石油炼制与化工 ›› 2026, Vol. 57 ›› Issue (10): 60-65.

• 催化剂 • 上一篇    下一篇

固定床渣油加氢装置脱金属性能分析

陈刚1,聂鑫鹏2   

  1. 1. 中国石化金陵分公司
    2. 中石化石油化工科学研究院有限公司
  • 收稿日期:2026-03-31 修回日期:2026-06-07 出版日期:2026-10-12 发布日期:2026-09-20
  • 通讯作者: 聂鑫鹏 E-mail:niexp.ripp@sinopec.com

ANALYSIS OF DEMETALLIZATION PERFORMANCE IN A FIXED-BEDRESIDUE HYDROTREATING UNIT


  • Received:2026-03-31 Revised:2026-06-07 Online:2026-10-12 Published:2026-09-20

摘要: 某公司渣油加氢装置原料金属(镍+钒)含量高,加氢脱金属难度大,中后期阶段,加氢重油中的金属(镍+钒)质量分数超过15 μg/g。通过对工业装置脱金属效果进行分析,发现加氢脱金属率与原料中(沥青质+胶质)含量呈负相关关系;加工重质原油、高金属含量原油以及钒/镍质量比较低原油的渣油导致加氢重油中金属(镍+钒)含量升高。进一步对该公司渣油加氢装置原料(简称渣油A)与某参比渣油加氢装置原料(简称渣油B)的沥青质分子结构进行对比分析,结果表明:渣油A沥青质具有较高的环烷碳含量和较低的链烷碳含量,其碳氢化合物组分中高等效双键数和高碳数部分的分布更为显著。总体来看,渣油A沥青质相对分子质量较大、稠环度较高,转化难度更大,影响金属脱除效果。根据研究结果,开发了新型脱金属催化剂RDM-301,并以渣油A为原料进行了催化剂级配试验,结果表明:与旧催化剂级配相比,新催化剂级配作用下的脱金属(镍+钒)率提高5.3百分点,脱钒率提高7.6百分点。

关键词: 渣油加氢, 金属, 镍, 钒, 分子结构, 催化剂级配

Abstract: In the residue hydrotreating unit of a certain company, a high content of metals (nickel + vanadium) was contained in the feedstock, by which hydrodemetallization was made challenging.In the mid-to-late stage of operation, the metal (nickel and vanadium) content in the hydrotreated heavy oil exceeded 15 μg/g. An analysis of the industrial unit’s demetallization performance revealed that the hydrodemetallization rate was negatively correlated with the (asphaltene and resin) content in the feedstock. Further comparative analysis was conducted on the asphaltene molecular structures of the feedstock for the residue hydrotreating unit in above company (referred to as Residue A) and the feedstock for a reference residue hydrotreating unit (referred to as Residue B). The results show thatthe asphaltenes in Residue A are characterized by a higher naphthenic carbon content and a lower paraffinic carbon content, and a more significant distribution of high double bond equivalent values and high carbon numbers is found in its hydrocarbon components. Overall, the asphaltenes in Residue A exhibit a larger relative molecular weight and a higher degree of polycyclic condensation, making them more difficult to convert, which may affect the metal removal efficiency. Based on the research findings, a novel demetallization catalyst named as RDM-301was developed and a graded catalyst system trial was conducted using Residue A as the feedstock. Compared with the previous catalyst grading, the demetallization rate was improved by 5.3 percentage points and the vanadium removal rate was improved by 7.6 percentage points by the new catalyst grading.

Key words: residue hydrotreating, metal, nickel, vanadium, molecular structure, catalyst grading