[1] P. K. Sarangi, S. Nanda, and P. Mohanty, Recent advancements in biofuels and bioenergy utilization, vol. 232. Springer, 2018.
[2] T.-T. Chung, H.-R. Shiu, C.-C. Chen, C.-T. Lin, K.-H. Chen, and C.-Y. Lu, “Endplate Design and Analysis of Fuel Cells,” in International Conference on Fuel Cell Science, Engineering and Technology, 2009, vol. 48814, pp. 371–378.
[3] C. W. Wu, W. Zhang, X. Han, Y. X. Zhang, and G. J. Ma, “A systematic review for structure optimization and clamping load design of large proton exchange membrane fuel cell stack,” J. Power Sources, vol. 476, no. August, 2020, doi: 10.1016/j.jpowsour.2020.228724.
[4] E. Alizadeh, M. Ghadimi, M. M. Barzegari, M. Momenifar, and S. H. M. Saadat, “Development of contact pressure distribution of PEM fuel cell’s MEA using novel clamping mechanism,” Energy, vol. 131, pp. 92–97, 2017, doi: 10.1016/j.energy.2017.05.036.
[5] I. Chang, T. Park, J. Lee, H. B. Lee, S. H. Ko, and S. W. Cha, “Flexible fuel cell using stiffness-controlled endplate,” Int. J. Hydrogen Energy, vol. 41, no. 14, pp. 6013–6019, 2016.
[6] M. M. Barzegari, M. Ghadimi, and M. Momenifar, “Investigation of contact pressure distribution on gas diffusion layer of fuel cell with pneumatic endplate,” Appl. Energy, vol. 263, p. 114663, 2020.
[7] S. Karvonen, T. Hottinen, J. Ihonen, and H. Uusalo, “Modeling of polymer electrolyte membrane fuel stack end plates,” J. Fuel Cell Sci. Technol., vol. 5, no. 4, pp. 1–9, 2008, doi: 10.1115/1.2930775.
[8] H.-J. Chen and S. W. Tsai, “Analysis and optimum design of composite grid structures,” J. Compos. Mater., vol. 30, no. 4, pp. 503–534, 1996.
[9] S. H. Taghavian, J. E. Jam, and N. G. Nia, “A new approach to identify the stiffness matrix of a composite lattice structures,” Assoc. Metall. Eng. Serbia, UDC, vol. 620, no. 183, pp. 179–669, 2008.
[10] S. Kwolek, H. Mera, and T. Takata, “High-performance fibers,” Ullmann’s Encycl. Ind. Chem. Wiley-VCH Weinheim, Gremany, 2002.
[11] E. Wodesenbet, S. Kidane, and S.-S. Pang, “Optimization for buckling loads of grid stiffened composite panels,” Compos. Struct., vol. 60, no. 2, pp. 159–169, 2003.
[12] H. N. Yu, S. S. Kim, J. Do Suh, and D. G. Lee, “Axiomatic design of the sandwich composite endplate for PEMFC in fuel cell vehicles,” Compos. Struct., vol. 92, no. 6, pp. 1504–1511, 2010, doi: 10.1016/j.compstruct.2009.10.026.
[13] H. L. Fan, F. H. Meng, and W. Yang, “Sandwich panels with Kagome lattice cores reinforced by carbon fibers,” Compos. Struct., vol. 81, no. 4, pp. 533–539, 2007.
[14] Y. H. Yu, J. W. Lim, and D. G. Lee, “Composite sandwich endplates with a compliant pressure distributor for a PEM fuel cell,” Compos. Struct., vol. 119, pp. 505–512, 2015, doi: 10.1016/j.compstruct.2014.09.030.
[15] H. N. Yu, S. S. Kim, J. Do Suh, and D. G. Lee, “Composite endplates with pre-curvature for PEMFC (polymer electrolyte membrane fuel cell),” Compos. Struct., vol. 92, no. 6, pp. 1498–1503, 2010, doi: 10.1016/j.compstruct.2009.10.023.
[16] N. Pan, “Theoretical determination of the optimal fiber volume fraction and fiber‐matrix property compatibility of short fiber composites,” Polym. Compos., vol. 14, no. 2, pp. 85–93, 1993.
[17] M. Brännström and K. J. Nordenvall, “The effect of acid etching on enamel, dentin, and the inner surface of the resin restoration: a scanning electron microscopic investigation,” J. Dent. Res., vol. 56, no. 8, pp. 917–923, 1977.
[18] A. K. Sinha, H. K. Narang, and S. Bhattacharya, “Mechanical properties of natural fibre polymer composites,” J. Polym. Eng., vol. 37, no. 9, pp. 879–895, 2017, doi: 10.1515/polyeng-2016-0362.
[19] C. J. Tsenoglou, S. Pavlidou, and C. D. Papaspyrides, “Evaluation of interfacial relaxation due to water absorption in fiber–polymer composites,” Compos. Sci. Technol., vol. 66, no. 15, pp. 2855–2864, 2006.
[20] G. Huang and H. Sun, “Effect of water absorption on the mechanical properties of glass/polyester composites,” Mater. Des., vol. 28, no. 5, pp. 1647–1650, 2007, doi: 10.1016/j.matdes.2006.03.014.
[21] A. Smith, “The essential roles of impact and HDT/Vicat testing in a compounder’s laboratory,” Plast Addit Comp, vol. 4, pp. 16–20, 2002.
[22] M. Li et al., “Preparation and properties of polyamide 6 thermal conductive composites reinforced with fibers,” Mater. Des., vol. 51, pp. 257–261, 2013.