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Modeling and optimization of an industrial hydrogen unit in a crude oil refinery

机译:原油精炼厂工业氢气装置的建模和优化

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The main goal of this research is the modeling and optimization of an industrial hydrogen unit in a domestic oil refinery at steady state condition. The considered process consists of steam methane reforming furnace, low and high temperature shift converters, CO2 absorption column and methanation reactor. In the first step, the reactors are heterogeneously modeled based on the mass and energy balance equations considering heat and mass transfer resistances in the gas and catalyst phases. The CO2 absorption column is simulated based on the equilibrium non-ideal approach. In the second step, a single objective optimization problem is formulated to maximize hydrogen production in the plant considering operating and economic constraints. The feed temperature, firebox temperature, and steam flow rate in the reformer, feed temperature in shift converters, lean amine flow rate in the absorption column, and feed temperature in the methanator are selected as decision variables. The calculated effectiveness factors and mass transfer coefficients prove that the methane reforming is inertia-particle mass transfer control, while shift and methanation reactions are surface reaction control. The simulation results show that applying the optimal condition on the system increases hydrogen production capacity from 85.93 to 105.5 mol s(-1). (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:这项研究的主要目标是在稳态条件下对家用炼油厂的工业氢气装置进行建模和优化。所考虑的过程包括蒸汽甲烷重整炉,低温和高温转化炉,CO2吸收塔和甲烷化反应器。第一步,根据质量和能量平衡方程对反应器进行异构建模,其中考虑了气相和催化剂相中的传热和传质阻力。基于平衡非理想方法模拟了二氧化碳吸收塔。在第二步中,考虑到运营和经济限制,制定了一个单一的目标优化问题,以使工厂中的氢气产量最大化。选择进料温度,燃烧室温度和重整器中的蒸汽流量,转换转换器中的进料温度,吸收塔中的稀胺流量以及甲烷化器中的进料温度作为决策变量。计算得到的有效因子和传质系数证明,甲烷重整是惯性-颗粒传质的控制,而转移和甲烷化反应是表面反应的控制。仿真结果表明,在系统上应用最佳条件可使制氢量从85.93 mols(-1)增加到105.5 mol s(-1)。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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