IP Library Granted Patent US 7,854,908
Granted Patent B2
US 7,854,908 · App. 12/195,042 · Granted Dec 21, 2010

Method and apparatus for the recovery of molybdenum from spent catalysts

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Quick Facts
Patent No.
US 7,854,908
App. No.
12/195,042
Granted
Dec 21, 2010
Kind
B2
Abstract

This invention relates to an apparatus and process that utilizes high-temperature oxidation and sublimation techniques for the recovery of molybdenum from spent catalysts or other feedstocks that contain molybdenum. A preferred embodiment uses a counter-rotating vortex reactor and a cyclonic entrained-flow reactor to rapidly heat and oxidize the spent catalyst feedstock, such as carbon, sulfur, and molybdenum compounds, at temperatures in the range of about 2100° F. to 2900° F., resulting in a gas-solid stream containing molybdenum trioxide vapor. A high-temperature cyclone separator is utilized to separate the residue from this stream before this stream is rapidly quenched to a temperature sufficient to effect the condensation of solid molybdenum trioxide without condensing arsenic or phosphoric oxides. The condensed molybdenum trioxide material is separated from this stream by passing through a high-temperature filtration system. The remaining gaseous stream is then ducted to suitable unit operations for possible further material reclamation and entailed pollution control prior to its final discharge to the atmosphere.

Claims (45)

1. A method for the recovery of molybdenum from feedstock containing molybdenum comprising:

heating and oxidizing the feedstock in a counter-rotating-vortex, entrained-flow reactor at a sufficiently high temperature within an oxidizing atmosphere to effect the oxidation of molybdenum species and sublimation of molybdenum trioxide;

separating non-volatile materials from a vapor species in the effluent stream from the counter-rotating-vortex entrained-flow reactor with a high-temperature cyclone separator, yielding two separate streams with the first stream being non-volatile materials separated by the cyclone separator from a second stream which is a gaseous stream passing through the cyclone separator,

said first stream yielding a first product comprised of non-volatile materials;

quenching said second stream to yield a second product which is condensed molybdenum trioxide powder; and

separating the second product from the gaseous stream.

2. The method of claim 1 including

employing spent catalyst materials as said feedstock.

3. The method of claim 1 including

effecting said quenching at a temperature of about 1000° F. to 1350° F.

4. The method of claim 1 including

effecting said separation of condensed molybdenum trioxide from said gaseous stream in a high-temperature filter.

5. The method of claim 2 including

employing as said spent catalyst material containing, in addition to said molybdenum, at least one compound containing a material selected from the group consisting of alumina, silica, vanadium, nickel, cobalt, tungsten, sulfur, carbon, phosphorus, and arsenic.

6. The method of claim 2 where the spent catalyst materials influent to the entrained-flow reactor are comminuted to a particle size distribution suitable for the rapid heating and oxidation of the spent catalyst materials in the entrained-flow reactor.

7. The method of claim 6 including

employing, as said comminuted spent catalyst materials, materials having an average particle size of about 200 to 400 microns.

8. The method of claim 3 including

effecting said heating and oxidizing at a temperature of about 2500° F. to 2900° F.

9. The method of claim 8 including

employing a gas residence time in said counter-rotating-vortex entrained-flow reactor of at least 100 milliseconds.

10. The method of claim 1 including

employing, as said feedstock, at least one material selected from the group consisting of molybdenum-containing ores and molybdenum-containing ore concentrates.

11. The method of claim 10 including

said molybdenum-containing ores/ore concentrates are selected from the group consisting of molybdenite, scheelite, powellite, tungstenite, and wolframite.

12. The method of claim 1 including

employing, the oxygen-enriched air introduced into said entrained-flow reactor in effecting said oxidizing of the feedstock.

13. The method of claim 1 including

employing, the high-purity oxygen introduced into said entrained-flow reactor, in effecting said oxidizing of the feedstock.

14. The method of claim 1 including

employing, as said feedstock materials containing molybdenum and tungsten.

15. The method of claim 1 including

employing air introduced into said entrained flow reactor in effecting said oxidizing of the feedstock.

16. The method of claim 1 including

effecting said heating and oxidizing step at a temperature of about 2100° F. to 2900° F.

17. The method of claim 1 including

introducing materials exiting said counter-rotating-vortex entrained flow reactor into a substantially horizontal cyclone entrained flow reactor to provide further oxidation and sublimation of the molybdenum oxide.

18. The method of claim 1 including

said quenching of said second stream is effected at temperatures sufficiently low to effect condensation of the molybdenum oxide vapor fraction of said gaseous stream, but at temperatures sufficiently high to minimize the condensation of other vapor phase species exiting the cyclone separator.

19. The method of claim 18 including

said separating of said second product from the gaseous stream is accomplished by employing a high-temperature filter assembly which permits passage of the yet gaseous oxide vapor fraction of said gaseous stream through the filter assembly.

20. The method of claim 1 including

said first product is composed of at least one material selected from the group consisting of an alumina-rich material and a silica-rich material.

21. The method of claim 1 including

employing the comminution of said spent catalyst materials influent to the said counter-rotating-vortex, entrained-flow reactor where the comminuted particle size distribution is sufficiently small to promote the rapid heating and oxidation of the said spent catalyst materials; and said comminuted particle size distribution is sufficiently large to efficiently collect said first product in said high-temperature cyclone separator.

Assignments (1)
SECURITY AGREEMENT Recorded Sep 10, 2010
From: HNAT, JAMES G; SCHAFFER, MARK A
To: AMERISTATE BANK
Reel/Frame 024967/0297 →
Continuity (1)
Related Publication 20100047141A1 · Feb 25, 2010