Capacity optimization and economic analysis of PV–hydrogen hybrid systems with physical solar power curve modeling
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Dazhi Yang | Hao Zhang | Guoming Yang | Chao Lyu | Wenting Wang | Bai Liu
[1] S. Bu,et al. Interpretable Time-Adaptive Transient Stability Assessment Based on Dual-Stage Attention Mechanism , 2023, IEEE Transactions on Power Systems.
[2] Qinran Hu,et al. Role of electrolytic hydrogen in smart city decarbonization in China , 2023, Applied Energy.
[3] Zixuan Zheng,et al. Economic and resilient operation of hydrogen-based microgrids: An improved MPC-based optimal scheduling scheme considering security constraints of hydrogen facilities , 2023, Applied Energy.
[4] Bachirou Guene Lougou,et al. Selection of iron-based oxygen carriers for two-step solar thermochemical splitting of carbon dioxide , 2023, Energy Conversion and Management.
[5] M. Nasser,et al. Techno-enviro-economic analysis of hydrogen production via low and high temperature electrolyzers powered by PV/Wind turbines/Waste heat , 2023, Energy Conversion and Management.
[6] N. Hanrieder,et al. Techno-economic assessment of soiling losses in CSP and PV solar power plants: A case study for the semi-arid climate of Morocco , 2022, Energy Conversion and Management.
[7] M. J. Mayer. Benefits of physical and machine learning hybridization for photovoltaic power forecasting , 2022, Renewable and Sustainable Energy Reviews.
[8] M. J. Mayer,et al. Probabilistic photovoltaic power forecasting using a calibrated ensemble of model chains , 2022, Renewable and Sustainable Energy Reviews.
[9] Jinpeng Ma,et al. Multi-objective capacity programming and operation optimization of an integrated energy system considering hydrogen energy storage for collective energy communities , 2022, Energy Conversion and Management.
[10] H. Hassan,et al. Performance evaluation of PV panels/wind turbines hybrid system for green hydrogen generation and storage: Energy, exergy, economic, and enviroeconomic , 2022, Energy Conversion and Management.
[11] T. Alskaif,et al. Open-source quality control routine and multi-year power generation data of 175 PV systems , 2022, Journal of Renewable and Sustainable Energy.
[12] Jie Liu,et al. Consumer acceptance under hydrogen energy promotion policy: Evidence from Yangtze River Delta , 2022, International Journal of Hydrogen Energy.
[13] Dazhi Yang,et al. Irradiance-to-power conversion based on physical model chain: An application on the optimal configuration of multi-energy microgrid in cold climate , 2022, Renewable and Sustainable Energy Reviews.
[14] J. Yusta,et al. Optimal dispatch model for PV-electrolysis plants in self-consumption regime to produce green hydrogen: A Spanish case study , 2022, International Journal of Hydrogen Energy.
[15] A. Andreas,et al. The “Fresnel Equations” for Diffuse radiation on Inclined photovoltaic Surfaces (FEDIS) , 2022, Renewable and Sustainable Energy Reviews.
[16] M. J. Mayer,et al. Comparison of machine learning methods for photovoltaic power forecasting based on numerical weather prediction , 2022, Renewable and Sustainable Energy Reviews.
[17] Dazhi Yang. Estimating 1-min beam and diffuse irradiance from the global irradiance: A review and an extensive worldwide comparison of latest separation models at 126 stations , 2022, Renewable and Sustainable Energy Reviews.
[18] P. Zhou,et al. Regional policy effect on photovoltaic (PV) technology innovation: Findings from 260 cities in China , 2022, Energy Policy.
[19] Kun Liu,et al. Optimal coordination of hydrogen-based integrated energy systems with combination of hydrogen and water storage , 2022, Applied Energy.
[20] A. Mostafaeipour,et al. Prioritization of solar electricity and hydrogen co-production stations considering PV losses and different types of solar trackers: A TOPSIS approach , 2022, Renewable Energy.
[21] Wen Liu,et al. Robust energy management for an on-grid hybrid hydrogen refueling and battery swapping station based on renewable energy , 2021, Journal of Cleaner Production.
[22] Yuewen Jiang,et al. Electrolysis plant size optimization and benefit analysis of a far offshore wind-hydrogen system based on information gap decision theory and chance constraints programming , 2021, International Journal of Hydrogen Energy.
[23] Martin János Mayer,et al. Influence of design data availability on the accuracy of physical photovoltaic power forecasts , 2021, Solar Energy.
[24] V. Mukherjee,et al. Off-grid solar photovoltaic/hydrogen fuel cell system for renewable energy generation: An investigation based on techno-economic feasibility assessment for the application of end-user load demand in North-East India , 2021 .
[25] Dazhi Yang. Temporal-resolution cascade model for separation of 1-min beam and diffuse irradiance , 2021, Journal of Renewable and Sustainable Energy.
[26] S. Sartori,et al. Identifying snow in photovoltaic monitoring data for improved snow loss modeling and snow detection , 2021, Solar Energy.
[27] David Hoadley,et al. Efficient calculation of solar position using rectangular coordinates , 2021 .
[28] A. Sapio,et al. Hydrogen economy and Sustainable Development Goals (SDGs): Review and policy insights , 2021 .
[29] Dazhi Yang,et al. Post-processing in solar forecasting: Ten overarching thinking tools , 2021 .
[30] M. J. Mayer,et al. Extensive comparison of physical models for photovoltaic power forecasting , 2020 .
[31] Mohamed I. Mosaad,et al. Optimal economic study of hybrid PV-wind-fuel cell system integrated to unreliable electric utility using hybrid search optimization technique , 2020 .
[32] S. You,et al. Planning and operation of a hydrogen supply chain network based on the off-grid wind-hydrogen coupling system , 2020 .
[33] Martin János Mayer,et al. Techno-economic optimization of grid-connected, ground-mounted photovoltaic power plants by genetic algorithm based on a comprehensive mathematical model , 2020 .
[34] M. Holtzapple,et al. Perspectives on the origin, derivation, meaning, and significance of the isotropic sky model , 2020 .
[35] Yuewen Jiang,et al. Optimal sizing of wind-hydrogen system considering hydrogen demand and trading modes , 2020 .
[36] Patrick R. Brown,et al. Spatial and temporal variation in the value of solar power across United States electricity markets , 2020 .
[37] R. Amaro e Silva,et al. Spatio-temporal PV forecasting sensitivity to modules’ tilt and orientation , 2019 .
[38] Shi You,et al. Size optimization and economic analysis of a coupled wind-hydrogen system with curtailment decisions , 2019, International Journal of Hydrogen Energy.
[39] Stefan Reichelstein,et al. Economics of converting renewable power to hydrogen , 2019, Nature Energy.
[40] N. Mac Dowell,et al. Techno-economic feasibility of grid-independent residential roof-top solar PV systems in Muscat, Oman , 2018, Energy Conversion and Management.
[41] David Infield,et al. Incorporating air density into a Gaussian process wind turbine power curve model for improving fitting accuracy , 2018, Wind Energy.
[42] Rodrigo Escobar,et al. Effect of soiling in bifacial PV modules and cleaning schedule optimization , 2018, Energy Conversion and Management.
[43] Sanjib Kumar Panda,et al. A multi-objective and robust optimization approach for sizing and placement of PV and batteries in off-grid systems fully operated by diesel generators: An Indonesian case study , 2018, Energy.
[44] Clifford W. Hansen,et al. Pvlib Python: a Python Package for Modeling Solar Energy Systems , 2018, J. Open Source Softw..
[45] R. Pacudan. Feed-in tariff vs incentivized self-consumption: Options for residential solar PV policy in Brunei Darussalam , 2018, Renewable Energy.
[46] I. Santiago,et al. Modeling of photovoltaic cell temperature losses: A review and a practice case in South Spain , 2018, Renewable and Sustainable Energy Reviews.
[47] Murat Gökçek,et al. Optimal design of a Hydrogen Refuelling Station (HRFS) powered by Hybrid Power System , 2018 .
[48] Anand Singh,et al. Techno-economic feasibility analysis of hydrogen fuel cell and solar photovoltaic hybrid renewable energy system for academic research building , 2017 .
[49] Xinhai Xu,et al. Near-term analysis of a roll-out strategy to introduce fuel cell vehicles and hydrogen stations in Shenzhen China , 2017 .
[50] Agnelo Marotta Cassula,et al. Assessment of photovoltaic performance models for system simulation , 2017 .
[51] B. Marion. Numerical method for angle-of-incidence correction factors for diffuse radiation incident photovoltaic modules , 2017 .
[52] Guowei Cai,et al. Techno-economic analysis of wind curtailment/hydrogen production/fuel cell vehicle system with high wind penetration in China , 2017 .
[53] Galen Maclaurin,et al. The National Solar Radiation Data Base (NSRDB) , 2017, Renewable and Sustainable Energy Reviews.
[54] Dazhi Yang,et al. Solar radiation on inclined surfaces: Corrections and benchmarks , 2016 .
[55] J. A. Ruiz-Arias,et al. Extensive worldwide validation and climate sensitivity analysis of direct irradiance predictions from 1-min global irradiance , 2016 .
[56] Kashif Ishaque,et al. Cell modelling and model parameters estimation techniques for photovoltaic simulator application: A review , 2015 .
[57] Nicholas A. Engerer. Minute resolution estimates of the diffuse fraction of global irradiance for southeastern Australia , 2015 .
[58] Peng Sun,et al. A comparative study of feed-in tariff and renewable portfolio standard policy in renewable energy industry , 2015 .
[59] J. Heo. Characterization of Wavelength Effect on Photovoltaic Property of Poly-Si Solar Cell Using Photoconductive Atomic Force Microscopy (PC-AFM) , 2013 .
[60] M. Fowler,et al. Analysis of Ontario's hydrogen economy demands from hydrogen fuel cell vehicles , 2012 .
[61] Detlev Heinemann,et al. Regional PV power prediction for improved grid integration , 2011 .
[62] C. Gueymard. REST2: High-performance solar radiation model for cloudless-sky irradiance, illuminance, and photosynthetically active radiation – Validation with a benchmark dataset , 2008 .
[63] A. Kapoor,et al. Exact analytical solutions of the parameters of real solar cells using Lambert W-function , 2004 .
[64] N. Martín,et al. Calculation of the PV modules angular losses under field conditions by means of an analytical model , 2001 .
[65] Mark Luther,et al. Modelling the diffuse fraction of global solar radiation on a horizontal surface , 2001 .
[66] Benjamin Y. H. Liu,et al. The interrelationship and characteristic distribution of direct, diffuse and total solar radiation , 1960 .
[67] Ugur Kilic,et al. A review of solar photovoltaic incentives and Policy: Selected countries and Turkey , 2022, Ain Shams Engineering Journal.
[68] J. Ahola,et al. Technical feasibility evaluation of a solar PV based off-grid domestic energy system with battery and hydrogen energy storage in northern climates , 2021, Solar Energy.
[69] Mehdi Jahangiri,et al. Feasibility study on the provision of electricity and hydrogen for domestic purposes in the south of Iran using grid-connected renewable energy plants , 2019, Energy Strategy Reviews.
[70] Clifford W. Hansen,et al. Modeling the Irradiance and Temperature Dependence of Photovoltaic Modules in PVsyst , 2015, IEEE Journal of Photovoltaics.
[71] William A. Beckman,et al. Improvement and validation of a model for photovoltaic array performance , 2006 .
[72] I. Reda,et al. Solar position algorithm for solar radiation applications , 2004 .
[73] Teodoro López-Moratalla,et al. Computing the solar vector , 2001 .
[74] J. Michalsky,et al. Modeling daylight availability and irradiance components from direct and global irradiance , 1990 .
[75] J. Michalsky. The Astronomical Almanac's algorithm for approximate solar position (1950 - 2050). , 1988 .