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A comprehensive experimental study on head trauma in a 3-year-old child due to unmanned aerial vehicle collisions Cover

A comprehensive experimental study on head trauma in a 3-year-old child due to unmanned aerial vehicle collisions

Open Access
|Mar 2024

References

  1. Bansal N., Aggarwal S., Tiwari P., A case report of drone injury and its relevance in India, Journal of Clinical Orthopaedics and Trauma, 2021, 19, 183–186.
  2. Bielawski R., RzĄdkowski W., Perz R., Unmanned Aerial Vehicles in the Protection of the Elements of a Countrys Critical Infrastructure – Selected Directions of Development, Secur. Def. Q., 2018, 22 (5), 3–19, DOI: 10.5604/01.3001.0012.6422.
  3. Campolettano E.T., Bland M.L., Gellner R.A., Sproule D.W., Rowson B., Tyson A.M., Rowson S., Ranges of injury risk associated with impact from unmanned aircraft systems, Annals of Biomedical Engineering, 2017, 45, 2733–2741.
  4. Chybowski L., Przetakiewicz W., Estimation of the Probability of Head Injury at a Given Abbreviated Injury Scale Level by Means of a Fuction of Head Injury Criterion, System Safety: Human-Technical Facility-Environment, 2020, 2 (1), 91–99.
  5. Davies J., Wallace W.A., Colton C., Tomlin O., Payne A., Kaynar Ö., The Head Injury Criteria and Future Accident Investigations, Proceedings of the International Society of Air Safety Investigators (ISASI), Annual Seminar, 2019.
  6. Deskiewicz A., Perz R., Agricultural aircraft wing slat tolerance for bird strike, Aircraft Engineering and Aerospace Technology, 2017, 89, 590–598, https://doi.org/10.1108/AEAT-11-2016-0220
  7. Germanetti F., Fiumarella D., Belingardi G., Scattina A., Injury Criteria for Vehicle Safety Assessment: A Review with a Focus Using Human Body Models, Vehicles, 2022, 4, 1080–1095, https://doi.org/10.3390/vehicles4040057
  8. Hazay M., Bojtar I., Evaluation of brain injury criteria based on reliability analysis, Acta Bioeng. Biomech., 2021, 23 (1), DOI: 10.37190/ABB-01755-2020-04.
  9. Hsu S.Y., Wu S.C., Rau C.S., Hsieh T.M., Liu H.T., Huang C.Y., Hsieh C.H., Impact of adapting the abbreviated injury scale (AIS)-2005 from AIS-1998 on injury severity scores and clinical outcome, International Journal of Environmental Research and Public Health, 2019, 16 (24), 5033.
  10. JastrzĘbski D., Perz R., Rib kinematics analysis in oblique and lateral impact tests, Acta of Bioengineering and Biomechanics, 2020, 22 (1), 1–9, DOI: 10.5604/01.3001.0053.7131.
  11. Joszko K., WolaŃski W., Burkacki W., SuchoŃ S., Zielonka K., MuszyŃski A., Gzik M., Biomechanical analysis of injuries of rally driver with head supporting device, Acta of Bioengineering and Biomechanics, 2016, 18 (4), 159–169, DOI: 10.5277/ABB-00633-2016-03.
  12. Khan A., Brown L., Recreational drone-related injuries in children: a review of National Electronic Injury Surveillance System (NEISS) data, Cureus, 2021, 13 (6).
  13. Kleinberger M., Sun E., Eppinger R., Kuppa S., Saul R., Development of improved injury criteria for the assessment of advanced automotive restraint systems, NHTSA Docket, 1998, 4405 (9), 12–17.
  14. Koh C.H., Low K.H., Li L., Zhao Y., Deng C., Tan S.K., Li X., Weight threshold estimation of falling UAVs (Unmanned Aerial Vehicles) based on impact energy, Transportation Research Part C: Emerging Technologies, 2018, 93, 228–255.
  15. Mariotti G.V., Golfo S., Nigrelli V., Carollo F., Head Injury Criterion: Mini Review, Am. J. Biomed. Sci. and Res., 2019, 5 (5), 406–407.
  16. Moskowitz E.E., Siegel-Richman Y.M., Hertner G., Schroeppel T., Aerial drone misadventure: A novel case of trauma resulting in ocular globe rupture, American Journal of Ophthalmology Case Reports, 2018, 10, 35–37.
  17. Nie J., Lv X., Huang X., Li K., Li G., Pedestrian dynamic response and injury risk in high speed vehicle crashes, Acta Bioeng. Biomech., 2022, 24 (3), DOI: 10.37190/ABB-02124-2022-02.
  18. Perz R., Implications of operator reliability on the risk of unmanned aircraft crashes, Journal of Konbin, 2023, 53 (2), 1–17, DOI: 10.5604/01.3001.0053.7131.
  19. Perz R., Wronowski K., UAV Application for Precision Agriculture, Aircraft Eng. Aerosp. Technol., 2018, 91 (2), 257–263, DOI: 10.1108/AEAT-01-2018-0056.
  20. Perz R., Wronowski K., Domanski R., DĄbrowski I., Case study of detection and monitoring of wildlife by UAVs equipped with RGB camera and TIR camera, Aircraft Engineering and Aerospace Technology, 2023, 95 (10), 1461–1469, https://doi.org/10.1108/AEAT-11-2022-0324
  21. Pierce M.C., Bertocci G., Injury biomechanics and child abuse, Annu. Rev. Biomed. Eng., 2008, 10, 85–106.
  22. Prasad P., Mertz H.J., The position of the United States delegation to the ISO Working Group 6 on the use of HIC in the automotive environment, SAE Transactions, 1985, 106–116.
  23. Qiu J., Li K., Xiang H., Xie J., Fan Z., Qin M., Biomechanical analysis of thorax-abdomen response of vehicle occupant under seat belt load considering different frontal crash pulses, Acta Bioeng. Biomech./, 2022, 24 (4), 31–38, DOI: 10.37190/ABB-02155-2022-02.
  24. Rattanagraikanakorn B., Gransden D.I., Schuurman M., De Wagter C., Blom H.A., Multibody system modelling of unmanned aircraft system collisions with the human head, International Journal of Crashworthiness, 2020, 25 (6), 689–707.
  25. Rattanagraikanakorn B., Schuurman M., Gransden D.I., Happee R., De Wagter C., Sharpanskykh A., Blom H.A., Modelling head injury due to unmanned aircraft systems collision: Crash dummy vs human body. International Journal of Crashworthiness, 2022, 27 (2), 400–413.
  26. Shelley A.V., A model of human harm from a falling unmanned aircraft: Implications for UAS regulation, International Journal of Aviation, Aeronautics, and Aerospace, 2016, 3 (3), 1.
  27. Shojaati M., Correlation between injury risk and impact severity index ASI, Proceedings of the 3rd Swiss Transport Research Conference, 2003, 19–21.
  28. Spitzer N., Singh J.K., Pediatric ocular trauma caused by recreational drones: two case reports. Journal of American Association for Pediatric Ophthalmology and Strabismus, 2018, 22 (3), 237–238.
  29. Stark D.B., Willis A.K., Eshelman Z., Kang Y.S., Ramachandra R., Bolte IV J.H., McCrink M., Human response and injury resulting from head impacts with unmanned, Aircraft Systems, 2020, No. 2019-22-0002, SAE Technical Paper.
  30. Svatý Z., Nouzovský L., MiČunek T., Frydrýn M., Evaluation of the drone-human collision consequences, Heliyon, 2022, 8 (11).
  31. ToboŁa W., Papis M., JastrzĘbski D., Perz R., Experimental research of energy absorbing structures within helmet samples made with the additive manufacturing method, Acta Bioeng. Biomech., 2023, 25 (1), 1–17, DOI: 10.37190/ABB-02226-2023-03.
  32. Wilde K., Tilsen A., BurzyŃski S., Witkowski W., On estimation of occupant safety in vehicular crashes into roadside obstacles using non-linear dynamic analysis, MATEC Web of Conferences, 2019, 285, 00022). EDP Sciences.
  33. Van Ditshuizen J.C., Sewalt C.A., Palmer C.S., Van de Schoot L., The definition of major trauma using different revisions of the abbreviated injury scale, Scandinavian Journal of Trauma, Resuscitation and Emergency Medicine, 2021, 29 (1), 71.
  34. Xiao S., Zhang L., Wu J., Liu X., Liu X., Zhang H., Characteristic research of lower extremity injuries in elderly pedestrians during collisions, Acta of Bioengineering & Biomechanics, 2022, 24 (4), DOI: 10.37190/ABB-02172-2022-05.
DOI: https://doi.org/10.37190/abb-02365-2023-03 | Journal eISSN: 2450-6303 | Journal ISSN: 1509-409X
Language: English
Page range: 121 - 132
Submitted on: Dec 20, 2023
Accepted on: Mar 12, 2024
Published on: Mar 12, 2024
Published by: Wroclaw University of Science and Technology
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2024 Rafał Perz, Igor Dąbrowski, Filip Zakrzewski, Michał Kuminiarczyk, Antoni Kopyt, published by Wroclaw University of Science and Technology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 License.