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Yıl 2025, Cilt: 10 Sayı: 2, 619 - 646, 26.06.2025
https://doi.org/10.58559/ijes.1625250

Öz

Kaynakça

  • [1] Yadwad V, Bharamnaikar SR, Bhushi U. Holistic perspective to knowledge integration for performance of renewable and sustainable energy business. In: IOP Conference Series: Earth and Environmental Science. IOP Publishing Ltd, 2021.
  • [2] Bagherian MA, Mehranzamir K. A comprehensive review on renewable energy integration for combined heat and power production. Energy Conversion And Management 2020; 224: 113454.
  • [3] “World Energy Outlook 2024 – Analysis - IEA,” https://www.iea.org/reports/world-energy-outlook-2024.
  • [4] Zhou W, Chen Q, Luo D, Jiang R, Chen J. Global energy consumption analysis based on the three-dimensional network model. IEEE Access 2020; 8: 76313–76332.
  • [5] Canale L, Di Fazio AR, Russo M, Frattolillo A, Dell’Isola M. An overview on functional integration of hybrid renewable energy systems in multi-energy buildings. Energies 2021; 14 (4): 1078.
  • [6] Ekechukwu DE, Daramola GO, Kehinde OI. Integrating renewable energy with fuel synthesis: conceptual framework and future directions. Engineering Science & Technology Journal 2024; 5 (6): 2065–2081.
  • [7] Sahoo S, Timmann P. Energy storage technologies for modern power systems: a detailed analysis of functionalities, potentials, and impacts. IEEE Access 2023; 11: 49689–49729.
  • [8] Authin EA, Liew PY, Klemeš JJ, Ho WS, Che Jusoh NW, Mohammad Rozali NE. Integration of combined heat and power energy systems with gas turbine in locally integrated energy sectors. Chem Eng Trans 2021; 83: 37–42.
  • [9] Kriechbaum L, Gradl P, Reichenhauser R, Kienberger T. Modelling grid constraints in a multi-energy municipal energy system using cumulative exergy consumption minimisation. Energies 2020; 13 (15): 3900.
  • [10] Bogdanov D, Gulagi A, Fasihi M, Breyer C. Full energy sector transition towards 100% renewable energy supply: integrating power, heat, transport and industry sectors including desalination. Applied Energy 2021; 283: 116273.
  • [11] Huang Z. Analyzing the impact of renewable energy integration on power system reliability. Highlights in Science, Engineering and Technology 2024; 87: 76–81.
  • [12] Oyekale J, Petrollese M, Tola V, Cau G. Impacts of renewable energy resources on effectiveness of grid-integrated systems: succinct review of current challenges and potential solution strategies. Energies 2020; 13 (18): 4856.
  • [13] Mir MA, Ashraf MW, Andrews K. Renewable energy sources, sustainability aspects and climate alteration: a comprehensive review. Materials Research Proceedings 2024; 43.
  • [14] Altun M, Akar O, Terzi ÜK. The impact of energy storage systems on distribution networks’ power quality. ISARC-5. International Hasankeyf Scientific Research and Innovation Congress (pp. 218–219). Batman, Turkey, 2023.
  • [15] Kaya F, Akar O. Geothermal energy-based hydrogen energy storage and charging station system. İstanbul Ticaret Üniversitesi Fen Bilimleri Dergisi 2024; 23 (45): 156–168.
  • [16] Alghamdi H, Maduabuchi C, Okoli K, Alobaid M, Alghassab M, Alsafran AS, Alkhedher M. Latest advancements in solar photovoltaic‐thermoelectric conversion technologies: thermal energy storage using phase change materials, machine learning, and 4E analyses. International Journal of Energy Research 2024; 2024 (1): 1050785.
  • [17] Jassim L, Mnati HM, Ali FAMA, Majdi HS. Photovoltaic-driven cooling systems: advances, challenges, and future directions. Al Rafidain Journal of Engineering Sciences 2025; 3: 191–209.
  • [18] Aghmadi, Mohammed OA. Energy storage systems: technologies and high-power applications. Batteries 2024; 10 (4).
  • [19] Hussen S, Ayalew F, Bajaj M, Sharma NK, Jurado F, Kamel S. An overview of recent advances in energy storage for solar power systems. In: 2022 IEEE International Conference on Automation/XXV Congress of the Chilean Association of Automatic Control (ICA-ACCA). IEEE, 2022; 1–6.
  • [20] Denholm P, Cole W, Blair N. Moving beyond 4-hour Li-ion batteries: challenges and opportunities for long(er)-duration energy storage. 2023.
  • [21] Vasudevan KR, Ramachandaramurthy VK, Venugopal G, Ekanayake JB, Tiong SK. Variable speed pumped hydro storage: a review of converters, controls and energy management strategies. Renewable and Sustainable Energy Reviews 2021; 135: 110156.
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  • [27] Demirci O, Akar O, Ozturk Z. Technical-environmental-economic evaluation of biomass-based hybrid power system with energy storage for rural electrification. Renewable Energy 2022; 195: 1202–1217.
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Technological advancements in PV-based energy storage methods

Yıl 2025, Cilt: 10 Sayı: 2, 619 - 646, 26.06.2025
https://doi.org/10.58559/ijes.1625250

Öz

Maximum energy demand exceeded 180,000 TWh in 2024, with renewable sources covering approximately 32%. Solar energy, notable for sustainability and economic viability, reached 1,250 GW installed capacity in 2024 and is projected to double to 2,500 GW by 2030. Despite advancements and cost reductions, the intermittent nature of photovoltaic (PV) generation, meeting 45% of demand on sunny days and less than 10% on cloudy days, poses significant challenges. Energy storage systems (ESS), critical for managing intermittency, achieved 70 GW capacity globally in 2024, expected to reach 300 GW by 2030. Lithium-ion batteries, with an 80% cost reduction and 40% improvement in energy density, along with thermal storage using phase change materials (PCM) and supercapacitors, significantly improved performance. Hybrid energy storage systems (HESS) further enhanced reliability, achieving around a 15% reduction in carbon emissions. Artificial intelligence (AI) and machine learning (ML) play crucial roles in optimizing energy management and efficiency in PV-integrated ESS. This research investigates recent technological developments in PV-integrated energy storage, assessing thermal, electrochemical, and hybrid storage solutions, and highlighting the significance of artificial intelligence (AI) and machine learning (ML) in optimizing energy management and enhancing overall system efficiency.

Kaynakça

  • [1] Yadwad V, Bharamnaikar SR, Bhushi U. Holistic perspective to knowledge integration for performance of renewable and sustainable energy business. In: IOP Conference Series: Earth and Environmental Science. IOP Publishing Ltd, 2021.
  • [2] Bagherian MA, Mehranzamir K. A comprehensive review on renewable energy integration for combined heat and power production. Energy Conversion And Management 2020; 224: 113454.
  • [3] “World Energy Outlook 2024 – Analysis - IEA,” https://www.iea.org/reports/world-energy-outlook-2024.
  • [4] Zhou W, Chen Q, Luo D, Jiang R, Chen J. Global energy consumption analysis based on the three-dimensional network model. IEEE Access 2020; 8: 76313–76332.
  • [5] Canale L, Di Fazio AR, Russo M, Frattolillo A, Dell’Isola M. An overview on functional integration of hybrid renewable energy systems in multi-energy buildings. Energies 2021; 14 (4): 1078.
  • [6] Ekechukwu DE, Daramola GO, Kehinde OI. Integrating renewable energy with fuel synthesis: conceptual framework and future directions. Engineering Science & Technology Journal 2024; 5 (6): 2065–2081.
  • [7] Sahoo S, Timmann P. Energy storage technologies for modern power systems: a detailed analysis of functionalities, potentials, and impacts. IEEE Access 2023; 11: 49689–49729.
  • [8] Authin EA, Liew PY, Klemeš JJ, Ho WS, Che Jusoh NW, Mohammad Rozali NE. Integration of combined heat and power energy systems with gas turbine in locally integrated energy sectors. Chem Eng Trans 2021; 83: 37–42.
  • [9] Kriechbaum L, Gradl P, Reichenhauser R, Kienberger T. Modelling grid constraints in a multi-energy municipal energy system using cumulative exergy consumption minimisation. Energies 2020; 13 (15): 3900.
  • [10] Bogdanov D, Gulagi A, Fasihi M, Breyer C. Full energy sector transition towards 100% renewable energy supply: integrating power, heat, transport and industry sectors including desalination. Applied Energy 2021; 283: 116273.
  • [11] Huang Z. Analyzing the impact of renewable energy integration on power system reliability. Highlights in Science, Engineering and Technology 2024; 87: 76–81.
  • [12] Oyekale J, Petrollese M, Tola V, Cau G. Impacts of renewable energy resources on effectiveness of grid-integrated systems: succinct review of current challenges and potential solution strategies. Energies 2020; 13 (18): 4856.
  • [13] Mir MA, Ashraf MW, Andrews K. Renewable energy sources, sustainability aspects and climate alteration: a comprehensive review. Materials Research Proceedings 2024; 43.
  • [14] Altun M, Akar O, Terzi ÜK. The impact of energy storage systems on distribution networks’ power quality. ISARC-5. International Hasankeyf Scientific Research and Innovation Congress (pp. 218–219). Batman, Turkey, 2023.
  • [15] Kaya F, Akar O. Geothermal energy-based hydrogen energy storage and charging station system. İstanbul Ticaret Üniversitesi Fen Bilimleri Dergisi 2024; 23 (45): 156–168.
  • [16] Alghamdi H, Maduabuchi C, Okoli K, Alobaid M, Alghassab M, Alsafran AS, Alkhedher M. Latest advancements in solar photovoltaic‐thermoelectric conversion technologies: thermal energy storage using phase change materials, machine learning, and 4E analyses. International Journal of Energy Research 2024; 2024 (1): 1050785.
  • [17] Jassim L, Mnati HM, Ali FAMA, Majdi HS. Photovoltaic-driven cooling systems: advances, challenges, and future directions. Al Rafidain Journal of Engineering Sciences 2025; 3: 191–209.
  • [18] Aghmadi, Mohammed OA. Energy storage systems: technologies and high-power applications. Batteries 2024; 10 (4).
  • [19] Hussen S, Ayalew F, Bajaj M, Sharma NK, Jurado F, Kamel S. An overview of recent advances in energy storage for solar power systems. In: 2022 IEEE International Conference on Automation/XXV Congress of the Chilean Association of Automatic Control (ICA-ACCA). IEEE, 2022; 1–6.
  • [20] Denholm P, Cole W, Blair N. Moving beyond 4-hour Li-ion batteries: challenges and opportunities for long(er)-duration energy storage. 2023.
  • [21] Vasudevan KR, Ramachandaramurthy VK, Venugopal G, Ekanayake JB, Tiong SK. Variable speed pumped hydro storage: a review of converters, controls and energy management strategies. Renewable and Sustainable Energy Reviews 2021; 135: 110156.
  • [22] Çam G, Akar O. Technological developments of SMES systems in distribution networks. Cukurova 11th International Scientific Researches Conference (pp. 22–36). Adana, Turkey, 2023.
  • [23] Mitali J, Dhinakaran S, Mohamad AA. Energy storage systems: a review. Energy Storage and Saving 2022; 1 (3): 166–216.
  • [24] Fotopoulou M, Pediaditis P, Skopetou N, Rakopoulos D, Christopoulos S, Kartalidis A. A review of the energy storage systems of non-interconnected European islands. Sustainability 2024; 16 (4): 1572.
  • [25] Rekioua D. Energy storage systems for photovoltaic and wind systems: a review. Energies 2023; 16 (9): 3893.
  • [26] Ross K, Matuszewska D, Olczak P. Analysis of using hybrid 1 MWp PV-farm with energy storage in Poland. Energies 2023; 16: 27654.
  • [27] Demirci O, Akar O, Ozturk Z. Technical-environmental-economic evaluation of biomass-based hybrid power system with energy storage for rural electrification. Renewable Energy 2022; 195: 1202–1217.
  • [28] Bravo R, Ortiz C, Chacartegui R, Friedrich D. Hybrid solar power plant with thermochemical energy storage: a multi-objective operational optimisation. Energy Conversion and Management 2020; 205.
  • [29] Khan AA, Minai AF, Godi RK, Sharma VS, Malik H, Afthanorhan A. Optimal sizing, techno-economic feasibility and reliability analysis of hybrid renewable energy system: a systematic review of energy storage systems’ integration. IEEE Access 2025.
  • [30] Tural E, Koca Z, Ok Davarci Z, Akar O. PV-based electricity production and storage in marine vehicles. In: 2024 11th International Conference on Electrical and Electronics Engineering (ICEEE 2024). IEEE, 2024; 327–332.
  • [31] Ozturk Z, Tosun S, Ozturk A, Akar O. Comparative evaluation of stand-alone hybrid power system with different energy storages. Fresenius Environmental Bulletin 2021; 30 (9): 10908–10924.
  • [32] Akar O, Terzi ÜK, Tunçalp BK, Sönmezocak T. Determination of the optimum hybrid renewable power system: a case study of Istanbul Gedik University Gedik Vocational School. Balkan Journal of Electrical and Computer Engineering 2019; 7 (4): 456–463.
  • [33] Ok Davarcı Z, Akar O. Estimation of the electricity to be generated at different wind speeds and turbines through fuzzy logic and ANN: a case study of Balıkesir. International Journal of Energy Studies (Online) 2024; 9 (1): 115–133.
  • [34] Oz O, Sahin M, Akar O. Modeling of an HPS for the electric power demand of the cattle farm using genetic algorithm. Heliyon 2023; 9 (6).
  • [35] Celil O, Akar O. Ayvalık coast offshore wind turbine potential and economic evaluation. In: 2024 12th International Conference on Smart Grid (icSmartGrid). IEEE, 2024; 682–686. Setúbal, Portugal.
  • [36] İzgi B. Machine learning predictions and optimization for thermal energy storage in cylindrical encapsulated phase change material. International Journal of Energy Studies 2024; 9: 199–218.
  • [37] Arsalis G, Georghiou E, Papanastasiou P. Recent research progress in hybrid photovoltaic–regenerative hydrogen fuel cell microgrid systems. Energies 2022; 15 (10): 3512.
  • [38] Bayoumi M. Potential of façade-integrated PVT with radiant heating and cooling panel supported by a thermal storage for temperature stability and energy efficiency. Journal of Facade Design and Engineering 2021; 9: 47–58.
  • [39] Arévalo P, Ochoa-Correa D, Villa-Ávila E. Advances in thermal energy storage systems for renewable energy: a review of recent developments. Processes 2024; 12: 1844.
  • [40] Barrasso M, Langella G, Amoresano A, Iodice P. Latest advances in thermal energy storage for solar plants. Processes 2023; 11 (6): 1832.
  • [41] Dumrul H, Bulut A. Phase change materials in thermal energy storage applications. Yaz 54.
  • [42] Simão M, Ramos HM. Hybrid pumped hydro storage energy solutions towards wind and PV integration: improvement on flexibility, reliability and energy costs. Water (Switzerland) 2020; 12 (9): 2457.
  • [43] Khirennas A, Talha A, Kaabeche A, Bakelli Y. Overview of fossil fuel-based hybrid power generation systems within mini-grids – the experience of storage-less PV system integration into three of the Great Algerian South mini-grids. Energy Conversion and Management 2020; 221: 113191.
  • [44] Suresh, Saini RP. Thermal performance of sensible and latent heat thermal energy storage systems. International Journal of Energy Research 2020; 44: 4743–4758.
  • [45] Hinojosa JF, Moreno SF, Maytorena VM. Low-temperature applications of phase change materials for energy storage: a descriptive review. Energies 2023; 16 (7): 3078.
  • [46] Liu M, Riahi S, Jacob R, Belusko M, Bruno F. Design of sensible and latent heat thermal energy storage systems for concentrated solar power plants: thermal performance analysis. Renewable Energy 2020; 151: 1286–1297.
  • [47] Behera MK, Saikia LC. A novel resilient control of grid-integrated solar PV-hybrid energy storage microgrid for power smoothing and pulse power load accommodation. IEEE Transactions on Power Electronics 2023; 38: 3965–3980.
  • [48] Karampudi N. Thermal energy storage technology in solar energy utilization: a review. International Transactions on Electrical Engineering and Computer Science 2023; 2: 80–87.
  • [49] Rahman MM, Khan I, Alameh K. The role of energy storage technologies for sustainability in developing countries. In: Renewable Energy and Sustainability: Prospects in the Developing Economies. Elsevier, 2022; 347–376.
  • [50] Taşkesen E, Uren R. Recent advances in solar thermal system involving nanofluid utilization: a mini review. International Journal of Energy Studies 2023; 8: 581–600.
  • [51] Jassim, L., Mnati, H. M., Abd Ali, F. A. M., & Majdi, H. S. Photovoltaic-driven cooling systems: advances, challenges, and future directions. Al Rafidain Journal of Engineering Sciences 2025; 3: 191–209.
  • [52] Abdalla OH, Abdel-Salam G, Mostafa AAA. Multifunction battery energy storage system for distribution networks. Energy Engineering: Journal of the Association of Energy Engineering 2022; 119: 569–589.
  • [53] Georgiou GS, Christodoulides P, Kalogirou SA. Optimizing the energy storage schedule of a battery in a PV grid-connected nZEB using linear programming. Energy 2020; 208: 118177.
  • [54] Enescu D, Chicco G, Porumb R, Seritan G. Thermal energy storage for grid applications: current status and emerging trends. Energies 2020; 13 (2): 340.
  • [55] Chayarun P, Kawabe K, Nanahara T. Determination of optimal battery energy storage system capacity for commercial electricity consumers with photovoltaic systems by integrating battery aging and PV forecast uncertainty. IEEJ Transactions on Electrical and Electronic Engineering 2021; 16: 226–237.
  • [56] Poli N, Bonaldo C, Trovo A, Guarnieri M. Optimal energy storage systems for long charge/discharge duration. ECS Meeting Abstracts 2022; MA2022-01: 472–472.
  • [57] Tyagi VV, Chopra K, Kalidasan B, Chauhan A, Stritih U, Anand S, Kothari R. Phase change material based advance solar thermal energy storage systems for building heating and cooling applications: a prospective research approach. Sustainable Energy Technologies and Assessments 2021; 47: 101318.
  • [58] Fallah Ardashir J, Hasannezhad M, Vatankhah Ghadim H, Sarhangzadeh M. Integration of energy storage systems with multilevel inverters for microgrids. In: Distributed Energy Storage Systems for Digital Power Systems. Elsevier, 2024; 293–318.
  • [59] Michalski M, Polański J, Nemś M. Storing electric energy generated by a photovoltaic installation to increase profit from its sale—case study in Poland. Sustainability 2024; 16 (13): 5635.
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Toplam 76 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Elektrik Enerjisi Depolama
Bölüm Görüş Makalesi
Yazarlar

Merve Yılmaz 0009-0009-7584-1035

Onur Akar 0000-0001-9695-886X

Nazmi Ekren 0000-0003-3530-9262

Yayımlanma Tarihi 26 Haziran 2025
Gönderilme Tarihi 23 Ocak 2025
Kabul Tarihi 21 Nisan 2025
Yayımlandığı Sayı Yıl 2025 Cilt: 10 Sayı: 2

Kaynak Göster

APA Yılmaz, M., Akar, O., & Ekren, N. (2025). Technological advancements in PV-based energy storage methods. International Journal of Energy Studies, 10(2), 619-646. https://doi.org/10.58559/ijes.1625250
AMA Yılmaz M, Akar O, Ekren N. Technological advancements in PV-based energy storage methods. International Journal of Energy Studies. Haziran 2025;10(2):619-646. doi:10.58559/ijes.1625250
Chicago Yılmaz, Merve, Onur Akar, ve Nazmi Ekren. “Technological advancements in PV-based energy storage methods”. International Journal of Energy Studies 10, sy. 2 (Haziran 2025): 619-46. https://doi.org/10.58559/ijes.1625250.
EndNote Yılmaz M, Akar O, Ekren N (01 Haziran 2025) Technological advancements in PV-based energy storage methods. International Journal of Energy Studies 10 2 619–646.
IEEE M. Yılmaz, O. Akar, ve N. Ekren, “Technological advancements in PV-based energy storage methods”, International Journal of Energy Studies, c. 10, sy. 2, ss. 619–646, 2025, doi: 10.58559/ijes.1625250.
ISNAD Yılmaz, Merve vd. “Technological advancements in PV-based energy storage methods”. International Journal of Energy Studies 10/2 (Haziran2025), 619-646. https://doi.org/10.58559/ijes.1625250.
JAMA Yılmaz M, Akar O, Ekren N. Technological advancements in PV-based energy storage methods. International Journal of Energy Studies. 2025;10:619–646.
MLA Yılmaz, Merve vd. “Technological advancements in PV-based energy storage methods”. International Journal of Energy Studies, c. 10, sy. 2, 2025, ss. 619-46, doi:10.58559/ijes.1625250.
Vancouver Yılmaz M, Akar O, Ekren N. Technological advancements in PV-based energy storage methods. International Journal of Energy Studies. 2025;10(2):619-46.