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On the Design of Energy Absorbing Crash Buffers for High Speed Roadways

机译:高速巷道吸能碰撞缓冲器的设计

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The aim of this paper is to design and analyze cost-effective and high energy absorbing buffer systems for high speed roadways. Unlike conventional crash cushions, the proposed buffer design is based on the assembly of a series of cylindrical hollow tubes (cells) with thorough slots around the cells. The idea is that during the collisions, the kinetic energy of the errant vehicles will be absorbed by the progressive deformation of the cells, hence minimizing damage to the vehicle and allowing a comfortable ride down deceleration of the vehicle's occupants. As the cell was the fundamental unit of the buffer design, three cells with different geometry were studied to understand the underlying deformation of the individual cells. Nonlinear quasi-static tests using three-dimensional (3D) finite element (FE) simulation and experimental techniques were performed to evaluate the deformation and energy absorption capacity of the cells. Simulation results matched closely with experimental ones with relatively small errors. Based on the experimental results of single cells, a number of potential buffer systems were designed for 80 and 100 km/h speed roadways. Results indicate that the buffers with larger diameter cells are favorable to be used in high speed zones as they reduce the overall size of buffers and contain less number of cells, while being able to absorb the required amount of impact energy. Consequently, they are found to result in a reduced cost associated with materials and fabrication. All the buffer designs were relatively shorter than commercially available buffers used in roadways. In addition, due to their reduced and compact size, the designed buffers can potentially be used in a space limited and hazardous road environment to reduce the vehicle crash with the fixed objects.
机译:本文的目的是设计和分析用于高速巷道的具有成本效益的高能量吸收缓冲系统。与传统的防撞垫不同,建议的缓冲器设计基于一系列圆柱形空心管(单元)的组装,这些单元在单元周围具有完全的缝隙。这个想法是,在碰撞过程中,错误的车辆的动能将被单元格的逐渐变形吸收,从而将对车辆的损害降至最低,并允许车辆乘员舒适地向下行驶。由于单元是缓冲设计的基本单元,因此研究了三个具有不同几何形状的单元,以了解各个单元的潜在变形。使用三维(3D)有限元(FE)模拟和实验技术进行了非线性准静态测试,以评估电池的变形和能量吸收能力。仿真结果与误差相对较小的实验结果非常吻合。根据单细胞的实验结果,为80和100 km / h的速度车道设计了许多潜在的缓冲系统。结果表明,具有较大直径孔的缓冲液有利于在高速区域中使用,因为它们减小了缓冲液的总体尺寸并包含较少数量的孔,同时能够吸收所需量的冲击能量。因此,发现它们导致与材料和制造相关的降低的成本。所有的缓冲器设计都比道路上使用的市售缓冲器相对较短。另外,由于其减小的尺寸和紧凑的尺寸,设计的缓冲器可以潜在地用于空间有限且危险的道路环境中,以减少车辆因固定物体而发生的碰撞。

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