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首页> 外文期刊>Transactions of The Institution of Chemical Engineers. Process Safety and Environmental Protection, Part B >Methanol production based on methane tri-reforming: Process modeling and optimization
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Methanol production based on methane tri-reforming: Process modeling and optimization

机译:基于甲烷三重整的甲醇生产:工艺建模和优化

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In this research an process flowsheet is introduced for carbon dioxide conversion to methanol and a mathematical framework is prepared to analyze the operability of proposed plant. The main steps in the designed process are syngas production through methane tri-reframing, syngas purification, methanol synthesis in the isothermal reactor and syngas recycling. To develop a detail framework, the methane and syngas conversion sections are heterogeneously simulated based on the energy and mass conservation laws, and integrated with the considered equilibrium-based model for separation sections. To prove the correctness of developed model, the simulations results are compared with the experimental data at the same condition. Then, an optimization problem is formulated to determine the optimal operating condition of designed process considering methanol production capacity as objective. Since feeding policy is a key strategy to shift tri-reforming reactions toward the desired condition, the applied single-bed tri-reformer in the designed process is substituted by a multi-bed reactor and methanol production capacity is calculated. It concludes that applying the multi-bed reformer changes the tri-reforming reactions toward the hydrogen synthesis side and increases the methanol production rate from 200 to 265 ton day(-1). (C) 2020 Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
机译:在该研究中,将流程流程引入二氧化碳转化转化为甲醇,并准备分析所提出的植物的可操作性。设计过程中的主要步骤是通过甲烷三重新制作的合成气,合成气净化,等温反应器和合成气再循环中的甲醇合成。为了开发细节框架,甲烷和合成气转换部分是基于能量和质量守恒定制的异渗成模拟,并与所考虑的基于平衡的基于分离部分集成。为了证明开发模型的正确性,将模拟结果与同一条件的实验数据进行比较。然后,制定优化问题以确定考虑甲醇生产能力的设计过程的最佳操作条件。由于饲养政策是将三重整反应转移到所需条件的关键策略,所以设计方法中的施加的单床三重整器被多层反应器代替,并计算甲醇生产能力。它的结论是,施加多床重整器将三重整反应变为氢合成侧,并将甲醇生产率从200至265℃(-1)增加。 (c)2020化学工程师机构。 elsevier b.v出版。保留所有权利。

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