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Original Articles

A concept for mitigating head injury under translational blunt impact

, &
Pages 483-494 | Received 22 Oct 2014, Accepted 03 Apr 2015, Published online: 28 May 2015

References

  • M.R. Begley and F.W. Zok, Optimal material properties for mitigating brain injury during head impact, J. Appl. Mech. 81 (2013), pp. 031014-031014-5.
  • A. Cazon and A. Suescun, Head injuries due to unrestrained objects during frontal collisions, Int. J. Crashworthiness 15 (2010), pp. 39–48.
  • C.Z. Cory and M.D. Jones, Development of a simulation system for performing in situ surface tests to assess the potential severity of head impacts from alleged childhood short falls, Forensic Sci. Int. 163 (2006), pp. 102–114.
  • C. Deck and R. Willinger, Improved head injury criteria based on head FE model, Int. J. Crashworthiness 13 (2008), pp. 667–678.
  • R.L. Deweese and D.M. Moorcroft, Evaluation of a Head Injury Criteria Component Test Device, Report No. DOT/FAA/AM-18, Department of Transportation,Washington, DC, 2004.
  • A.M. Eiband, Human tolerance to rapidly applied accelerations: A summary of the literature, NASA Memo. 5-19-59E (1959).
  • Federal Aviation Administration, Federal Aviation Regulations, Part 25 – Airworthiness Standards: Transport Category Airplanes, SFAR No. 109, Taylor & Francis, Washington, DC, 2014.
  • Y. Feng, R.J. Okamoto, R. Namani, G.M. Genin, and P.V. Bayly, Measurements of mechanical anisotropy in brain tissue and implications for transversely isotropic material models of white matter, J. Mech. Behav. Biomed. Mater. 23 (2013), pp. 117–132.
  • C. Fremgen, L. Mkrtchyan, U. Huber, and M. Maier, Modeling and testing of energy absorbing lightweight materials and structures for automotive applications, Sci. Technol. Adv. Mater. 6 (2005), pp. 883–888.
  • S.I. Fuhrman, P.E. Karg, and G.E. Bertocci, Effect of wheelchair headrest use on pediatric head and neck injury risk outcomes during rear impact, Accident Anal. Prevention 40 (2008), pp. 1595–603.
  • C.W. Gadd, Use of a weighted-impulse criterion for estimating injury hazard, Proceedings of the 10th Stapp Car Crash Conference, Taylor & Francis, New York, NY, 1966, pp. 164–174.
  • R.M. Greenwald, J.T. Gwin, J.J. Chu, and J.J. Crisco, Head impact severity measures for evaluating mild traumatic brain injury risk exposure, Neurosurgery 62 (2008), pp. 789–798.
  • E.S. Gurdjian, H.R. Lissner, F.R. Latimerr, B.F. Haddad, and J.E. Webster, Quantitative determination of acceleration and intercranial pressure in experimental head injury, Neurology 3 (1983), pp. 417–423.
  • E.S. Gurdjian, V.L. Roberts, and L.M. Thomas, Tolerance curves of acceleration and intracranial pressure protective index in experimental head injury, J. Trauma 6 (1966), pp. 600–604.
  • Insurance Institute for Highway Safety, Moderate Overlap Frontal Crashworthiness Evaluation: Guidelines for Rating Injury Measures, Taylor & Francis, Arlington, VA, 2014.
  • T. Kapoor, W. Altenhof, A. Howard, A. Snowdon, J. Rasico, F. Zhu, and K. Mizuno, Countermeasures to mitigate head and neck injuries to toddlers in frontal and lateral vehicle crash conditions, Int. J. Crashworthiness 15 (2010), pp. 17–37.
  • H. Kimpara and M. Iwamoto, Mild traumatic brain injury predictors based on angular accelerations during impacts, Ann. Biomed. Eng. 40 (2012), pp. 114–126.
  • S. Kleiven, Evaluation of head injury criteria using a finite element model validated against experiments on localized brain motion, intracerebral acceleration, and intracranial pressure, Int. J. Crashworthiness 11 (2006), pp. 65–79.
  • S. Kleiven, A parametric study of energy absorbing foams for head injury prevention, Proceedings of the 20th Interational Technical Conference on Enhanced Safety of Vehicles, 2007, pp. 18–21.
  • B.R. Kretz, K. Hausberger, B. Götzinger, and S.F. Ag, Energy-absorbing behavior of aluminum foams : Head impact tests on the a-pillar of a car, Adv Eng Mater. 4 (2002), pp. 781–785.
  • L.M. Lewis, R.S. Naunheim, J. Standeven, and K.S. Naunheim, Quantitation of impact attenuation of different playground surfaces under various environmental conditions using a tri-axial accelerometer, J. Trauma 35 (1993), pp. 932–935.
  • S.S. Margulies and L.E. Thibault, A proposed tolerance criterion for diffuse axonal injury in man, J. Biomech. 25 (1992), pp. 917–923.
  • D. Marjoux, D. Baumgartner, C. Deck, and R. Willinger, Head injury prediction capability of the HIC, HIP, SIMon and ULP criteria, Accident Anal. Prevention 40 (2008), pp. 1135–1148.
  • W.C. Moss and M.J. King, Impact response of US Army and National Football League helmet pad systems, Lawrence Livermore National Labs Special Report LLNL-SR-464951, 2011.
  • N.J. Mills, C. Fitzgerald, A. Gilchrist, and R. Verdejo, Polymer foams for personal protection: Cushions, shoes and helmets, Compos. Sci. Technol. 63 (2003), pp. 2389–2400.
  • R.S. Naunheim, J. Standeven, C. Richter, and L.M. Lewis, Comparison of impact data in hockey, football, and soccer, J. Trauma 48 (2000), pp. 938–941.
  • J.A. Newman, N. Shewchenko, and E. Welbourne, A proposed new biomechanical head injury assessment function – the maximum power index, Stapp Car Crash J. 44 (2000), pp. 1–33.
  • E.J. Pellman, D.C. Viano, A.M. Tucker, I.R. Casson, and J.F. Waeckerle, Concussion in professional football: Reconstruction of game impacts and injuries, Neurosurgery 53 (2003), pp. 799–814.
  • J.S. Raul, D. Baumgartner, R. Willinger, and B. Ludes, Finite element modelling of human head injuries caused by a fall, Int. J. Legal Med. 120 (2006), pp. 212–8.
  • A.A. Sabet, E. Christoforou, B. Zatlin, G.M. Genin, and P.V. Bayly, Deformation of the human brain induced by mild angular head acceleration, J. Biomech. 41 (2008), pp. 307–315.
  • B. Shields and G.A. Smith, The potential for brain injury on selected surfaces used by cheerleaders, J. Athletic Training 44 (2009), pp. 595–602.
  • E.G. Takhounts, M.J. Craig, K. Moorhouse, and J. Mcfadden, Development of Brain Injury Criteria (BrIC), Stapp Car Crash J. 57 (2010), pp. 243–266.
  • U.S. Department of Transportation, Federal Motor Vehicle Safety Standards, Standard 208, Washington, DC, 2014.
  • J. Versace, A review of the severity index, Proceedings of the 15th Stapp Car Crash Conference (SAE Paper 710881), 1971.
  • M. Vander Vorst, J. Stuhmiller, K. Ho, N. Yoganandan, and F. Pintar, Statistically and biomechanically based criterion for impact-induced skull fracture, Annu. Proc. Assoc. Advancement Automotive Med. 47 (2003), pp. 363–381.
  • R. Willinger and D. Baumgartner, Human head tolerance limits to specific injury mechanisms, Int. J. Crashworthiness 8 (2003), pp. 605–617.
  • S. Yin, A.J. Jacobsen, L. Wu, and S.R. Nutt, Inertial stabilization of flexible polymer micro-lattice materials, J. Mater. Sci. 48 (2013), pp. 6558–6566.
  • J. Zhang, N. Yoganandan, and F.a. Pintar, Dynamic biomechanics of the human head in lateral impacts, Ann. Adv. Automotive Med. 53 (2009), pp. 249–56.
  • L. Zhang, M. Gurao, K.H. Yang, and A.I. King, Material characterization and computer model simulation of low density polyurethane foam used in a rodent traumatic brain injury model, J. Neurosci. Methods 198 (2011), pp. 93–98.
  • W. Zhao, S. Ruan, and S. Ji, Brain pressure responses in translational head impact: A dimensional analysis and a further computational study, Biomech. Model. Mechanobiol. (2014). doi:10.1007/s10237-014-0634-0
  • ASTM Standard F1292, Standard Specification for Impact Attenuation of Surfacing Materials within the Use Zone of Playground Equipment, Taylor & Francis, West Conshohocken, PA, 2009.

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