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Experimental and kinetic study of catalytic steam gasification of low rank coal with an environmentally friendly, inexpensive composite K2CO3-eggshell derived CaO catalyst

机译:环保,廉价的复合K2CO3-蛋壳派生的CaO催化剂对低阶煤催化蒸汽气化的实验和动力学研究

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The objective of this research was to study effects of composite catalysts (K2CO3 and eggshell derived CaO) on gasification of Indonesian sub-bituminous KPU coal, which was conducted in a fixed bed reactor at atmospheric pressure. The effects of composite catalysts were evaluated from two sections: syngas compositions and reactivity. At 800 degrees C, the H-2 yield of 1.34 mol/mol-C was obtained and the H-2 fraction was 62 vol% when using the composite catalyst (15% K + 5% ES). Compared with only utilization of pure K2CO3 and no catalyst, the composite catalyst (15% K + 5% ES) could increase the yields of H-2 by 6% and 123%. In addition, a CO yield of 0.32 mol/mol-C was obtained by utilizing composite catalyst (15% K + 5% ES), and the CO yield increased by 19% compared with utilization of K2CO3 and increased by 100% compared with no catalyst utilization. Through regression, kinetic parameters were determined from the random pore model (RPM), which provided a basis for design and operation of a realistic system. The RPM could adequately describe the conversion rate. Compared with results of non-catalytic steam gasification, the composite catalyst (15% K + 5% ES) was active in increasing the carbon conversion rate constant by more than three times within 700-900 degrees C due to its ability to reduce the activation energy of gasification by about 38%. It can be concluded that the composite catalyst not only enhances the catalytic effect, but also is environmentally friendly and inexpensive. (C) 2015 Elsevier Ltd. All rights reserved.
机译:这项研究的目的是研究复合催化剂(K2CO3和蛋壳衍生的CaO)对印尼亚沥青KPU煤的气化的影响,该过程在大气压下的固定床反应器中进行。从两个部分评估了复合催化剂的效果:合成气组成和反应性。在800℃下,当使用复合催化剂(15%K + 5%ES)时,获得的H-2产率为1.34mol / mol-C,并且H-2分数为62体积%。与仅使用纯K2CO3而不使用催化剂相比,复合催化剂(15%K + 5%ES)可以将H-2的收率提高6%和123%。此外,通过使用复合催化剂(15%K + 5%ES)获得的CO收率为0.32 mol / mol-C,与未使用K2CO3相比,CO收率增加了19%,而与未使用K2CO3相比,CO收率增加了100%催化剂利用率。通过回归,从随机孔模型(RPM)确定了动力学参数,这为实际系统的设计和操作提供了基础。 RPM可以充分描述转换率。与非催化气化的结果相比,复合催化剂(15%K + 5%ES)在700-900摄氏度内具有将碳转化率常数提高三倍以上的活性,因为它具有降低活化的能力气化能量约38%。可以得出结论,该复合催化剂不仅增强了催化效果,而且是环保且廉价的。 (C)2015 Elsevier Ltd.保留所有权利。

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