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首页> 外文期刊>Journal of Thermodynamics >Thermodynamic Equilibrium Analysis of Methanol Conversion to Hydrocarbons Using Cantera Methodology
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Thermodynamic Equilibrium Analysis of Methanol Conversion to Hydrocarbons Using Cantera Methodology

机译:使用Cantera方法的甲醇转化为碳氢化合物的热力学平衡分析

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摘要

Reactions associated with removal of oxygen from oxygenates (deoxygenation) are an important aspect of hydrocarbon fuels production process from biorenewable substrates. Here we report the equilibrium composition of methanol-to-hydrocarbon system by minimizing the total Gibbs energy of the system using Cantera methodology. The system was treated as a mixture of 14 components which had CH3OH, C6H6, C7H8, C8H10(ethyl benzene), C8H10(xylenes), C2H4, C2H6, C3H6, CH4, H2O, C, CO2, CO, H2. The carbon in the equilibrium mixture was used as a measure of coke formation which causes deactivation of catalysts that are used in aromatization reaction(s). Equilibrium compositions of each species were analyzed for temperatures ranging from 300 to 1380 K and pressure at 0–15 atm gauge. It was observed that when the temperature increases the mole fractions of benzene, toluene, ethylbenzene, and xylene pass through a maximum around 1020 K. At 300 K the most abundant species in the system were CH4, CO2, and H2O with mole fractions 50%, 16.67%, and 33.33%, respectively. Similarly at high temperature (1380 K), the most abundant species in the system were H2and CO with mole fractions 64.5% and 32.6% respectively. The pressure in the system shows a significant impact on the composition of species.
机译:与从含氧化合物中除去氧气相关的反应(脱氧)是从生物可再生基质生产烃类燃料的重要过程。在这里,我们通过使用Cantera方法最小化系统的总吉布斯能量来报告甲醇制烃系统的平衡组成。将系统作为14种组分的混合物进行处理,这些组分具有CH3OH,C6H6,C7H8,C8H10(乙苯),C8H10(二甲苯),C2H4,C2H6,C3H6,CH4,H2O,C,CO2,CO,H2。平衡混合物中的碳用作焦炭形成的量度,该焦炭形成导致在芳构化反应中使用的催化剂失活。分析了每种物质的平衡组成,其温度范围为300至1380 K,压力为0-15 atm表压。观察到,当温度升高时,苯,甲苯,乙苯和二甲苯的摩尔分数最大通过约1020K。在300 K时,系统中最丰富的物质是CH4,CO2和H2O,摩尔分数为50% ,分别为16.67%和33.33%。同样在高温(1380 K)下,系统中最丰富的物质是H2和CO,摩尔分数分别为64.5%和32.6%。系统中的压力显示出对物种组成的重大影响。

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