石油炼制与化工 ›› 2023, Vol. 54 ›› Issue (9): 84-92.

• 催化剂 • 上一篇    下一篇

加氢裂化尾油在不同结构催化剂上催化裂解制烯烃研究

李凤岭1,周微2,孙志国3,王嘉辰4,杨晓宇1   

  1. 1. 中国石油大连石化公司
    2. 中海油天津化工研究设计院有限公司
    3. 中国石油石油化工研究院
    4. 大连理工大学化工与环境生命学部精细化工国家重点实验室
  • 收稿日期:2022-10-27 修回日期:2023-06-05 出版日期:2023-09-12 发布日期:2023-08-29
  • 通讯作者: 杨晓宇 E-mail:yangxy_dl@petrochina.com.cn

RESEARCH ON DEEP CATALYTIC CRACKING OF HYDROCRACKER TAIL OIL TO OLEFIN

  • Received:2022-10-27 Revised:2023-06-05 Online:2023-09-12 Published:2023-08-29
  • Contact: xiaoyu YANG E-mail:yangxy_dl@petrochina.com.cn

摘要: 为了明确分子筛孔道结构与酸性质对加氢裂化尾油催化裂解制备低碳烯烃的构效关系,寻找最优催化剂,实现加氢裂化尾油的高效转化,挑选了BEA,FER,TON,FAU,AEL,AFI,MFI等7种拓扑结构的分子筛,考察了加氢裂化尾油在不同孔道结构分子筛上的催化裂解反应性能,并通过以正己烷为探针的脉冲微反试验进一步分析了分子筛酸性对催化裂解反应过程中尾油反应性能及低碳烯烃产物分布的影响。加氢裂化尾油的催化裂解试验结果表明,反应转化率受孔径大小与孔道结构共同作用,具有尺寸为0.40 nm×0.65 nm的椭圆形一维孔道结构的SAPO-11分子筛为催化裂解反应最优催化剂。脉冲微反试验结果表明:分子筛弱酸酸量及中强酸酸量越大,越有利于目的产物乙烯和丙烯生成。

关键词: 催化裂解, 加氢裂化尾油, 分子筛, 低碳烯烃, 脉冲微反装置

Abstract: In order to find out the structure-activity relationship of the pore structure of molecular sieve and acidity on deep catalytic cracking of hydrocracker tail oil to produce light olefin, and to find the optimal catalyst for the efficient conversion of hydrocracker tail oil, seven kinds of molecular sieves with different topological structures, such as BEA, FER, TON, FAU, AEL, AFI, MFI, were selected to investigate the deep catalytic cracking performance of hydrocracker tail oil on molecular sieves with different pore structures. The effects of acidity of molecular sieve on the reaction performance and the distribution of light olefin products were further analyzed by micro-pulsed reaction using n-hexane as probe. The deep catalytic cracking test of hydrocracker tail oil showed that the conversion rate was affected by both pore size and structure, SAPO-11 molecular sieve with one-dimensional elliptical pore structure of 0.40 nm × 0.65 nm was the best catalyst for deep catalytic cracking reaction, and the higher the amount of weak acid and medium-strong acid in molecular sieve, the more beneficial to the formation of ethylene and propylene.

Key words: deep catalytic cracking, hydrocracker tail oil, zeolite, light olefin, micro-pulsed reactor