EP3556462A1

Hydroprocessing using bulk bimetallic catalysts

Abstract

The invention relates to a process for upgrading hydrocarbonaceous feedstreams by hydroprocessing using bulk bimetallic catalysts. More particularly, the invention relates to a catalytic hydrotreating process for the removal of sulfur and nitrogen from a hydrocarbon feed such as a feed to a fuel process or a feed to a lubricating oil process. The catalyst is a bulk catalyst containing nickel and tungsten.

Term

Projected expiry 25 October 2026.

  1. Priority
  2. Filed
  3. Published
  4. Today
  5. Projected expiry

9 claims: 3 independent, 6 dependent

  1. 1
    A process for hydroprocessing a hydrocarbon feed, the process comprising contacting the feed with hydrogen in the presence of a catalytically effective amount of a bulk catalyst under catalytic conversion conditions, the bulk catalyst comprising only nickel as Group VIII metal and only tungsten as Group VIB metal, and optionally less than 10 mole % of niobium, relative to the Group VIB metal, wherein the catalyst consists essentially of nickel tungsten metal oxidic particles having a nickel to tungsten mole ratio of less than 1.5, wherein the nickel tungsten metal oxidic particles are made by a process comprising:(i) forming a slurry of a first solid metal compound comprising nickel, a second solid metal compound comprising tungsten in a protic liquid and optionally less than 10 mole %, relative to the Group VI metal, of a third solid metal compound comprising niobium in water, (ii) reacting the first and second solid metal compounds at a temperature above 100°C in a sealed vessel under autogenic pressure for a period of time sufficient to form the nickel tungsten metal oxidic particles whereby the first and second solid metal compounds remain at least partly in the solid state during the entire reaction to form the nickel tungsten metal oxidic particles, (iii) separating the nickel tungsten metal oxidic particles from the slurry, and (iv) heat treating the nickel tungsten metal oxidic particles at a temperature between 250 and 450°C but below a temperature where transition to a crystalline orthorhombic NiWO 4 structure occurs.
  2. 4
    The process according to any of the preceding claims wherein the bulk catalyst has at least in part a hexagonal structure characterized by an X-ray diffraction pattern having a single reflection between about 60° 2θ and about 65° 2θ and main reflections between about 32° 2θ and about 36° 2θ, as well as between about 50° 2θ and 55° 2θ.
  3. 6
    The process according to any of the preceding claims wherein the catalyst comprises about 0 to about 40 wt.% (wt.% relative to the total weight of the bulk catalyst) of one or more materials selected from the group of binder materials, conventional hydroprocessing catalysts or cracking compounds.