The Loading Discrepancies in CONWEP and Fluid-structure Interaction Methods and the Dynamic Response Characteristics of Masonry Wall

被引:0
|
作者
Shang Y. [1 ]
Xu X. [1 ]
Zhang D. [2 ]
Yang J. [1 ]
机构
[1] State Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, Beijing
[2] Aerospace Science and Industry Intelligent Operation and Information Security Research Institute Co., Ltd., Beijing
来源
Binggong Xuebao/Acta Armamentarii | 2023年 / 44卷 / 12期
关键词
CONWEP method; dynamic response characteristics; fluid-structure interaction; masonry wall;
D O I
10.12382/bgxb.2023.0285
中图分类号
学科分类号
摘要
The dynamic response behavior of masonry walls under large equivalent blast loading is investigated using a full-scale numerical model of windowed and windowless double-sided masonry walls, which is etablished by a cohesive zone method (CZM). A field experiment with a TNT equivalent of 500 kg and blast distance of 13 m is used as the basis for the study. The numerical simulations are carried out using two blast load application methods, conventional weapons effects program (CONWEP) and coupled-Eulerian-Lagrangian (CEL). The results indicate that the peak incident overpressures calculated by CONWEP and CEL methods are consistent with the experimental result compared to the swept overpressure data measured at the ground surface. However, the arrival time calculated by CEL method is 7. 1% earlier than the test, and the rise time is four times that of the test. On the other hand, the overpressure decay calculated by CONWEP method is slower, and the positive pressure time and impulse volume are 50. 7% and 42. 56% of the test, respectively. It can be seen by comparing the load curve differences of the two blast loading methods that the rise time of overpressure-time curve calculated by CONWEP method is always constant, but the arrival time and rise time of shock wave calculated by CEL method are affected by the distance from explosive source and mesh size, and the larger the distance from explosive source and mesh size are, the longer the rise time is. The differences in the spatial and temporal distributions of shock wave flow field are reflected in the ideal hemispherical shape of wavefront calculated by CONWEP method and the oblate spherical shape of wavefront loaded by CEL method. For the reflected overpressure peak applied to the wall, the peak of CONWEP method loading is larger in each region and the decay rate is the same in all directions, while the decay rate loaded by CEL method in the y (vertical) direction is greater than that in the z (horizontal) direction. In the study of progressive damage law of wall, CEL loading can simulate the local damage characteristics of the wall more accurately. Moreover, the final damage pattern of the wall under CEL loading is closer to that of the test, while CONWEP method has a greater degree of damage. © 2023 China Ordnance Society. All rights reserved.
引用
收藏
页码:3897 / 3908
页数:11
相关论文
共 26 条
  • [1] EDRI I E, YANKELEVSKY D Z, REMENNIKOV A M, Et al., Combined experimental and theoretical study on the blast response of arching masonry walls, International Journal of Impact Engineering, 174, (2023)
  • [2] CODINA R, AMBROSINI D., Experimental study of confined masonry walls under blast loading, Shock Waves, 32, 3, pp. 261-272, (2022)
  • [3] XIONG W., Experimental study and numerical simulation of local damage of unreinforced masonry under close-in explosion, (2016)
  • [4] LI Z, CHEN L, FANG Q, Et al., Experimental and numerical study on CFRP strip strengthened clay brick masonry walls subjected to vented gas explosions, International Journal of Impact Engineering, 129, pp. 66-79, (2019)
  • [5] WANG J G., Experimental and numerical investigation of clay brick masonry walls strengthened with spary polyurea elastomer under blast loads, (2017)
  • [6] ZHANG D., Research on the performance of FRP-PU reinforced clay brick masonry wall against dynamic load, (2021)
  • [7] JI L, WANG P, CAI Y E, Et al., Blast resistance of 240 mm building wall coated with polyurea elastomer, Material, 15, 3, (2022)
  • [8] SIELICKI P W, LODYGOWSKI T., Masonry wall behaviour under explosive loading, Engineering Failure Analysis, 104, pp. 274-291, (2019)
  • [9] WANG L Q, XIAO J., Numerical simulation study on explosion-proof performance and critical failure state of masonry filling wall, Journal of Safety and Environment, 22, 5, pp. 2461-2468, (2022)
  • [10] LI Z, LIU Y, HUANG F L, Et al., Investigation of specific impulse under connect explosion and close-in explosion conditions using numerical method, Transactions of Beijing Institute of Technology, 40, 2, pp. 143-149, (2020)