Influence of Muscle Contraction on Pedestrian Injury in Pickup-Truck Collision
Abstract
Keywords
[1] World Health Organization, Global Status Report on Road Safety 2018. Geneva, Switzerland: World Health Organization, 2018.
[2] Department of Land Transport. “Transport Statistics Report 2020.” Bangkok, Thailand, 2021. [Online]. Available: www.dlt.go.th/statistics/
[3] Office of Transport and Traffic Policy and Planning. “Summary of the Survey Results on the Average Speed of Private Cars in Bangkok in 2020.” Bangkok, Thailand, 2021. [Online]. Available: https://www.otp.go.th/post/view/4505
[4] T. Maeno and J. Hasegawa, “Development of a finite element model of the total human model for safety (THUMS) and application to car–pedestrian impacts,” presented at the 17th International Technical Conference on the Enhanced Safety of Vehicles, Amsterdam, Netherlands, Jun. 4–7, 2001.
[5] S. Robin, “HUMOS: Human model for safety — A joint effort towards the development of refined human-like car occupant models,” presented at the 17th International Technical Conference on the Enhanced Safety of Vehicles, Amsterdam, Netherlands, Jun. 4–7, 2001.
[6] J. Combest, “Current status and future plans of the GHBMC (Global Human Body Models Consortium),” presented at the 7th International Symposium on Human Modelling and Simulation in Automotive Engineering, Oct. 18–19, 2018.
[7] W. C. Bowman, A. A. J. Goldberg, and C. Raper, “A comparison between the effects of a tetanus and the effects of sympathomimetic amines on fast and slow contracting mammalian muscles,” British Journal of Pharmacology, vol. 19, pp. 464–484, 1962.
[8] V. S. Alvarez, M. Fahlstedt, P. Halldin, and S. Kleiven, “Importance of neck muscle tonus in head kinematics during pedestrian accidents,” presented at the International Research Council on Biomechanics of Injury, Gothenburg, Sweden, Sept. 11–13, 2013.
[9] S. Hedenstierna, P. Halldin, and K. Brolin, “Development and evaluation of a continuum neck muscle model,” presented at the 6th European LS-DYNA Users Conference, Gothenburg, Sweden, 2007.
[10] M. Iwamoto and Y. Nakahira, “A preliminary study to investigate muscular effects for pedestrian kinematics and injuries using active THUMS,” presented at the International Research Council on Biomechanics of Injury, Berlin, Germany, Sept. 10–12, 2014.
[11] A. Soni, A. Chawla, S. Mukherjee, and R. Malhotra, “Response of lower extremity in car–pedestrian impact – Influence of muscle contraction,” presented at the International Research Council on Biomechanics of Injury, Bern, Switzerland, Sept. 17–19, 2008.
[12] I. P. A. Putra et al., “Finite element human body models with active reflexive muscles suitable for sex-based whiplash injury prediction,” Frontiers in Bioengineering and Biotechnology, vol. 10, 2022, doi: 10.3389/fbioe.2022.968939.
[13] Toyota Motor Corporation, THUMS Documentation – AM50 Pedestrian/Occupant Model Academic Version 4.0, Oct. 2011.
[14] N. Mitsuhashi et al., “BodyParts3D: 3D structure database for anatomical concepts,” Nucleic Acids Research, vol. 37, pp. D782–D785, 2009.
[15] T. Nagaoka et al., “Development of realistic high-resolution whole-body voxel models of Japanese adult males and females of average height and weight, and application of models to radio-frequency electromagnetic-field dosimetry,” Physics in Medicine & Biology, vol. 49, pp. 1–15, 2004.
[16] C. Gans, “Fiber architecture and muscle function,” Exercise and Sport Sciences Reviews, vol. 10, pp. 160–207, 1982.
[17] S. C. Bodine et al., “Architectural, histochemical, and contractile characteristics of a unique biarticular muscle: The cat semitendinosus,” Journal of Neurophysiology, vol. 48, pp. 192–201, 1982.
[18] R. J. Maughan, J. Watson, and J. Weir, “Strength and cross-sectional area of human skeletal muscle,” Journal of Physiology, vol. 338, pp. 37–49, 1983.
[19] D. Lee et al., “A three-dimensional approach to pennation angle estimation for human skeletal muscle,” Computer Methods in Biomechanics and Biomedical Engineering, pp. 1–11, 2014.
[20] S. R. Ward et al., “Are current measurements of lower extremity muscle architecture accurate?,” Clinical Orthopaedics and Related Research, vol. 467, pp. 1074–1082, 2009.
[21] E. M. Arnold et al., “A model of the lower limb for analysis of human movement,” Annals of Biomedical Engineering, vol. 38, pp. 269–279, 2010, doi: 10.1007/s10439-009-9852-5.
[22] R. L. Lieber, Skeletal Muscle Structure, Function, and Plasticity: The Physiological Basis of Rehabilitation. Baltimore, MD: Lippincott Williams & Wilkins, 2002.
[23] R. A. Brand et al., “A model of lower extremity muscular anatomy,” Journal of Biomechanical Engineering, vol. 104, pp. 304–310, 1982.
[24] S. L. Delp et al., “An interactive graphics-based model of the lower extremity to study orthopaedic surgical procedures,” IEEE Transactions on Biomedical Engineering, vol. 37, pp. 757–767, 1990.
[25] J. A. Friederich and R. A. Brand, “Muscle fiber architecture in the human lower limb,” Journal of Biomechanics, vol. 23, pp. 91–95, 1990.
[26] M. D. K. Horsman, “The twente lower extremity model: Consistent dynamic simulation of the human locomotor apparatus,” Ph.D. dissertation, University of Twente, Enschede, Netherlands, 2007.
[27] A. V. Hill, “The heat of shortening and the dynamic constants of muscle,” Proceedings of the Royal Society of London. Series B, Biological Sciences, vol. 126, no. 843, pp. 136–195, 1938.
[28] Y. Yongtaou, “Soft tissue modelling and facial movement simulation using finite element method,” Ph.D. dissertation, Cardiff University, Cardiff, U.K., 2010.
[29] National Crash Analysis Center, “Finite Element Model of C1500 Pickup Truck, Model Year 1994, Version 7,” Washington, DC: The George Washington University, Federal Highway Administration and National Highway Traffic Safety Administration, U.S. Department of Transportation, 2008.
[30] Y. Han et al., “Finite element analysis of kinematic behaviour and injuries to pedestrians in vehicle collisions,” International Journal of Crashworthiness, vol. 17, pp. 141–152, 2011.
[31] Y. Han et al., “Effects of vehicle impact velocity and vehicle front-end shapes on pedestrian injury risk,” Traffic Injury Prevention, vol. 13, pp. 507–518, 2012.
[32] O. Tikkanen et al., “Muscle activity and inactivity periods during normal daily life,” PLoS ONE, vol. 8, no. 1, 2013, doi: 10.1371/ journal.pone.0052228.
[33] L. Martínez et al., “Influence of vehicle shape and stiffness on the pedestrian lower extremity injuries: Review of current pedestrian lower leg test procedure,” presented at the International Research Council on Biomechanics of Injury, Berlin, Germany, Sep. 10–12, 2008.
[34] European New Car Assessment Programme (Euro NCAP), “Assessment Protocol – Vulnerable Road User Protection, Version 11.4,” 2023.DOI: 10.14416/j.asep.2025.12.001
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