Claims
- 1. A method for manufacturing a catalyst using, as raw material, a hydrorefining catalyst which has been used in the hydrorefining of heavy oils and which contains vanadium and nickel, comprising the steps of:
obtaining a catalyst powder by pulverizing the used hydrorefining catalyst; fractionating the catalyst power based on the content of at least one of vanadium and nickel; and forming the obtained catalyst powder.
- 2. The method for manufacturing the catalyst according to claim 1, wherein the fractionation is performed by sieving or magnetic separation.
- 3. The method for manufacturing the catalyst according to claim 1, further comprising a step of drying and calcining the formed catalyst powder.
- 4. The method for manufacturing the catalyst according to claim 1, further comprising a step of preparing the formed or unformed catalyst powder such that the manufactured catalyst has a pore volume of at least 0.2 cm3/g for pores with a diameter of 50 to 2000 nm, and a pore volume of no more than 0.1 cm3/g for pores with a diameter of 2000 nm or more.
- 5. A metal recovery method, comprising:
hydrodemetalizing a heavy oil containing vanadium and nickel using a hydrorefining catalyst that has been manufactured according to claim 1; and recovering at least one of the vanadium and nickel from the catalyst used in the hydrodemetalization.
- 6. A metal recovery method in which metal is recovered from a used hydrorefining catalyst that has been used in the hydrorefining of a heavy oil, comprising the steps of:
obtaining a catalyst powder by pulverizing the used hydrorefining catalyst; fractionating the obtained catalyst powder based on the amount of metal contained in the catalyst powder; and recovering a metal component from the fractionated catalyst powder.
- 7. The metal recovery method according to claim 6, wherein the used hydrorefining catalyst contains vanadium and nickel, and the pulverized catalyst powder is fractionated based on its content of at least one of vanadium and nickel.
- 8. The metal recovery method according to claim 7, wherein the fractionation is performed by sieving or magnetic separation.
- 9. A hydrorefining catalyst, comprising:
a carrier formed from an inorganic porous oxide; a hydrogenation active metal component supported on the carrier; and vanadium distributed uniformly throughout the catalyst, wherein the pore volume is at least 0.2 cm3/g for pores with a diameter of 50 to 2000 nm, and the pore volume is no more than 0.1 cm3/g for pores with a diameter over 2000 nm.
- 10. The hydrorefining catalyst according to claim 9, which is manufactured from a catalyst that has been used in the hydrorefining of a heavy oil.
- 11. The hydrorefining catalyst according to claim 9, wherein the vanadium content is 0.2 to 10 wt % with respect to the catalyst weight.
- 12. The hydrorefining catalyst according to claim 9, wherein a ratio of vanadium content in an outer portion on a cross section of the catalyst to that in an inner portion on the cross section of the catalyst is 0.8 to 1.2.
- 13. The hydrorefining catalyst according to claim 9, wherein the hydrogenation active metal includes at least one of molybdenum and tungsten, and at least one of nickel and cobalt.
Priority Claims (2)
Number |
Date |
Country |
Kind |
2000-171427 |
Jun 2000 |
JP |
|
2000-218139 |
Jul 2000 |
JP |
|
CROSS-REFERENCE
[0001] This application is a Continuation Application of International Application No. PCT/JP01/04802 which was filed on Jun. 7, 2001 claiming the conventional priority of Japanese patent Applications No. 2000-171427 filed on Jun. 8, 2000 and No. 2000-218139 filed on Jul. 19, 2000.
Continuations (1)
|
Number |
Date |
Country |
Parent |
PCT/JP01/04802 |
Jun 2001 |
US |
Child |
10310903 |
Dec 2002 |
US |