Dong SongTao, Yang Ping, Yang Qinghe
Sinopec Research Institute of Petroleum Processing Co., Ltd, 18 Xue Yuan Road, 100083 Beijing, People's Republic of China.
ACS Omega. 2024 Dec 2;9(50):49259-49271. doi: 10.1021/acsomega.4c05787. eCollection 2024 Dec 17.
Hydrocracking has become the main technology for producing diesel fuel in many refineries, the key process to meeting new product specifications as environmental regulations for transportation fuels become more stringent. The efficacy of the hydrocracking catalyst is a pivotal determinant of the reaction performance. This study leveraged high-throughput experimentation to closely examine the impact of support properties on both the catalytic activity and the selectivity of middle distillates. The findings show that the catalyst's activity is mainly controlled by the amount of Brönsted acid sites and the presence of strong Lewis acid sites within the carrier. An inverse relationship was observed between middle distillate selectivity and catalyst activity, highlighting a trade-off between these two measures of performance. Furthermore, the hydrocracking performance index (HPI), serving as a composite measure of catalyst efficacy, revealed that an optimal pore size and strong Brönsted acidity are important for increasing the HPI value, thereby signifying enhanced catalytic performance. The experimental result matches the bimolecular hydrogen transfer reaction, which is essential in determining the hydrocracking performance index (HPI) value.
加氢裂化已成为许多炼油厂生产柴油的主要技术,随着运输燃料的环境法规日益严格,它是满足新产品规格的关键工艺。加氢裂化催化剂的效能是反应性能的关键决定因素。本研究利用高通量实验,仔细研究了载体性质对催化活性和中间馏分选择性的影响。研究结果表明,催化剂的活性主要受载体中布朗斯台德酸位数量和强路易斯酸位的存在所控制。观察到中间馏分选择性与催化剂活性之间呈反比关系,突出了这两种性能指标之间的权衡。此外,作为催化剂效能综合指标的加氢裂化性能指数(HPI)表明,最佳孔径和强布朗斯台德酸度对于提高HPI值很重要,从而意味着催化性能得到增强。实验结果与双分子氢转移反应相匹配,这对于确定加氢裂化性能指数(HPI)值至关重要。