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Thermodynamic Analysis of Indirect Ethanol Synthesis from Syngas

机译:合成气间接乙醇合成的热力学分析

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The dependence of chemical equilibrium constant on the reaction temperature and pressure and the feed molar ratio were theoretically calculated for indirect ethanol synthesis from syngas through the coupling of CO with methyl nitrite (MN) to dimethyl oxalate (DMO) and the hydrogenation of DMO to ethanol. It shows that the coupling process and the hydrogenation of DMO to ethanol are highly favorable at all temperatures and pressures, especially at low temperature. The hydrogenation of DMO to ethylene glycol (EG) and the further reaction of ethanol with H_2 to high alcohol are thermodynamically favorable at low temperatures, below 630 and 450 K, respectively. Additionally, high reaction pressure is facilitated to EG and high alcohol formation. Accordingly, moderate reaction temperature (up 538 K) and low reaction pressure (below 1 MPa) are beneficial to ethanol production.
机译:化学平衡常数对反应温度和压力的依赖性和进料摩尔比在理论上是从合成气的间接乙醇通过与甲基亚硝酸盐(Mn)的偶联至草酸二甲酯(DMO)的偶联和DMO至乙醇的氢化。它表明,DMO对乙醇的偶联方法和氢化在所有温度和压力下都是高度良好的,特别是在低温下。 DMO对乙二醇(例如)的氢化和乙醇与H_2至高醇的进一步反应分别在低温下热力学地有利,分别低于630和450k。另外,促进了高反应压力以例如高醇形成。因此,适度反应温度(上升538k)和低反应压力(低于1MPa)是有益于乙醇生产的。

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