An assessment of floating photovoltaic systems and energy storage methods: A comprehensive review

[1]  M. Vivar,et al.  Photovoltaic system adoption in water related technologies – A review , 2024, Renewable and Sustainable Energy Reviews.

[2]  Aritra Ghosh Nexus between agriculture and photovoltaics (agrivoltaics, agriphotovoltaics) for sustainable development goal: A review , 2023, Solar Energy.

[3]  Aritra Ghosh,et al.  A review of bifacial solar photovoltaic applications , 2023, Frontiers in Energy.

[4]  K. Folly,et al.  Optimal placement of BESS in a power system network for frequency support during contingency , 2023, Energy Reports.

[5]  Haris M. Khalid,et al.  Energy storage technologies: An integrated survey of developments, global economical/environmental effects, optimal scheduling model, and sustainable adaption policies , 2023, Journal of Energy Storage.

[6]  I. Afgan,et al.  Design and analysis of passively cooled floating photovoltaic systems , 2023, Applied Thermal Engineering.

[7]  K. Thu,et al.  Dew-point evaporative cooling of PV panels for improved performance , 2023, Applied Thermal Engineering.

[8]  Aritra Ghosh A comprehensive review of water based PV: Flotavoltaics, under water, offshore & canal top , 2023, Ocean Engineering.

[9]  S. Delacroix,et al.  Experimental Modelling of a Floating Solar Power Plant Array under Wave Forcing , 2023, Energies.

[10]  F. Rossi,et al.  Field optimization for bifacial modules , 2023, Optical Materials.

[11]  Prateek Joshi Enabling Floating Solar Photovoltaic (FPV) Deployment in Southeast Asia: Overview with Considerations for Aquaculture PV , 2023 .

[12]  P. Jacinthe,et al.  Water surface albedo and its driving factors on the turbid lakes of Northeast China , 2023, Ecological Indicators.

[13]  Aritra Ghosh,et al.  Assessing the Sustainability of Liquid Hydrogen for Future Hypersonic Aerospace Flight , 2022, Aerospace.

[14]  M. Jamil,et al.  Comparative Analysis of Floating Solar Photovoltaic and Land Based Photovoltaic Plant , 2022, 2022 IEEE Silchar Subsection Conference (SILCON).

[15]  F. Almonacid,et al.  Hydroelectric operation for hybridization with a floating photovoltaic plant: A case of study , 2022, Renewable Energy.

[16]  Jillian P. Fry,et al.  Renewable energy in fisheries and aquaculture: Case studies from the United States , 2022, Journal of Cleaner Production.

[17]  Aritra Ghosh,et al.  Agrivoltaic Engineering and Layout Optimization Approaches in the Transition to Renewable Energy Technologies: A Review , 2022, Challenges.

[18]  Aritra Ghosh,et al.  Floating Photovoltaics: A Review , 2022, Clean Technologies.

[19]  E. Fernández,et al.  Soiling Mapping Through Optical Losses for Nigeria , 2022, SSRN Electronic Journal.

[20]  Ipcc Global Warming of 1.5°C , 2022 .

[21]  N. S. Renato,et al.  Floating photovoltaic plants as an electricity supply option in the Tocantins-Araguaia basin , 2022, Renewable Energy.

[22]  M. López,et al.  Key issues in the design of floating photovoltaic structures for the marine environment , 2022, Renewable and Sustainable Energy Reviews.

[23]  A. Bahaj,et al.  Floating solar PV to reduce water evaporation in water stressed regions and powering water pumping: Case study Jordan , 2022, Energy Conversion and Management.

[24]  Aritra Ghosh Fenestration integrated BIPV (FIPV): A review , 2022, Solar Energy.

[25]  J. Marques,et al.  A Global Overview of Aquaculture Food Production with a Focus on the Activity’s Development in Transitional Systems—The Case Study of a South European Country (Portugal) , 2022, Journal of Marine Science and Engineering.

[26]  C. Jamroen Optimal techno-economic sizing of a standalone floating photovoltaic/battery energy storage system to power an aquaculture aeration and monitoring system , 2022, Sustainable Energy Technologies and Assessments.

[27]  Pinar Mert Cuce,et al.  Floating PVs in Terms of Power Generation, Environmental Aspects, Market Potential, and Challenges , 2022, Sustainability.

[28]  Roger Pielke Jr,et al.  Plausible 2005–2050 emissions scenarios project between 2 °C and 3 °C of warming by 2100 , 2022, Environmental Research Letters.

[29]  F. Kershaw,et al.  Potential impacts of floating wind turbine technology for marine species and habitats. , 2022, Journal of environmental management.

[30]  A. Bhattacharjee,et al.  Experimental investigations for dust build-up on low-iron glass exterior and its effects on the performance of solar PV systems , 2022, Energy.

[31]  E. Oterkus,et al.  Simulation and experimental performance analysis of partially floating PV system in windy conditions , 2021, Solar Energy.

[32]  T. Demirdelen,et al.  Experimental and theoretical study: Design and implementation of a floating photovoltaic system for hydrogen production , 2021, International Journal of Energy Research.

[33]  Ying Huang,et al.  Effects of floating photovoltaic systems on water quality of aquaculture ponds , 2021, Aquaculture Research.

[34]  I. Dincer,et al.  Techno-economic analysis of green hydrogen ferries with a floating photovoltaic based marine fueling station , 2021, Energy Conversion and Management.

[35]  S. Riffat,et al.  Feasibility of realizing daytime solar heating and radiative cooling simultaneously with a novel structure , 2021 .

[36]  R. Margolis,et al.  Floating Photovoltaic System Cost Benchmark: Q1 2021 Installations on Artificial Water Bodies , 2021 .

[37]  Na-Young Park,et al.  Overview of Possibilities of Solar Floating Photovoltaic Systems in the OffShore Industry , 2021, Energies.

[38]  Daniel Hissel,et al.  Hydrogen storage technologies for stationary and mobile applications: Review, analysis and perspectives , 2021 .

[39]  S. Sundaram,et al.  Angular dependencies of soiling loss on photovoltaic performance in Nigeria , 2021 .

[40]  A. Jäger-Waldau,et al.  Assessment of floating solar photovoltaics potential in existing hydropower reservoirs in Africa , 2021, Renewable Energy.

[41]  R. Cazzaniga,et al.  The booming of floating PV , 2021 .

[42]  Ray-Yeng Yang,et al.  Water Depth Variation Influence on the Mooring Line Design for FOWT within Shallow Water Region , 2021, Journal of Marine Science and Engineering.

[43]  Alexandra Y Aznar,et al.  Hybrid floating solar photovoltaics-hydropower systems: Benefits and global assessment of technical potential , 2020 .

[44]  R. Tirnovan,et al.  Economic assessment of grid-connected residential solar photovoltaic systems introduced under Romania’s new regulation , 2020 .

[45]  H. Ahn,et al.  Power performance of high density photovoltaic module using energy balance model under high humidity environment , 2020 .

[46]  S. Sundaram,et al.  Perceiving the temperature coefficients of carbon-based perovskite solar cells , 2020, Sustainable Energy & Fuels.

[47]  I. Dincer,et al.  A new performance assessment methodology of bifacial photovoltaic solar panels for offshore applications , 2020 .

[48]  A. Olabi,et al.  Environmental impacts of solar energy systems: A review. , 2020, The Science of the total environment.

[49]  Aritra Ghosh Potential of building integrated and attached/applied photovoltaic (BIPV/BAPV) for adaptive less energy-hungry building’s skin: A comprehensive review , 2020, Journal of Cleaner Production.

[50]  Reza Javidi Sabbaghian,et al.  Evaluation of factors governing the use of floating solar system: A study on Iran’s important water infrastructures , 2020, Renewable Energy.

[51]  W. V. Sark,et al.  Simulation of performance differences between offshore and land‐based photovoltaic systems , 2020, Progress in Photovoltaics: Research and Applications.

[52]  Mostafa Safdari Shadloo,et al.  Thermodynamic analysis of a solar-driven high-temperature steam electrolyzer for clean hydrogen production , 2020, Applied Thermal Engineering.

[53]  S. Oliveira-Pinto,et al.  Assessment of the potential of different floating solar technologies – Overview and analysis of different case studies , 2020 .

[54]  A. R. Burgers,et al.  Accuracy of simulated data for bifacial systems with varying tilt angles and share of diffuse radiation , 2020 .

[55]  N. Javani,et al.  Design and analysis of a combined floating photovoltaic system for electricity and hydrogen production , 2020 .

[56]  Walid R. Issa,et al.  Thermal performance of semitransparent CdTe BIPV window at temperate climate , 2020, Solar Energy.

[57]  Aoife Foley,et al.  Levelised cost of energy, A challenge for offshore wind , 2019 .

[58]  I. Dincer,et al.  Development of an integrated wind and PV system for ammonia and power production for a sustainable community , 2019, Journal of Cleaner Production.

[59]  I. Dincer,et al.  Assessment and optimization of an integrated wind power system for hydrogen and methane production , 2018, Energy Conversion and Management.

[60]  Juan Bald,et al.  A review of potential impacts of submarine power cables on the marine environment: Knowledge gaps, recommendations and future directions , 2018, Renewable and Sustainable Energy Reviews.

[61]  C. Breyer,et al.  Combining Floating Solar Photovoltaic Power Plants and Hydropower Reservoirs: A Virtual Battery of Great Global Potential , 2018, Energy Procedia.

[62]  Aritra Ghosh,et al.  Investigation of thermal and electrical performances of a combined semi-transparent PV-vacuum glazing , 2018, Applied Energy.

[63]  Esmap,et al.  Where Sun Meets Water : Floating Solar Market Report - Executive Summary , 2018 .

[64]  Wei Luo,et al.  Application of Solar Photovoltaic Power Generation System in Maritime Vessels and Development of Maritime Tourism , 2018, Polish Maritime Research.

[65]  T. Reindl,et al.  Field experience and performance analysis of floating PV technologies in the tropics , 2018, Progress in Photovoltaics: Research and Applications.

[66]  Antonio Carlos de Francisco,et al.  Carbon Footprint of Electricity Generation in Brazil: An Analysis of the 2016–2026 Period , 2018, Energies.

[67]  Gardenio Diogo Pimentel da Silva,et al.  Is floating photovoltaic better than conventional photovoltaic? Assessing environmental impacts , 2018, Impact Assessment and Project Appraisal.

[68]  Ibrahim Dincer,et al.  Smart energy solutions with hydrogen options , 2018 .

[69]  Xiangning Lin,et al.  Hybrid renewable microgrid optimization techniques: A review , 2018 .

[70]  Ibrahim Dincer,et al.  A renewable source based hydrogen energy system for residential applications , 2017 .

[71]  Paolo Rosa-Clot,et al.  Compressed air energy storage integrated with floating photovoltaic plant , 2017 .

[72]  Anand Singh,et al.  Optimal sizing and location of PV, wind and battery storage for electrification to an island: A case study of Kavaratti, Lakshadweep , 2017 .

[73]  Neha Yadav,et al.  Floating photovoltaic power plant: A review , 2016 .

[74]  Omar Abdelaziz,et al.  Thermal analysis of near-isothermal compressed gas energy storage system , 2016 .

[75]  Jihong Wang,et al.  A review on compressed air energy storage – A pathway for smart grid and polygeneration , 2016 .

[76]  Carriveau,et al.  Methane and Hydrogen for Energy Storage , 2016 .

[77]  Jinyue Yan,et al.  A review on compressed air energy storage: Basic principles, past milestones and recent developments , 2016 .

[78]  K. Trapani,et al.  A review of floating photovoltaic installations: 2007–2013 , 2015 .

[79]  Gregorio Iglesias,et al.  A review of combined wave and offshore wind energy , 2015 .

[80]  Kim Trapani,et al.  The thin film flexible floating PV (T3F-PV) array: The concept and development of the prototype , 2014 .

[81]  Giampaolo Manfrida,et al.  Seawater pumping as an electricity storage solution for photovoltaic energy systems , 2014 .

[82]  Lars H. Jepsen,et al.  Complex hydrides for hydrogen storage - New perspectives , 2014 .

[83]  Beata Sliz-Szkliniarz,et al.  Assessment of the renewable energy-mix and land use trade-off at a regional level: A case study for the Kujawsko–Pomorskie Voivodship , 2013 .

[84]  Hossein Safaei,et al.  Compressed air energy storage (CAES) with compressors distributed at heat loads to enable waste heat utilization , 2013 .

[85]  Kim Trapani,et al.  Novel offshore application of photovoltaics in comparison to conventional marine renewable energy technologies , 2013 .

[86]  V. Fthenakis,et al.  Environmental impacts from the installation and operation of large-scale solar power plants , 2011 .

[87]  Vicente Negro,et al.  Why offshore wind energy , 2011 .

[88]  M. Suha Yazici,et al.  Hydrogen and fuel cell activities at UNIDO-ICHET , 2010 .

[89]  D. MacIsaac Sustainable Energy — Without the hot air , 2009 .

[90]  V. Fthenakis,et al.  Coupling PV and CAES power plants to transform intermittent PV electricity into a dispatchable electricity source , 2008 .

[91]  Ibrahim Dincer,et al.  Hydrogen as a renewable and sustainable solution in reducing global fossil fuel consumption , 2008 .

[92]  Ibrahim Dincer,et al.  On hydrogen and hydrogen energy strategies. I: current status and needs , 2005 .

[93]  John Luke Gallup,et al.  Estimates of Coastal Populations , 1997 .

[94]  Paul H. Wirsching,et al.  Fatigue Reliability for Offshore Structures , 1984 .

[95]  A. Allouhi,et al.  Design and construction of a test bench to investigate the potential of floating PV systems , 2021 .

[96]  Fausto Bontempo Scavo,et al.  Recent technical advancements, economics and environmental impacts of floating photovoltaic solar energy conversion systems , 2021 .

[97]  N. Müller,et al.  Floating PV system as an alternative pathway to the amazon dam underproduction , 2021 .

[98]  Fausto Bontempo Scavo,et al.  Comparative analysis of monofacial and bifacial photovoltaic modules for floating power plants , 2021 .

[99]  G. Marco Tina,et al.  Geographic Potential , 2020, Floating PV Plants.

[100]  R. Nagavinothini,et al.  Floating Photovoltaic Thin Film Technology—A Review , 2020 .

[101]  P. Rosa-Clot FPV and Environmental Compatibility , 2020 .

[102]  T. Reindl,et al.  The Dawn of Floating Solar—Technology, Benefits, and Challenges , 2019, Lecture Notes in Civil Engineering.

[103]  Paolo Rosa-Clot,et al.  Floating photovoltaic plants: Performance analysis and design solutions , 2018 .

[104]  Joseph Appelbaum,et al.  Bifacial photovoltaic panels field , 2016 .

[105]  Jihong Wang,et al.  Overview of current development in electrical energy storage technologies and the application potential in power system operation , 2015 .