- [1] A. Molajou, P. Pouladi, and A. Afshar, “Incorporating Social System into Water-Food-Energy Nexus,” Water Resources Management, vol. 35, no. 13, pp. 4561–4580, 2021, doi: 10.1007/s11269-021-02967-4.
- [2] R. Madurai Elavarasan et al., “The untold subtlety of energy consumption and its influence on policy drive towards Sustainable Development Goal 7,” Applied Energy, vol. 334, p. 120698, Mar. 2023, doi: 10.1016/j.apenergy.2023.120698.
- [3] Q. Wang et al., “Biogas generation from biomass as a cleaner alternative towards a circular bioeconomy: Artificial intelligence, challenges, and future insights,” Fuel, vol. 333, p. 126456, Feb. 2023, doi: 10.1016/j.fuel.2022.126456.
- [4] A. Motevali, N. Hooshmandzadeh, E. Fayyazi, M. Valipour, and J. Yue, “Environmental Impacts of Biodiesel Production Cycle from Farm to Manufactory: An Application of Sustainable Systems Engineering,” Atmosphere, vol. 14, no. 2, p. 399, Feb. 2023, doi: 10.3390/atmos14020399.
- [5] A. Molajou, A. Afshar, M. Khosravi, E. Soleimanian, M. Vahabzadeh, and H. A. Variani, “A new paradigm of water, food, and energy nexus,” Environmental Science and Pollution Research, Feb. 2021, doi: 10.1007/s11356-021-13034-1.
- [6] H. N. Bekheet and S. S. Najm, “The Future of Renewable Energy in the Iraqi Economy under Fossil Energy: Forward-Looking Study,” Webology, vol. 19, no. 1, pp. 2979–2999, Jan. 2022, doi: 10.14704/WEB/V19I1/WEB19198.
- [7] M. A. M. Sadeeq and S. Zeebaree, “Energy Management for Internet of Things via Distributed Systems,” Journal of Applied Science and Technology Trends, vol. 2, no. 02, pp. 59–71, Apr. 2021, doi: 10.38094/jastt20285.
- [8] T. Xia et al., “Efficient Energy Use in Manufacturing Systems—Modeling, Assessment, and Management Strategy,” Energies, vol. 16, no. 3, p. 1095, Jan. 2023, doi: 10.3390/en16031095.
- [9] Y. Ou, N. Kittner, S. Babaee, S. J. Smith, C. G. Nolte, and D. H. Loughlin, “Evaluating long-term emission impacts of large-scale electric vehicle deployment in the US using a human-Earth systems model,” Applied Energy, vol. 300, p. 117364, Oct. 2021, doi: 10.1016/j.apenergy.2021.117364.
- [10] D. Maradin, “Advantages and disadvantages of renewable energy sources utilization,” International Journal of Energy Economics and Policy, vol. 11, no. 3, pp. 176–183, 2021, doi: 10.32479/ijeep.11027.
- [11] A. Afshar, E. Soleimanian, H. Akbari Variani, M. Vahabzadeh, and A. Molajou, “The conceptual framework to determine interrelations and interactions for holistic Water, Energy, and Food Nexus,” Environment, Development and Sustainability, vol. 24, no. 8, pp. 10119–10140, Aug. 2022, doi: 10.1007/s10668-021-01858-3.
- [12] M. Mohsin, I. Hanif, F. Taghizadeh-Hesary, Q. Abbas, and W. Iqbal, “Nexus between energy efficiency and electricity reforms: A DEA-Based way forward for clean power development,” Energy Policy, vol. 149, p. 112052, Feb. 2021, doi: 10.1016/j.enpol.2020.112052.
- [13] A. J. Welch, I. A. Digdaya, R. Kent, P. Ghougassian, H. A. Atwater, and C. Xiang, “Comparative Technoeconomic Analysis of Renewable Generation of Methane Using Sunlight, Water, and Carbon Dioxide,” ACS Energy Letters, pp. 1540–1549, Mar. 2021, doi: 10.1021/acsenergylett.1c00174.
- [14] Y. A. Solangi, C. Longsheng, and S. A. A. Shah, “Assessing and overcoming the renewable energy barriers for sustainable development in Pakistan: An integrated AHP and fuzzy TOPSIS approach,” Renewable Energy, vol. 173, pp. 209–222, Aug. 2021, doi: 10.1016/j.renene.2021.03.141.
- [15] T. Adefarati and R. C. Bansal, “Reliability, economic and environmental analysis of a microgrid system in the presence of renewable energy resources,” Applied Energy, vol. 236, pp. 1089–1114, Feb. 2019, doi: 10.1016/j.apenergy.2018.12.050.
- [16] S. Safari, T. Hajilounezhad, and M. A. Ehyaei, “Multi‐objective optimization of solid oxide fuel cell/gas turbine combined heat and power system: A comparison between particle swarm and genetic algorithms,” International Journal of Energy Research, vol. 44, no. 11, pp. 9001–9020, Sep. 2020, doi: 10.1002/er.5610.
- [17] F. Wang et al., “Technologies and perspectives for achieving carbon neutrality,” The Innovation, vol. 2, no. 4, p. 100180, Nov. 2021, doi: 10.1016/j.xinn.2021.100180.
- [18] F. Hossain, M. R. Karim, and A. A. Bhuiyan, “A review on recent advancements of the usage of nano fluid in hybrid photovoltaic/thermal (PV/T) solar systems,” Renewable Energy, vol. 188, pp. 114–131, Apr. 2022, doi: 10.1016/j.renene.2022.01.116.
- [19] Z.-G. Sun, “Energy efficiency and economic feasibility analysis of cogeneration system driven by gas engine,” Energy and Buildings, vol. 40, no. 2, pp. 126–130, Jan. 2008, doi: 10.1016/j.enbuild.2007.01.013.
- [20] C. Z. Li, Y. M. Shi, and X. H. Huang, “Sensitivity analysis of energy demands on performance of CCHP system,” Energy Conversion and Management, vol. 49, no. 12, pp. 3491–3497, Dec. 2008, doi: 10.1016/j.enconman.2008.08.006.
- [21] L.-L. Li, S.-J. Zheng, M.-L. Tseng, and Y.-W. Liu, “Performance assessment of combined cooling, heating and power system operation strategy based on multi-objective seagull optimization algorithm,” Energy Conversion and Management, vol. 244, p. 114443, Sep. 2021, doi: 10.1016/j.enconman.2021.114443.
- [22] C. S. Malvi, D. W. Dixon-Hardy, and R. Crook, “Energy balance model of combined photovoltaic solar-thermal system incorporating phase change material,” Solar Energy, vol. 85, no. 7, pp. 1440–1446, Jul. 2011, doi: 10.1016/j.solener.2011.03.027.
- [23] J. I. Rosell, X. Vallverdú, M. A. Lechón, and M. Ibáñez, “Design and simulation of a low concentrating photovoltaic/thermal system,” Energy Conversion and Management, vol. 46, no. 18–19, pp. 3034–3046, Nov. 2005, doi: 10.1016/j.enconman.2005.01.012.
- [24] M. Y. Hj. Othman, B. Yatim, K. Sopian, and M. N. Abu Bakar, “Performance analysis of a double-pass photovoltaic/thermal (PV/T) solar collector with CPC and fins,” Renewable Energy, vol. 30, no. 13, pp. 2005–2017, Oct. 2005, doi: 10.1016/j.renene.2004.10.007.
- [25] S. Agrawal and G. N. Tiwari, “Energy and exergy analysis of hybrid micro-channel photovoltaic thermal module,” Solar Energy, vol. 85, no. 2, pp. 356–370, Feb. 2011, doi: 10.1016/j.solener.2010.11.013.
- [26] F. Ren, Z. Wei, and X. Zhai, “Multi-objective optimization and evaluation of hybrid CCHP systems for different building types,” Energy, vol. 215, p. 119096, Jan. 2021, doi: 10.1016/j.energy.2020.119096.
- [27] H. Bahlawan, M. Morini, M. Pinelli, W.-R. Poganietz, P. R. Spina, and M. Venturini, “Optimization of a hybrid energy plant by integrating the cumulative energy demand,” Applied Energy, vol. 253, p. 113484, Nov. 2019, doi: 10.1016/j.apenergy.2019.113484.
- [28] M. Mehregan, M. Abbasi, and S. Majid Hashemian, “Technical, economic and environmental analyses of combined heat and power (CHP) system with hybrid prime mover and optimization using genetic algorithm,” Sustainable Energy Technologies and Assessments, vol. 49, p. 101697, Feb. 2022, doi: 10.1016/j.seta.2021.101697.
- [29] V. İncili, G. Karaca Dolgun, A. Georgiev, A. Keçebaş, and N. S. Çetin, “Performance evaluation of novel photovoltaic and Stirling assisted hybrid micro combined heat and power system,” Renewable Energy, vol. 189, pp. 129–138, Apr. 2022, doi: 10.1016/j.renene.2022.03.030.
- [30] H. M. S. Al-Maamary, H. A. Kazem, and M. T. Chaichan, “The impact of oil price fluctuations on common renewable energies in GCC countries,” Renewable and Sustainable Energy Reviews, vol. 75, pp. 989–1007, Aug. 2017, doi: 10.1016/j.rser.2016.11.079.
- [31] A. J. Conejo, M. Carrión, and J. M. Morales, Decision making under uncertainty in electricity markets. Springer, 2010.
|