Experimental Investigation on the Mechanical Properties of Dactyl-Inspired Fiber-Metal Laminates with Glass Fiber

Authors

  • Rizuanul Arefin Emon Department of Mechanical Engineering, Khulna University of Engineering & Technology, Khulna-9203, BANGLADESH
  • Zarin Rahman Tapti Department of Mechanical Engineering, Khulna University of Engineering & Technology, Khulna-9203, BANGLADESH
  • Mushfique Azad Takin Department of Materials Science and Engineering, Khulna University of Engineering & Technology, Khulna-9203, BANGLADESH
  • Md. Shariful Islam Department of Mechanical Engineering, Khulna University of Engineering & Technology, Khulna-9203, BANGLADESH
  • Arup Kumar Debnath Department of Mechanical Engineering, Khulna University of Engineering & Technology, Khulna-9203, BANGLADESH

DOI:

https://doi.org/10.38032/scse.2025.3.96

Keywords:

Dactyl structure, Glass fiber, FML, Tensile properties, Impact resistance

Abstract

The dactyl club of mantis shrimps has a periodic region with extraordinary mechanical properties, due to a helical structure made up of mineralized fibers. It has been established that composites made of a similar structure by rearranging the fiber orientation increase the performance characteristics of composites. In this paper, a dactyl-inspired unidirectional glass fiber-reinforced plastic fiber-metal laminate (UGFRP FML) is developed and its tensile and impact-resistant characteristics have been discussed. The tensile properties of UGFRP FML have been compared with two types of thermoplastic fiber metal laminates (TFMLs) that are self-reinforced polypropylene (Al/Curv) and glass fiber-reinforced polypropylene (Al/Twintex) TFMLs and the impact properties compared with two types of GLARE samples. It has been found that the tensile strength of UGFRP FML (120.337 MPa) is 140.5% and 119.92% less than that of the Al/Curv (265 MPa) and Al/Twintex (290 MPa) whereas the maximum elongation of UGFRP FML is 5.61% less than Al/Curv and 0.22% more than Al/Twintex. The energy absorption capability of the UGFRP FML (61.67 J) has been found 25.86% and 137.19% more than that of the two types of GLARE specimens. The findings exhibit that the dactyl configuration of glass fiber in the composite is a successful method of enhancing FML's elongation to failure and impact resistance.

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References

[1] Das, T. K., Ghosh, P., and Das, N. C., 2019, “Preparation, Development, Outcomes, and Application Versatility of Carbon Fiber-Based Polymer Composites: A Review,” Adv Compos Hybrid Mater, 2(2), pp. 214–233. DOI: https://doi.org/10.1007/s42114-018-0072-z

[2] Sathishkumar, T. P., Naveen, J., and Satheeshkumar, S., 2014, “Hybrid Fiber Reinforced Polymer Composites - A Review,” Journal of Reinforced Plastics and Composites, 33(5), pp. 454–471. DOI: https://doi.org/10.1177/0731684413516393

[3] Moussavi-Torshizi, S. E., Dariushi, S., Sadighi, M., and Safarpour, P., 2010, “A Study on Tensile Properties of a Novel Fiber/Metal Laminates,” Materials Science and Engineering: A, 527(18–19), pp. 4920–4925. DOI: https://doi.org/10.1016/j.msea.2010.04.028

[4] Reyes, G., and Kang, H., 2007, “Mechanical Behavior of Lightweight Thermoplastic Fiber-Metal Laminates,” J Mater Process Technol, 186(1–3), pp. 284–290. DOI: https://doi.org/10.1016/j.jmatprotec.2006.12.050

[5] Rajkumar, G. R., Krishna, M., Narasimhamurthy, H. N., Keshavamurthy, Y. C., and Nataraj, J. R., 2014, “Investigation of Tensile and Bending Behavior of Aluminum Based Hybrid Fiber Metal Laminates,” Procedia Materials Science, 5, pp. 60–68. DOI: https://doi.org/10.1016/j.mspro.2014.07.242

[6] Asundi, A., and Choi, A. Y. N., 1997, Fiber Metal Laminates: An Advanced Material for Future Aircraft. DOI: https://doi.org/10.1016/S0924-0136(96)02652-0

[7] Poodts, E., Ghelli, D., Brugo, T., Panciroli, R., and Minak, G., 2015, “Experimental Characterization of a Fiber Metal Laminate for Underwater Applications,” Compos Struct, 129, p. 36. DOI: https://doi.org/10.1016/j.compstruct.2015.03.046

[8] Benedict, A. V., An Experimental Investigation of GLARE and Restructured Fiber An Experimental Investigation of GLARE and Restructured Fiber Metal Laminates Metal Laminates. [Online]. Available: https://commons.erau.edu/edt/22.

[9] Ergun, H., Liaw, B. M., and Delale, F., 2018, “Experimental-Theoretical Predictions of Stress–Strain Curves of Glare Fiber Metal Laminates,” J Compos Mater, 52(1), pp. 109–121. DOI: https://doi.org/10.1177/0021998317702954

[10] Salve, A., Kulkarni, R., and Mache, A., 2016, “A Review: Fiber Metal Laminates (FML’s) - Manufacturing, Test Methods and Numerical Modeling,” International Journal of Engineering Technology and Sciences, 3(2), pp. 71–84. DOI: https://doi.org/10.15282/ijets.6.2016.1.10.1060

[11] Sinmazçelik, T., Avcu, E., Bora, M. Ö., and Çoban, O., 2011, “A Review: Fibre Metal Laminates, Background,

Bonding Types and Applied Test Methods,” Mater Des, 32(7), pp. 3671–3685.

[12] Kunzmann, C., Aliakbarpour, H., and Ramezani, M., 2023, “Biomimetics Design of Sandwich-Structured DOI: https://doi.org/10.3390/jcs7080315

Composites,” Journal of Composites Science, 7(8).

[13] Palomba, G., Hone, T., Taylor, D., and Crupi, V., 2020, “Bio-Inspired Protective Structures for Marine Applications,” Bioinspir Biomim, 15(5). DOI: https://doi.org/10.1088/1748-3190/aba1d1

[14] Boaretto, J., Fotouhi, M., Tende, E., Aver, G. F., Marcon, V. R. R., Cordeiro, G. L., Bergmann, C. P., and de Camargo, F. V., 2021, “Biomimetics and Composite Materials toward Efficient Mobility: A Review,” Journal of Composites Science, 5(1). DOI: https://doi.org/10.3390/jcs5010022

[15] Ha, N. S., and Lu, G., 2020, “A Review of Recent Research on Bio-Inspired Structures and Materials for Energy Absorption Applications,” Compos B Eng, 181. DOI: https://doi.org/10.1016/j.compositesb.2019.107496

[16] Yaraghi, N. A., Guarín-Zapata, N., Grunenfelder, L. K., Hintsala, E., Bhowmick, S., Hiller, J. M., Betts, M., Principe, E. L., Jung, J. Y., Sheppard, L., Wuhrer, R., McKittrick, J., Zavattieri, P. D., and Kisailus, D., 2016, “A Sinusoidally Architected Helicoidal Biocomposite,” Advanced Materials, 28(32), pp. 6835–6844. DOI: https://doi.org/10.1002/adma.201600786

[17] Tanner, K. E., 2012, “Small but Extremely Tough,” Science (1979), 336(6086), pp. 1237–1238. DOI: https://doi.org/10.1126/science.1222642

[18] Garg, A., Sharma, A., Zheng, W., and Li, L., 2024, “Dactyl Club and Nacre-Inspired Impact Resistant Behavior of Layered Structures: A Review of Present Trends and Prospects,” Mater Today Commun, 41, p. 110553. DOI: https://doi.org/10.1016/j.mtcomm.2024.110553

[19] Han, Q., Li, H., Chen, X., Shi, S., Shao, R., Li, B., and Han, Z., 2022, “Impact Resistant Basalt Fiber-Reinforced Aluminum Laminate with Janus Helical Structures Inspired by Lobster and Mantis Shrimp,” Compos Struct, 291. DOI: https://doi.org/10.1016/j.compstruct.2022.115551

[20] Han, Q., Shi, S., Liu, Z., Han, Z., Niu, S., Zhang, J., Qin, H., Sun, Y., and Wang, J., 2020, “Study on Impact Resistance Behaviors of a Novel Composite Laminate with Basalt Fiber for Helical-Sinusoidal Bionic Structure of Dactyl Club of Mantis Shrimp,” Compos B Eng, 191. DOI: https://doi.org/10.1016/j.compositesb.2020.107976

[21] Han, Q., Qin, H., Han, Z., Li, L., Zhang, W., Sun, Y., and Shi, S., 2021, “Mechanical Properties of a Novel Dactyl-Inspired Green-Composite Sandwich Structures with Basalt Fiber,” Journal of Sandwich Structures and Materials, 23(3), pp. 803–813. DOI: https://doi.org/10.1177/1099636219846646

[22] Shang, J. S., Ngern, N. H. H., and Tan, V. B. C., 2016, “Crustacean-Inspired Helicoidal Laminates,” Compos Sci Technol, 128, pp. 222–232. DOI: https://doi.org/10.1016/j.compscitech.2016.04.007

[23] Vogelesang, L. B., and Vlot, A., 2000, “Development of Fibre Metal Laminates for Advanced Aerospace Structures,” J Mater Process Technol, 103(1), pp. 1–5. DOI: https://doi.org/10.1016/S0924-0136(00)00411-8

[24] Tadayon, M., Amini, S., Wang, Z., and Miserez, A., 2018, “Biomechanical Design of the Mantis Shrimp Saddle: A Biomineralized Spring Used for Rapid Raptorial Strikes,” iScience, 8, pp. 271–282. DOI: https://doi.org/10.1016/j.isci.2018.08.022

[25] Grunenfelder, L. K., Suksangpanya, N., Salinas, C., Milliron, G., Yaraghi, N., Herrera, S., Evans-Lutterodt, K., Nutt, S. R., Zavattieri, P., and Kisailus, D., 2014, “Bio-Inspired Impact-Resistant Composites,” Acta Biomaterialia, Elsevier Ltd, pp. 3997–4008. DOI: https://doi.org/10.1016/j.actbio.2014.03.022

[26] ASTM Standard D 3039, 2000, “Standard Test Method for Tensile Properties of Polymer Matrix Composite Materials,” ASTM International, West Conshohocken, PA, 2000

[27] ASTM Standard D6110, 2010, “Standard Test Method for Determining the Charpy Impact Resistance of Notched Specimens of Plastics,” ASTM International, West Conshohocken, PA, 2000

[28] Zhou, P., Tian, J., Li, C., and Tang, Z., 2022, “Comparative Study of Durability Behaviors of Thermoplastic Polypropylene and Thermosetting Epoxy Exposed to Elevated Temperature, Water Immersion and Sustained Bending Loading,” Polymers (Basel),14(14). DOI: https://doi.org/10.3390/polym14142953

Published

11.11.2025

How to Cite

[1]
R. A. Emon, Z. R. Tapti, M. A. Takin, M. S. Islam, and A. K. Debnath, “Experimental Investigation on the Mechanical Properties of Dactyl-Inspired Fiber-Metal Laminates with Glass Fiber”, SCS:Engineering, vol. 3, pp. 343–347, Nov. 2025, doi: 10.38032/scse.2025.3.96.

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