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Coke Formation and Carbon Atom Economy of Methanol-to-Olefins Reaction

机译:Coke Formation and Carbon atom Economy of methanol-to-Olefins Reaction

摘要

The methanol-to-olefins (MTO) process is becoming the most important non-petrochemical route for the production of light olefins from coal or natural gas. Maximizing the generation of the target products, ethene and propene, and minimizing the production of byproducts and coke, are major considerations in the efficient utilization of the carbon resource of methanol. In the present work, the heterogeneous catalytic conversion of methanol was evaluated by performing simultaneous measurements of the volatile products generated in the gas phase and the confined coke deposition in the catalyst phase. Real-time and complete reaction profiles were plotted to allow the comparison of carbon atom economy of methanol conversion over the catalyst SAPO-34 at varied reaction temperatures. The difference in carbon atom economy was closely related with the coke formation in the SAPO-34 catalyst. The confined coke compounds were determined. A new type of confined organics was found, and these accounted for the quick deactivation and low carbon atom economy under low-reaction-temperature conditions. Based on the carbon atom economy evaluation and coke species determination, optimized operating conditions for the MTO process are suggested; these conditions guarantee high conversion efficiency of methanol.
机译:甲醇制烯烃(MTO)工艺正成为从煤炭或天然气生产轻质烯烃的最重要的非石油化学路线。最大化目标产物乙烯和丙烯的生成,以及最小化副产物和焦炭的生成,是有效利用甲醇碳资源的主要考虑因素。在本工作中,通过同时测量气相中生成的挥发性产物和催化剂相中受限的焦炭沉积,评估了甲醇的非均相催化转化率。绘制了实时和完整的反应曲线,以便在变化的反应温度下比较催化剂SAPO-34上甲醇转化的碳原子经济性。碳原子经济性的差异与SAPO-34催化剂中焦炭的形成密切相关。确定了受限的焦炭化合物。发现了一种新型的受限有机物,这些有机物导致了低反应温度条件下的快速失活和低碳原子经济性。根据碳原子经济性评估和焦炭种类的确定,提出了MTO工艺的最佳操作条件。这些条件保证了甲醇的高转化效率。

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