics of the developed beam element is free of rotational degrees of freedom (DOFs). The current beam element offers the desired constant lumped mass matrix for the large deformable explicit transient analysis. The realistic treatment of junctions and surface intersections among beams becomes straightforward. Furthermore the model can account for the irregular shape and different materials at beam cross sections by using the numerical integration. The sophisticated material models such as elastoplasticity can also be incorporated directly in the integration points. Thus the fast running model is suitable for the analysis of complex nonlinear composite structures such as the loading-carrying thoracic skeleton and extremities. The stereolithograph (STL)-based anatomical geometry of skeletal structure is used to extract the one-dimensional (1D) curved beam model and the associated beam cross sections. The anatomical surface of skeleton is also utilized for the calculation of transferred loads to the underlined beams. The 3D responses such as displacements and stresses from the fast running model are subsequently reconstructed on the anatomical surface for the visualization and skeletal trauma analysis. We demonstrate the efficiency of such modeling technique by simulating the rib cage and the lower extremity under the impact loadings. As compared to the 3D FEM model, the developed model runs fast and robust, and achieves good results without the need of laborious 3D meshing process.
机译:骨骼创伤发生在许多钝的,弹道的和爆炸冲击事件中。即使个人防弹衣和防护设备可以有效地阻止子弹或碎片的穿透,但由此产生的冲击载荷仍可能导致严重的伤害以及胸骨和四肢骨折。具有处理复杂几何形状和非线性材料的能力的有限元(FEM)方法通常用于分析组织的生物力学响应,并将模拟结果与损伤结果相关联。然而,由于复杂的几何形状和所涉及的材料,构造用于骨骼生物力学分析的三维(3D)FEM模型非常困难。此外,3D FEM模型的仿真在计算上是昂贵的,因为小元素尺寸和材料中的声音高速都导致显式瞬态分析中非常小的时间步长。当模型经历大变形时,仿真过程通常不够鲁棒。为了缩短建模和仿真时间,我们开发了一种基于新型非线性梁单元的快速运行模型,用于骨骼撞击生物力学分析。与传统的梁单元相比,已开发的梁单元的运动学上没有旋转自由度(DOF)。当前的梁单元为大型可变形的显式瞬态分析提供了所需的恒定集总质量矩阵。束之间的交界处和表面相交的实际处理变得简单明了。此外,通过使用数值积分,该模型可以解决梁截面处的不规则形状和不同材料的问题。复杂的材料模型(例如弹塑性)也可以直接整合到集成点中。因此,快速运行模型适用于分析复杂的非线性复合结构,例如承载胸部的骨骼和四肢。基于立体光刻(STL)的骨骼结构解剖几何学用于提取一维(1D)弯曲梁模型和相关的梁横截面。骨架的解剖表面也用于计算传递给下划线梁的载荷。随后,在解剖表面上重建3D响应(例如来自快速运行模型的位移和应力)以进行可视化和骨骼创伤分析。通过模拟肋骨和下肢在冲击载荷下的表现,我们证明了这种建模技术的效率。与3D FEM模型相比,所开发的模型运行速度快且功能强大,并且无需费力的3D网格划分过程即可获得良好的结果。

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