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Process simulation of hydrogen rich gas production from producer gas using HTS catalysis

机译:使用HTS催化从生产者气体生产氢气生产的过程模拟

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In the present article, ASPEN Plus is used to develop a process model of the hydrogen-rich gas production through cleaning and catalytic conditioning of producer gas. The process includes producer gas cleaning using venturi scrubber and sand bed filter followed by compression of the gas to 0.6 MPa using compressor. The clean producer gas along with steam undergoes high temperature water gas shift reaction to produce hydrogen-rich gas. The power law kinetic model for commercial HTS catalysts reported in the literature is used in the model. Experimental results from our previous study and those reported in the literature are used to validate the developed model for the compositions of CO & H2 in the product gas. The validated model is further simulated to study the effects of parameters such as reactor temperature, catalyst bed length and steam to CO ratio on the product gas composition. The optimum operating conditions for maximizing CO conversion are found and reported. The maximum H2 composition and CO conversion predicted by the model are 27.029% 97.5479% respectively and the corresponding operating conditions are reactor; temperature of 350 degrees C, WO of 8 and GHSV 1000 h(-1). (C) 2019 Elsevier Ltd. All rights reserved.
机译:在本文中,Aspen Plus用于通过生产者气体的清洁和催化调节开发富含氢气生产的过程模型。该方法包括使用Venturi洗涤器和砂床过滤器的生产者气体清洗,然后使用压缩机将气体压缩至0.6MPa。清洁生产者气体以及蒸汽经历高温水煤气变换反应,以生产富含氢气的气体。在文献中报告的商业HTS催化剂的电力法动力学模型用于该模型。我们以前的研究的实验结果和文献中报道的结果用于验证产物气体中CO&H2的组合物的开发模型。进一步模拟验证的模型以研究参数,例如反应器温度,催化剂床长和蒸汽对产物气体组合物的共比的影响。发现并报告了最大化CO转化的最佳操作条件。模型预测的最大H2组成和CO转化分别为27.029%97.5479%,相应的操作条件是反应堆;温度为350℃,WO为8和GHSV 1000小时(-1)。 (c)2019 Elsevier Ltd.保留所有权利。

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