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Chemical-looping Combustion Of Coal-derived Synthesis Gas Over copper Oxide Oxygen Carriers

机译:氧化铜氧气载体上煤衍生合成气的化学环燃烧

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CuO/bentonite and CuO-BHA nanocomposites were studied as oxygen carriers in chemical-looping combustion (CLC) of simulated synthesis gas. Global reaction rates of reduction and oxidation, as the function of reaction conversion, were calculated from 10-cycle oxidation/reduction tests utilizing thermogravimetric analysis at atmospheric pressure between 700 and 900 ℃. It was found that the reduction reactions are always faster than oxidation reactions; reaction temperature and particle size do not significantly affect the reaction performance of CuO/bentonite. Multicycle CLC tests conducted in a high-pressure flow reactor showed stable reactivity for production of CO_2 from fuel gas at 800 and 900 ℃ and full consumption of hydrogen during the reaction. Results of the tapered element oscillating microbalance showed a negative effect of pressure on the global rates of reduction-oxidation reactions at higher fractional conversions. X-ray diffraction patterns confirmed the presence of CuO in the bulk phase of the oxidized sample. Electron microanalysis showed significant morphology changes of reacted CuO/bentonite samples after the 10 oxidation-reduction cycles above 700 ℃ in an atmospheric thermogravimetric analyzer. The nanostructured CuO-BHA carrier also showed excellent stability and, in comparison to the CuO/bentonite system, slightly accelerated redox kinetics albeit at the expense of significantly increased complexity of manufacturing. Overall, both types of CuO carriers exhibited excellent reaction performance and thermal stability for the CLC process at 700-900 ℃.
机译:研究了CuO /膨润土和CuO-BHA纳米复合材料作为模拟合成气化学循环燃烧(CLC)中的氧载体。还原和氧化的总反应速率,作为反应转化率的函数,是通过在700至900℃的大气压下利用热重分析从10个循环的氧化/还原试验计算得出的。已经发现,还原反应总是比氧化反应快。反应温度和粒度不会显着影响CuO /膨润土的反应性能。在高压流动反应器中进行的多周期CLC测试显示,在800和900℃下,从燃料气体生产CO_2具有稳定的反应性,并且在反应过程中氢气被完全消耗。锥形元件振荡微量天平的结果表明,压力对较高分数转化率的整体还原氧化反应速率具有负面影响。 X射线衍射图证实了在氧化样品的本体相中存在CuO。在大气热重分析仪中经过700℃以上的10次氧化还原循环后,电子微分析显示了反应后的CuO /膨润土样品的明显形态变化。与CuO /膨润土体系相比,纳米结构的CuO-BHA载体也表现出优异的稳定性,尽管以显着增加的制造复杂性为代价,但氧化还原动力学略有加速。总体而言,两种类型的CuO载体在700-900℃的CLC过程中均表现出出色的反应性能和热稳定性。

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