Hi Temp Thermochemical Energy Storage via Solid Gas Reactions

PDF Publication Title:

Hi Temp Thermochemical Energy Storage via Solid Gas Reactions ( hi-temp-thermochemical-energy-storage-via-solid-gas-reaction )

Previous Page View | Next Page View | Return to Search List

Text from PDF Page: 022

Energies 2020, 13, 5859 22 of 23 84. André, L.; Abanades, S.; Cassayre, L. Mixed Metal Oxide Systems Applied to Thermochemical Storage of Solar Energy: Benefits of Secondary Metal Addition in Co and Mn Oxides and Contribution of Thermodynamics. Appl. Sci. 2018, 8, 2618. [CrossRef] 85. Dizaji, H.B.; Hosseini, H. A review of material screening in pure and mixed-metal oxide thermochemical energy storage (TCES) systems for concentrated solar power (CSP) applications. Renew. Sustain. Energy Rev. 2018, 98, 9–26. [CrossRef] 86. Wu, S.; Zhou, C.; Doroodchi, E.; Nellore, R.; Moghtaderi, B. A review on high-temperature thermochemical energy storage based on metal oxides redox cycle. Energy Convers. Manag. 2018, 168, 421–453. [CrossRef] 87. Liu, J.; Baeyens, J.; Deng, Y.; Wang, X.; Zhang, H. High temperature Mn2 O3 /Mn3 O4 and Co3 O4 /CoO systems for thermo-chemical energy storage. J. Environ. Manag. 2020, 267, 110582. [CrossRef] [PubMed] 88. Müller, D.; Knoll, C.; Artner, W.; Harasek, M.; Gierl-Mayer, C.; Welch, J.M.; Werner, A.; Weinberger, P. Combining in-situ X-ray diffraction with thermogravimetry and differential scanning calorimetry—An investigation of Co3O4, MnO2 and PbO2 for thermochemical energy storage. Sol. Energy 2017, 153, 11–24. [CrossRef] 89. Yilmaz, D.; Darwish, E.; Leion, H. Investigation of the combined Mn-Si oxide system for thermochemical energy storage applications. J. Energy Storage 2020, 28, 101180. [CrossRef] 90. Bielsa, D.; Zaki, A.; Arias, P.L.; Faik, A. Improving the redox performance of Mn2O3/Mn3O4 pair by Si doping to be used as thermochemical energy storage for concentrated solar power plants. Sol. Energy 2020, 204, 144–154. [CrossRef] 91. King, K.; Randhir, K.; Klausner, J. Calorimetric method for determining the thermochemical energy storage capacities of redox metal oxides. Thermochim. Acta 2019, 673, 105–118. [CrossRef] 92. Randhir, K.; King, K.; Rhodes, N.; Li, L.; Hahn, D.; Mei, R.; AuYeung, N.; Klausner, J. Magnesium-manganese oxides for high temperature thermochemical energy storage. J. Energy Storage 2019, 21, 599–610. [CrossRef] 93. King, K.; Randhir, K.; Petrasch, J.; Klausner, J. Enhancing thermochemical energy storage density of magnesium-manganese oxides. Energy Storage 2019, 1, e83. [CrossRef] 94. Preisner, N.C.; Block, T.; Linder, M.; Leion, H. Stabilizing Particles of Manganese-Iron Oxide with Additives for Thermochemical Energy Storage. Energy Technol. 2018, 6, 2154–2165. [CrossRef] 95. Al-Shankiti, I.A.; Ehrhart, B.D.; Ward, B.J.; Bayon, A.; Wallace, M.A.; Bader, R.; Kreider, P.; Weimer, A.W. Particle design and oxidation kinetics of iron-manganese oxide redox materials for thermochemical energy storage. Sol. Energy 2019, 183, 17–29. [CrossRef] 96. Hamidi, M.; Wheeler, V.M.; Gao, X.; Pye, J.; Catchpole, K.; Weimer, A.W. Reduction of iron–manganese oxide particles in a lab-scale packed-bed reactor for thermochemical energy storage. Chem. Eng. Sci. 2020, 221, 115700. [CrossRef] 97. Wokon, M.; Kohzer, A.; Linder, M. Investigations on thermochemical energy storage based on technical grade manganese-iron oxide in a lab-scale packed bed reactor. Sol. Energy 2017, 153, 200–214. [CrossRef] 98. Wokon, M.; Block, T.; Nicolai, S.; Linder, M.; Schmücker, M. Thermodynamic and kinetic investigation of a technical grade manganese-iron binary oxide for thermochemical energy storage. Sol. Energy 2017, 153, 471–485. [CrossRef] 99. Tescari, S.; Singh, A.; Agrafiotis, C.; de Oliveira, L.; Breuer, S.; Schlögl-Knothe, B.; Roeb, M.; Sattler, C. Experimental evaluation of a pilot-scale thermochemical storage system for a concentrated solar power plant. Appl. Energy 2017, 189, 66–75. [CrossRef] 100. Zhou,X.;Mahmood,M.;Chen,J.;Yang,T.;Xiao,G.;Ferrari,M.L.Validatedmodelofthermochemicalenergy storage based on cobalt oxides. Appl. Therm. Eng. 2019, 159, 113965. [CrossRef] 101. Zaki,A.;Bielsa,D.;Faik,A.DevelopmentofacontinuoussolidsolutionwithextendedRed-Oxtemperature range and unexpected high reaction enthalpies for thermochemical energy storage. AIP Conf. Proc. 2019, 2126, 210010. [CrossRef] 102. Zaki,A.;Carrasco,J.;Bielsa,D.;Faik,A.TunableRedoxTemperatureofaCo3−xMnxO4(0≤x≤3)Continuous Solid Solution for Thermochemical Energy Storage. ACS Appl. Mater. Interfaces 2020, 12, 7010–7020. [CrossRef] [PubMed] 103. Zhang,Z.;Andre,L.;Abanades,S.Experimentalassessmentofoxygenexchangecapacityandthermochemical redox cycle behavior of Ba and Sr series perovskites for solar energy storage. Sol. Energy 2016, 134, 494–502. [CrossRef]

PDF Image | Hi Temp Thermochemical Energy Storage via Solid Gas Reactions

PDF Search Title:

Hi Temp Thermochemical Energy Storage via Solid Gas Reactions

Original File Name Searched:

energies-13-05859.pdf

DIY PDF Search: Google It | Yahoo | Bing

NFT (Non Fungible Token): Buy our tech, design, development or system NFT and become part of our tech NFT network... More Info

IT XR Project Redstone NFT Available for Sale: NFT for high tech turbine design with one part 3D printed counter-rotating energy turbine. Be part of the future with this NFT. Can be bought and sold but only one design NFT exists. Royalties go to the developer (Infinity) to keep enhancing design and applications... More Info

Infinity Turbine IT XR Project Redstone Design: NFT for sale... NFT for high tech turbine design with one part 3D printed counter-rotating energy turbine. Includes all rights to this turbine design, including license for Fluid Handling Block I and II for the turbine assembly and housing. The NFT includes the blueprints (cad/cam), revenue streams, and all future development of the IT XR Project Redstone... More Info

Infinity Turbine ROT Radial Outflow Turbine 24 Design and Worldwide Rights: NFT for sale... NFT for the ROT 24 energy turbine. Be part of the future with this NFT. This design can be bought and sold but only one design NFT exists. You may manufacture the unit, or get the revenues from its sale from Infinity Turbine. Royalties go to the developer (Infinity) to keep enhancing design and applications... More Info

Infinity Supercritical CO2 10 Liter Extractor Design and Worldwide Rights: The Infinity Supercritical 10L CO2 extractor is for botanical oil extraction, which is rich in terpenes and can produce shelf ready full spectrum oil. With over 5 years of development, this industry leader mature extractor machine has been sold since 2015 and is part of many profitable businesses. The process can also be used for electrowinning, e-waste recycling, and lithium battery recycling, gold mining electronic wastes, precious metals. CO2 can also be used in a reverse fuel cell with nafion to make a gas-to-liquids fuel, such as methanol, ethanol and butanol or ethylene. Supercritical CO2 has also been used for treating nafion to make it more effective catalyst. This NFT is for the purchase of worldwide rights which includes the design. More Info

NFT (Non Fungible Token): Buy our tech, design, development or system NFT and become part of our tech NFT network... More Info

Infinity Turbine Products: Special for this month, any plans are $10,000 for complete Cad/Cam blueprints. License is for one build. Try before you buy a production license. May pay by Bitcoin or other Crypto. Products Page... More Info

CONTACT TEL: 608-238-6001 Email: greg@infinityturbine.com (Standard Web Page)