Cite

1. Alghamdi A.A.A. (2001), Collapsible impact energy absorbers: an overview, Thin-Walled Struct, 39, 189-213.10.1016/S0263-8231(00)00048-3Search in Google Scholar

2.Darvizeh A., Meshkinzar A., Alitavol M., Rajabierhard R. (2017), Low velocity impact of empty and foam filled circumferentially grooved thick-walled circular tubes, Thin-Walled Struct., 110, 97-105.10.1016/j.tws.2016.09.002Search in Google Scholar

3. Ei-Sobky H., Singace A.A., Petsios R. . (2001), Mode of collapse and energy absorption characteristics of constrained frusta under axial impact loading. Int.J.Mech.Sci., 43, 743-757.10.1016/S0020-7403(00)00036-9Open DOISearch in Google Scholar

4. Ferdynus M., Kotełko M.,Kral J. (2018) Energy absorption capability numerical analysis of thin-walled prismatic tubes with corner dents under axial impact, accepted for publication, Maintenance and Reliability, v.20 (2), 248-25510.17531/ein.2018.2.10Search in Google Scholar

5. Ferdynus M., Kotełko M., Mołdawa A. (2016), Prismatic tubular thin-walled members as energy absorbers, chapter in Statics, dynamics and stability of structures, (series of monographs) ed. by R.J. Mania, Lodz University of Technology, 4, 178-195.Search in Google Scholar

6. Hanssen A.C., Langseth M., Hopperstad O.S. (2000), Static and dynamic crushing of circular aluminium extrusions with aluminium foam filler, International Journal of Impact Engineering, 24(5), 475–507.10.1016/S0734-743X(99)00170-0Search in Google Scholar

7. Jones N. (2003), Structural Impact, Cambridge University Press.Search in Google Scholar

8. Jones N. (2010), Energy absorbing effectiveness factor, Int. J. of Impact Engineering, 37, 754-765.10.1016/j.ijimpeng.2009.01.008Search in Google Scholar

9. Kotełko M. (2010), Load-capacity and mechanisms of failure of thin-walled structures (in Polish), WNT, Warszawa.Search in Google Scholar

10. Mołdawa A., Kotełko M. (2016), Impact behaviour of spot-welded thin-walled frusta, Acta Mechanica et Automatica, 10 (4), 280-28410.1515/ama-2016-0043Search in Google Scholar

11. Sarkabiri B., Jahan A., Rezvani M. (2015), Multi-objective crash-worthiness optimization of thin-walled conical groove tubes filled with polyurethane foam, 3 rd Polish Congress of Mechanics, 21 st International Conference of Computer Methods in Mechanics, 947-948.Search in Google Scholar

12. Zhang X., Cheng G., Zhang H. (2009), Numerical investigations on a new type of energy-absorbing structure based on free inversion of tubes, Int. J. of Mechanical Sciences, 51, 64-76.10.1016/j.ijmecsci.2008.11.001Search in Google Scholar

13. Zhe Y., You Y., Wei Y., Huang Ch. (2017), Crushing behaviour of a thin-walled circular tube with internal gradient grooves fabricated by SLM 3D printing, Thin-Walled Struct., 111, 1-8.10.1016/j.tws.2016.11.004Search in Google Scholar