000 02697nam a2200289Ia 4500
003 MX-MdCICY
005 20251009160712.0
040 _cCICY
090 _aB-21982
245 1 0 _aSolar-driven high temperature hydrogen production via integrated spectrally split concentrated photovoltaics (SSCPV) and solar power tower.
490 0 _aInternational Journal of Hydrogen Energy, 44(5), 2519-2532, 2019.
500 _aArtículo
520 3 _aHydrogen production can be achieved via combined concentrated photovoltaic (CPV) and concentrated solar power (CSP) in which concentrated radiation is spectrally split and then converted in a photovoltaic receiver and a thermal absorber. This study thus proposes an innovative solar process design integrating both thermal and quantum components of solar energy while providing a complete assessment of its global performance to demonstrate its practical interest. A stand-alone solar-to-hydrogen path was modeled and numerically simulated, which was both electrically and thermally supplied by a solar power generation unit to feed the electrolyzer power utilization unit with enhanced solar-to-hydrogen conversion efficiency. Following balance of plant (BoP), the heliostat field and cavity receiver were designed to match the entire system in which the receiver only intercepts a definite range of infrared wavelength while the rest is converted by separately insulated PV cells. Moreover, dichroic reflectors and optimum cutoff wavelength were applied to fulfill separate optimization and heat load reduction of each solar cell. Finally, the solid oxide electrolysis cell (SOEC) was designed to utilize the generated thermal and electrical power appropriately. In best case scenario, a solar-to-hydrogen conversion efficiency of 36.5% was achieved under 899 W/m2 direct normal irradiance (DNI) and 1000 suns concentration. The solar plant outputs at this operating point were 850 g/h H2 and 6754 g/h O2. Further improvement in efficiency can be achieved through alignment in regard to the site location and annual insolation variation.
650 1 4 _aCONCENTRATED SOLAR POWER
650 1 4 _aCONCENTRATED PHOTOVOLTAIC
650 1 4 _aDICHROIC REflECTOR
650 1 4 _aCOMPOUND PARABOLIC CONCENTRATOR
650 1 4 _aHIGH-TEMPERATURE STEAM ELECTROLYSIS
650 1 4 _aSOLID
650 1 4 _aOXIDE ELECTROLYSIS CELL
700 1 2 _aKaleibari, S. S.
700 1 2 _aYanping, Z.
700 1 2 _aAbanades, S.
856 4 0 _uhttps://drive.google.com/file/d/1YSctl_hnSjCK1tfW01sU0x2SeEY-FHyD/view?usp=drive_link
_zPara ver el documento ingresa a Google con tu cuenta: @cicy.edu.mx
942 _2Loc
_cREF1
008 251009s9999 xx 000 0 und d
999 _c62070
_d62070