Examination and Enhancement of a Hybrid Energy System Including a Stirling Engine and a Fuel Cell

Authors

  • Mohammadhossein Kalani Amirkabir University Author
  • Kiarash Amoozade Semnan University Author
  • Mostafa Jazaeri Semnan University Author

Keywords:

Hybrid system, Fuel cell, Stirling engine, Genetic algorithm

Abstract

Recently, there has been increased interest in hybrid systems that combine a Stirling engine and fuel cell as a new and clean energy source. By using the fuel cell's heat as a heat source for the Stirling engine, which generates mechanical work, the hybrid system runs by producing both heat and electricity. This study presents an overview of this kind of hybrid system, including its benefits and drawbacks. The genetic algorithm-based optimization technique is presented, and the optimized model is finally simulated using MATLAB's Simulink environment. The results indicate that the Stirling engine's performance remains unaffected by variations in gas partial pressures at the anode and cathode sides of the fuel cell, which serves as the heat source for the engine and the hybrid system. The engine's performance is influenced by operational temperature and environment, which remain unchanged during optimization. The fuel cell is the only component influencing the system's hybrid power output and efficiency, with electrical power reaching 117 kilowatts and 126 kilowatts before and after optimization. It is recommended to use this system as a combined heat and power (CHP) system in small communities and public places.

Author Biographies

  • Mohammadhossein Kalani, Amirkabir University

                                      

  • Kiarash Amoozade, Semnan University

                              

  • Mostafa Jazaeri, Semnan University

                                         

References

[1] Chien, F., Kamran, H. W., Albashar, G., & Iqbal, W. (2021). Dynamic planning, conversion, and management strategy of different renewable energy sources: a sustainable solution for severe energy crises in emerging economies. International Journal of Hydrogen Energy, 46(11), 7745-7758.

[2] Wang, J., & Azam, W. (2024). Natural resource scarcity, fossil fuel energy consumption, and total greenhouse gas emissions in top emitting countries. Geoscience Frontiers, 15(2), 101757.

[3] Ukaogo, P. O., Ewuzie, U., & Onwuka, C. V. (2020). Environmental pollution: causes, effects, and the remedies. In Microorganisms for sustainable environment and health (pp. 419-429). Elsevier.

[4] Mondal, S., & Palit, D. (2022). Challenges in natural resource management for ecological sustainability. In Natural Resources Conservation and Advances for Sustainability (pp. 29-59). Elsevier.

[5] Hassan, A., Ilyas, S. Z., Jalil, A., & Ullah, Z. (2021). Monetization of the environmental damage caused by fossil fuels. Environmental Science and Pollution Research, 28, 21204-21211.

[6] Abbasi, K. R., Shahbaz, M., Zhang, J., Irfan, M., & Alvarado, R. (2022). Analyze the environmental sustainability factors of China: The role of fossil fuel energy and renewable energy. Renewable Energy, 187, 390-402.

[7] Opeyemi, B. M. (2021). Path to sustainable energy consumption: The possibility of substituting renewable energy for non-renewable energy. Energy, 228, 120519.

[8] Singla, M. K., Nijhawan, P., & Oberoi, A. S. (2021). Hydrogen fuel and fuel cell technology for cleaner future: a review. Environmental Science and Pollution Research, 28(13), 15607-15626.

[9] Thomas, J. M., Edwards, P. P., Dobson, P. J., & Owen, G. P. (2020). Decarbonising energy: The developing international activity in hydrogen technologies and fuel cells. Journal of Energy Chemistry, 51, 405-415.

[10] Yue, M., Lambert, H., Pahon, E., Roche, R., Jemei, S., & Hissel, D. (2021). Hydrogen energy systems: A critical review of technologies, applications, trends and challenges. Renewable and Sustainable Energy Reviews, 146, 111180.

[11] Ferrara, A., Jakubek, S., & Hametner, C. (2021). Energy management of heavy-duty fuel cell vehicles in real-world driving scenarios: Robust design of strategies to maximize the hydrogen economy and system lifetime. Energy Conversion and Management, 232, 113795.

[12] Cigolotti, V., Genovese, M., & Fragiacomo, P. (2021). Comprehensive review on fuel cell technology for stationary applications as sustainable and efficient poly-generation energy systems. Energies, 14(16), 4963.

[13] Kumar, P., & Singh, O. (2022). A review of solid oxide fuel cell based hybrid cycles. International Journal of Energy Research, 46(7), 8560-8589.

[14] Pirkandi, J., Penhani, H., & Maroufi, A. (2020). Thermodynamic analysis of the performance of a hybrid system consisting of steam turbine, gas turbine and solid oxide fuel cell (SOFC-GT-ST). Energy conversion and management, 213, 112816.

[15] Liu, H., Qin, J., Xiu, X., Ha, C., & Dong, P. (2023). Comparative study of fuel types on solid oxide fuel cell–gas turbine hybrid system for electric propulsion aircraft. Fuel, 347, 128426.

[16] Ding, X., Sun, W., Harrison, G. P., Lv, X., & Weng, Y. (2020). Multi-objective optimization for an integrated renewable, power-to-gas and solid oxide fuel cell/gas turbine hybrid system in microgrid. Energy, 213, 118804.

[17] Beigzadeh, M., Pourfayaz, F., Ghazvini, M., & Ahmadi, M. H. (2021). Energy and exergy analyses of solid oxide fuel cell-gas turbine hybrid systems fed by different renewable biofuels: A comparative study. Journal of Cleaner Production, 280, 124383.

[18] Li, C., Cheng, K., Ma, S., Liu, H., Ji, Z., & Qin, J. (2022). Performance analysis of solid oxide fuel cell/piston engine hybrid system for aviation. Applied Thermal Engineering, 214, 118797.

[19] Guo, Y., Guo, X., Wang, J., Guan, Z., Wang, Z., Zhang, Y., ... & Wang, X. (2023). Performance analysis and multi-objective optimization for a hybrid system based on solid oxide fuel cell and supercritical CO2 Brayton cycle with energetic and ecological objective approaches. Applied Thermal Engineering, 221, 119871.

[20] Sazali, N., Wan Salleh, W. N., Jamaludin, A. S., & Mhd Razali, M. N. (2020). New perspectives on fuel cell technology: A brief review. Membranes, 10(5), 99.

[21] Abazarian, E., Gheshlaghi, R., & Mahdavi, M. A. (2023). Interactions between sediment microbial fuel cells and voltage loss in series connection in open channels. Fuel, 332, 126028.

[22] Chan, S. H., Khor, K. A., & Xia, Z. T. (2001). A complete polarization model of a solid oxide fuel cell and its sensitivity to the change of cell component thickness. Journal of power sources, 93(1-2), 130-140.

[23] Sanchez, D., Chacartegui, R., Torres, M., & Sanchez, T. (2009). Stirling based fuel cell hybrid systems: An alternative for molten carbonate fuel cells. Journal of power sources, 192(1), 84-93.

[24] De Escalona, J. M., Sanchez, D., Chacartegui, R., & Sanchez, T. (2013). Performance analysis of hybrid systems incorporating high temperature fuel cells and closed cycle heat engines at part-load operation. International journal of hydrogen energy, 38(1), 570-578.

[25] Rokni, M. (2012). Plant characteristics of a multi-fuel SOFC-Stirling hybrid configuration. In 5th International Conference on Sustainable Energy and Environmental Protection–SEEP2012 (pp. 5-8).

[26] Kongtragool, B., & Wongwises, S. (2006). Thermodynamic analysis of a Stirling engine including dead volumes of hot space, cold space and regenerator. Renewable energy, 31(3), 345-359.

[27] Chen, L., Zhang, H., Gao, S., & Yan, H. (2014). Performance optimum analysis of an irreversible molten carbonate fuel cell–Stirling heat engine hybrid system. Energy, 64, 923-930.

[28] Li, D., Guo, J., Zhang, J., Zhan, L., & Alizadeh, M. (2021). Numerical assessment of a hybrid energy generation process and energy storage system based on alkaline fuel cell, solar energy and Stirling engine. Journal of Energy Storage, 39, 102631.

[29] Jimenez Zabalaga, P., Cardozo, E., Choque Campero, L. A., & Araoz Ramos, J. A. (2020). Performance analysis of a stirling engine hybrid power system. Energies, 13(4), 980.

[30] Lü, X., Wu, Y., Lian, J., Zhang, Y., Chen, C., Wang, P., & Meng, L. (2020). Energy management of hybrid electric vehicles: A review of energy optimization of fuel cell hybrid power system based on genetic algorithm. Energy Conversion and Management, 205, 112474.

[31] Yuan, H. B., Zou, W. J., Jung, S., & Kim, Y. B. (2022). Optimized rule-based energy management for a polymer electrolyte membrane fuel cell/battery hybrid power system using a genetic algorithm. International Journal of Hydrogen Energy, 47(12), 7932-7948.

[32] Ding, Q., Zhu, K. Q., Yang, C., Chen, X., Wan, Z. M., & Wang, X. D. (2021). Performance investigation of proton exchange membrane fuel cells with curved membrane electrode assemblies caused by pressure differences between cathode and anode. International Journal of Hydrogen Energy, 46(75), 37393-37405.

[33] Bizon, N. (2020). Optimization of the Fuel Cell Renewable Hybrid Power Systems.

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Published

2024-06-20

How to Cite

Examination and Enhancement of a Hybrid Energy System Including a Stirling Engine and a Fuel Cell. (2024). Development Engineering Conferences Center Articles Database, 1(2). https://pubs.bcnf.ir/index.php/Articles/article/view/61

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