Subject Areas : Renewable energies and Smart grids
Mostafa Khalatbari 1 , Ashkan Abdalisousan 2
1 - Department of Energy Engineering and Economics, Science and Research Branch, Islamic Azad University, Tehran, Iran
2 - Department of Natural Resources and Environment, Science and Research Branch,
Islamic Azad University, Tehran, Iran
Keywords:
Abstract :
[1] Dincer, I. Rosen, M. A. Chapter 2 - EXERGY AND ENERGY ANALYSES. EXERGY, Energy, Environment and Sustainable Development
2007, Pp. 23-35. (2007).
[2] Kallio, S. Siroux, M. Exergy and Exergy-Economic Approach to Evaluate Hybrid Renewable Energy Systems in Buildings. (2023). Energies 2023, 16, 1029. https://doi.org/10.3390/en16031029
[3] B. Rismanchi. District energy network (DEN), current global status and future development. Renewable and Sustainable Energy Reviews. Vol. 75, August 2017, Pp. 571-579. (2017).
[4] Naquash. A. Lee, M. Design and performance analysis of energy efficient hydrogen liquefaction process. Computer Aided Chemical Engineering
Vol. 52, Pp. 875-880. (2023).
[5] Kazemi, A. and others. Economic optimization and comparative environmental assessment of natural gas combined cycle power plants with CO2 capture. Energy, Vol. 277. (2023)
[6] Yang, K. and others. Exergy, exergoeconomic, and exergoenvironmental analyses of novel solar- and biomass-driven trigeneration system integrated with organic Rankine cycle. Energy, Vol. 301, 15 August 2024, 131605. (2024).
[7] Panbechi, B. and others. Environmental, economic and energy evaluation of alternative fuels for a steam power plant: Focus on biodiesel-nanoparticles utilization. Results in Engineering, Vol. 23. (2024).
[8] Ren, J. and others. Thermodynamic, exergoeconomic, and exergoenvironmental analysis of a combined cooling and power system for natural gas-biomass dual fuel gas turbine waste heat recovery. Energy, Vol. 269, 15 April 2023, 126676. (2023).
[9] Stanford University, Introduction to Mathematical Optimization. (2024). Related link:
https://web.stanford.edu/group/sisl/k12/optimization/MO-unit1-pdfs/1.1optimization.pdf
[10] Genetic Algorithms - Quick Guide. Tutorialspoint academy. (2024).
[11] Lorencin, I. and others. Genetic Algorithm Approach to Design of Multi-Layer Perceptron for Combined Cycle Power Plant Electrical Power Output Estimation. Energies 2019, 12, 4352; doi:10.3390/en12224352. (2019).
[12] Hilali, A. and others. Towards sustainable water pumping systems: Integration of particle swarm optimization and direct torque control PSO-DTC. e-Prime - Advances in Electrical Engineering, Electronics and Energy
Vol. 7, March 2024, 100480. (2024).
[13] Divasón, J. and others. PSO-PARSIMONY: A method for finding parsimonious and accurate machine learning models with particle swarm optimization. Application for predicting force–displacement curves in T-stub steel connections. Neurocomputing, Vol. 548, 1 September 2023, 126414. (2023).
[14] Barrios, D. M. Gerardo, B. D. Global Optimization using Random Adaptive Backtracking Particle Swarm Optimization (RAB-PSO). Procedia Computer Science, Vol. 230, 2023, Pp. 223-232. (2023).
[15] Khademi, M. and others. Techno-economic operation optimization of a HRSG in combined cycle power plants based on evolutionary algorithms: A case study of Yazd, Iran. Energy Equip Systems, Vol. 7, No. 1, Pp. 67-79. (2019).
[16] Wang, L., Singh, Ch.,.Stochastic combined heat and power dispatch based on multi-objective particle swarm optimization. Electrical Power and Energy Systems, 30, 226–234. (2007).
[17] Evers, G. The No Free Lunch Theorem Does Not Apply to Continuous Optimization. International conference on swarm intelligence, ICSI. (2011). http://icsi11.eisti.fr/papers/paper_25.pdf. Accessed 15 June 2011.
[18] Khorasani Nejad, E., Hajabdollahi, F., Hajabdollahi, Z., Hajabdollahi, H. Thermo-economic Optimization of Gas Turbine Power Plant with Details in Intercooler. Heat Transfer—Asian Research, Wiley Periodicals, Inc. doi: 10.1002/htj.21051. (2013).
[19] Erzen, S. Açıkkalp, E. Hepbasli, A. 7 - Off-grid hybrid systems based on combined conventional and unconventional technologies: Design, analyses, and illustrative examples. Hybrid Technologies for Power Generation, Hybrid Energy Systems 2022, Pp. 189-218. (2022).
[20] Cengel, Y., Boles, M..Thermodynamics, An Engineering Approach. 5th edition, McGraw-Hill.
[21] Spiegel, C. (2008).PEM Fuel Cell Modeling and Simulation Using MATLAB. Academic Press publications, Elsevier, Chapter 2. (2006)
[22] Schorr, M. Chalfin, J. Gas Turbine NOx Emissions Approaching Zero – Is it Worth the Price?. General Electric Power Systems. (2023).
[23] Balat, M. Security of energy supply in Turkey: Challenges and solutions. Energy Conversion and Management, 51, 1998–2011. (2010).
[24] Abdalisousan, A., Fani, M., Farhanieh, B. and Abbaspour, M. ‘EFFECT OF DECISION VARIABLES IN THE STEAM SECTIONNFOR THE EXERGOECONOMIC ANALYSIS OF TCCGT POWER PLANT: A CASE STUDY’, Energy & Environment · Vol. 25, No. 8, 1381-1404. (2014)