{"title":"Multi-Segment Crash Box Energy Absorption Ability Using Computer Simulation","authors":"H. Halman","doi":"10.46964/JTMP.V12I2.1348","DOIUrl":null,"url":null,"abstract":"Crash box is one of the passive safety components in vehicles, especially cars that are designed to reduce the occurrence of injuries to drivers and passengers due to collisions. This study aims to determine the energy absorption of the crash box with a multi-segment circular cross section. The research method used is quasi-experimental, namely by computer simulation using Finite Element Method-based software. The independent variable in this study is the location of the segment connection, including: 1/4, 1/3, and 1/2 of the total length of the crash box. While the dependent variables that are sought include: energy absorption, force reaction, and deformation patterns that occur in the crash box. The crash box will be hit by an impactor with a mass of 103 kg and a speed of 7.67 m/s. From the simulation results, the maximum energy absorption and force reaction values are found in the crash box at connection 1/2 of 1689.7 J and 67718 N, followed by connection 1/3 with values of 1221.2 J and 56127 N, and the last is at 1/4 connection is 1119.8 J and 55443 N. Judging from the deformation pattern, the connection at 1/4 and 1/3 is buckling so that the energy absorption is lower than the crash box at the 1/2 connection. It is concluded that the most optimal design of the crash box with a multi-segment circular cross section is the model at the 1/2 connection because it has the highest energy absorption value of the other 2 models and the deformation tends to be more stable.","PeriodicalId":261084,"journal":{"name":"MEDIA PERSPEKTIF : Journal of Technology","volume":"6 1","pages":"0"},"PeriodicalIF":0.0000,"publicationDate":"2021-03-29","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"MEDIA PERSPEKTIF : Journal of Technology","FirstCategoryId":"1085","ListUrlMain":"https://doi.org/10.46964/JTMP.V12I2.1348","RegionNum":0,"RegionCategory":null,"ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"","JCRName":"","Score":null,"Total":0}
引用次数: 0
Abstract
Crash box is one of the passive safety components in vehicles, especially cars that are designed to reduce the occurrence of injuries to drivers and passengers due to collisions. This study aims to determine the energy absorption of the crash box with a multi-segment circular cross section. The research method used is quasi-experimental, namely by computer simulation using Finite Element Method-based software. The independent variable in this study is the location of the segment connection, including: 1/4, 1/3, and 1/2 of the total length of the crash box. While the dependent variables that are sought include: energy absorption, force reaction, and deformation patterns that occur in the crash box. The crash box will be hit by an impactor with a mass of 103 kg and a speed of 7.67 m/s. From the simulation results, the maximum energy absorption and force reaction values are found in the crash box at connection 1/2 of 1689.7 J and 67718 N, followed by connection 1/3 with values of 1221.2 J and 56127 N, and the last is at 1/4 connection is 1119.8 J and 55443 N. Judging from the deformation pattern, the connection at 1/4 and 1/3 is buckling so that the energy absorption is lower than the crash box at the 1/2 connection. It is concluded that the most optimal design of the crash box with a multi-segment circular cross section is the model at the 1/2 connection because it has the highest energy absorption value of the other 2 models and the deformation tends to be more stable.
碰撞箱是车辆的被动安全部件之一,特别是为了减少碰撞对驾驶员和乘客造成伤害而设计的汽车。本研究旨在确定具有多段圆形截面的碰撞箱的能量吸收。研究方法采用准实验方法,即利用基于有限元法的软件进行计算机模拟。本研究的自变量为分段连接的位置,包括:碰撞箱总长度的1/4、1/3、1/2。而寻求的因变量包括:能量吸收、力反应和碰撞箱中发生的变形模式。撞击箱将被一个质量为103公斤、速度为7.67米/秒的撞击器撞击。从模拟结果来看,1/2连接处的碰撞箱吸能和反力值最大,分别为1689.7 J和67718 N, 1/3连接处吸能和反力值最大,分别为1221.2 J和56127 N, 1/4连接处吸能和反力值最小,分别为1119.8 J和55443 N。从变形规律来看,1/4连接处和1/3连接处发生屈曲,吸能小于1/2连接处的碰撞箱。结果表明,多段圆形截面碰撞箱的最优设计为1/2连接处的模型,因为该模型的能量吸收值最高,且变形趋于稳定。