Simulation of blast lung injury induced by shock waves of five distances based on finite element modeling of a three-dimensional rat

被引:18
|
作者
Chang Yang [1 ]
Zhang Dong-hai [1 ]
Liu Ling-ying [1 ]
Yu Yong-hui [1 ]
Wu Yang [2 ]
Zang Li-wei [2 ]
Han Rui-guo [2 ]
Chai Jia-ke [1 ]
机构
[1] Peoples Liberat Army Gen Hosp, Dept Burn & Plast Surg, Burn & Plast Hosp, Med Ctr 4,Burns Inst, Beijing 100048, Peoples R China
[2] Sci & Technol Transient Impact Lab, Beijing 102202, Peoples R China
基金
北京市自然科学基金; 中国国家自然科学基金;
关键词
D O I
10.1038/s41598-019-40176-7
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Blast lung injury (BLI) caused by both military and civilian explosions has become the main cause of death for blast injury patients. By building three-dimensional (3D) models of rat explosion regions, we simulated the surface pressure of the skin and lung. The pressure distributions were performed at 5 distances from the detonation center to the center of the rat. When the distances were 40 cm, 50cm, 60 cm, 70 cm and 80cm, the maximum pressure of the body surface were 634.77kPa, 362.46kPa, 248.11kPa, 182.13kPa and 109.29kPa and the surfaces lung pressure ranges were 928-2916 Pa, 733-2254 Pa, 488-1236 Pa, 357-1189 Pa and 314-992 Pa. After setting 6 virtual points placed on the surface of each lung lobe model, simulated pressure measurement and corresponding pathological autopsies were then conducted to validate the accuracy of the modeling. For the both sides of the lung, when the distance were 40cm, 50 cm and 60 cm, the Pearson's values showed strong correlations. When the distances were 70cm and 80 cm, the Pearson's values showed weak linear correlations. This computational simulation provided dynamic anatomy as well as functional and biomechanical information.
引用
收藏
页数:13
相关论文
共 50 条
  • [21] Simulation of thermal oxidation: A three-dimensional finite element approach
    Hollauer, C
    Ceric, H
    Selberherr, S
    ESSDERC 2003: PROCEEDINGS OF THE 33RD EUROPEAN SOLID-STATE DEVICE RESEARCH CONFERENCE, 2003, : 383 - 386
  • [22] Automatic remeshing for three-dimensional finite element simulation of welding
    Lindgren, LE
    Haggblad, HA
    McDill, JMJ
    Oddy, AS
    COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 1997, 147 (3-4) : 401 - 409
  • [23] Simplified three-dimensional finite element simulation of tube spinning
    Ebihara, O
    Mori, K
    Akaishi, K
    SIMULATION OF MATERIALS PROCESSING: THEORY, METHODS AND APPLICATIONS, 2001, : 927 - 932
  • [24] Finite element simulation of three-dimensional shape memory devices
    Terriault, P
    Trochu, F
    SHAPE MEMORY ALLOYS: FUNDAMENTALS, MODELING AND INDUSTRIAL APPLICATIONS, 1999, : 111 - 126
  • [25] Three-dimensional finite element simulation of a polycrystalline copper specimen
    Musienko, A.
    Tatschl, A.
    Schmidegg, K.
    Kolednik, O.
    Pippan, R.
    Cailletaud, G.
    ACTA MATERIALIA, 2007, 55 (12) : 4121 - 4136
  • [26] Three-dimensional finite element simulation of curing of polymer composites
    Cheung, A
    Yu, Y
    Pochiraju, K
    FINITE ELEMENTS IN ANALYSIS AND DESIGN, 2004, 40 (08) : 895 - 912
  • [27] Three-dimensional Finite Element Simulation Analysis of Urban Footbridge
    Zheng, Hengxiang
    Yang, Guiqiang
    Wei, Kelun
    PROCEEDINGS OF THE 2015 INTERNATIONAL INDUSTRIAL INFORMATICS AND COMPUTER ENGINEERING CONFERENCE, 2015, : 1370 - 1373
  • [28] Three-dimensional finite-element simulation of bulge forming
    Ahmed, M
    Hashmi, MSJ
    JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2001, 119 (1-3) : 387 - 392
  • [29] Three-dimensional Modeling and Finite Element Analysis of the Hydraulic Support
    Li, Linghui
    Zheng, Xiaowen
    ADVANCES IN MANUFACTURING SCIENCE AND ENGINEERING, PTS 1-4, 2013, 712-715 : 1002 - 1005
  • [30] Three-dimensional finite element modeling of composite girder bridges
    Chung, WS
    Sotelino, ED
    ENGINEERING STRUCTURES, 2006, 28 (01) : 63 - 71