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- W4313397852 abstract "Hydrotalcites are a promising candidate for capturing CO2, but their strong inter-particle forces produce significant agglomeration and poor fluidisation quality in micro-fluidised bed technology. Therefore, in this study we performed detailed hydrodynamic experiments using the pressure drop characterisation approach to identify viable MFBR designs and operating conditions for these Geldart C powders. Our results show that a simple combination of pre-sieving the particles to remove the fines (retaining sizes of >53 μm; density of 2 g/cm3) and pre-fluidisation drastically improved the fluidisation quality. Here the pressure overshoot prior to fluidisation and slugging behaviour were minimised. Additionally, mixing a secondary inert Geldart A particle to the hydrotalcite powder (silica; 93 ± 10 μm; density of 2.65 g/cm3) also reduced the presence of slugging and pressure overshoot. These treatments were valid in three 3D-printed MFBRs (bed diameters of Dt = 10–15 mm) at all bed heights tested (Hs/Dt = 1–3)." @default.
- W4313397852 created "2023-01-06" @default.
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- W4313397852 date "2023-02-01" @default.
- W4313397852 modified "2023-09-26" @default.
- W4313397852 title "Fluidisation behaviour and wall effects of cohesive hydrotalcite powder in a micro-fluidised bed" @default.
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- W4313397852 doi "https://doi.org/10.1016/j.powtec.2022.118192" @default.
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