A Systematic Review of Utilization of Renewable Energy Sources in Sports Facilities

Authors

  • Ali Safarpour Faculty of Physical Education and Sport Sciences, Department of Sport Management, Tehran University, Tehran, Iran Author
  • Saeed Soltani Faculty of Engineering and Natural Sciences, Antalya Bilim University, Antalya, Turkey Author
  • Marc A. Rosen Faculty of Engineering and Applied Science, University of Ontario Institute of Technology, Oshawa, Canada Author

DOI:

https://doi.org/10.64229/h4apn714

Keywords:

Renewable energy, Sports facilities, Geothermal energy, Solar energy, Wind energy

Abstract

Many environmental and energy concerns exist, including air pollution and shortages of fossil fuels, and these concerns have motivated much research. Communities are seeking alternative fuels and nations are trying to implement them appropriately. The main alternative is renewable energy, including solar, geothermal, and wind. This systematic review analyzed 39 studies (2010-2024) on renewable energy applications in sports facilities, revealing distinct adoption patterns: solar energy dominated the research (64% of studies), followed by hybrid systems (23%), geothermal (8%), and wind (5%). Our PRISMA-guided analysis shows these renewable sources can be effectively used in sports facilities, especially new ones. Key findings indicate that solar applications achieve average energy savings of 39.1% (34.6-43.6% CI) in studied facilities, while geothermal systems show higher savings at 51.3% (45.8-56.8% CI). The primary emphasis in implementation is placed on solar and hybrid applications at sports stadiums (72% of cases), but geothermal and wind power are rarely employed (15% combined), which can be explained through geographical factors and higher initial costs (average $2.8M vs $1.2M for solar installations). Since these technologies have been advancing over the last few years, their application in sports stadiums and high-energy sports arenas will likely increase. Our review found that facilities adopting renewable energy reduced operational costs by 28-47% annually. Equipping new sport facilities with renewable energies typically makes them more environmentally benign, with demonstrated CO₂ reductions averaging 1,287 tons/year per facility. An important aspect is increased energy efficiency, with hybrid systems showing 47.2% (42.1-52.3% CI) improvement over conventional systems. The integration of renewable energy systems into sports facilities leads to considerable cost savings in the long term (average payback period 6.2 years), demonstrates commitment to environmental stewardship, and aligns facilities with sustainable development principles.

References

[1]Atalay A. Research on the carbon footprint caused by micro-level sports facilities: Carbon footprint of ardahan university sports facilities in turkey. Baltic Journal of Sport and Health Sciences, 2023, 1(128), 11-20. DOI: 10.33607/bjshs.v1i128.1338

[2]Dam MM, Naimoğlu M, Shahbaz M. Minimizing fossil fuel energy losses: The role of R&D and nuclear energy in the united states. Journal of Cleaner Production, 2025, 490, 144819. DOI: 10.1016/j.jclepro.2025.144819

[3]Artuso P, Santiangeli A. Energy solutions for sports facilities. International Journal of Hydrogen Energy, 2008, 33(12), 3182-3187. DOI: 10.1016/j.ijhydene.2007.12.064

[4]Laleh SS, Safarpour A, Shahrak AS, Alavi SHF, Soltani S. Thermodynamic and exergoeconomic analyses of a novel biomass-fired combined cycle with solar energy and hydrogen and freshwater production in sports arenas. International Journal of Hydrogen Energy, 2024, 59, 1507-1517. DOI: 10.1016/j.ijhydene.2024.02.146

[5]Monteiro LG, Macedo WN, Torres PF, Silva MM, Amaral G, Piterman AS, et al. One-year monitoring pv power plant installed on rooftop of mineirao fifa world cup/olympics football stadium. Energies, 2017, 10(2), 225. DOI: 10.3390/en10020225

[6]Jahangir MH, Javanshir F, Kargarzadeh A. Economic analysis and optimal design of hydrogen/diesel backup system to improve energy hubs providing the demands of sport complexes. International Journal of Hydrogen Energy, 2021, 46(27), 14109-14129. DOI: 10.1016/j.ijhydene.2021.01.187

[7]Charandabi RN, Babilio E, Carpentieri G, Spagnuolo G, Amendola A, Fraternali F. A tensegrity structure for a solar stadium roof with sun-tracking capability. Thin-Walled Structures, 2025, 210, 113033. DOI: 10.1016/j.tws.2025.113033

[8]Cai J, Fei J, Li L, Fei C, Maghsoudniazi M, Su Z. Multicriteria study of geothermal trigeneration systems with configurations of hybrid vapor compression refrigeration and kalina cycles for sport arena application. Renewable Energy, 2023, 219, 119390. DOI: 10.1016/j.renene.2023.119390

[9]Bratlie M, Eide IØ, Moter Z. Solar powered sport arenas incorporated into residential areas: The case study of skagerak arena in skien, norway. NTNU, 2022. https://hdl.handle.net/11250/3004148 (accessed on 28 October 2024).

[10]Zuccari F, Santiangeli A, Orecchini F. Energy analysis of swimming pools for sports activities: Cost effective solutions for efficiency improvement. Energy Procedia, 2017, 126, 123-130. DOI: 10.1016/j.egypro.2017.08.131

[11]Liu J, Su Z. Comprehensive assessment of organic rankine cycles using renewables energy for combined power and heat generation in a badminton stadium. Case Studies in Thermal Engineering, 2025, 65, 105681. DOI: 10.1016/j.csite.2024.105681

[12]Rahman A, Farrok O, Haque MM. Environmental impact of renewable energy source based electrical power plants: Solar, wind, hydroelectric, biomass, geothermal, tidal, ocean, and osmotic. Renewable and Sustainable Energy Reviews, 2022, 161, 112279. DOI: 10.1016/j.rser.2022.112279

[13]Wanless L, Seifried C, Kellison T. Renewable energy source diffusion in professional sport facilities. Journal of Sport Management, 2023, 38(1), 40-52. DOI: 10.1123/jsm.2023-0081

[14]Xu J, Su Z, Meng J, Yao Y, Vafadaran MS, Salavat AK. A thermodynamic, exergoeconomic, and exergoenvironmental investigation and optimization on a novel geothermal trigeneration system to sustain a sport arena. Process Safety and Environmental Protection, 2023, 177, 278-298. DOI: 10.1016/j.psep.2023.07.017

[15]Paquette J, Stevens J, Mallen C. The interpretation of environmental sustainability by the international olympic committee and organizing committees of the olympic games from 1994 to 2008. Sport in Society, 2011, 14(3), 355-369. DOI: 10.1080/17430437.2011.557272

[16]Babiak K, Wolfe R. More than just a game? Corporate social responsibility and Super Bowl Xl. Sport Marketing Quarterly, 2006, 15, 214-222.

[17]McMillan C. ‘Seeing it as a whole’: A research agenda for the sociology of sport and climate change. International Review for the Sociology of Sport, 2025, 60(3), 401-417. DOI: 10.1177/10126902241268182

[18]Méndez C, Bicer Y. Towards a sustainable 2022 fifa world cup in qatar: Evaluation of wind energy potential for three football stadiums. Energy Exploration & Exploitation, 2020, 38(5), 1893-1913. DOI: 10.1177/0144598720948

[19]Javani V, Davarn Hagh E. Energy management in stadiums by using hybrid renewable energy systems. Journal of Advanced Sport Technology, 2021, 5(2), 99-108. DOI: 10.22098/jast.2021.1499

[20]Safarpour A, Abdalmalek AEJ, Soltani S. Identifying challenges for implementing hydrogen energy in sport facilities: A mixed-method study. International Journal of Hydrogen Energy, 2025, 118, 500-508. DOI: 10.1016/j.ijhydene.2025.03.243

[21]Manni M, Petrozzi A, Coccia V, Nicolini A, Cotana F. Investigating alternative development strategies for sport arenas based on active and passive systems. Journal of Building Engineering, 2020, 31, 101340. DOI: 10.1016/j.jobe.2020.101340

[22]Marín JD, García FV, Cascales JG. Use of a predictive control to improve the energy efficiency in indoor swimming pools using solar thermal energy. Solar Energy, 2019, 179, 380-390. DOI: 10.1016/j.solener.2019.01.004

[23]Safarpour A, Laleh SS, Soltani S. Identifying challenges, benefits, and recommendations for utilizing solar panels in sport stadiums: A thematic analysis. Progress in Engineering Science, 2025, 2(1), 100035. DOI: 10.1016/j.pes.2024.100035

[24]Mašić F, Merzić A, Bosović A, Musić M. A microgrid concept for thermal and electrical energy supply of a sport recreation center: Case study srca. IETE Journal of Research, 2022, 68(4), 2863-2875. DOI: 10.1080/03772063.2020.1731336

[25]Wang X, Wang T, Khani A, Su Z. Comprehensive study of a geothermal multi-generation system composed of absorption refrigeration, vapor compression refrigeration, and a fan coil unit to sustain sport facilities. Renewable Energy, 2025, 241, 122289. DOI: 10.1016/j.renene.2024.122289

[26]McCullough BP, Collins A, Roberts J, Villalobos S. Sport events and emissions reporting: An analysis of the council for responsible sport standard in running events. Sustainability, 2023, 15(19), 14375. DOI: 10.3390/su151914375

[27]Losi G, Bonzanini A, Aquino A, Poesio P. Analysis of thermal comfort in a football stadium designed for hot and humid climates by cfd. Journal of Building Engineering, 2021, 33, 101599. DOI: 10.1016/j.jobe.2020.101599

[28]Lucas S, Afonso AS, Ferreira V. Improving by sustainability in sport facilities. Energy for Sustainability 2013-Sustainable Cities: Designing for People and the Planet, 2013. https://scispace.com/pdf/improving-by-sustainability-in-sport-facilities-2n3zvqs0lk.pdf (accessed on 28 October 2024).

[29]Szathmári A. Navigating the playing field: Reimagining the sports industry in the face of accelerated climate change. International Review for the Sociology of Sport, 2025, 60(3), 418-439. DOI: 10.1177/10126902241268256

[30]Green B, Strong C. ‘What if it rains? What if there are bushfires?’: Extreme weather, climate change and music festivals in australia. Media International Australia, 2025, 195(1), 120-136. DOI: 10.1177/1329878X231184913

[31]Lefebvre A, Zeimers G, Helsen K, Corthouts J, Scheerder J, Zintz T. Better governance and sport innovation within sport organizations. Journal of Global Sport Management, 2025, 10(2), 235-251. DOI: 10.1080/24704067.2023.2228833

[32]Zhu J, Liang Z, Zhang C, Wei X. How are sports management, renewable energy, and green finance related? A survey evidence. Renewable Energy, 2023, 206, 39-46. DOI: 10.1016/j.renene.2023.02.040

[33]Azaza M, Eskilsson A, Wallin F. Energy flow mapping and key performance indicators for energy efficiency support: A case study a sports facility. Energy Procedia, 2019, 158, 4350-4356. DOI: 10.1016/j.egypro.2019.01.785

[34]Zhang J, Su Z, Meng J, Yao Y, Alayi R. Techno‐economic and sensitivity analysis of a hybrid concentrated photovoltaic/thermal system and an organic rankine cycle to supply energy to sports stadiums. IET Renewable Power Generation, 2025, 19(1), e12790. DOI: 10.1049/rpg2.12790

[35]Cecilio Benito A. Model for the design of distributed generation resources: Photovoltaic plant for self-consumption in a sports facility. 2021. https://repositorio.comillas.edu/xmlui/handle/11531/55187 (accessed on 28 October 2024)

[36]Egersand A, Fransson E, Azaza M. Latent heat thermal energy storage for sport facilities with photovoltaic overproduction. Energy Proceedings, 2021, 21, 886. DOI: 10.46855/energy-proceedings-9375

[37]Elnour M, Fadli F, Himeur Y, Petri I, Rezgui Y, Meskin N, et al. Performance and energy optimization of building automation and management systems: Towards smart sustainable carbon-neutral sports facilities. Renewable and Sustainable Energy Reviews, 2022, 162, 112401. DOI: 10.1016/j.rser.2022.112401

[38]Jiang J, Meng J, Yao Y, Morovati R, Su Z. Thermodynamic analysis and optimization of a novel system integrating with solid oxide fuel cell-gas turbine and parabolic trough collector for using in sports buildings. Physics of Fluids, 2023, 35(9). DOI: 10.1063/5.0167978

[39]Mallen C, Chard C. “What could be” in canadian sport facility environmental sustainability. Sport Management Review, 2012, 15(2), 230-243. DOI: 10.1016/j.smr.2011.10.001

[40]Aromataris E, Pearson A. The systematic review: An overview. AJN The American Journal of Nursing, 2014, 114(3), 53-58. DOI: 10.1097/01.NAJ.0000444496.24228.2c

[41]Page MJ, McKenzie JE, Bossuyt PM, Boutron I, Hoffmann TC, Mulrow CD, et al. Updating guidance for reporting systematic reviews: Development of the prisma 2020 statement. Journal of clinical epidemiology, 2021, 134, 103-112. DOI: 10.1016/j.jclinepi.2021.02.003

[42]Moher D, Shamseer L, Clarke M, Ghersi D, Liberati A, Petticrew M, et al. Preferred reporting items for systematic review and meta-analysis protocols (prisma-p) 2015 statement. Systematic Reviews, 2015, 4, 1-9. DOI: 10.1186/2046-4053-4-1

[43]Rethlefsen ML, Kirtley S, Waffenschmidt S, Ayala AP, Moher D, Page MJ, et al. Prisma-s: An extension to the prisma statement for reporting literature searches in systematic reviews. Systematic Reviews, 2021, 10, 1-19. DOI: 10.1186/s13643-020-01542-z

[44]Liberati A, Altman DG, Tetzlaff J, Mulrow C, Gøtzsche PC, Ioannidis JP, et al. The prisma statement for reporting systematic reviews and meta-analyses of studies that evaluate health care interventions: Explanation and elaboration. Annals of Internal Medicine, 2009, 151(4), W-65-W-94. DOI: 10.1136/bmj.b2700

[45]Veleska V, Josifovski J. Open‐loop geothermal heat exchanger system for heating and cooling of the sport arena in skopje. Ce/papers, 2018, 2(2-3), 827-832. DOI: 10.1002/cepa.773

[46]Oldmeadow E, Marinova D. Into geothermal solutions: The sustainability case for challenge stadium in perth, western australia. Environmental Progress & Sustainable Energy, 2011, 30(3), 476-485. DOI: 10.1002/ep.10476

[47]Su Z, Li L, Meng J, Su Y, Yao Y, Alayi R. Development of a new hybrid energy system based on a microturbine and parabolic trough collector for usage in sports stadiums. Physics of Fluids, 2023, 35(8). DOI: 10.1063/5.0161012

[48]Kethineni B, Muda I, Prodanova N, Askar S, Abdullaev S, Shamel A, et al. Performance assessment of hybrid PEMFC-solar energy integrated hybrid multi-generation system for energy production sport buildings. The Journal of Chemical Physics, 2023, 159(17). DOI: 10.1063/5.0173984

[49]Moià-Pol A, Pujol-Nadal R, Martínez-Moll V, Hertel JD. Retrofit of a solar system in sport center in mallorca. Energy Procedia, 2016, 91, 190-196. DOI: 10.1016/j.egypro.2016.06.201

[50]Qamhiia S. Design and techno-economic analysis of a photovoltaic hybrid-air source heat pump system for a sport center-Nablus-Palestine. 2021. http://hdl.handle.net/10835/13816 (accessed on 28 October 2024).

[51]Tagliafico LA, Cavalletti A, Marafioti C, Marchitto A. The experience on a sport centre pilot plant with solar assisted heat pump and a look forward for new control strategies and technology upgrade. E3S Web of Conferences, EDP Sciences, 2021, 312, 04004. DOI: 10.1051/e3sconf/202131204004

[52]Maghfuri AM, Chiasson A. Design and simulation of a solar photovoltaic system for a sports stadium. in 2020 9th International Conference on Power Science and Engineering (ICPSE). IEEE, 2020: 82-86. DOI: 10.1109/ICPSE51196.2020.9354376

[53]Hajinezhad A, Servati P, Ziaee E. Optimization and economic analysis of integrated wind and pump storage power production and storage system for azadi sport complex, Tehran, Iran. Specialty Journal of Electronic and Computer Sciences, 2017, 3(2), 10-23.

[54]Beusker E, Stoy C, Pollalis SN. Estimation model and benchmarks for heating energy consumption of schools and sport facilities in germany. Building and Environment, 2012, 49, 324-335. DOI: 10.1016/j.buildenv.2011.08.006

[55]Wang K, Herrando M, Pantaleo AM, Markides CN. Technoeconomic assessments of hybrid photovoltaic-thermal vs. Conventional solar-energy systems: Case studies in heat and power provision to sports centres. Applied Energy, 2019, 254, 113657. DOI: 10.1016/j.apenergy.2019.113657

[56]Maghsoudniazi M. Multicriteria study of geothermal trigeneration systems with configurations of hybrid vapor compression refrigeration and kalina cycles for sport arena application. 2023. https://ssrn.com/abstract=4523768 (accessed on 28 October 2024).

[57]Fei J, Su Z, Yao Y, Fei C, Shamel A. Investigation and 3E (economic, environmental and energy) analysis of a combined heat and power system based on renewable energies for supply energy of sport facilities. IET Renewable Power Generation, 2025, 19(1): e12777. DOI: 10.1049/rpg2.12777

[58]Kallio S, Siroux M. Hybrid renewable energy systems based on micro-cogeneration. Energy Reports, 2022, 8, 762-769. DOI: 10.1016/j.egyr.2021.11.158

[59]Zhang X, Wang C, Fei J, Qi F, Fei C, Morovati R, et al. Thermodynamic analysis of absorption refrigeration systems with nanofluid for using in sport buildings. AIP Advances, 2023, 13(11). DOI: 10.1063/5.0166831

[60]Petri I, Li H, Rezgui Y, Chunfeng Y, Yuce B, Jayan B. A modular optimisation model for reducing energy consumption in large scale building facilities. Renewable and Sustainable Energy Reviews, 2014, 38, 990-1002. DOI: 10.1016/j.rser.2014.07.044

[61]Zhou L, Ke Z, Waqas M. Beyond the arena: How sports economics is advancing china's sustainable development goals. Heliyon, 2023, 9(7), e18074. DOI: 10.1016/j.heliyon.2023.e18074

[62]Valencia-Solares M, Gijón-Rivera M, Rivera-Solorio CI. Energy, economic, and environmental assessment of the integration of phase change materials and hybrid concentrated photovoltaic thermal collectors for reduced energy consumption of a school sports center. Energy and Buildings, 2023, 293, 113198. DOI: 10.1016/j.enbuild.2023.113198

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2026-01-05

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How to Cite

Safarpour, A., Soltani, S., & Rosen, M. A. . (2026). A Systematic Review of Utilization of Renewable Energy Sources in Sports Facilities. Innovative Energy Systems and Technologies, 2(1), 1-14. https://doi.org/10.64229/h4apn714