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Finite element analysis of helmeted oblique impacts and head injury evaluation with a commercial road helmet

  • Fernandes, Fabio A.O. (TEMA Centre for Mechanical Technology and Automation, Department of Mechanical Engineering, University of Aveiro) ;
  • de Sousa, R.J. Alves (TEMA Centre for Mechanical Technology and Automation, Department of Mechanical Engineering, University of Aveiro)
  • Received : 2013.05.22
  • Accepted : 2013.11.01
  • Published : 2013.12.10

Abstract

In this work, the safety performance of a commercial motorcycle helmet already placed on the market is assessed. The assessed motorcycle helmet is currently homologated by several relevant motorcycle standards. Impacts including translational and rotational motions are accurately simulated through a finite element numerical framework. The developed model was validated against experimental results: firstly, a validation concerning the constitutive model for the expanded polystyrene, the material responsible for energy absorption during impact; secondly, a validation regarding the acceleration measured at the headform's centre of gravity during the linear impacts defined in the ECE R22.05 standard. Both were successfully validated. After model validation, an oblique impact was simulated and the results were compared against head injury thresholds in order to predict the resultant head injuries. From this comparison, it was concluded that brain injuries such as concussion and diffuse axonal injury may occur even with a helmet certified by the majority of the motorcycle helmet standards. Unfortunately, these standards currently do not contemplate rotational components of acceleration. Conclusion points out to a strong recommendation on the necessity of including rotational motion in forthcoming motorcycle helmet standards and improving the current test procedures and head injury criteria used by the standards, to improve the safety between the motorcyclists.

Keywords

References

  1. Aare, M. and von Holst, H. (2003), "Injuries from motorcycle and moped crashes in Sweden from 1987-1999", Inju. Contr. Safe. Prom., 10, 131-138. https://doi.org/10.1076/icsp.10.3.131.14556
  2. Aare, M., Kleiven, S. and Halldin, P. (2004), "Injury tolerances for oblique impact helmet testing",International Journal of Crashworthiness, 9(1), 15-23. https://doi.org/10.1533/ijcr.2004.0268
  3. Abaqus 6.10 documentation (2010), Hibbitt, Karlsson & Sorensen, Inc.
  4. ABNT, Associacao Brasileira de Normas Tecnicas (2001), Capacetes de motocicletas e similares, Technical Report NBR 7471:2001, Rio de Janeiro.
  5. Advani, S., Ommaya, A. and Yang, W. (1982), Head Injury Mechanisms, In Human Body Dynamics, Ed. Ghista, Oxford University Press, Oxford, United Kingdom.
  6. Alves de Sousa, R.J., Gonçalves, D.F.S., Coelho, R.M. and Teixeira-Dias, F.M.V.H. (2012), "Assessing the effectiveness of the use of a natural cellular material as safety padding in motorcycle helmet", Simul., T. Soc. Model. Simul. Int., 88(5), 579-590.
  7. ANSR, Autoridade Nacional Seguranca Rodoviaria (2010), Observatorio de Seguranca Rodoviaria, Sinistralidade Rodoviaria, Lisboa.
  8. ANSR, Autoridade Nacional Seguranca Rodoviaria (2011), Observatorio de Seguranca Rodoviaria, Sinistralidade Rodoviaria, Lisboa.
  9. Bain, B.C. and Meaney, D.F., (2000), "Tissue-level thresholds for axonal damage in an experimental model of central nervous system white matter injury", J. Biomech. Eng., 122 (6), 615-622. https://doi.org/10.1115/1.1324667
  10. CATIA V5 (2008), User Manual, Dassault Systems.
  11. Coelho, R.M., Alves de Sousa, R.J., Fernandes, F.A.O. and Teixeira-Dias, F.M.V.H. (2013), "New composite liners for energy absorption purposes", Mater. Des., 43, 384-392. https://doi.org/10.1016/j.matdes.2012.07.020
  12. COST327 (2001), Motorcycle safety helmets. Final report of the action, European Communities, Belgium.
  13. Davidsson, J., Angeria, M. and Risling, M.G. (2009), "Injury threshold for sagittal plane rotational induced diffuse axonal injuries", Proceedings of IRCOBI Conference, York, September.
  14. Di Landro, L., Sala, G. and Olivieri, D. (2002), "Deformation mechanisms and energy absorption of polystyrene foams for protective helmets", Poly. Test., 21, 217-228. https://doi.org/10.1016/S0142-9418(01)00073-3
  15. ECE Regulation 22.05 (2002), Uniform provision concerning the approval of protective helmets and their visors for driver and passengers of motor cycles and mopeds, United Nations, www.unece.org/fileadmin/DAM/trans/main/wp29/wp29regs/r022r4e.pdf.
  16. ERSO, European Road Safety Observatory (2012), Annual statistical report based on data from CARE/EC. Internet: http://ec.europa.eu/transport/road_safety/pdf/observatory/historical_evol.pdf
  17. Fernandes, F.A.O. and Alves de Sousa, R.J. (2013), "Motorcycle helmets - a state of the art review", Acc. Anal. Prev., 56, 1-21. https://doi.org/10.1016/j.aap.2013.03.011
  18. Fernandes, F.A.O., Alves de Sousa, R.J., Willinger, W. and Deck, C., (2013), "Finite element analysis of helmeted impacts and head injury evaluation with a commercial road helmet", Proceedings of IRCOBI Conference, Gothenburg, September.
  19. Fijalkowski, R.J., Stemper, B.D., Ellingson, B.M., Yoganandan, N., Pintar, F.A. and Gennarelli, T.A. (2006), "Inducing mild traumatic brain injury in the rodent through coronal plane angular acceleration", Proceedings of IRCOBI Conference, Madrid, September.
  20. Gennarelli, T.A. (1983), "Head injury in man and experimental animals: Clinical aspects", Acta Neurochirurgica Suppl., 32, 1-13. https://doi.org/10.1007/978-3-7091-4147-2_1
  21. Gennarelli, T.A., Pintar, F.A. and Yoganandan, N. (2003), "Biomechanical tolerances for diffuse brain injury and a hypothesis for genotypic variability in response to trauma", Proceedings of the 47th Annual Association for the Advancement of Automotive Medicine, 624-628.
  22. Lowenhielm, P. (1974), "Strain tolerance of the Vv. Cerebri Sup. (bridging veins) calculated from head-on collision tests with cadavers", Zeitschrift fur Rechtsmedizin, 75(2), 131-144. https://doi.org/10.1007/BF02114709
  23. Lowenhielm, P. (1975), "Mathematical simulation of gliding contusions", J. Biomech., 8, 351-356. https://doi.org/10.1016/0021-9290(75)90069-X
  24. King, A., Yang, K., Zhang, L., Hardy, W. and Viano, D. (2003), "Is head injury caused by linear or angular acceleration? ", Proceedings of IRCOBI Conference, Lisbon, September.
  25. Kleiven, S. and von Holst, H. (2003), "Review and evaluation of head injury criteria", Proceedings RTO Specialist Meeting, the NATO, Koblenz.
  26. Kleiven, S. (2007a), Head injury biomechanics and criteria, Biomechanics and Neuronics, Course Literature, KTH.
  27. Kleiven, S. (2007b), "Predictors for traumatic brain injuries evaluated through accident reconstructions", Proceedings of the 51th Stapp Car Crash Conference, 81-114.
  28. Margulies, S.S. and Thibault, L.E. (1992), "A proposed tolerance criterion for diffuse axonal injury in man", J. Biomech., 25(8), 917-923. https://doi.org/10.1016/0021-9290(92)90231-O
  29. Marjoux, D., Baumgartner, D., Deck, C. and Willinger, R. (2008), "Head injury prediction capability of the HIC, HIP, SIMon and ULP criteria", Acc. Anal. Prev., 40(3), 1135-1148. https://doi.org/10.1016/j.aap.2007.12.006
  30. Mellor, A. and StClair, V. (2005), "Advanced motorcycle helmets", Proceedings of the 19th International Technical Conference of the Enhanced Safety of Vehicles, Washington DC.
  31. Mills, N.J., Wilkes, S., Derler, S. and Flisch, A. (2009), "FEA of oblique impact tests on a motorcycle helmet", Int. J. Impact Eng., 36, 913-925. https://doi.org/10.1016/j.ijimpeng.2008.12.011
  32. Morrison, III, B., Cater, H.L., Wang, C.C.B., Thomas, F.C., Hung, C.T., Ateshian, G.A. and Sundström, L.E. (2003), "A tissue level tolerance criterion for living brain developed in an in vitro model of traumatic mechanical loading", Proceedings of 47th Stapp Car Crash Conference, SAE Paper No. 2003-22-0006.
  33. Newman, J.A. (1986), "A generalized model for brain injury threshold (GAMBIT)", Proceedings of IRCOBI Conference, Zurich, September.
  34. Newman, J., Barr, C., Beusenberg, M., Fournier, E., Shewchenko, N., Welbourne, E. and Withnall, C. (2000a), "A new biomechanical assessment of mild traumatic brain injury part 2 - results and conclusions", Proceedings of IRCOBI Conference, Montpellier, September.
  35. Newman, J.A., Shewchenko, N. and Welbourne, E. (2000b), "A New Biomechanical Head Injury Assessment Function: The Maximum Power Index", Stapp Car Crash J., 44, 215-247.
  36. Newman, J. (2005), "The biomechanics of head trauma and the development of the modern helmet. How far have we really come?", Proceedings of the IRCOBI Conference, Prague, September.
  37. Ommaya, A.K., Hirsch, A.E., Harris, E. and Yarnell, P. (1967), "Scaling of experimental data in cerebral concussion in sub-human primates to concussive threshold for man", Proceedings of the 11th Stapp Car Crash Conference, New York, October.
  38. Ommaya, A.K. (1985), Biomechanics Of Head Injury: Experimental Aspects, Biomechanics of Trauma, Eds. Nahum, A.M., Melvis, J.W., Appleton-Century-Crofts, Norwalk.
  39. Otte, D., Chinn, B., Doyle, D., Mäkitupa, S., Sturrock, K. and Schuller E. (1999), Contribution to Final Report of COST 327 Project, University of Hannover.
  40. Ouellet, S., Cronin, D. and Worswick, M. (2006), "Compressive response of polymeric foams under quasistatic, medium and high strain rate conditions", Poly. Test., 25(6), 731-743. https://doi.org/10.1016/j.polymertesting.2006.05.005
  41. Shreiber, D.I., Bain, A.C. and Meaney D.F. (1997), "In vivo thresholds for mechanical injury to the bloodbrain barrier", Proceedings of 41th Stapp Car Crash Conference, Society of Automotive Engineers.
  42. Shuaeib, F.M., Hamouda, A.M.S, Hamdan, M.M., Radin Umar, R.S. and Hashmi, M.S.J. (2002), "Motorcycle helmet: part II, materials and design issues", J. Mater. Proc. Tech., 123, 422-431. https://doi.org/10.1016/S0924-0136(02)00047-X
  43. Thibault, L.E., Gennarelli, T.A., Margulies, S.S., Marcus, J. and Eppinger, R. (1990), "The strain dependant pathophysiological consequences of inertial loading on central nervous system tissue", Proceedings of IRCOBI Conference, September.
  44. Thomson, R., Lovsund, P., Norin, H., Jakobsson, L., Boström, O. and Haland, Y. (2001), "Brain injuries in real world accidents - a multidisciplinary investigation", Proceedings of IRCOBI Conference, Isle of Man, September.
  45. U.S. Department of Transportation, Federal Motor Carrier Safety Administration, Standard No. 218, Motorcycle helmets, Regulations current to 29/02/2012, http://www.fmcsa.dot.gov/rulesregulations/ administration/fmcsr/fmcsrruletext.aspx?reg=571.218 26/03/2012.
  46. Ueno, K. and Melvin, J.W. (1995), "Finite element model study of head impact based on hybrid III head acceleration: The effects of rotational and translational acceleration", J. Biomech. Eng., 117(3), 319-328. https://doi.org/10.1115/1.2794187
  47. Vallee, H., Hartemann, F., Thomas, C., Tarriere, C., Patel, A. and Got, C. (1984), "The fracturing of helmet shells", Proceedings of IRCOBI Conference, Delft, September.
  48. WHO (2009), Global status report on road safety: time for action, The World Health Organization, Geneva, http://www.who.int/violence_injury_prevention/publications/road_traffic/world_report/en/index.html.
  49. Wright, R.M. and Ramesh, K.T. (2012), "An axonal strain injury criterion for traumatic brain injury", Biomech. Model. Mech., 11, 245-260. https://doi.org/10.1007/s10237-011-0307-1
  50. Zhang, L., Yang, K. and King, A. (2004), "A proposed injury threshold for mild traumatic brain injury", J. Biomech. Eng., 126(2), 226-236. https://doi.org/10.1115/1.1691446

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