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Development of Hydroprocessing Route to Transportation Fuels from Non-Edible Plant-Oils

机译:开发从非食用植物油运输燃料的加氢处理路线

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Catalysts with tunable porosity, crystallinity and acidity can selectively produce aviation fuels and road transportation fuels via hydroprocessing of non-edible oils. Here we discuss several catalyst supports—mesoporous alumina, silica-alumina and hierarchical mesoporous zeolites, developed and used as support for hydroprocessing catalysts (Ni-Mo, Co-Mo, Ni-W), for the selective production of transportation fuels. These developed catalysts were used for the hydroconversion of waste cooking-oil, jatropha-oil, algal-oil and their mixtures with petroleum refinery oils. The physicochemical properties of the catalyst were tuned for optimal performance on the basis of evaluation results on high pressure fixed bed microreactors and pilot scale reactors. These studies targeted the production of transportation fuels (gasoline, kerosene and diesel) by hydroprocessing (hydrotreating or hydrocrack-ing) renewable feed stocks or co-processing with fossil based oils. Modelling and process optimization studies for prediction of kinetic rate parameters and to know the reaction pathways for the conversion of these feed stocks to various range of hydrocarbon fuels, were also carried out. These studies provided the vital information that the reaction pathways were temperature dependent.
机译:具有可调节的孔隙率,结晶度和酸度的催化剂可以通过对非食用油进行加氢处理而选择性地生产航空燃料和公路运输燃料。在这里,我们讨论了几种催化剂载体-介孔氧化铝,二氧化硅-氧化铝和分级中孔沸石,它们被开发并用作加氢处理催化剂(Ni-Mo,Co-Mo,Ni-W)的载体,用于选择性生产运输燃料。这些开发的催化剂用于废烹饪油,麻风树油,藻类油及其与炼油厂油的混合物的加氢转化。根据在高压固定床微反应器和中试规模反应器上的评估结果,调整催化剂的理化性质以实现最佳性能。这些研究的目标是通过加氢处理(加氢处理或加氢裂化)可再生原料或与化石油共同处理来生产运输燃料(汽油,煤油和柴油)。还进行了建模和工艺优化研究,以预测动力学速率参数并了解将这些原料转化为各种范围的烃类燃料的反应途径。这些研究提供了至关重要的信息,即反应途径与温度有关。

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