Open Access
Issue
EPJ Web Conf.
Volume 354, 2026
19th Global Congress on Manufacturing and Management (GCMM 2025)
Article Number 01003
Number of page(s) 17
Section Advanced Materials, Composites, and Electromagnetic Structures
DOI https://doi.org/10.1051/epjconf/202635401003
Published online 02 March 2026
  1. Campilho, Raul & Banea, M. & Silva, L.F.M. (2011). Comparative evaluation of bonded, welded and weld-bonded structural joints. Welding Equipment and Technology. 22. 6–13. (ref) [Google Scholar]
  2. Neto, J.A.B.P. & Campilho, Raul & Silva, L.F.M. (2012). Parametric study of adhesive joints with composites. International Journal of Adhesion and Adhesives. 37. 96–101. doi: 10.1016/j.ijadhadh.2012.01.019 [Google Scholar]
  3. Li, Shuguang & Jeanmeure, L. & Pan, Qingfa. (2015). A composite material characterization tool: Unit Cells. Journal of Engineering Mathematics. 95. doi: 10.1007/s10665-014-9776-4 [Google Scholar]
  4. Raj, S. S., Kuzmin, A. M., Subramanian, K., Sathiamoorthyi, S., & Kandasamy, K. T. (2021). Philosophy of selecting ASTM standards for mechanical characterization of polymers and polymer composites. Materiale Plastice, 58(3), 247–256. doi: 10.37358/MP.21.3.5523 [Google Scholar]
  5. Sathishkumar T, Satheeshkumar S, Naveen J. Glass fiber-reinforced polymer composites - a review. Journal of Reinforced Plastics and Composites. 2014;33(13): 1258–1275. doi: 10.1177/0731684414530790 [Google Scholar]
  6. Sulistyo, A.B. & Wirawan, Willy. (2024). Evaluation of tensile strength and flexural strength of GFRP composites in different types of matrix polymers. Journal of Achievements in Materials and Manufacturing Engineering. 123. doi: 10.5604/01.3001.0054.6847 [Google Scholar]
  7. Kaykilarli, C., Haydarov, A., Köse, D., & Yeprem, H. A. (2023). Mechanical and Tribological properties of carbon fiber/glass fiber-reinforced epoxy hybrid composites filled with Al2O3 Particles. Hittite Journal of Science and Engineering, 10(4), 317–322. doi: 10.17350/HJSE19030000321 [Google Scholar]
  8. Setyanto, Djoko & Jayatun, Yohanes & Basoeki, Prita & Fretes, Anthon. (2022). Physical Properties of Glass-Fibre-Reinforced Polymer Filled with Alumina Trihydrate and Calcium Carbonate. Polymers. 14. 2464. doi: 10.3390/polym14122464 [Google Scholar]
  9. Gunarti, Monika & Prawoto, Agus & Fauzi, Wahyu & Wirawan, Willy. (2024). Mechanical behavior of glass fiber-epoxy composite laminates for ship hull structures. Mechanical Engineering for Society and Industry. 4. 156–166. doi: 10.31603/mesi.11589 [Google Scholar]
  10. Borkar, S. & Kumar, Senthil & Mantha, S.… (2007). Effect of silica and calcium carbonate fillers on the properties of woven glass fiber composites. [Google Scholar]
  11. Erden, Seckin & Sever, Kutlay & Seki, Yoldaç & Sarikanat, Mehmet. (2010). Enhancement of the Mechanical Properties of Glass/polyester Composites via Matrix Modification Glass/polyester Composite Siloxane Matrix Modification. Fibers and Polymers. 11. 732–737. doi: 10.1007/s12221-010-0732-2 [Google Scholar]
  12. Jesthi, D. K., Nayak, A., Routara, B. C., & Nayak, R. K. (2018). Evaluation of mechanical and tribological properties of glass/carbon fiber reinforced polymer hybrid composite. Int. J. Eng, 31(7), 1088–1094. doi: 10.5829/iie.2018.31.07a.12 [Google Scholar]
  13. Mohammadi, H., Ahmad, Z., Mazlan, S. A., Faizal Johari, M. A., Siebert, G., Petrû, M., & Rahimian Koloor, S. S. (2022). Lightweight glass fiber-reinforced polymer composite for automotive bumper applications: a review. Polymers, 15(1), 193. https://doi.org/10.3390/polym15010193 [CrossRef] [PubMed] [Google Scholar]
  14. Slamani, M., & Chatelain, J. F. (2023). A review on the machining of polymer composites reinforced with carbon (CFRP), glass (GFRP), and natural fibers (NFRP). Discover Mechanical Engineering, 2(1), 4. doi :10.1007/s44245-023-00011 [Google Scholar]
  15. Hiremath VS, Reddy DM. Effect of ply orientation and laminate thickness on carbon fibre reinforced polymers under low-velocity Einfluss der Gewebeorientierung und Laminatdickeauf. 2022;1290-1297. doi: 10.1002/mawe.202200087 [Google Scholar]
  16. Gökçe, Neslihan & Eren, Şevki & Subaşı, Serkan. (2021). Investigation of tensile properties of hybrid polymer matrix and glass fiber reinforced polymer composites. Gazi Üniversitesi Fen Bilimleri Dergisi Part C Tasarım ve Teknoloji. (ref) [Google Scholar]
  17. Seo, Dong-Woo & Park, Ki-Tae & You, Young Jun & Kim, Hyeong-Yeol. (2013). Enhancement in Elastic Modulus of GFRP Bars by Material Hybridization. Engineering. 05. 865–869. doi: 10.4236/eng.2013.511105 [Google Scholar]
  18. Khalil, Nur Zalikha. (2019). Influence of Al2O3 nano reinforcement on the adhesion and thermomechanical properties for epoxy adhesive. Composites Part B Engineering. 172. doi: 10.1016/i.compositesb.2019.05.007 [Google Scholar]
  19. Hiremath, Vinayak & Thulasidhas, Dhilipkumar & Reddy D, Mallikarjuna & Mutra, Dr & Murugan, Rajesh. (2024). Influence of different manufacturing techniques on GFRP flat-joggle-flat composite joints using multi-scale reinforcements for enhancing shear properties. Materials Research Express. 11. doi: 10.1088/2053-1591/ad4e08 [Google Scholar]
  20. Venugopal, Anandhan & Sudhagar P, Edwin. (2024). Dual-scale reinforcement of co-cure single lap joints through graphene nanoparticles and CFRP Z-pin. Materials Letters. 370. 136833. doi: 10.1016/i.matlet.2024.136833 [Google Scholar]
  21. Ahmed, Saad & Khanna, Sanjeev. (2020). Investigation into features of fracture toughness of a transparent E-glass fiber reinforced polyester composites at extreme temperatures. Heliyon. 6. e03986. doi: 10.1016/i.heliyon. 2020.e03986 [Google Scholar]
  22. Ali, Tarrab & Ejaz, Hassan & Sajid, Imran & Mubashar, Aamir. (2025). MXene epoxy nanocomposites for enhanced adhesive bonding: characterization and performance evaluation in single-lap joints at elevated temperatures. Journal of Adhesion Science and Technology. 1–24. doi: 10.1080/01694243.2025.2565413 [Google Scholar]
  23. Devendiran, S. & Manivannan, Kanna Piran & Venkatesan, K. Venkatesan & Mathew, Arun & Thakur, A. & Chauhan, V Ashish. (2017). Free vibration of damaged and undamaged hybrid CFRP/GFRP composite laminates. International Journal of Mechanical Engineering and Technology. 8. 349–360. (ref) [Google Scholar]
  24. Boggarapu, Nageswara Rao. (2021). Free Vibration Analysis of Hybrid and NonHybrid GFRP Composite Wind Turbine Blade. Design Engineering. 11560–11567. doi: 10.17762/de.vi.4301 [Google Scholar]
  25. Sahraei, Masood & Boodaghei, Hasan. (2023). Experimental analysis of carbon nanofibers reinforced epoxy adhesive bonded joints made with composite materials. doi: 10.21203/rs.3.rs-3438545/v1 [Google Scholar]
  26. Alhazmi WH, Jazaa Y, Mousa S, Abd-Elhady AA, Sallam HEM. Tribological and mechanical properties of epoxy reinforced by hybrid nanoparticles. Lat Am J Solids Struct. 2021; 18: e361. doi: 10.1590/1679-78256384 [Google Scholar]
  27. Ogaili, Ahmed & Hamzah, Mohsin & Jaber, Alaa. (2023). Free Vibration Analysis of a Wind Turbine Blade Made of Composite Materials. (ref) [Google Scholar]
  28. Venugopal, A., Edwin Sudhagar, P., Daniel R. C., & Dhilipkumar, T. (2025). Evaluation of material properties and vibration analysis of a co-cure single-lap composite plate joint with graphene-reinforced adhesive. Polymer Composites. doi: 10.1002/pc.29675 [Google Scholar]
  29. Karthikeyan, N., & Naveen, J. (2025). Flexural and vibration behavior of co-cured CFRP composite joints with MWCNT-modified adhesive. Journal of Adhesion Science and Technology, 39(5), 750–777. doi: 10.1080/01694243.2024.2422426 [Google Scholar]
  30. Schapery, Richard. (1968). Thermal Expansion Coefficients of Composite Materials Based on Energy Principles. Journal of Composite Materials. 2. 380–404. doi: 10.1177/002199836800200308 [Google Scholar]
  31. Xie, B., Song, X., Chen, W. et al. Mechanical characterization, vibration, and buckling analyses of Glass & Hemp blended epoxy/MWCNT hybrid honeycomb core sandwich cylindrical shells. J Mater. Sci: Mater Eng. 20, 91 (2025). doi: 10.1186/s40712-025-00308-6 [Google Scholar]
  32. Avendano, R. & Carbas, Ricardo & Marques, E.A.S. & Silva, L.F.M. & Fernandes, Antonio. (2016). Effect of temperature and strain rate on single lap joints with dissimilar lightweight adherends bonded with an acrylic adhesive. Composite Structures. 152.doi: 10.1016/j.compstruct.2016.05.034 [Google Scholar]
  33. Akpinar, Salih & Özel, Adnan. (2019). Experimental and numerical determination of the thermal cycle performance of joints obtained with nanostructure-doped nanocomposite adhesives. Composites Part B: Engineering. 174. 106959. doi: 10.1016/j.compositesb.2019.106959 [Google Scholar]
  34. Akpinar, Iclal & Gültekin, Kürsat & Akpinar, Salih & Akbulut, H. & Özel, Adnan. (2016). Experimental analysis on the single-lap joints bonded by a nanocomposite adhesive which obtained by adding nanostructures. Composites Part B: Engineering. 110.doi: 10.1016/j.compositesb.2016.11.046 [Google Scholar]

Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.

Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.

Initial download of the metrics may take a while.