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Research Article

Mathematical model validation of floating PV parks impact on the growth of green algae using experimental chamber

, &
Pages 804-816 | Received 02 Nov 2022, Accepted 21 Jan 2023, Published online: 05 Feb 2023

References

  • Abdelal, Q. 2021. Floating PV; an assessment of water quality and evaporation reduction in semi-arid regions. International Journal of Low-Carbon Technologies 16 (3):732–39. doi:10.1093/ijlct/ctab001.
  • Alrashidi, H., W. Issa, N. Sellami, A. Ghosh, T. K. Mallick, and S. Sundaram. 2020. Performance assessment of cadmium telluride-based semi-transparent glazing for power saving in façade buildings. Energy and Buildings 215:109585. doi:10.1016/j.enbuild.2019.109585.
  • Bali, S., S. Thangalakshmi, and R. Balaji (2022, February). Renewable energy options for seaports. In OCEANS 2022-Chennai (pp. 1–6). Chennai, India: IEEE.
  • Bhandari, S., A. Ghosh, A. Roy, T. K. Mallick, and S. Sundaram. 2022. Compelling temperature behaviour of carbon-perovskite solar cell for fenestration at various climates. Chemical Engineering Journal Advances 10:100267. doi:10.1016/j.ceja.2022.100267.
  • Bombelli, P., R. W. Bradley, A. M. Scott, A. J. Philips, A. J. McCormick, S. M. Cruz, A. C. Fisher, K. Yunus, D. S. Bendall, P. J. Cameron, J. M. Davies, et al. 2011. Quantitative analysis of the factors limiting solar power transduction by Synechocystis sp. PCC 6803 in biological photovoltaic devices. Energy & Environmental Science 4 (11):4690–98. doi:10.1039/c1ee02531g.
  • Cornwall, C. E., C. D. Hepburn, D. Pritchard, K. I. Currie, C. M. McGraw, K. A. Hunter, and C. L. Hurd. 2012. Carbon‐use strategies in macroalgae: Differential responses to lowered ph and implications for ocean acidification 1. Journal of Phycology 48 (1):137–44. doi:10.1111/j.1529-8817.2011.01085.x.
  • Cózar, A. 2005. Light control of the productivity of aquatic ecosystems. WIT Transactions on Ecology and the Environment 81.
  • Cuce, E., P. M. Cuce, S. Saboor, A. Ghosh, and Y. Sheikhnejad. 2022. Floating PVs in terms of power generation, environmental aspects, market potential, and challenges. Sustainability 14 (5):2626. doi:10.3390/su14052626.
  • Edwards, M. R. 2008. Green algae strategy: End biowar I and engineer sustainable food and biofuels. Lulu com. 1:4.
  • Elminshawy, A., K. Morad, N. A. Elminshawy, and Y. Elhenawy. 2021. Performance enhancement of concentrator photovoltaic systems using nanofluids. International Journal of Energy Research 45 (2):2959–79. doi:10.1002/er.5991.
  • Elrayies, G. M. 2018. Microalgae: Prospects for greener future buildings. Renewable and Sustainable Energy Reviews 81:1175–91. doi:10.1016/j.rser.2017.08.032.
  • Essak, L., and A. Ghosh. 2022. Floating Photovoltaics: A Review. Clean Technologies 4 (3):752–69. doi:10.3390/cleantechnol4030046.
  • Exley, G., R. R. Hernandez, T. Page, M. Chipps, S. Gambro, M. Hersey, R. Lake, K. -S. Zoannou, and A. Armstrong. 2021. Scientific and stakeholder evidence-based assessment: Ecosystem response to floating solar photovoltaics and implications for sustainability. Renewable and Sustainable Energy Reviews 152:111639. doi:10.1016/j.rser.2021.111639.
  • Falkowski, P. G., and J. A. Raven. 2007. An introduction to photosynthesis in aquatic systems. Aquatic Photosynthesis 2:1–44.
  • Farrar, L. W., A. S. Bahaj, P. James, A. Anwar, and N. Amdar. 2022. Floating solar PV to reduce water evaporation in water stressed regions and powering water pumping: Case study Jordan. Energy Conversion and Management 260:115598. doi:10.1016/j.enconman.2022.115598.
  • Fatima, K., B. Ali, R. Qari, A. A. Khan, and M. Arshad. 2021. Impact Estimation of Offshore Floating Solar Parks on Algae using Ordinary Differential Equations. Journal of Independent Studies and Research Computing 19 (2):42–48. doi:10.31645/JISRC.38.19.2.6.
  • Fereshtehpour, M., R. J. Sabbaghian, A. Farrokhi, E. B. Jovein, and E. E. Sarindizaj. 2021. Evaluation of factors governing the use of floating solar system: A study on Iran’s important water infrastructures. Renewable Energy 171:1171–87. doi:10.1016/j.renene.2020.12.005.
  • Galdino, M. A. E., and M. M. de Almeida Olivieri. 2017. Some remarks about the deployment of floating PV systems in Brazil. Journal of Electrical Engineering 5 (1):10–19. doi:10.17265/2328-2223/2017.01.002.
  • Ghosh, A. 2020. Potential of building integrated and attached/applied photovoltaic (BIPV/BAPV) for adaptive less energy-hungry building’s skin: A comprehensive Review. Journal of Cleaner Production 276:123343. doi:10.1016/j.jclepro.2020.123343.
  • Haas, J., J. Khalighi, A. De La Fuente, S. U. Gerbersdorf, W. Nowak, and P. J. Chen. 2020. Floating photovoltaic plants: Ecological impacts versus hydropower operation flexibility. Energy Conversion and Management 206:112414. doi:10.1016/j.enconman.2019.112414.
  • Häder, D. P., E. W. Helbling, C. E. Williamson, and R. C. Worrest. 2011. Effects of UV radiation on aquatic ecosystems and interactions with climate change. Photochemical & Photobiological Sciences 10 (2):242–60. doi:10.1039/c0pp90036b.
  • Jewell, W. J., and P. L. McCarty. 1971. Aerobic decomposition of algae. Environmental Science & Technology 5 (10):1023–31. doi:10.1021/es60057a005.
  • Konhauser, K. O., and W. S. Fyfe. 1993. Biogeochemical cycling of metals in freshwater algae from Manaus and Carajás, Brazil. Energy Sources 15 (4):595–608. doi:10.1080/00908319308909051.
  • Kumar, R., and A. Kumar. 2020. Optimal scheduling for solar wind and pumped storage systems considering imbalance penalty. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 1–12. doi:10.1080/15567036.2020.1841854.
  • Liu, H., V. Krishna, J. Lun Leung, T. Reindl, and L. Zhao. 2018. Field experience and performance analysis of floating PV technologies in the tropics. Progress in Photovoltaics: Research and Applications 26 (12):957–67. doi:10.1002/pip.3039.
  • Liu, P., M. Zhu, Y. K. Leong, Y. Zhang, Z. Zhang, and D. Zhang. 2017. An experimental study of the rheological properties and stability characteristics of biochar–algae–water slurry fuels. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 39 (15):1581–86. doi:10.1080/15567036.2017.1349217.
  • Long, M. C., K. Lindsay, and M. M. Holland. 2015. Modeling photosynthesis in sea ice‐covered waters. Journal of Advances in Modeling Earth Systems 7 (3):1189–206. doi:10.1002/2015MS000436.
  • Nagananthini, R., R. Nagavinothini, and P. Balamurugan. 2020. Floating photovoltaic thin film technology—a review. Intelligent Manufacturing and Energy Sustainability 329–38.
  • Nyoni, K. J., A. Maronga, P. G. Tuohy, and A. Shane. 2021. Hydro–connected floating PV renewable energy system and onshore wind potential in Zambia. Energies 14 (17):5330. doi:10.3390/en14175330.
  • Oliveira-Pinto, S., and J. Stokkermans. 2020. Assessment of the potential of different floating solar technologies–overview and analysis of different case studies. Energy Conversion and Management 211:112747. doi:10.1016/j.enconman.2020.112747.
  • Osmond, C. B., and S. C. Grace. 1995. Perspectives on photoinhibition and photorespiration in the field: Quintessential inefficiencies of the light and dark reactions of photosynthesis. Journal of Experimental Botany 46 (special_issue):1351–62. doi:10.1093/jxb/46.special_issue.1351.
  • Ravichandran, N., H. H. Fayek, and E. Rusu. 2021. Emerging floating photovoltaic system—case studies high dam and Aswan reservoir in Egypt. Processes 9 (6):1005. doi:10.3390/pr9061005.
  • Refaai, M. R. A., L. Dhanesh, B. P. Ganthia, M. Mohanty, R. Subbiah, E. M. Anbese, and V. Mohanavel. 2022. Design and Implementation of a Floating PV Model to Analyse the Power Generation. International Journal of Photoenergy 2022:1–13. doi:10.1155/2022/3891881.
  • Rosa-Clot, M. 2020. Floating PV plants. United Kingdom: Academic Press.
  • Sahu, A., N. Yadav, and K. Sudhakar. 2016. Floating photovoltaic power plant: A review. Renewable and Sustainable Energy Reviews 66:815–24. doi:10.1016/j.rser.2016.08.051.
  • Sharma, P., B. Muni, and D. Sen (2015 May). Design parameters of 10 KW floating solar power plant. In Proceedings of the international advanced research journal in science, engineering and technology (IARJSET), National conference on renewable energy and environment (NCREE-2015), Ghaziabad, India, Design parameters of 10 KW floating solar power plant (Vol. 2).
  • Shevtsov, A. A., L. I. Lytkina, S. T. Antipov, A. N. Ostrikov, E. S. Shentsova, A. V. Drannikov, and D. V. Koptev. 2016. Mathematical modelling of light dependent microorganisms cultivation in countercurrent film reactor. Theoretical Foundations of Chemical Engineering 50 (3):335–42. doi:10.1134/S004057951603012X.
  • Singh, R. N., and S. Sharma. 2012. Development of suitable photobioreactor for algae production–a review. Renewable and Sustainable Energy Reviews 16 (4):2347–53. doi:10.1016/j.rser.2012.01.026.
  • Solomin, E., E. Sirotkin, E. Cuce, S. P. Selvanathan, and S. Kumarasamy. 2021. Hybrid floating solar plant designs: A review. Energies 14 (10):2751. doi:10.3390/en14102751.
  • Song, J., and Y. Choi. 2016. Analysis of the potential for use of floating photovoltaic systems on mine pit lakes: Case study at the ssangyong open-pit limestone mine in Korea. Energies 9 (2):102. doi:10.3390/en9020102.
  • Sun, H., Y. Zhang, D. Baleanu, W. Chen, and Y. Chen. 2018. A new collection of real world applications of fractional calculus in science and engineering. Communications in Nonlinear Science & Numerical Simulation 64:213–31. doi:10.1016/j.cnsns.2018.04.019.
  • Sun, H., W. Zhao, X. Mao, Y. Li, T. Wu, and F. Chen. 2018. High-value biomass from microalgae production platforms: Strategies and progress based on carbon metabolism and energy conversion. Biotechnology for Biofuels 11 (1):1–23. doi:10.1186/s13068-018-1225-6.
  • Wu, H., D. Zou, and K. Gao. 2008. Impacts of increased atmospheric CO2 concentration on photosynthesis and growth of micro-and macro-algae. Science in China Series C: Life Sciences 51 (12):1144–50. doi:10.1007/s11427-008-0142-5.
  • Zhou, X. P., L. Xia, D. Zhang, and C. X. Hu. 2016. Effect of outdoor conditions on the growth and lipid accumulation of six green algae. Energy Sources, Part A: Recovery, Utilization, and Environmental Effects 38 (1):82–87. doi:10.1080/15567036.2012.751468.

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