Simulation modeling on crashworthiness tube as passive safety technology base on FEM software (finite element method)
DOI:
https://doi.org/10.54706/senastindo.v3.2021.124Keywords:
Energy absorbing tube, Crash box, Passive safety, Finite element methodAbstract
A crash box is one of the absolute safeties in transportation that functions as a means of
absorbing impact energy to reduce injuries to drivers and passengers due to collisions or accidents. This study aims to determine the value of energy absorption and the resulting deformation pattern on the crash box in the form of a one-segment circular tube. The method in this study uses a quasiexperimental using finite element-based simulation software (finite element method). The variables in this study include a tube length of 300 mm with variations in the thickness of 1,5 mm and 3 mm and a tube diameter of 120 mm. A quasi-static collision test will be carried out with an impactor with a mass of 200 kg and a speed of 10 m/s. The simulation on the crash box is observed based on the value of energy absorption, reaction force, and the formed deformation pattern. The simulation results show that the highest energy absorption value is found in the 3 mm thick crash box of 790000 Joules. The reaction force of 230000 N. It can be seen that the deformation pattern formed tends to bend in the 1,5 mm thick crash box and forms a concertina pattern on the thick crash box is 3 mm..
Downloads
References
Reinforced Thermoset Polymer Composite in Energy Absorption Tube Application: A Review.”
Defence Technology 14 (4): 291–305. https://doi.org/10.1016/j.dt.2018.04.004.
Velmurugan., dan Muralikanan. (2009): Energy Absorption Characteristics of Annealed Steel Tubes Of various Cross Sections in Static And Dynamic Loading. Latin American Journal Of Solids And Structutres, Volume. 6, 2009 : 385 – 412.
Astuti SW, Wirawan WA, Zulkarnain A, Istiantara DT (2019), Comparison of energy absorption and pattern of deformation material crash box of three segments with bilinear and Johnson Cook approach Journal of Physics: Conference Series 1273 1 https://doi.org/10.1088/1742-6596/1273/1/012078
Choiron MA Sudjito S Hidayati NA (2016), Crash energy absorption of two-segment crash box with holes under frontal load AIP Conference Proceedings 1717 050009
L. Morello. L.R. Rossini, G. Pia, A. Tonoli, 2011, The Automotive Body: Volume II: System Design, Springer Science & Business Media, Berlin
M. Agus Choiron., dkk. (2015): Analisis Penyerapan Energi Dan Pola Deformasi Crash Box Dengan Variasi Sudut Tirus Dinding Crash Box Pada Uji Simulasi Tabrakan Arah Frontal. Malang : Jurnal Rekayasa Mesin Vol. 6, No 1 Tahun 2015 : 75-83.
J. Tanaskovic., dkk. (2014): Experimental Investigations Of The Shrinking – Splitting Tube Collision Energy Absorber, Journal Thin – Walled Structures. University of Belgrade, faculty of Mechanical Engineering, kralije, marije 16, belgrade, Serbia.
Rusinek A, R. Zaera, P. Forquin and J.R. Klepaczko, 2008, Effect of plastic deformation and boundary conditions combined with elastic wave propagation on the collapse site of a crash box. Laboratory of physics and mechanics of materials, France.
Wirawan WA Zulkarnain A Wahjono HB Jamaludin Damayanti AT 2019 The effect of material exposure variations on energy absorption capability and pattern of deformation material of crash box of three segments Journal of Physics: Conference Series 1273 1 https://doi.org/10.1088/1742-6596/1273/1/012081
X. Zhang, and You, Z., (2014), Energy absorption of thin-walled square tubes with a prefolded origami pattern-part I: geometry and numerical simulation. Journal of applied mechanics vol. 81.
X. Zhang, G. Cheng, Z. You, H. Zhang, (2007), Energy absorption of axially compressed thinwalled square tubes with patterns, Thin-Walled Struct. 45. 737-746