High-temperature CO2 adsorption

Alkali silicate-based adsorbents

Kinetics of Li4SiO4 based carbon capture

https://doi.org/10.3390/ijms20040928 “Most of the TGA curves are fitted to the double exponential model, which is shown in Equation (5): y=Aexp−k1t+Bexp−k2t+C (5) where y represents the weight gain

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Alkali silicate-based adsorbents

Reaction Mechanism of CO2 Capture using Li4SiO4

https://doi.org/10.3390/ijms20040928 “The double-shell mechanism is regarded as the most appropriate model for the reaction between CO2 and Li4SiO4 [27], which is schematically illustrated in Figure 5. At the

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Alkali silicate-based adsorbents

Synthesis of Li4SiO4

https://doi.org/10.3390/ijms20040928 “Li4SiO4 material is usually synthesized by the solid-state reaction method, and the preparation process is illustrated by Equation (1) [22,23], and a core-shell model was

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Alkali silicate-based adsorbents

Introduction of Li4SiO4 for carbon capture

https://doi.org/10.3390/ijms20040928 “Li4SiO4, with a variety of applications [12,13], has better application potential, owing to its higher CO2 sorption capacity, cyclic stability than LiFeO2, Li2CuO2, and Li8SiO6,

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Calcium looping pilot plant

30KW calcium looping

https://doi.org/10.1016/j.powtec.2018.06.011 “Although the outline of the 30 kW plant has been explained in detail elsewhere [42–44], a brief description of the pilot plant is given

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Calcium looping pilot plant

Calcium looping process in 1 MWth scale

https://doi.org/10.1016/j.fuel.2017.08.105 “Carbonate looping or calcium looping (CaL) is an efficient post-combustion CO2 capture technology using limestone based sorbents, and which was initially proposed by Shimizu et

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