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On the Development of Horizontal Impact Test System (HITS): Estimation of Impact Loads and Deceleration

机译:关于水平冲击试验系统的发展(点击):估计冲击载荷和减速

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A Horizontal Impact Test System (HITS) will be developed to characterize several energy absorption mechanisms, i.e. axial splitting, tube inversion, deformation/expansion, axial folding, and flattening. There were two alternatives that has been developed for launching mechanism, i.e. spring and Hopkinson pressure bar technique which will be chose further. The HITS mainly consists of a striker bar (impactor), a specimen as in a direct split-Hopkinson pressure bar technique and a die. This paper examines the possibility of using the 70 - 100 mm diameter of the striker bar to be implemented as the impactor for the developed HITS. Afterwards, the size of the striker bar will be a base of determining the launching mechanism. This study was conducted by numerical simulation using LS-DYNA as the solver. Mild steel was used as a material of specimen. The Cowper-Symonds was used as the constitutive material model for the material of specimen, while the elastic material model was used for the striker bar and the rigid material model was used for the die. Six mechanisms with total of 96 cases of appropriate dimensions were studied. The main purpose of the simulation was to select the range of load cell and accelerometer which would be implemented in the real experimental setup. Based on the result of simulation, the range of load cell was 48 kN to 238 kN, while the range of accelerometer was 358 to 1250g. Later on, the load vs. displacement can be used for predicting energy absorption for each mechanism.
机译:将开发水平冲击试验系统(命中)以表征几种能量吸收机构,即轴向分裂,管反转,变形/膨胀,轴向折叠和平坦化。有两种用于发射机制的替代方案,即弹簧和Hopkinson压力条技术将进一步选择。命中主要由罢工杆(撞击器)组成,标本,如直接分裂 - 霍普金森压杆技术和模具。本文介绍了使用70 - 100 mm直径的前线杆的可能性,以实现为发达的击中的撞击器。然后,前锋杆的尺寸将是确定发射机制的基座。本研究通过使用LS-DYNA作为求解器的数值模拟进行。使用温和的钢作为样品的材料。使用电流拍照作为样本材料的本构体材料模型,而弹性材料模型用于撞针杆,并且刚性材料模型用于模具。研究了总共96例适当尺寸的六种机制。模拟的主要目的是选择负载电池和加速度计的范围,该加速度计将在真实的实验设置中实现。基于模拟的结果,称重电池的范围为48kN至238kN,而加速度计的范围为358至1250g。后来,负载与位移可用于预测每个机制的能量吸收。

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