Energy Equipment and Systems

Energy Equipment and Systems

Integrated biomass and solar power-to-gas systems for energy storage and freshwater production: A 4E and multicriteria optimization approach

Document Type : Research Paper

Authors
Department of Mechanical Engineering, University of Tabriz, Tabriz, Iran
Abstract
Today, rising concerns about energy shortages and environmental degradation have encouraged innovation in renewable energy sources and cutting-edge technology for capturing their full potential. The adoption of sustainable practices has resulted in the emergence of innovative cogeneration systems that incorporate municipal solid waste as a fuel source. By integrating advanced technologies—including digesters, organic Rankine cycles, multiple effect distillation, methanation, and proton exchange membranes—this system uniquely converts hydrogen and CO2 into methane, enhancing fresh water production through heat recovery in the digestion process. We explore three multiobjective optimization scenarios employing machine learning and Greywolf algorithms to enhance system efficiency. The system has a significant CO2 emission index of 0.1649kg/kWh and total cost products of 12.91$/GJ, with a second-law thermodynamics efficiency of 32.07%. In the second scenario, strategic optimization is centered around the objective of increasing efficiency and net output power, while simultaneously reducing costs. This approach yields significant enhancements, including an exergy efficiency of 39.13% and a net output power of 30366.92 KW. Additionally, the product costs are lowered to 7.2571 $/GJ. These results highlight the system's cost-effectiveness and alignment with sustainability principles, offering meaningful contributions to renewable energy technologies and environmental conservation.
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[1] Ameri M, Ahmadi P, Hamidi A. Energy, exergy, and exergoeconomic analysis of a steam power plant: A case study. Energy. 2009;34(5):499-512. https://doi.org/10.1002/er.
[2] Hossein M, Chitgar N, Ali M, Ahmadi P, Rosen MA. Performance assessment and optimization of a biomass-based solid oxide fuel cell and micro gas turbine system integrated with an organic Rankine cycle. Int J Hydrogen Energy. 2019;44(36):19931-19940. https://doi.org/10.1016/j.ijhydene.2019.12.143.
[3] Lillo P, Ferrer-Marti L, Fernández-Baldor Á, Ramírez B. A new integral management model and evaluation method to enhance sustainability of renewable energy projects for energy and sanitation services. Energy Sustain Dev. 2015;29:1-12. https://doi.org/10.1016/j.esd.2015.08.003.
[4] Kim YM, Sohn JL, Yoon ES. Supercritical CO2 Rankine cycles for waste heat recovery from gas turbine. Energy. 2017;118:893-905. https://doi.org/10.1016/j.energy.2016.10.106.
[5] Ghasemzadeh N, Ghiami Sardroud R, Gholamian E, Yari M. Comprehensive performance evaluation and multi-criteria optimization of a novel tri-generation system based on geothermal energy. Energy Equip Syst. 2024;12(1):29-45. https://doi.org/10.22059/ees.2023.2006891.1437.
[6] Salman CA, Schwede S, Naqvi M, Thorin E, Yan J. Synergistic combination of pyrolysis, anaerobic digestion, and CHP plants. Energy Procedia. 2019;158:1323-1329. https://doi.org/10.1016/j.egypro.2019.01.326.
[7] Zhang L, Sobhani B. Comprehensive economic analysis and multi-objective optimization of an integrated power and freshwater generation cycle based on flash-binary geothermal and gas turbine cycles. J Clean Prod. 2022;364:132644. https://doi.org/10.1016/j.jclepro.2022.132644.
[8] Zeinali M, Sharifi A, Ranjbar F. Thermodynamic analysis of sustainable electric power production using solar tower during day and syngas combustion from municipal waste gasification during night. Energy Equip Syst. 2023;11(2):277-304. https://doi.org/10.22059/ees.2023.1999210.1421.
[9] Behzadi A, Gholamian E, Houshfar E, Ashjaee M, Habibollahzade A. Thermoeconomic analysis of a hybrid PVT solar system integrated with double effect absorption chiller for cooling/hydrogen production. Energy Equip Syst. 2018;6(4):413-427. https://doi.org/10.22059/ees.2018.33319.
[10] Ni M, Leung MKH, Leung DYC. Energy and exergy analysis of hydrogen production by a proton exchange membrane (PEM) electrolyzer plant. Energy Convers Manag. 2008;49(10):2748-2756. https://doi.org/10.1016/j.enconman.2008.03.018.
[11] Bailera M, Espatolero S, Lisbona P, Romeo LM. Power to gas-electrochemical industry hybrid systems: A case study. Appl Energy. 2017;202:435-446. https://doi.org/10.1016/j.apenergy.2017.05.177.
[12] Desideri U, Paolucci A. Performance modelling of a carbon dioxide removal system for power plants. Energy Convers Manag. 1999;40(20):1899-1915. https://doi.org/10.1016/S0196.8904(99)00074-6.
[13] Bailera M, Kezibri N, Romeo LM, Espatolero S, Lisbona P, Bouallou C. Future applications of hydrogen production and CO2 utilization for energy storage: Hybrid Power to Gas-Oxycombustion power plants. Int J Hydrogen Energy. 2017;42(22):13625-13632. https://doi.org/10.1016/j.ijhydene.2017.02.123.
[14] Ashour MM. Steady state analysis of the Tripoli West LT-HT-MED plant. L Energy. 2002;152:191-194.
[15] Khanmohammadi S, Kizilkan O, Nguyen DD. Simulation and exergy evaluation of a MED unit based on waste heat recovery from a gas turbine unit. Energy Equip Syst. 2022;10(4):229-239. https://doi.org/10.22059/ees.2022.254619.
[16] Montazerinejad H, Fakhimi E, Ghandehariun S, Ahmadi P. Advanced exergy analysis of a PEM fuel cell with hydrogen energy storage integrated with organic Rankine cycle for electricity generation. Sustain Energy Technol Assessments. 2022;51:101885. https://doi.org/10.1016/j.seta.2021.101885.
[17] Mofrad KG, Zandi S, Salehi G. Exergoeconomic and exergoenvironmental assessment of a geothermal-driven cogeneration system utilizing dual-pressure organic Rankine cycle and zeotropic mixtures. Energy Reports. 2023;9:5206-523. https://doi.org/10.1016/j.egyr.2023.04.271.
[18] Shamsi M, Moghaddas S, Torabi O, Bakhshehshi S, Bonyadi M. Design and analysis of a novel structure for green syngas and power cogeneration based on PEM electrolyzer and Allam cycle. Int J Hydrogen Energy. 2023;48(42):29034-29047. https://doi.org/10.1016/j.ijhydene.2023.04.069.
[19] Assareh E, Asl SSM, Agarwal N, Ahmadinejad M, Jalali A, Lee M. A Cogeneration-Coupled energy storage system utilizing hydrogen and methane-fueled CAES and ORC with ambient temperature consideration enhanced by artificial neural Network, and Multi-Objective optimization. Therm Sci Eng Prog. 2023;46:102161. https://doi.org/10.1016/j.tsep.2023.102161.
[20] Behzadi A, Gholamian E, Mojtaba S, Nourozi B. A comparative evaluation of alternative optimization strategies for a novel heliostat-driven hydrogen production/injection system coupled with a vanadium chlorine cycle. Energy Convers Manag. 2022;267:115878.
https://doi.org/10.1016/j.enconman.2022.115878.
[21] Javaherian A, Yari M, Gholamian E, Carton JG, Mehr AS. Proposal and comprehensive analysis of power and green hydrogen production using a novel integration of flame-assisted fuel cell system and Vanadium-Chlorine cycle: An application of multi-objective optimization. Energy Convers Manag. 2023;277:116659. https://doi.org/10.1016/j.enconman.2023.116659.
[22] Nami H, Mahmoudi SMS, Nemati A. Exergy, economic and environmental impact assessment and optimization of a novel cogeneration system including a gas turbine, a supercritical CO2 and an organic Rankine cycle (GT-HRSG/SCO2). Appl Therm Eng. 2017;110:1315-1330. https://doi.org/10.1016/j.applthermaleng.2016.08.197.
[23] Ahmadi S, Ghaebi H, Shokri A. A comprehensive thermodynamic analysis of a novel CHP system based on SOFC and APC cycles. Energy. 2019;186:115899. https://doi.org/10.1016/j.energy.2019.115899.
[24] Hamrang F, Shokri A, Seyed Mahmoudi SM, Ehghaghi B, Rosen MA. Performance analysis of a new electricity and freshwater production system based on an integrated gasification combined cycle and multi-effect desalination. Sustain. 2020;12(19):7996. https://doi.org/10.3390/su12197996.
[25] Dou Z, Zou Y, Mohebbi A. Design and multi-aspect analysis of a geothermal and biomass dual-source power, cooling, heating, and hybrid freshwater production system. Energy. 2024;293:130532. https://doi.org/10.1016/j.energy.2024.130532.
[26] Alotaibi S, Ibrahim OM, Luo S, Luo T. Modeling of a continuous water desalination process using directional solvent extraction. Desalination. 2017;420:114-124. https://doi.org/10.1016/j.desal.2017.07.00
[27] Balafkandeh A, Demirkan I. Advanced exergy analysis of a triple effect distillation unit integrated with CO2-based membrane separators. J Therm Sci Eng Appl. 2018;10(3):031010. https://doi.org/10.1115/1.4041645.
[28] Mostafavi Sani M, Noorpoor A, Shafie-Pour Motlagh M. Optimal model development of energy hub to supply water, heating and electrical demands of a cement factory. Energy. 2019;177:574–92. doi: 10.1016/j.energy.2019.03.043.
[29] Hesari F, Salimnezhad F, Khoshgoftar Manesh MH, Morad MR. A novel configuration for low-grade heat-driven desalination based on cascade MED. Energy. 2021;229:120657. https://doi.org/10.1016/j.energy.2021.120657.
[30] Khaleghi S, Asiaei S, Siavashi M. A smart grid poly-generation design for hot arid regions composed of multi-effect distillation (MED), compressed air energy storage (CAES), and parabolic trough solar collector field (PTSC). J Clean Prod. 2022;372:133693. https://doi.org/10.1016/j.jclepro.2022.133693.
[31] Clausen LR, Butera G, Jensen SH. Integration of anaerobic digestion with thermal gasification and pressurized solid oxide electrolysis cells for high efficiency bio-SNG production. Energy. 2019;188:116018. https://doi.org/10.1016/j.energy.2019.116018.
[32] Gao J, Wang Y, Ping Y, Hu D, Xu G, Gu F, et al. A thermodynamic analysis of methanation reactions of carbon oxides for the production of synthetic natural gas.  RSC Adv. 2012;2:2358–68. https://doi.org/10.1039/c2ra00632d.
[33] Leveni M, Cozzolino R. Energy, exergy, and cost comparison of Goswami cycle and cascade organic Rankine cycle/absorption chiller system for geothermal application. Energy Convers Manag. 2021;227:113598.
[34] Esfandi S, Baloochzadeh S, Asayesh M, Ehyaei MA, Ahmadi A, Rabanian AA, et al. Energy, exergy, economic, and exergoenvironmental analyses of a novel hybrid system to produce electricity, cooling, and syngas. Energies. 2020;13:6453.
[35] Tayefeh M. Exergy and economic analysis of a novel integration of compressed air energy storage with multi-effect distillation and multi-stage flash systems. J Energy Storage. 2022;55:105534. https://doi.org/10.1016/j.est.2022.105534.
[36] Bejan A, Tsatsaronis G, Moran MJ. Thermal design and optimization. 1st ed. John Wiley & Sons; 1995.
[37] Wang S, Zhang L, Liu C, Liu Z, Lan S, Li Q, et al. Techno-economic-environmental evaluation of a combined cooling heating and power system for gas turbine waste heat recovery. Energy. 2021;231:120956.
[38] Ioroi T, Yasuda K, Siroma Z, Fujiwara N, Miyazaki Y. Thin film electrocatalyst layer for unitized regenerative polymer electrolyte fuel cells. J Power Sources. 2002;112:583–7. https://doi.org/10.1016/S0378.7753(02)00466-4.
[39] Bailera M, Lisbona P, Romeo LM. Avoidance of partial load operation at coal-fired power plants by storing nuclear power through power to gas. Int J Hydrogen Energy. 2019;44:26063–75. https://doi.org/10.1016/j.ijhydene.2019.08.033.
[40] Fakhari I, Behzadi A, Gholamian E, Ahmadi P, Arabkoohsar A. Design and tri-objective optimization of a hybrid efficient energy system for tri-generation, based on PEM fuel cell and MED using syngas as a fuel. J Clean Prod. 2021;290:125205. https://doi.org/10.1016/j.jclepro.2020.125205.