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Simulation of water-gas shift membrane reactor for integrated gasification combined cycle plant with CO2 capture

机译:具有CO2捕集的整体气化联合循环装置的水煤气变换膜反应器模拟

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摘要

The effectiveness of energy conversion and carbon dioxide sequestration in Integrated Gasification Combined Cycle (IGCC) is highly dependent on the syngas composition and its further processing. Water gas shift membrane reactor (WGSMR) enables a promising way of syngas-to-hydrogen conversion with favourable carbon dioxide sequestration capabilities. This paper deals with a numerical approach to the modelling of a water gas shift reaction (WGSR) in a membrane reactor which promotes a reaction process by selectively removing hydrogen from the reaction zone through the membrane, making the reaction equilibrium shifting to the product side. Modelling of the WGSR kinetics was based on Bradford mechanism which was used to develop a code within Mathematica programming language to simulate the chemical reactions. The results were implemented as initial and boundary conditions for the tubular WGSMR model designed with Aspen Plus software to analyze the broader system behaviour. On the basis of selected boundary conditions the designed base casemodel predicts that 89.1% CO conversion can be achieved. Calculations show that more than 70% of carbon monoxide conversion into hydrogen appears along the first 40% of reactor length scale. For isothermal conditions more than two thirds of the heat released by WGSR should be extracted from the first 20% of the reactor length. Sensitivity analysis of the WGSMR was also performed by changing the membranes permeance and surface area.
机译:整体气化联合循环(IGCC)中能量转换和二氧化碳隔离的有效性高度依赖于合成气的组成及其进一步处理。水煤气变换膜反应器(WGSMR)实现了一种有前途的合成气制氢方法,并具有良好的二氧化碳隔离能力。本文采用数值方法对膜反应器中的水煤气变换反应(WGSR)进行建模,该方法通过选择性地从反应区通过膜中除去氢,使反应平衡转移到产物侧,从而促进了反应过程。 WGSR动力学建模基于Bradford机制,该机制用于在Mathematica编程语言内开发代码以模拟化学反应。结果被用作使用Aspen Plus软件设计的管状WGSMR模型的初始条件和边界条件,以分析更广泛的系统性能。根据所选的边界条件,设计的基本案例模型预测可以实现89.1%的CO转化率。计算表明,沿着反应堆长度范围的前40%,一氧化碳转化为氢气的转化率超过70%。对于等温条件,应从反应堆长度的前20%提取WGSR释放的热量的三分之二以上。 WGSMR的灵敏度分析也通过改变膜的渗透率和表面积进行。

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