IP Library › Granted Patent US 8,198,498
Granted Patent B2
US 8,198,498 · App. 12/859,295 · Granted Jun 12, 2012

Carbon nanotube catalyst for olefin production

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Quick Facts
Patent No.
US 8,198,498
App. No.
12/859,295
Granted
Jun 12, 2012
Kind
B2
Abstract

A method for producing olefins using a carbon nanotube catalyst is disclosed. Initially, a hydrocarbon feedstock is received. The hydrocarbon feedstock, the carbon nanotube catalyst, and steam are mixed in a thermal cracking reactor. The mixture is heated in the thermal cracking reactor to a particular temperature. The olefins are then separated from the mixture. The carbon nanotube catalyst can include carbon nanotubes coated with M1 x O y and modified with M2 m O n . M1 can be either the element silicon or tungsten, x can be an integer that represents the oxidation number of M1, and y can an integer that represents the number of oxygen atoms required by the oxidation number of M1. M2 can be a metallic element, m can be an integer that represents the oxidation number of M2, and n can be an integer that represents the number of oxygen atoms required by the oxidation number of M2.

Claims (34)

1. A method for producing olefins using a carbon nanotube catalyst, the method comprising:

receiving hydrocarbon feedstock;

mixing the hydrocarbon feedstock, a carbon nanotube catalyst, and steam in a thermal cracking reactor;

heating the mixture of the hydrocarbon feedstock, the carbon nanotube catalyst, and the steam in the thermal cracking reactor to a particular temperature; and

separating olefins from the mixture of the hydrocarbon feedstock, the carbon nanotube catalyst, and the steam, wherein

the carbon nanotube catalyst comprises carbon nanotubes coated with M1 x O y and modified with M2 m O n ,

M1 is either the element silicon or tungsten,

x is an integer that represents the oxidation number of M1,

y is an integer that represents the number of oxygen atoms required by the oxidation number of M1,

M2 is a metallic element,

m is an integer that represents the oxidation number of M2, and

n is an integer that represents the number of oxygen atoms required by the oxidation number of M2.

2. The method of claim 1 , wherein the metallic element M2 is an element selected from the group consisting of calcium, strontium, magnesium, barium, iron, nickel, cobalt, manganese, molybdenum, copper, chromium, gallium, bismuth, aluminum, lanthanum, cerium, and tin.

3. The method of claim 1 , wherein M1 x O y is SiO 2 .

4. The method of claim 3 , wherein M2 m O n is CeO 2 .

5. The method of claim 4 , wherein the carbon nanotube catalyst comprises 10%, by weight, CeO 2 and 10%, by weight, SiO 2 .

6. The method of claim 1 , wherein the carbon nanotube catalyst comprises 65% to 95.5%, by weight, carbon nanotubes, 3% to 20%, by weight, M1 x O y , and 1.5% to 15%, by weight, M2 m O n .

7. The method of claim 1 , wherein receiving the hydrocarbon feedstock comprises receiving a petroleum hydrocarbon feedstock.

8. The method of claim 1 , wherein receiving the hydrocarbon feedstock comprises receiving a full-range naphtha consisting of 44.28% n-paraffin, 39.31% iso-paraffin, 12.68% naphthene, and 3.73% aromatics.

9. The method of claim 1 , further comprising receiving water.

10. The method of claim 9 , further comprising:

vaporizing the hydrocarbon feedstock in a first vaporizer to produce vaporized hydrocarbon feedstock; and

vaporizing the water in a second vaporizer to produce steam; and

mixing the vaporized hydrocarbon feedstock and the steam.

11. The method of claim 1 , wherein heating the mixture of the hydrocarbon feedstock, the carbon nanotube catalyst, and the steam in the thermal cracking reactor to the particular temperature comprises heating the mixture of the hydrocarbon feedstock, the carbon nanotube catalyst, and the steam in the thermal cracking reactor to a temperature between 600 and 680° C.

12. The method of claim 1 , wherein heating the mixture of the hydrocarbon feedstock, the carbon nanotube catalyst, and the steam in the thermal cracking reactor to the particular temperature comprises heating the mixture of the hydrocarbon feedstock, the carbon nanotube catalyst, and the steam in the thermal cracking reactor to the particular temperature for between 0.5 and 100 seconds.

13. The method of claim 1 , wherein heating the mixture of the hydrocarbon feedstock, the carbon nanotube catalyst, and the steam in the thermal cracking reactor to the particular temperature comprises heating the mixture of the hydrocarbon feedstock, the carbon nanotube catalyst, and the steam in a fixed-bed reactor to the particular temperature.

14. The method of claim 13 , wherein the space velocity of the fixed-bed reactor is between 0.5 and 40 hr −1 .

15. The method of claim 1 , wherein heating the mixture of the hydrocarbon feedstock, the carbon nanotube catalyst, and the steam in the thermal cracking reactor to the particular temperature comprises heating the mixture of the hydrocarbon feedstock, the carbon nanotube catalyst, and the steam in a fluidized-bed reactor to the particular temperature.

16. The method of claim 1 , wherein the range of the weight ratio of the hydrocarbon feedstock to the carbon nanotube catalyst is between 5:1 and 20:1 in the thermal cracking reactor.

17. The method of claim 1 , wherein the range of the weight ratio of the hydrocarbon feedstock to the steam is between 0.1:1 and 2:1 in the thermal cracking reactor.

18. The method of claim 1 , wherein separating the olefins from the mixture of the hydrocarbon feedstock, the carbon nanotube catalyst, and the steam comprises separating ethylene and/or propylene from the mixture of the hydrocarbon feedstock, the carbon nanotube catalyst, and the steam.

19. The method of claim 1 , wherein the carbon nanotubes of the carbon nanotube catalyst have a length-to-width aspect ratio of equal to or greater than ten.

20. The method of claim 1 , wherein the total yield of olefins is at least 44%.

Continuity (1)
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