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Application of energy derivative method to determine the structural components' contribution to deceleration in crashes

机译:能量衍生法在碰撞中确定结构部件对减速的贡献

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Objective: For occupant protection, it is important to understand how a car's deceleration time history in crashes can be designed using efficient of energy absorption by a car body's structure. In a previous paper, the authors proposed an energy derivative method to determine each structural component's contribution to the longitudinal deceleration of a car passenger compartment in crashes. In this study, this method was extended to 2 dimensions in order to analyze various crash test conditions. The contribution of each structure estimated from the energy derivative method was compared to that from a conventional finite element (FE) analysis method using cross-sectional forces.Method: A 2-dimensional energy derivative method was established. A simple FE model with a structural column connected to a rigid body was used to confirm the validity of this method and to compare with the result of cross-sectional forces determined using conventional analysis. Applying this method to a full-width frontal impact simulation of a car FE model, the contribution and the cross-sectional forces of the front rails were compared. In addition, this method was applied to a pedestrian headform FE simulation in order to determine the influence of the structural and inertia forces of the hood structures on the deceleration of the headform undergoing planar motion.Result: In an oblique impact of the simple column and rigid body model, the sum of the contributions of each part agrees with the rigid body deceleration, which indicates the validity of the 2-dimensional energy derivative method. Using the energy derivative method, it was observed that each part of the column contributes to the deceleration of the rigid body by collapsing in the sequence from front to rear, whereas the cross-sectional force at the rear of the column cannot detect the continuous collapse. In the full-width impact of a car, the contributions of the front rails estimated in the energy derivative method was smaller than that using the cross-sectional forces at the rear end of the front rails due to the deformation of the passenger compartment. For a pedestrian headform impact, the inertial and structural forces of the hood contributed to peaks of the headform deceleration in the initial and latter phases, respectively.Conclusions: Using the 2-dimensional energy derivative method, it is possible to analyze an oblique impact or a pedestrian headform impact with large rotations. This method has advantages compared to the conventional approach using cross-sectional forces because the contribution of each component to system deceleration can be determined.
机译:目的:对于乘员保护,重要的是要了解汽车的减速时间历史如何使用汽车身体结构的能量吸收的高效设计。在先前的论文中,作者提出了一种能量衍生方法,以确定每个结构部件对车辆乘客舱的纵向减速的贡献。在该研究中,该方法延伸到2个维度,以分析各种碰撞试验条件。将从能量衍生物方法估计的每个结构的贡献与使用横截面力的常规有限元(​​Fe)分析方法进行比较。方法:建立了二维能量衍生法。使用具有连接到刚体的结构柱的简单FE模型来确认该方法的有效性,并与使用常规分析确定的横截面力的结果进行比较。将该方法应用于汽车Fe模型的全宽正面冲击模拟,比较了前轨的贡献和横截面力。此外,该方法应用于行人头部Fe模拟,以确定罩结构的结构和惯性力对遭受平面运动的头部减速的影响。结果:在简单柱的斜影响刚体模型,每个部分的贡献的总和与刚体减速度同意,这表明二维能量衍生物方法的有效性。使用能量衍生法,观察到,塔的每个部分通过从前后逐次折叠而导致刚体的减速,而柱后部的横截面力不能检测到连续塌陷。在汽车的全宽冲击中,在能量衍生法中估计的前轨的贡献小于使用前轨道的后端处的横截面的贡献由于乘客舱的变形。对于行人的头部冲击,罩的惯性和结构力分别有助于初始和后一相中的头部减速的峰值。结论:使用二维能量衍生法,可以分析倾斜的冲击或行人头部冲击力量大。与使用横截面力的传统方法相比,该方法具有优点,因为可以确定每个组分对系统减速度的贡献。

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