concentrated solar energy
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Solar Energy ◽  
2022 ◽  
Vol 232 ◽  
pp. 471-482
Author(s):  
Milena Marroccoli ◽  
Neluta Ibris ◽  
Antonio Telesca ◽  
Claudio Tregambi ◽  
Roberto Solimene ◽  
...  

2021 ◽  
Vol 9 ◽  
Author(s):  
James Eujin Park ◽  
Zachary J. L. Bare ◽  
Ryan J. Morelock ◽  
Mark A. Rodriguez ◽  
Andrea Ambrosini ◽  
...  

Solar thermochemical hydrogen (STCH) production is a promising method to generate carbon neutral fuels by splitting water utilizing metal oxide materials and concentrated solar energy. The discovery of materials with enhanced water-splitting performance is critical for STCH to play a major role in the emerging renewable energy portfolio. While perovskite materials have been the focus of many recent efforts, materials screening can be time consuming due to the myriad chemical compositions possible. This can be greatly accelerated through computationally screening materials parameters including oxygen vacancy formation energy, phase stability, and electron effective mass. In this work, the perovskite Gd0.5La0.5Co0.5Fe0.5O3 (GLCF), was computationally determined to be a potential water splitter, and its activity was experimentally demonstrated. During water splitting tests with a thermal reduction temperature of 1,350°C, hydrogen yields of 101 μmol/g and 141 μmol/g were obtained at re-oxidation temperatures of 850 and 1,000°C, respectively, with increasing production observed during subsequent cycles. This is a significant improvement from similar compounds studied before (La0.6Sr0.4Co0.2Fe0.8O3 and LaFe0.75Co0.25O3) that suffer from performance degradation with subsequent cycles. Confirmed with high temperature x-ray diffraction (HT-XRD) patterns under inert and oxidizing atmosphere, the GLCF mainly maintained its phase while some decomposition to Gd2-xLaxO3 was observed.


Author(s):  
Lucia-Antoneta Chicos ◽  
Sebastian Marian Zaharia ◽  
Grzegorz Cempura ◽  
Adam Kruk ◽  
Sebastian Lech ◽  
...  

Metals ◽  
2021 ◽  
Vol 11 (10) ◽  
pp. 1544
Author(s):  
Antonio Cañadilla ◽  
Ana Romero ◽  
Gloria P. Rodríguez

Porous aluminum foams were successfully fabricated following the space-holder powder metallurgy method with a solar sintering stage. Al foams with porosities of 50, 60, and 70 vol.% were sintered in a low-cost Fresnel lens. Green parts were prepared using aluminum powder as the main metallic material and saccharose as a soluble space-holder. The dissolution stage was designed for each foam and required longer periods of time, between 8 and 32 h, as the design porosity increased. Brown parts were fully sintered by concentrated solar energy at a lower temperature (500 °C) and for shorter times (12–20 min) than those required by conventional sintering techniques (640 °C, ~9 h). The evaluation of density and the characterization of pore size and distribution in the sintered foams was carried out. All obtained foams were stable and presented a homogeneously distributed porosity, very close to the design porosity, with differences lower than 2.1 vol.%, and with approximately half being characterized as open porosity. Moreover, the solar sintered foams presented a high quality, and similar or even greater mechanical properties (such as compressive strength and impact energy absorption) than those achieved by conventional techniques. Foams with 50 vol.% of porosity exhibited the best mechanical behavior, in terms of impact-energy absorption (24.42 MJ/m3) and compressive strength (27.4 MPa).


2021 ◽  
Vol 19 ◽  
pp. 624-629
Author(s):  
M.T. Miranda ◽  
◽  
D. Larra ◽  
I. Montero ◽  
F.J. Sepúlveda ◽  
...  

The importance of energy consumption for industrial steam generation justifies the need to promote new renewable and environmentally friendly energy sources, such as concentrated solar energy, for its integration in this sector. In this work, the different alternatives currently available and their advantages and disadvantages are discussed, as well as the main parameters that influence the design of solar installations for industrial steam production. Besides, a guidance procedure is proposed and applied to a real solar plant design.


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