CoMo/Al2O3-MgO Supported Catalysts: Improvement of Hydrodesulfurization Activity and Optimization of Operational Processing

X. Zheng, Y. Yue
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Abstract

Hydrodesulfurization (HDS) plays a vital role in the production of clean fuels when more stringent environmental legislation forces the sulfur content in fuels to an ultra-low level. There are two alternative approaches for producing ultra-low sulfur diesel (ULSD) in a cost-effective way, including the activity improvement of HDS catalysts and the optimization of the operating conditions in HDS reactions. In this study, the activity improvement of HDS catalysts was first examined, and then the optimization of operational conditions was further explored to gain the ULSD in a cost-effective way. In detail, the catalysts were improved through optimizing the ratio between active metal (Mo) and promoter (Co) based on the MgO-Al2O3 as support. Precursors of the improved oxide catalysts and sulfide catalysts were characterized by various techniques, and the catalytic performances were further evaluated in the hydrodesulfurization of dibenzothiophene. Catalysts with the best catalytic performance were chosen to optimize the reaction conditions. Results show that the optimal amounts of catalysts were 4 wt.% of MoO3 and combined with 2 wt.% of CoO. Moreover, the optimal reaction conditions were reaction temperature of 240 °C, total reaction pressure of 4.0 MPa, the hydrogen-to-oil volume ratio of 300, and LHSV of 2.0 h−1. Under the optimal reaction condition, the desulfurization rate could reach to 99.8%.
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CoMo/Al2O3-MgO负载型催化剂加氢脱硫活性的提高及操作工艺的优化
随着越来越严格的环保法规迫使燃料中的硫含量降至超低水平,加氢脱硫在清洁燃料的生产中发挥着至关重要的作用。目前有两种低成本的超低硫柴油生产方法,一是提高HDS催化剂的活性,二是优化HDS反应的操作条件。本研究首先考察了HDS催化剂的活性提高,然后进一步探索了操作条件的优化,以经济高效的方式获得ULSD。以MgO-Al2O3为载体,通过优化活性金属(Mo)与促进剂(Co)的比例,对催化剂进行了改进。对改进后的氧化物催化剂和硫化物催化剂的前驱体进行了各种技术表征,并进一步评价了其在二苯并噻吩加氢脱硫中的催化性能。选择催化性能最好的催化剂,对反应条件进行优化。结果表明,MoO3用量为4 wt.%, CoO用量为2 wt.%是催化剂的最佳配比。最佳反应条件为反应温度240℃,反应总压力4.0 MPa,氢油体积比300,LHSV为2.0 h−1。在最佳反应条件下,脱硫率可达99.8%。
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