Araştırma Makalesi
BibTex RIS Kaynak Göster

Yıl 2026, Cilt: 11 Sayı: 1, 207 - 254, 17.03.2026
https://doi.org/10.58559/ijes.1812948
https://izlik.org/JA92FB43ED

Öz

Kaynakça

  • [1] World hydropower outlook opportunities to advance net zero, IHA, International Hydropower Association, 2025.
  • [2] Renewable Power Generation Costs in 2024, IRENA, International Renewable Energy Agency, 2025.
  • [3] Rego EE, Costa OLV, Ribeiro C de O, Lima Filho RI da R, Takada H, Stern J. The trade-off between demand growth and renewables: A multiperiod electricity planning model under CO2 emission constraints. Energy 2020; 213 (118832).
  • [4] Wu Y, Liu Z, Li B, Liu H, Liu R, Zhang L. Optimal storage capacity for building photovoltaic-energy storage systems considering energy flexibility management. Energy and Buildings 2025; 338(115757).
  • [5] Mojumder MFH, Islam T, Rafi MMR, Asef IH, Hasan M, Chowdhury NUR. Enhanced hybrid energy generation solutions for sustainable rural electrifications in Bangladesh: A system optimization and performance evaluation approach using HOMER Pro and MATLAB/Simulink. Journal of Energy Storage 2025; 115 (115971).
  • [6] Malakar K, Lal S. Effect of wind speed and capacitive power on a grid connected 1 MW wind energy power plant using MATLAB/Simulink. International Journal of Science and Engineering Invention 2025; 11(02): 23-36.
  • [7] Ramkumar MS, Subramani J, Sivaramkrishnan M, et al., Optimal energy management for multi-energy microgrids using hybrid solutions to address renewable energy source uncertainty. Sci Rep 2025; 15 (7755).
  • [8] Khosravi N, Oubelaid A, Belkhier Y. Energy management in networked microgrids: A comparative study of hierarchical deep learning and predictive analytics techniques” Energy Conversion and Management: X 2025; 25 (100828).
  • [9] Melamu MT, Orumwense EF, Abo-Al-Ez KM. Simulation of a hybrid PV system and micro-hydropower using Matlab/Simulink. AIUE Proceedings of the 18th Industrial and Commercial Use of Energy Conference 2020.
  • [10] Nigam A, Sharma KK. Integration of hybrid energy model with solar PV, hydro & wind turbine by using MATLAB/Simulink. 2022 International Conference on Electronics and Renewable Systems (ICEARS) 2022; Tuticorin, India, 228-232.
  • [11] Niringiyimana E, WanQuan S, Dushimimana G. Feasibility Study of a Hybrid PV/Hydro System for Remote Area Electrification in Rwanda. Journal of Renewable Energy 2022; 2022: 1-11.
  • [12] Singh P, Yadav AK, Sood YR. Simulink modelling of a solar-hydro-battery integrated microgrid system for rural electrification in India. 2020 IEEE International Conference on Computing, Power and Communication Technologies (GUCON), Greater Noida, India, 2020: 159-164.
  • [13] Hadith SS, Haque A, Bharath Kurukuru VS. Solar-hydro based hybrid power generation. 2021 IEEE Bombay Section Signature Conference (IBSSC), Gwalior, India, 2021: 1-6.
  • [14] Ali MEM, Ebeed M, Khamies M. Hybrid multi-stage hydro-matrix and PV solar cell in a real grid for minimizing electricity consumption and avoiding voltage issues” Sohag Engineering Journal (SEJ) 2025; 05(1): 48-58.
  • [15] Kumar K, Prabhu KR, Ramesh Babu N. Design and analysis of modified single P&O MPPT control algorithm for a standalone hybrid solar and wind energy conversion system. Gazi University Journal of Science 2017; 30(4): 296-312.
  • [16] Chullai ERJ, Nannam H, Roy P, Roy R, Banerjee A. Performance evaluation of a TOFOSMC-based pump hydro energy storage in the application of grid-connected photovoltaic system. Electrical Engineering 2025; 107: 11121-11142.
  • [17] Tereci A, Atmaca M. Integrating renewable energy systems into urban furniture for recreational spaces: A design proposal for Konya Adalet Park. Gazi University Journal of Science 2020; 33 (1): 1-12.
  • [18] Veramalla R, Gundeboina D, Bochu S, Salkuti SR. Unit template-based control algorithm for control of voltage and frequency in solar-hydro system. Artificial Intelligence for Integrated Smart Energy Systems in Electric Vehicles 2025; 1427: 675-691.
  • [19] Somefunn TE, Ayodeji OD, Mary LO. Power system operation enhancement modelling using MATLAB/Simulink. E3S Web of Conferences 2025; 601(00029).
  • [20] Patel AB, Chilipi R. Model predictive control for micro-hydro, solar photovoltaic-based standalone microgrid with power quality improvement. Australian Journal of Electrical and Electronics Engineering 2025; 2025: 1-15.
  • [21] Checklie GN, Tadiowose T, Ejigu NA. Design and modeling of hybrid solar PV/mini hydro micro-grid systems for rural electrification: A case of gilgel abay river, Ethiopia” Journal of Electrical Power & Energy Systems 2023; 7(1): 26-46.
  • [22] Ibekwe EC, Amadi HN, Horsfall DJ. Solar pumped hydro turbine storage system for efficient power supply” International Journal of Engineering and Modern Technology (IJEMT) 2024; 10(9): 94-106.
  • [23] Asare-Bediako F, Antwi EO, Diawuo FA, Dzikunu C. Assessing the performance of hydro-solar hybrid (HSH) grid integration: A case study of Bui Generating Station, Ghana. Solar Compass 2024; 10(100071).
  • [24] Iweh CD, Semassou GC, Ahouansou RH. Optimization of a hybrid off-grid solar PV-hydro power systems for rural electrification in Cameroon. Journal of Electrical and Computer Engineering 2024; 2024(4199455).
  • [25] Neupane D, Gurung S, Neupane S, Bhattarai N. Power sharing in solar PV: Microhydro hybrid system using power angle control strategy” Journal of Control, Automation and Electrical Systems 2022; 34(2).
  • [26] Sakouvogui A, Camara EO, Balde NA, Keita M. Sizing and simulation of a hybrid hydroelectricity and photovoltaic system with storage for supplying the Tamagaly district in Mamou, Guinea. Journal of Energy and Power Engineering 2023; 17: 69-77.
  • [27] Twaróg B. Modelling a pumped storage power plant on the example of the Porąbka Żar power plant. Technical Transactions 2023; 2023(1): 1-16.
  • [28] Gizaw M, Bekele G. Design of a solar island with a water-battery storage system for Lake Ziway islanders in Ethiopia. Cogent Engineering 2024; 11(1).
  • [29] Kenfack AZ, Nematchoua MK, Simo E, Ntegmi GJB, Chara-Dackou VS. Transition towards net zero emissions: Integration of a PV/T system with a hydroelectric generator and the impact of demand-side management. Heliyon 2024; 10(17).
  • [30] Konneh KV, Masrur H, Othman ML, Senjyu T. Performance assessment of a hybrid complementary power system for sustainable electrification: A case study. Sustainable Cities and Society 2022; 76(103412).
  • [31] Agajie EF, Agajie TF, Amoussou I. et al. Optimization of off-grid hybrid renewable energy systems for cost-effective and reliable power supply in Gaita Selassie Ethiopia. Sci Rep 2024; 14(10929).
  • [32] Oladigbolu JO, Ramli MAM, Al-Turki YA. Optimal design of a hybrid PV solar/micro-hydro/diesel/battery energy system for a remote rural village under tropical climate conditions. Electronics 2020; 9 (1491).
  • [33] Ma J, Yuan X. Techno-economic optimization of hybrid solar system with energy storage for increasing the energy independence in green buildings. Journal of Energy Storage 2023; 61(106642).
  • [34] Nassar Y, Irhouma M, Salem M, El-Khozondar H, Suliman S, Elmnifi M, Khaleel M, Rekik S. Towards Green Economy: : Case of Electricity Generation Sector in Libya. Solar Energy and Sustainable Development Journal 2025; 14(1): 334-360.
  • [35] Nassar YF, El-Khozondar HJ, Fakher MA. The role of hybrid renewable energy systems in covering power shortages in public electricity grid: An economic, environmental and technical optimization analysis. Journal of Energy Storage 2025; 108(115224).
  • [36] Salim E, Abubaker A, Ahmed B, Nassar Y. A Brief Overview of Hybrid Renewable Energy Systems and Analysis of Integration of Isolated Hybrid PV Solar System with Pumped Hydropower Storage for Brack city - Libya. Wadi Alshatti University Journal of Pure and Applied Sciences 2025; 3(1): 152-167.
  • [37] Nassar YF, Abdunnabi MJ, Sbeta MN, Hafez AA, Amer KA, Ahmed AY, Belgasim B. Dynamic analysis and sizing optimization of a pumped hydroelectric storage-integrated hybrid PV/Wind system: A case study. Energy Conversion and Management 2021; 229 (113744).
  • [38] El-Khozondar HJ, Asfour AA, Nassar YF, Shaheen SW, El-Zaety MF, El-Khozondar R. J., Khaleel, M. M., Ahmed, A. A., & Alsharif, A. H. Photovoltaic Solar Energy for Street Lighting: A Case Study at Kuwaiti Roundabout, Gaza Strip, Palestine. Power Eng. Eng Thermophys 2024; 3(2): 77-91.
  • [39] Khaleel M, Yusupov Z, Alderoubi N, Abduljabbar RL, Elmnifi M, Nassar Y, Majdi HS, Habeeb LJ, Abulifa S. Evolution of Emissions: The Role of Clean Energy in Sustainable Development. Chall. Sustain. 2024; 12(2): 122-135.
  • [40] Elnaggar M, El-Khozondar HJ, Salah WA, Nassar YF, Bashir MJK. Assessing the Techno-enviro-economic viability of wind farms to address electricity shortages and Foster sustainability in Palestine. Results in Engineering 2024; 24(103111).
  • [41] Abuhelwa M, Elnaggar M, Salah WA, Nassar YF, Bashir MJK. Exploring the Prevalence of Renewable Energy Practices and Awareness Levels in Palestine. Energy Science & Engineering 2025; 13: 1292-1305.
  • [42] Nyasapoh M, Gyamfi S, Debrah SK, Gabbar H, Derkyi N, Nassar YF, Djimasbe R, Gbinu J, Odoi-Yorke F, El-Khozondar HJ. Navigating Renewable Energy Transition Challenges for a Sustainable Energy Future in Ghana. Solar Energy and Sustainable Development Journal 2025; 14(1): 237–257.
  • [43] El‐Khozondar HJ, El-Khozondar RJ, Nassar YF, El-Batta F. Technical-economical-environmental assessment of grid-connected hybrid renewable energy power system for Gaza Strip-palestine. Engineering Science and Technology, an International Journal 2025; 69 (102120).
  • [44] Elmnifi M. et al. Solar and Wind Energy Generation Systems with Pumped Hydro Energy Storage: City of Derna. In: Xu, H. (eds) Proceedings of the 7th International Symposium on Water Resource and Environmental Management. WREM 2024. Environmental Science and Engineering. Springer, Cham.
  • [45] Khaleel M, Yusupov Z, Yasser N, El-Khozondar HJ. Enhancing Microgrid Performance through Hybrid Energy Storage System Integration: ANFIS and GA Approaches. Int. J. Electr. Eng. And Sustain. 2023; 1(2): 38–48.
  • [46] Mohammed S, Yasser Y, Algassie H, Asma A, El-Khozondar H, Elmnifi M, Khaleel M, Sassi Rekik S, Salem M. Exploring Optimum Sites for Exploitation Hydropower Energy Storage Stations (PHES) Using the Geographic Information Systems (GIS) in Libya. Solar Energy and Sustainable Development Journal 2025; 14(1): 394–409.
  • [47] Chelli A, Brander L, Geneletti D. Cost-Benefit analysis of urban nature-based solutions: A systematic review of approaches and scales with a focus on benefit valuation. Ecosystem Services 2025; 71(101684).
  • [48] Nassar Y, Alsadi S, Amer K, Yousef A, Fakher M. Numerical Analysis and Optimization of Area Contribution of The PV Cells in the PV/T Flat-Plate Solar Air Heating Collector. Journal of Solar Energy Research Updates 2019; 6.
  • [49] Mohammed S, Yasser Y, Algassie H, Asma A, El-Khozondar H, Elmnifi M, Khaleel M, Sassi Rekik S, Salem M. Exploring Optimum Sites for Exploitation Hydropower Energy Storage Stations (PHES) Using the Geographic Information Systems (GIS) in Libya. Solar Energy and Sustainable Development Journal 2025; 14(1): 394-409.
  • [50] Mohammed S, Nassar Y, Algassie H, Mahammed A, El-Khozondar H, Alatrash A. Exploring Promised Sites for Establishing Hydropower Energy Storage (PHES) Stations in Libya by Using the Geographic Information Systems (GIS). Wadi Alshatti University Journal of Pure and Applied Sciences 2025; 3(1): 85-94.
  • [51] Mohammed SM, Nassar Y, El-Osta W, El-Khozondar HJ, Miskeen A, Basha A. Carbon and Energy Life Cycle Analysis of Wind Energy Industry in Libya. Solar Energy and Sustainable Development Journal 2023; 12(1): 50-69.
  • [52] Abodwair A, Guneser M, Khaleel M, Nassar Y, El-Khozondar H, Elbaz A. Feasibility Assessment of Hybrid Renewable Energy Based EV Charging Station in Libya. Solar Energy and Sustainable Development Journal 2024; 13(2): 311-349.
  • [53] Almhdi E, Miskeen G. Power and Carbon Footprint Evaluation and Optimization in Transitioning Data Centres. Wadi Alshatti University Journal of Pure and Applied Sciences 2025; 3(2): 221-229.
  • [54] El-Khozondar H, El-Khozondar R, Nassar Y, Asfour A, Albardawil M, El-Zesty M, Shaheen S, Elmnifi M, Khaleel M, Alkhazmi A, Ali A. Economic and Environmental Implications of Solar Energy Street Lighting in Urban Regions: A Case Study. Wadi Alshatti University Journal of Pure and Applied Sciences 2025; 3(1): 142-151.

Design and simulation of integrated solar-hydroelectric systems: Complementary renewable profiles and MATLAB/Simulink-based analysis

Yıl 2026, Cilt: 11 Sayı: 1, 207 - 254, 17.03.2026
https://doi.org/10.58559/ijes.1812948
https://izlik.org/JA92FB43ED

Öz

The increasing penetration of renewable energy sources necessitates the development of hybrid energy systems capable of ensuring reliability, economic viability, and operational flexibility. This study investigates the optimal design and techno economic performance of a hybrid renewable energy system (HRES) integrating photovoltaic (PV) generation and hydropower for a selected case study in Türkiye. In this study, a Solar-Hydroelectric (SHE) hybrid system was designed and modeled using MATLAB/Simulink. The system is designed to supply an annual electrical load of approximately 10,500 MWh, while minimizing total system cost and improving energy reliability. A comprehensive optimization framework is employed to determine the optimal capacities of the SHE facility. The results indicate that the optimal configuration consists of 4.375 MW of PV capacity combined with an existing 3.065 MW of hydropower, enabling effective load coverage throughout the year. The total initial investment cost of the proposed system is estimated at 3.3 million USD, with an annual operating cost of 150,000 USD. The hybrid configuration achieves a levelized cost of energy (LCOE) of 0.02685 USD/kWh, which is lower than that of comparable single source hydroelectric power plant (HEPP) systems. The integration of solar PV significantly reduces hydropower dependency during dry seasons and enhances overall system flexibility. In addition, the hybrid system improves energy utilization and reduces curtailment while maintaining supply reliability. Also, an enhanced MATLAB/Simulink design is demonstrated in this study. The findings demonstrate that solar-hydropower hybridization represents a technically feasible and economically competitive solution for expanding renewable energy deployment in Türkiye. The proposed approach provides practical insights for policymakers and energy planners aiming to develop cost-effective and sustainable hybrid energy systems.

Kaynakça

  • [1] World hydropower outlook opportunities to advance net zero, IHA, International Hydropower Association, 2025.
  • [2] Renewable Power Generation Costs in 2024, IRENA, International Renewable Energy Agency, 2025.
  • [3] Rego EE, Costa OLV, Ribeiro C de O, Lima Filho RI da R, Takada H, Stern J. The trade-off between demand growth and renewables: A multiperiod electricity planning model under CO2 emission constraints. Energy 2020; 213 (118832).
  • [4] Wu Y, Liu Z, Li B, Liu H, Liu R, Zhang L. Optimal storage capacity for building photovoltaic-energy storage systems considering energy flexibility management. Energy and Buildings 2025; 338(115757).
  • [5] Mojumder MFH, Islam T, Rafi MMR, Asef IH, Hasan M, Chowdhury NUR. Enhanced hybrid energy generation solutions for sustainable rural electrifications in Bangladesh: A system optimization and performance evaluation approach using HOMER Pro and MATLAB/Simulink. Journal of Energy Storage 2025; 115 (115971).
  • [6] Malakar K, Lal S. Effect of wind speed and capacitive power on a grid connected 1 MW wind energy power plant using MATLAB/Simulink. International Journal of Science and Engineering Invention 2025; 11(02): 23-36.
  • [7] Ramkumar MS, Subramani J, Sivaramkrishnan M, et al., Optimal energy management for multi-energy microgrids using hybrid solutions to address renewable energy source uncertainty. Sci Rep 2025; 15 (7755).
  • [8] Khosravi N, Oubelaid A, Belkhier Y. Energy management in networked microgrids: A comparative study of hierarchical deep learning and predictive analytics techniques” Energy Conversion and Management: X 2025; 25 (100828).
  • [9] Melamu MT, Orumwense EF, Abo-Al-Ez KM. Simulation of a hybrid PV system and micro-hydropower using Matlab/Simulink. AIUE Proceedings of the 18th Industrial and Commercial Use of Energy Conference 2020.
  • [10] Nigam A, Sharma KK. Integration of hybrid energy model with solar PV, hydro & wind turbine by using MATLAB/Simulink. 2022 International Conference on Electronics and Renewable Systems (ICEARS) 2022; Tuticorin, India, 228-232.
  • [11] Niringiyimana E, WanQuan S, Dushimimana G. Feasibility Study of a Hybrid PV/Hydro System for Remote Area Electrification in Rwanda. Journal of Renewable Energy 2022; 2022: 1-11.
  • [12] Singh P, Yadav AK, Sood YR. Simulink modelling of a solar-hydro-battery integrated microgrid system for rural electrification in India. 2020 IEEE International Conference on Computing, Power and Communication Technologies (GUCON), Greater Noida, India, 2020: 159-164.
  • [13] Hadith SS, Haque A, Bharath Kurukuru VS. Solar-hydro based hybrid power generation. 2021 IEEE Bombay Section Signature Conference (IBSSC), Gwalior, India, 2021: 1-6.
  • [14] Ali MEM, Ebeed M, Khamies M. Hybrid multi-stage hydro-matrix and PV solar cell in a real grid for minimizing electricity consumption and avoiding voltage issues” Sohag Engineering Journal (SEJ) 2025; 05(1): 48-58.
  • [15] Kumar K, Prabhu KR, Ramesh Babu N. Design and analysis of modified single P&O MPPT control algorithm for a standalone hybrid solar and wind energy conversion system. Gazi University Journal of Science 2017; 30(4): 296-312.
  • [16] Chullai ERJ, Nannam H, Roy P, Roy R, Banerjee A. Performance evaluation of a TOFOSMC-based pump hydro energy storage in the application of grid-connected photovoltaic system. Electrical Engineering 2025; 107: 11121-11142.
  • [17] Tereci A, Atmaca M. Integrating renewable energy systems into urban furniture for recreational spaces: A design proposal for Konya Adalet Park. Gazi University Journal of Science 2020; 33 (1): 1-12.
  • [18] Veramalla R, Gundeboina D, Bochu S, Salkuti SR. Unit template-based control algorithm for control of voltage and frequency in solar-hydro system. Artificial Intelligence for Integrated Smart Energy Systems in Electric Vehicles 2025; 1427: 675-691.
  • [19] Somefunn TE, Ayodeji OD, Mary LO. Power system operation enhancement modelling using MATLAB/Simulink. E3S Web of Conferences 2025; 601(00029).
  • [20] Patel AB, Chilipi R. Model predictive control for micro-hydro, solar photovoltaic-based standalone microgrid with power quality improvement. Australian Journal of Electrical and Electronics Engineering 2025; 2025: 1-15.
  • [21] Checklie GN, Tadiowose T, Ejigu NA. Design and modeling of hybrid solar PV/mini hydro micro-grid systems for rural electrification: A case of gilgel abay river, Ethiopia” Journal of Electrical Power & Energy Systems 2023; 7(1): 26-46.
  • [22] Ibekwe EC, Amadi HN, Horsfall DJ. Solar pumped hydro turbine storage system for efficient power supply” International Journal of Engineering and Modern Technology (IJEMT) 2024; 10(9): 94-106.
  • [23] Asare-Bediako F, Antwi EO, Diawuo FA, Dzikunu C. Assessing the performance of hydro-solar hybrid (HSH) grid integration: A case study of Bui Generating Station, Ghana. Solar Compass 2024; 10(100071).
  • [24] Iweh CD, Semassou GC, Ahouansou RH. Optimization of a hybrid off-grid solar PV-hydro power systems for rural electrification in Cameroon. Journal of Electrical and Computer Engineering 2024; 2024(4199455).
  • [25] Neupane D, Gurung S, Neupane S, Bhattarai N. Power sharing in solar PV: Microhydro hybrid system using power angle control strategy” Journal of Control, Automation and Electrical Systems 2022; 34(2).
  • [26] Sakouvogui A, Camara EO, Balde NA, Keita M. Sizing and simulation of a hybrid hydroelectricity and photovoltaic system with storage for supplying the Tamagaly district in Mamou, Guinea. Journal of Energy and Power Engineering 2023; 17: 69-77.
  • [27] Twaróg B. Modelling a pumped storage power plant on the example of the Porąbka Żar power plant. Technical Transactions 2023; 2023(1): 1-16.
  • [28] Gizaw M, Bekele G. Design of a solar island with a water-battery storage system for Lake Ziway islanders in Ethiopia. Cogent Engineering 2024; 11(1).
  • [29] Kenfack AZ, Nematchoua MK, Simo E, Ntegmi GJB, Chara-Dackou VS. Transition towards net zero emissions: Integration of a PV/T system with a hydroelectric generator and the impact of demand-side management. Heliyon 2024; 10(17).
  • [30] Konneh KV, Masrur H, Othman ML, Senjyu T. Performance assessment of a hybrid complementary power system for sustainable electrification: A case study. Sustainable Cities and Society 2022; 76(103412).
  • [31] Agajie EF, Agajie TF, Amoussou I. et al. Optimization of off-grid hybrid renewable energy systems for cost-effective and reliable power supply in Gaita Selassie Ethiopia. Sci Rep 2024; 14(10929).
  • [32] Oladigbolu JO, Ramli MAM, Al-Turki YA. Optimal design of a hybrid PV solar/micro-hydro/diesel/battery energy system for a remote rural village under tropical climate conditions. Electronics 2020; 9 (1491).
  • [33] Ma J, Yuan X. Techno-economic optimization of hybrid solar system with energy storage for increasing the energy independence in green buildings. Journal of Energy Storage 2023; 61(106642).
  • [34] Nassar Y, Irhouma M, Salem M, El-Khozondar H, Suliman S, Elmnifi M, Khaleel M, Rekik S. Towards Green Economy: : Case of Electricity Generation Sector in Libya. Solar Energy and Sustainable Development Journal 2025; 14(1): 334-360.
  • [35] Nassar YF, El-Khozondar HJ, Fakher MA. The role of hybrid renewable energy systems in covering power shortages in public electricity grid: An economic, environmental and technical optimization analysis. Journal of Energy Storage 2025; 108(115224).
  • [36] Salim E, Abubaker A, Ahmed B, Nassar Y. A Brief Overview of Hybrid Renewable Energy Systems and Analysis of Integration of Isolated Hybrid PV Solar System with Pumped Hydropower Storage for Brack city - Libya. Wadi Alshatti University Journal of Pure and Applied Sciences 2025; 3(1): 152-167.
  • [37] Nassar YF, Abdunnabi MJ, Sbeta MN, Hafez AA, Amer KA, Ahmed AY, Belgasim B. Dynamic analysis and sizing optimization of a pumped hydroelectric storage-integrated hybrid PV/Wind system: A case study. Energy Conversion and Management 2021; 229 (113744).
  • [38] El-Khozondar HJ, Asfour AA, Nassar YF, Shaheen SW, El-Zaety MF, El-Khozondar R. J., Khaleel, M. M., Ahmed, A. A., & Alsharif, A. H. Photovoltaic Solar Energy for Street Lighting: A Case Study at Kuwaiti Roundabout, Gaza Strip, Palestine. Power Eng. Eng Thermophys 2024; 3(2): 77-91.
  • [39] Khaleel M, Yusupov Z, Alderoubi N, Abduljabbar RL, Elmnifi M, Nassar Y, Majdi HS, Habeeb LJ, Abulifa S. Evolution of Emissions: The Role of Clean Energy in Sustainable Development. Chall. Sustain. 2024; 12(2): 122-135.
  • [40] Elnaggar M, El-Khozondar HJ, Salah WA, Nassar YF, Bashir MJK. Assessing the Techno-enviro-economic viability of wind farms to address electricity shortages and Foster sustainability in Palestine. Results in Engineering 2024; 24(103111).
  • [41] Abuhelwa M, Elnaggar M, Salah WA, Nassar YF, Bashir MJK. Exploring the Prevalence of Renewable Energy Practices and Awareness Levels in Palestine. Energy Science & Engineering 2025; 13: 1292-1305.
  • [42] Nyasapoh M, Gyamfi S, Debrah SK, Gabbar H, Derkyi N, Nassar YF, Djimasbe R, Gbinu J, Odoi-Yorke F, El-Khozondar HJ. Navigating Renewable Energy Transition Challenges for a Sustainable Energy Future in Ghana. Solar Energy and Sustainable Development Journal 2025; 14(1): 237–257.
  • [43] El‐Khozondar HJ, El-Khozondar RJ, Nassar YF, El-Batta F. Technical-economical-environmental assessment of grid-connected hybrid renewable energy power system for Gaza Strip-palestine. Engineering Science and Technology, an International Journal 2025; 69 (102120).
  • [44] Elmnifi M. et al. Solar and Wind Energy Generation Systems with Pumped Hydro Energy Storage: City of Derna. In: Xu, H. (eds) Proceedings of the 7th International Symposium on Water Resource and Environmental Management. WREM 2024. Environmental Science and Engineering. Springer, Cham.
  • [45] Khaleel M, Yusupov Z, Yasser N, El-Khozondar HJ. Enhancing Microgrid Performance through Hybrid Energy Storage System Integration: ANFIS and GA Approaches. Int. J. Electr. Eng. And Sustain. 2023; 1(2): 38–48.
  • [46] Mohammed S, Yasser Y, Algassie H, Asma A, El-Khozondar H, Elmnifi M, Khaleel M, Sassi Rekik S, Salem M. Exploring Optimum Sites for Exploitation Hydropower Energy Storage Stations (PHES) Using the Geographic Information Systems (GIS) in Libya. Solar Energy and Sustainable Development Journal 2025; 14(1): 394–409.
  • [47] Chelli A, Brander L, Geneletti D. Cost-Benefit analysis of urban nature-based solutions: A systematic review of approaches and scales with a focus on benefit valuation. Ecosystem Services 2025; 71(101684).
  • [48] Nassar Y, Alsadi S, Amer K, Yousef A, Fakher M. Numerical Analysis and Optimization of Area Contribution of The PV Cells in the PV/T Flat-Plate Solar Air Heating Collector. Journal of Solar Energy Research Updates 2019; 6.
  • [49] Mohammed S, Yasser Y, Algassie H, Asma A, El-Khozondar H, Elmnifi M, Khaleel M, Sassi Rekik S, Salem M. Exploring Optimum Sites for Exploitation Hydropower Energy Storage Stations (PHES) Using the Geographic Information Systems (GIS) in Libya. Solar Energy and Sustainable Development Journal 2025; 14(1): 394-409.
  • [50] Mohammed S, Nassar Y, Algassie H, Mahammed A, El-Khozondar H, Alatrash A. Exploring Promised Sites for Establishing Hydropower Energy Storage (PHES) Stations in Libya by Using the Geographic Information Systems (GIS). Wadi Alshatti University Journal of Pure and Applied Sciences 2025; 3(1): 85-94.
  • [51] Mohammed SM, Nassar Y, El-Osta W, El-Khozondar HJ, Miskeen A, Basha A. Carbon and Energy Life Cycle Analysis of Wind Energy Industry in Libya. Solar Energy and Sustainable Development Journal 2023; 12(1): 50-69.
  • [52] Abodwair A, Guneser M, Khaleel M, Nassar Y, El-Khozondar H, Elbaz A. Feasibility Assessment of Hybrid Renewable Energy Based EV Charging Station in Libya. Solar Energy and Sustainable Development Journal 2024; 13(2): 311-349.
  • [53] Almhdi E, Miskeen G. Power and Carbon Footprint Evaluation and Optimization in Transitioning Data Centres. Wadi Alshatti University Journal of Pure and Applied Sciences 2025; 3(2): 221-229.
  • [54] El-Khozondar H, El-Khozondar R, Nassar Y, Asfour A, Albardawil M, El-Zesty M, Shaheen S, Elmnifi M, Khaleel M, Alkhazmi A, Ali A. Economic and Environmental Implications of Solar Energy Street Lighting in Urban Regions: A Case Study. Wadi Alshatti University Journal of Pure and Applied Sciences 2025; 3(1): 142-151.
Toplam 54 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Enerji
Bölüm Araştırma Makalesi
Yazarlar

M. Fatih Saltuk 0000-0002-7914-8838

Gönderilme Tarihi 29 Ekim 2025
Kabul Tarihi 11 Ocak 2026
Yayımlanma Tarihi 17 Mart 2026
DOI https://doi.org/10.58559/ijes.1812948
IZ https://izlik.org/JA92FB43ED
Yayımlandığı Sayı Yıl 2026 Cilt: 11 Sayı: 1

Kaynak Göster

APA Saltuk, M. F. (2026). Design and simulation of integrated solar-hydroelectric systems: Complementary renewable profiles and MATLAB/Simulink-based analysis. International Journal of Energy Studies, 11(1), 207-254. https://doi.org/10.58559/ijes.1812948
AMA 1.Saltuk MF. Design and simulation of integrated solar-hydroelectric systems: Complementary renewable profiles and MATLAB/Simulink-based analysis. International Journal of Energy Studies. 2026;11(1):207-254. doi:10.58559/ijes.1812948
Chicago Saltuk, M. Fatih. 2026. “Design and simulation of integrated solar-hydroelectric systems: Complementary renewable profiles and MATLAB/Simulink-based analysis”. International Journal of Energy Studies 11 (1): 207-54. https://doi.org/10.58559/ijes.1812948.
EndNote Saltuk MF (01 Mart 2026) Design and simulation of integrated solar-hydroelectric systems: Complementary renewable profiles and MATLAB/Simulink-based analysis. International Journal of Energy Studies 11 1 207–254.
IEEE [1]M. F. Saltuk, “Design and simulation of integrated solar-hydroelectric systems: Complementary renewable profiles and MATLAB/Simulink-based analysis”, International Journal of Energy Studies, c. 11, sy 1, ss. 207–254, Mar. 2026, doi: 10.58559/ijes.1812948.
ISNAD Saltuk, M. Fatih. “Design and simulation of integrated solar-hydroelectric systems: Complementary renewable profiles and MATLAB/Simulink-based analysis”. International Journal of Energy Studies 11/1 (01 Mart 2026): 207-254. https://doi.org/10.58559/ijes.1812948.
JAMA 1.Saltuk MF. Design and simulation of integrated solar-hydroelectric systems: Complementary renewable profiles and MATLAB/Simulink-based analysis. International Journal of Energy Studies. 2026;11:207–254.
MLA Saltuk, M. Fatih. “Design and simulation of integrated solar-hydroelectric systems: Complementary renewable profiles and MATLAB/Simulink-based analysis”. International Journal of Energy Studies, c. 11, sy 1, Mart 2026, ss. 207-54, doi:10.58559/ijes.1812948.
Vancouver 1.M. Fatih Saltuk. Design and simulation of integrated solar-hydroelectric systems: Complementary renewable profiles and MATLAB/Simulink-based analysis. International Journal of Energy Studies. 01 Mart 2026;11(1):207-54. doi:10.58559/ijes.1812948