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Enhancement of synthesis gas and methanol production by flare gas recovery utilizing a membrane based separation process

机译:利用基于膜的分离过程,通过火炬气回收来增强合成气和甲醇产生

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摘要

Proposing novel strategies for minimization of gas flaring is currently of a great importance. Such strategies could eliminate the drawbacks of burning purge gas and even lead to higher process efficiency. Accordingly, a recovery unit based on membrane separation is proposed in the present contribution. This separation unit is aimed to remove hydrogen, carbon oxides, and methane from the purge gas. Furthermore, the recovered streams are sent to the upstream units as supplementary feeds. In this regard, the stream containing methane is sent to the steam reformer, while the hydrogen and carbon dioxide rich stream is injected into the methanol synthesis reactor. Different strategies are suggested and the best one is selected in terms of enhanced production capacities of synthesis gas and methanol. In order to implement the evaluations, a mathematical model composed of mass and heat balances is applied. Furthermore, the response surface methodology is employed to determine the optimum operating conditions. Consequently, more than 300 tons/year emission of carbon dioxide is inhibited by applying the proposed configuration. Besides, more than 4.6% increase in the methanol production capacity and about 1% decrease in the stoichiometry number of product are the advancements of system working under optimum conditions. (C) 2017 Elsevier B.V. All rights reserved.
机译:提出用于最小化气体燃烧的新策略目前是非常重要的。这种策略可以消除燃烧吹扫气体的缺点,甚至导致更高的过程效率。因此,在本贡献中提出了一种基于膜分离的回收单元。该分离单元旨在从吹扫气体中除去氢气,碳氧化物和甲烷。此外,作为补充馈送,回收的流被发送到上游单元。在这方面,将含甲烷的物流送至蒸汽重整器,同时将富氢和二氧化碳流注入甲醇合成反应器中。提出了不同的策略,并在增强的合成气和甲醇的生产能力方面选择了最好的策略。为了实现评估,应用由质量和热余额组成的数学模型。此外,采用响应面方法来确定最佳操作条件。因此,通过施加所提出的构造,抑制了超过300吨/年的二氧化碳排放。此外,甲醇生产能力增加超过4.6%,产品的化学计量数量减少约为1%,是在最佳条件下工作的系统的进步。 (c)2017 Elsevier B.v.保留所有权利。

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