Analytical assessment of dynamic response of fiber-reinforced polymer laminate on concrete wall under blast loads

被引:1
作者
Naiknimbalkar, Yashwardhan Pushkaraj [1 ]
Singh, Shamsher Bahadur [2 ]
Matsagar, Vasant Annasaheb [3 ]
机构
[1] Indian Inst Technol IIT Delhi, Dept Civil Engn, Multihazard Protect Struct MHPS Lab, New Delhi, India
[2] Birla Inst Technol & Sci BITS Pilani, Dept Civil Engn, Pilani, Rajasthan, India
[3] Indian Inst Technol IIT Delhi, Dept Civil Engn, New Delhi, India
来源
SADHANA-ACADEMY PROCEEDINGS IN ENGINEERING SCIENCES | 2024年 / 49卷 / 03期
关键词
Analytical solution; dynamic response; blast; classical laminate theory; hamilton's principle; fiber-reinforced polymer (FRP); COMPOSITE REINFORCEMENT;
D O I
10.1007/s12046-024-02563-3
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Composite laminates are increasingly used for blast-resistant applications in structures owing to the rise of such fanatic activities. For the safe and economical design of blast-resistant structures, it is necessary to study the influence of various laminate characteristics on their dynamic behavior. Here, the influence of design parameters of fiber-reinforced polymer (FRP) laminates in mitigating the dynamic response of a concrete wall when subjected to surface blast loads has been studied. Furthermore, a generalized analytical approach employing classical laminate theory has been presented to analyze the dynamic behavior of a concrete wall applied with the FRP laminate(s) under various explosion-induced load scenarios. It is found that the stacking sequence of the laminae and the number of layers in the laminate decrease the response by about 5% and 15% among the considered configuration, respectively. Moreover, using the FRP laminates reduce the dynamic response of the concrete wall by 18%. Through a detailed parametric study, it has also been observed that the center node displacement of the wall decreases with an increase in standoff distance, an increase in the thickness of the concrete wall, and a decrease in charge weight.
引用
收藏
页数:9
相关论文
共 14 条
  • [1] [Anonymous], ABAQUSSTANDARD USERS
  • [2] [Anonymous], 2022, MATLAB RELEASE 2022
  • [3] Birman V., 1987, International Journal of Impact Engineering, V6, P145, DOI [10.1016/0734-743X(87)90018-2, DOI 10.1016/0734-743X(87)90018-2]
  • [4] An Abridged Review of Blast Wave Parameters
    Goel, Manmohan Dass
    Matsagar, Vasant A.
    Gupta, Anil K.
    Marburg, Steffen
    [J]. DEFENCE SCIENCE JOURNAL, 2012, 62 (05) : 300 - 306
  • [5] Dynamic Response of Stiffened Plates under Air Blast
    Goel, Manmohan Dass
    Matsagar, Vasant A.
    Gupta, Anil K.
    [J]. INTERNATIONAL JOURNAL OF PROTECTIVE STRUCTURES, 2011, 2 (01) : 139 - 155
  • [6] Jain S., 2015, Indian Concr. J, V89, P27
  • [7] Jones RM, 1999, Mechanics of composite materials, V2nd
  • [8] Karlos V, 2013, Administrative Arrangement No JRC 32253-2011 with DG-HOME Activity A5 - Blast simulation technology development. EUR 26456
  • [9] Analysis of the blast wave decay coefficient using the Kingery-Bulmash data
    Karlos, Vasilis
    Solomos, George
    Larcher, Martin
    [J]. INTERNATIONAL JOURNAL OF PROTECTIVE STRUCTURES, 2016, 7 (03) : 409 - 429
  • [10] Kingery C N, 1984, Technical Report ARBRLTR02555