Assessment of the ballistic response of honeycomb sandwich structures subjected to offset and normal impact

被引:0
作者
Nikhil Khaire [1 ]
Gaurav Tiwari [2 ]
Vivek Patel [3 ]
M.A.Iqbal [4 ]
机构
[1] Department of Mechanical Engineering, Indian Institute of Technology Delhi
[2] Department of Mechanical Engineering, Visvesvaraya National Institute of Technology
[3] School of Mechanical Engineering, Dr.Vishwanath Karad MIT World Peace University
[4] Department of Civil Engineering, Indian Institute of Technology Roorkee
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中图分类号
TB383.4 [];
学科分类号
070205 ; 080501 ; 1406 ;
摘要
In the present study, experimental and numerical investigations were carried out to examine the behavior of sandwich panels with honeycomb cores. The high velocity impact tests were carried out using a compressed air gun. A sharp conical nosed projectile was impacted normally and with some offset distance(20 mm and 40 mm). The deformation, failure mode and energy dissipation characteristics were obtained for both kinds of loading. Moreover, the explicit solver was run in Abaqus to create the finite element model. The numerically obtained test results were compared with the experimental to check the accuracy of the modelling. The numerical result was further employed to obtain strain energy dissipation in each element by externally running user-defined code in Abaqus. Furthermore, the influence of inscribe circle diameter and cell wall and face sheet thickness on the energy dissipation,deformation and failure mode was examined. The result found that ballistic resistance and deformation were higher against offset impact compared to the normal impact loading. Sandwich panel impacted at 40 mm offset distance required 3 m/s and 1.9 m/s more velocity than 0 and 20 mm offset distance. Also,increasing the face sheet and wall thickness had a positive impact on the ballistic resistance in terms of a higher ballistic limit and energy absorption. However, inscribe circle diameter had a negative influence on the ballistic resistance. Also, the geometrical parameters of the sandwich structure had a significant influence on the energy dissipation in the different deformation directions. The energy dissipation in plastic work was highest for circumferential direction, regardless of impact condition followed by tangential, radial and axial directions.
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页码:56 / 73
页数:18
相关论文
共 24 条
  • [1] Ballistic performance and energy dissipation characteristics of cylindrical honeycomb sandwich structure.[J].Tiwari Gaurav;Khaire Nikhil.International Journal of Impact Engineering.2022,
  • [2] Perforation and energy dissipation behaviour of honeycomb core cylindrical sandwich shell subjected to conical shape projectile at high velocity impact.[J].Khaire Nikhil;Tiwari G.;Rathod Saurabh;Iqbal M.A.;Topa Ameen.Thin-Walled Structures.2022,
  • [3] Ballistic performance of quasi-isotropic CFRP laminates under low velocity impact
    Patnaik, Gyanesh
    Kaushik, Anshul
    Rajput, Abhishek
    Prakash, Guru
    Velmurugan, R.
    [J]. JOURNAL OF COMPOSITE MATERIALS, 2021, 55 (24) : 3511 - 3527
  • [4] Ballistic response of hemispherical sandwich shell structure against ogive nosed projectile.[J].N. Khaire;G. Tiwari.Thin-Walled Structures.2020,
  • [5] Experimental and numerical studies on the ballistic impact response of titanium sandwich panels with different facesheets thickness ratios.[J].Amirmasoud Rahimijonoush;Mohammad Bayat.Thin-Walled Structures.2020,
  • [6] Simulation of Eccentric Impact of Square and Rectangular Composite Laminates Embedded with SMA
    Sun, Min
    Chang, Mengzhou
    Wang, Zhenqing
    Li, Hao
    Liu, Yanfei
    [J]. MATERIALS, 2018, 11 (12)
  • [7] Prestressed concrete targets under high rate of loading
    Rajput, Abhishek
    Iqbal, Mohammad Ashraf
    Wu, Chengqing
    [J]. INTERNATIONAL JOURNAL OF PROTECTIVE STRUCTURES, 2018, 9 (03) : 362 - 376
  • [8] High-velocity impact behaviour of aluminium honeycomb sandwich panels with different structural configurations.[J].Guangyong Sun;Dongdong Chen;Hongxu Wang;Paul J. Hazell;Qing Li.International Journal of Impact Engineering.2018,
  • [9] A new analytical solution and novel energy formulations for non-linear eccentric impact analysis of composite multi-layer/sandwich plates resting on point supports.[J].M. Shariyat;M. Roshanfar.Thin-Walled Structures.2018,
  • [10] Multi-objective optimization for designing a composite sandwich structure under normal and 45° impact loadings.[J].Yuan Chen;Kunkun Fu;Shujuan Hou;Xu Han;Lin Ye.Composites Part B.2018,