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首页> 外文期刊>Chemical engineering journal >Effect of flow patterns/regimes on CO2 capture using K2CO3 solid sorbent in fluidized bed/circulating fluidized bed
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Effect of flow patterns/regimes on CO2 capture using K2CO3 solid sorbent in fluidized bed/circulating fluidized bed

机译:在流化床/循环流化床中使用K2CO3固体吸附剂的流态/方式对CO2捕集的影响

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CO2 capture from flue gas using a potassium carbonate supported on alumina (K2CO3/Al2O3) solid sorbent was investigated in different flow patterns/regimes in fluidized bed/semi circulating fluidized bed made from glass reactor at low temperature 60 °C. The semi-circulating fluidized bed reactor has 0.025 m of inner diameter and 0.80 m of height. The CO2 capture capacity were measured in the presence of H2O for five different flow patterns/regimes including fixed bed, multiple bubbling, slugging, turbulent and fast fluidization. It can be found that the fixed bed and multiple-bubbling bed could adsorb all CO2 in flue gas (CO2 removal fraction = 1) during 17 min and 10 min, respectively. The slugging, turbulent and fast fluidization could not remove 100% of CO2 in feed gas. Maximum CO2 removal fractions for slugging, turbulent and fast fluidization were 0.98, 0.94 and 0.72, respectively. However, the turbulent regime provided the best CO2 capture capacity at about 90% of stoichiometric theoretical value. The CO2 capture capacity for the multiple-bubbling and fast fluidization regimes were lower with about 66-72% of stoichiometric theoretical value. The fixed bed and slugging regimes provided the poorest CO2 capture capacity at about 53-60% of stoichiometric theoretical value. From all the obtained results, the CO2 capture capacity of the sorbent changed dramatically depending on the flow patterns/regimes in fluidized bed/ circulating fluidized bed.
机译:在由玻璃反应器制成的流化床/半循环流化床中,在60°C的低温条件下,研究了使用载于氧化铝(K2CO3 / Al2O3)固体吸附剂上的碳酸钾从烟道气中捕集CO2的不同流型/方式。半循环流化床反应器具有0.025m的内径和0.80m的高度。在H2O存在的情况下,针对五个不同的流型/状态(包括固定床,多次鼓泡,击打,湍流和快速流化)测量了CO2捕集能力。可以发现,固定床和多重鼓泡床分别可在17分钟和10分钟内吸附烟气中的所有CO2(CO2去除率= 1)。团块,湍流和快速流化无法去除进料气中的100%CO2。击打,湍流和快速流化的最大去除率分别为0.98、0.94和0.72。但是,湍流状态提供了最佳的CO2捕集能力,约为化学计量理论值的90%。多次鼓泡和快速流化过程的二氧化碳捕集能力较低,约为化学计量理论值的66-72%。固定床和拍击方式提供的最差的CO2捕集能力约为化学计量理论值的53-60%。从所有获得的结果来看,吸附剂的CO2捕集能力会根据流化床/循环流化床中的流态/方式而发生显着变化。

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