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Maximizing Refinery Profitability with Next Generation Alumina-Sol FCC Catalyst Technologies: IMPACT?, LIBRA?, POLARIS? and PINNACLE?

机译:使用下一代氧化铝-Sol FCC催化剂技术最大化炼厂盈利能力:IMPACT?,LIBRA?,POLARIS?和品尼高?

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An understanding of catalyst-feed interactions on a molecular level is key to developing value-added FCC catalyst technologies. Studies by Grace Davison researchers have shown that catalyst activity and selectivity may be significantly influenced by both the boiling point distribution and chemical composition of the feedstock. More recent studies involving detailed molecular analyses have revealed that the conversion of heavy feed molecules occurs via three reaction pathways each requiring a different catalytic function: I) precracking and feed vaporization that is facilitated by catalytic sites in the matrix; ii) dealkylation of alkylaromatics that is facilitated by the zeolitic function in the catalyst; and iii) conversion of naphthenoaromatics that is facilitated by catalytic sites on the matrix or the external surface of the zeolite.
机译:在分子水平上理解催化剂-进料相互作用是开发增值FCC催化剂技术的关键。 Grace Davison研究人员的研究表明,催化剂的活性和选择性可能受原料的沸点分布和化学成分的影响很大。最近的涉及详细分子分析的研究表明,重质进料分子的转化是通过三个反应路径发生的,每个反应路径都需要不同的催化功能: ii)通过催化剂中的沸石功能促进的烷基芳族化合物的脱烷基; iii)通过在基体或沸石外表面上的催化位点促进的环芳烃的转化。

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