Experimental and Numerical Modelling of Ballistic Impact on Fiber Metal Laminates Based on Aramid Fiber Reinforced Epoxy

Authors

DOI:

https://doi.org/10.15282/ijame.21.3.2024.8.0891

Keywords:

Ballistic impact, Fiber metal laminate, Perforated plate, Aramid fiber, Aluminum

Abstract

This paper investigates the ballistic impact behavior of fiber metal laminates (FML) composed of aramid fiber-reinforced epoxy with a central layer of aluminum alloy Al5083. The research examines the ballistic performance influenced by factors such as hole shape and depth in the laminate and integrates both macro and microstructural analyses of FMLs. The FML variations studied included a perforated first layer with hole diameters of 3 mm and 5 mm, through which bullets penetrated. Ballistic tests were conducted from a firing distance of 5 meters using 9-mm cartridges loaded with full metal jacket bullets approximately 25 mm wide, fired at an angle perpendicular to the target surface. The experimental and simulation ballistic impact tests closely matched, with a 95.63% agreement and an error margin of about 4.37%. The FML resisted bullet impact by allowing perforation through three layers (the aluminum plate and the first and second aramid/epoxy plies) while forming a bulge due to longitudinal deformation in the final layer (the back plate). The experimental and simulation results showed similar trends, with a 5 mm diameter hole leading to a deeper bulge on the backside. Bullet penetration at the center, following a square pattern, resulted in the smallest bulge formation and a reduction in both initial and final bullet velocities. The fracture morphology indicates a ductile fracture, characterized by dominant dimple formations across the surface. The dimples in the FMLs are coarser than those in monolithic aluminum plates due to the reduced bullet velocity as it penetrates each layer of the target FMLs, significantly decreasing the remaining bullet velocity. In contrast, monolithic aluminum plates exhibit a minimal velocity decrease, resulting in smoother dimple fractures.

References

T. Nieberle, S.R. Kumar, A. Patnaik and C. Goswami “Composite materials for armour application,” Advances in Engineering Design: Select Proceedings of ICOIED 2020, pp. 239–248. 2021.

U. Mawkhlieng, A. Majumdar and A Laha, “A review of fibrous materials for soft body armour applications,” RSC Advances, vol. 10, no. 2, pp. 1066–1086, 2020.

F. de Oliveira Braga, T.L. Milanezi, S.N. Monteiro, L.H.L. Louro, A.V. Gomes, and É.P. Lima Jr, “Ballistic comparison between epoxy-ramie and epoxy-aramid composites in Multilayered Armor Systems,” Journal Of Materials Research and Technology, vol. 7, no. 4, pp. 541–549, 2018.

Office of Law Enforcement Standards of the National Institute of Standards and Technology, U.S. Department of Justice, “Ballistic Resistance of Body Armor NIJ Standard-0101.06,” pp. 1-89, 2008.

A. Bhatnagar, Lightweight ballistic composites: Military and law-enforcement applications. Woodhead Publishing, 2016.

S. Vignesh, R. Surendran, T. Sekar and B. Rajeswari, “Ballistic impact analysis of graphene nanosheets reinforced kevlar-29,” Materials Today: Proceedings, vol. 45, pp. 788–793, 2021.

C.H. Shih, J.L. You, Y.L. Lee, A.Y. Cheng, C.P. Chang, Y.M. Liu et al., “Design and ballistic performance of hybrid plates manufactured from aramid composites for developing multilayered armor systems,” Polymers, vol. 14, no. 22, pp. 5026, 2022.

A. Mubashar, E. Uddin, S. Anwar, N. Arif, S. Waheed Ul Haq, and M.A.K. Chowdhury, “Ballistic response of 12.7 mm armour piercing projectile against perforated armour developed from structural steel,” Proceedings of the Institution of Mechanical Engineers, Part L: Journal of Materials: Design and Applications, vol. 233, no. 10, pp. 1993-2005, 2018.

J. Deng, J. Zhang, X. Zhang and K. Bao “Investigation on bullet proof mechanism of yag transparent ceramic composite targets,” Transactions of Beijing Institute of Technology, vol. 42, no. 6, pp. 620–628, 2022.

M. Wu, C. Zhi, L. Tu, Y. Wang, Y. Dai, L. Yu et al. “Cotton-containing printing wires based on the two-dimensional braiding method for three-dimensional printing of clothing,” Textile Research Journal, vol. 92, no. 9–10, pp. 1384–1393, 2022.

V. Mahesh, S. Joladarashi and S.M. Kulkarni “A comprehensive review on material selection for polymer matrix composites subjected to impact load,” Defence Technology, vol. 17, no. 1, pp. 257–277, 2021.

F.S. Luz, F.C. Garcia Filho, M.S. Oliveira and L.F.C. Nascimento “Composites with natural fibers and conventional materials applied in a hard armor: A comparison,” Polymers, vol. 12, no. 9, pp. 1920, 2020.

Z. Ding, H. Wang, J. Luo and N. Li “A review on forming technologies of fibre metal laminates,” International Journal of Lightweight Materials and Manufacture, vol. 4, no. 1, pp. 110–126, 2021.

W. Zhang and J. Xu “Advanced lightweight materials for Automobiles: A review,” Materials & Design, vol. 221, p. 110994, 2022.

Y. Chen, Y. Wang and H. Wang, “Research progress on interlaminar failure behavior of fiber metal laminates,” Advances in Polymer Technology, vol. 2020, no. 1, pp. 3097839, 2020.

M. Soroush, K.M. Fard, and M. Shahravi, “Finite element simulation of interlaminar and intralaminar damage in laminated composite plates subjected to impact,” Latin American Journal of Solids and Structures, vol. 15, no. 6, p. e90, 2018.

S. Chandrabakty, I. Renreng, Z. Djafar and H. Arsyad “Experimental study and investigation of thrust force and delamination damage of drilled ramie woven reinforced composites,” International Journal of Automotive and Mechanical Engineering, vol. 17, no. 1, pp. 7618–7628, 2020.

G.G. Braga, G. Giusti, J.C. dos Santos, D.A.L. Silva, A.L. Christoforo, T.H. Panzera et al. “Life cycle assessment of fibre metal laminates: An ecodesign approach,” Composites Part C: Open Access, vol. 13, pp. 100435, 2024.

K. Jin, K. Chen, X. Luo and J. Tao “Fatigue crack growth and delamination mechanisms of Ti/CFRP fibre metal laminates at high temperatures,” Fatigue & Fracture of Engineering Materials & Structures, vol. 43, no. 6, pp. 1115–1125, 2020.

F. Czerwinski, “Current trends in automotive lightweighting strategies and materials,” Materials, vol. 14, no. 21, p. 6631, 2021.

J.G. Carrillo, N.G. Gonzalez-Canche, E.A. Flores-Johnson, and P. Cortes, “Low velocity impact response of fibre metal laminates based on aramid fibre reinforced polypropylene,” Composite Structures, vol. 220, pp. 708–716, 2019.

D.-W. Lee, B.-J. Park, S.-Y. Park, C.-H. Choi, and J.-I. Song, “Fabrication of high-stiffness fiber-metal laminates and study of their behavior under low-velocity impact loadings,” Composite Structures, vol. 189, pp. 61–69, 2018.

L. Li, Q.C. Zhang and T.J. Lu “Ballistic penetration of deforming metallic plates: Experimental and numerical investigation,” International Journal of Impact Engineering, vol. 170, pp. 104359, 2022.

M.H. Mosa and M.N. Hamza “Influence of selection materials and construction techniques on the ballistic performance of armors: A review,” In AIP Conference Proceedings, vol. 2404, no. 1, 2021.

M.G. Stewart and M.D. Netherton, “Statistical variability and fragility assessment of ballistic perforation of steel plates for 7.62 mm AP ammunition.” Defence Technology, vol. 16, no. 3, pp. 503–513, 2020.

R. Scazzosi, M. Giglio and A. Manes “Experimental and numerical investigation on the perforation resistance of double-layered metal shield under high-velocity impact of armor-piercing projectiles,” Materials, vol. 14, no. 3, p. 626, 2021.

K. Senthil and M.A. Iqbal “Prediction of superior target layer configuration of armour steel, mild steel and aluminium 7075-T651 alloy against 7.62 AP projectile,” Structures, vol. 29, pp. 2106–2119, 2021.

A. Rashed, M. Yazdani, A.A. Babaluo, and P.H. Parvin, “Investigation on high-velocity impact performance of multi-layered alumina ceramic armors with polymeric interlayers,” Journal of Composite Materials, vol. 50, no. 25, pp. 3561–3576, 2016.

N. Nayak, A. Banerjee, and T.R. Panda, “Numerical study on the ballistic impact response of aramid fabric-epoxy laminated composites by armor piercing projectile,” Procedia Engineering, vol. 173, pp. 230–237, 2017.

Choudhary, S., Singh, P. K., Khare, S., Kumar, K., Mahajan, P., and Verma, R. K. “Ballistic impact behaviour of newly developed armour grade steel: An experimental and numerical study.” International Journal of Impact Engineering, vol. 140, pp. 103557, 2020.

Jo, M. C., Kim, S., Suh, D. W., Hong, S. S., Kim, H. K., Sohn, S. S., and Lee, S. “Effect of tempering conditions on adiabatic shear banding during dynamic compression and ballistic impact tests of ultra-high-strength armor steel.” Materials Science and Engineering: A, vol. 792, pp. 139818, 2020.

Asemani, S. S., Liaghat, G., Ahmadi, H., Anani, Y., Khodadadi, A., and Charandabi, S. C. “The experimental and numerical analysis of the ballistic performance of elastomer matrix Kevlar composites.” Polymer Testing, vol. 102, pp. 107311, 2021.

Fadly, M. S., Bakri, B., Anwar, K., and Chandrabakty, S. “Evaluation of Projectile Penetration Position on Perforated Plate on Ballistic Resistance of Composite Sandwich Panels.” In IOP Conference Series: Earth and Environmental Science, vol. 1157, pp. 12033, 2023.

M. A. Abtew, F. Boussu, P. Bruniaux, C. Loghin, and I. Cristian, “Ballistic impact mechanisms-A review on textiles and fibre-reinforced composites impact responses,” Compos. Struct., vol. 223, p. 110966, 2019.

B. Bakri, M.S. Fadly, K. Anwar and S. Chandrabakty, “Numerical research on the impacts of composite panel ballistic using perforated plate for combat vehicle,” In 4th International Seminar on Science and Technology (ISST 2022), pp. 15–25, 2023.

R.S. Sikarwar, R. Velmurugan, and N.K. Gupta, “Ballistic performance of Kevlar/epoxy composite laminates,” Proceedings of the Indian National Science Academy, vol. 79, no. 4, p. 789, 2015.

M.S. Fadly, A. Purnowidodo, P.H. Setyarini, B. Bakri and S. Chandrabakty “Perforation and penetration of fiber metal laminates target by hemispherical projectile,” International Journal of Mechanical Engineering Technologies and Applications, vol. 4, no. 2, pp. 190–197, 2023.

I.A. Saleem, P.S. Ahmed and M.S. Abed “Experimental and numerical investigation of Kevlar and UHMWPE multi-layered armors against ballistic impact,” Materials Today: Proceedings, vol. 56, pp. 2516–2524, 2022.

Y. Heng, X. Qi, L. Xu, Y. Yan and Q. Ni “Development of high‐strength carbon fiber/thermoplastic epoxy resin composites and it’s recyclability,” Polymer Composites, vol. 45, no. 10, pp. 8710–8720, 2024.

J. Chen, Y. Zhu, Q. Ni, Y. Fu and X. Fu, “Surface modification and characterization of aramid fibers with hybrid coating,” Applied Surface Science, vol. 321, pp. 103–108, 2014.

R.S. Talikoti and S.B. Kandekar, “Strength and durability study of concrete structures using aramid-fiber-reinforced polymer,” Fibers, vol. 7, no. 2, p. 11, 2019.

Y. Wang, X. Zeng, H. Chen, X. Yang, F. Wang and L. Zeng, “Modified Johnson-Cook constitutive model of metallic materials under a wide range of temperatures and strain rates,” Results in Physics, vol. 27, p. 104498, 2021

T. Hanaoka, Y. Arao, Y. Kayaki, S. Kuwata and M. Kubouchi “Analysis of nitric acid decomposition of epoxy resin network structures for chemical recycling,” Polymer Degradation and Stability, vol. 186, p, 109537, 2021

Y. Zhou, G. Li, Q. Fan, Y. Wang, H. Zheng, L. Tan et al., “Study on protection mechanism of 30CrMnMo-UHMWPE composite armor,” Materials, vol. 10, no. 4, p. 405, 2017.

T. Liu, X. Zhang, N. He, and G. Jia, “Numerical material model for composite laminates in high-velocity impact simulation,” Latin American Journal of Solids and Structures, vol. 14, no. 11, pp. 1912–1931, 2017.

H. Sinan Üstün, A. Kaan Toksoy and M. Tanoğlu, “Investigation of hybridization effect on ballistic performance of multi-layered fiber reinforced composite structures.” Journal of Composite Materials, vol. 56, no. 15, pp. 2411–2431, 2022.

A. Shi, X. Hong, H. Han, K. Xia, X. Fan, C. Qin et al., “Research on ballistic protection characteristics of perforated plates made of different steel materials for 12.7 mm penetrator projectile,” In Journal of Physics: Conference Series, vol. 2808, p. 12007, 2024.

C. Stephen, B. Shivamurthy, R. Selvam, S.R. Behara, A.H.I. Mourad and S. Kannan, “Design and finite element study of Kevlar based combat helmet for protection against high-velocity impacts,” Materials Today: Proceedings, vol. 56, pp. 3636–3641, 2022.

M.A. Iqbal, K. Senthil, P. Bhargava, and N.K. Gupta, “The characterization and ballistic evaluation of mild steel,” International Journal of Impact Engineering, vol. 78, pp. 98–113, 2015.

V. Mahesh, S. Joladarashi and S.M. Kulkarni “Comparative study on ballistic impact response of neat fabric, compliant, hybrid compliant and stiff composite,” Thin-Walled Structures, vol. 165, p. 107986, 2021.

P. Kędzierski, A. Popławski, R. Gieleta, A. Morka, and G. Sławiński, “Experimental and numerical investigation of fabric impact behavior,” Composites Part B: Engineering, vol. 69, pp. 452–459, 2015.

B. Bakri, K. Anwar, M.S. Fadly and K. Wahyudi “Investigation of ballistic performance on metal-coir fiber composite laminate with variation of fiber volume fraction: Experimental and simulation,” In IOP Conference Series: Earth and Environmental Science, vol. 1355, pp. 12010, 2024.

Downloads

Published

2024-09-20

How to Cite

[1]
M. S. Fadly, A. Purnowidodo, P. H. Setyarini, B. Bakri, and S. Chandrabakty, “Experimental and Numerical Modelling of Ballistic Impact on Fiber Metal Laminates Based on Aramid Fiber Reinforced Epoxy”, Int. J. Automot. Mech. Eng., vol. 21, no. 3, pp. 11554–11568, Sep. 2024.

Issue

Section

Articles