Numerical assessment of the human body response to a ground-level explosion

被引:12
作者
Sielicki, Piotr W. [1 ]
Gajewski, Tomasz [1 ]
机构
[1] Poznan Univ Tech, Inst Struct Engn, Poznan, Poland
关键词
blast loading; body motion; explosive safety; numerical analysis; HUMAN HEAD; BLAST; SIMULATION; MODEL; PROPAGATION; CONTACT;
D O I
10.1080/10255842.2018.1544628
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
This paper presents the results of a numerical analysis of the behaviour of a human body after a ground-level explosion. The explosions were generated by condensed charges for different stand-off distances and various masses of explosive. The detonations points were located at distances of 1.0 and 2.0 meters from the dummy (human model) obstacle. The different masses of spherically-shaped TNT charges (0.4-1.0 kg) were initiated centrally. The blast wave propagation was generated using a coupled numerical design, which included Eulerian and Lagrangian descriptions for different domains, i.e. the dummy, air, and explosive domains. The main objective of this work was to present the actual pressures and accelerations around the dummy and the body motion caused by the rapid shock of the pressure action. Reaction forces and moments of anatomical joints were provided. Furthermore, the safety criteria presented in the official standards were compared to the simulation results. In this research, different positions against the loading masses were analysed. In each analysis the same standing human model was used. The dummy geometry was based on a medium size male (1.79 m, 84.8 kg). The human body was modelled as consisting of separate, rigid parts (with adequate masses and inertia moments) connected by joints exhibiting nonlinear behaviour. Anatomical ranges of motion were taken into consideration, and a dedicated numerical technique was proposed to model the resistance moment vs. the range of motion relations for the most important human body joints.
引用
收藏
页码:180 / 205
页数:26
相关论文
共 42 条
  • [11] Gerhardt JJ, 1975, TECH REP
  • [12] Biomechanical model of the thorax under blast loading: a three dimensional numerical study
    Goumtcha, Aristide Awoukeng
    Thoral-Pierre, Karine
    Roth, Sebastien
    [J]. INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN BIOMEDICAL ENGINEERING, 2014, 30 (12) : 1667 - 1678
  • [13] Gupta R, 2015, P INT C COMP METH, V2
  • [14] Gupta RK., 2017, Def Life Sci J, V2, P3, DOI [10.14429/dlsj.2.10369, DOI 10.14429/DLSJ.2.10369, DOI 10.14429/dlsj.2.10369]
  • [15] Primary blast waves induced brain dynamics influenced by head orientations
    Hua Y.
    Wang Y.
    Gu L.
    [J]. Biomedical Engineering Letters, 2017, 7 (3) : 253 - 259
  • [16] Computational biomechanics of human brain with and without the inclusion of the body under different blast orientation
    Jazi, Mehdi Salimi
    Rezaei, Asghar
    Azarmi, Fardad
    Ziejewski, Mariusz
    Karami, Ghodrat
    [J]. COMPUTER METHODS IN BIOMECHANICS AND BIOMEDICAL ENGINEERING, 2016, 19 (09) : 1019 - 1031
  • [17] Kaleps I, 1987, TECH REP
  • [18] Kennedy, 1946, EFFECTS IMPACT EXPLO, V1
  • [19] Kingery C.N., 1984, Airblast parameters from TNT spherical air burst and hemispherical surface burst
  • [20] Polish 2010 growth references for school-aged children and adolescents
    Kulaga, Zbigniew
    Litwin, Mieczyslaw
    Tkaczyk, Marcin
    Palczewska, Iwona
    Zajaczkowska, Malgorzata
    Zwolinska, Danuta
    Krynicki, Tomasz
    Wasilewska, Anna
    Moczulska, Anna
    Morawiec-Knysak, Aurelia
    Barwicka, Katarzyna
    Grajda, Aneta
    Gurzkowska, Beata
    Napieralska, Ewelina
    Pan, Huiqi
    [J]. EUROPEAN JOURNAL OF PEDIATRICS, 2011, 170 (05) : 599 - 609