Functionalization of Lightly Branched Olefin Oligomers
US-2024239729-A1 · Jul 18, 2024 · US
US10577291B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10577291-B2 |
| Application number | US-201314073058-A |
| Country | US |
| Kind code | B2 |
| Filing date | Nov 6, 2013 |
| Priority date | Nov 12, 2012 |
| Publication date | Mar 3, 2020 |
| Grant date | Mar 3, 2020 |
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A method for producing jet-range hydrocarbons includes passing a stream comprising renewable C4 olefins to an oligomerization reactor containing a zeolite catalyst to produce an oligomerized effluent, separating the oligomerized effluent to produce a jet range hydrocarbon stream and a recycle stream comprising C8 olefins, and passing at least a portion of the recycle stream to the oligomerization reactor. A first at least about 10% of the jet-range hydrocarbon stream hydrocarbons boil between n-octane and n-undecane and wherein a second at least about 10% of the jet-range hydrocarbon stream hydrocarbons boil between n-dodecane and n-pentadecane.
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What is claimed is: 1. A method for producing jet-range hydrocarbons comprising: dimerizing a stream comprising C 4 olefins to C 4 olefin oligomers over SPA or acidic ion exchange resin catalysts in a dimerization zone to provide a dimerized effluent, wherein conversion of C 4 olefins in the dimerizing step is greater than or equal to about 90% and wherein the dimerization zone is operated to favor C 8 compounds; oligomerizing the entire dimerized effluent over a catalyst consisting of a MTT zeolite on a binder in an oligomerization reactor operated at a temperature of 171 to 197° C. and a pressure of 710 to 890 psig to produce an oligomerized effluent; separating the oligomerized effluent to produce a jet range hydrocarbon stream and a recycle stream comprising C 8 olefins; and passing at least a portion of the recycle stream to the oligomerization reactor, wherein a first at least about 10 wt % of the jet-range hydrocarbon stream hydrocarbons have boiling points between the boiling point of n-octane and the boiling point of n-undecane and wherein a second at least about 10 wt % of the jet-range hydrocarbon stream hydrocarbons have boiling points between the boiling point of n-dodecane and the boiling point of n-pentadecane. 2. The method of claim 1 , wherein the C 4 olefins are derived from dehydrating a renewable alcohol with a 14 C/ 12 C ratio indicative of atmospheric carbon. 3. The method of claim 1 , wherein the dimerization zone operates at a temperature from about 93° C. to about 120° C. and a pressure of about 1000 psig to produce C 4 olefin oligomers. 4. The method of claim 1 , wherein the binder comprises alumina powder and wherein in the combined MTT zeolite and alumina powder, the MTT zeolite is present in an amount of from about 5 to about 85 wt % MTT with the balance alumina powder. 5. The method of claim 4 , wherein in the combined MTT zeolite and alumina powder the MTT zeolite is present in an amount of from about 20 to about 82 wt % MTT with the balance being the alumina powder. 6. The method of claim 1 , further comprising hydrogenating the jet range hydrocarbon stream in a hydrogenation reactor. 7. A method for producing jet-range hydrocarbons comprising: dimerizing a stream comprising C 4 olefins to C 4 olefin oligomers over SPA or acidic ion exchange resin catalysts in a dimerization zone to provide a dimerized effluent, wherein conversion of C 4 olefins in the dimerizing step is greater than or equal to about 90% and wherein the dimerization zone is operated to favor C 8 compounds; oligomerizing the dimerized effluent over a catalyst consisting of a MTT zeolite on a binder in an oligomerization reactor operated at a temperature of 171 to 197° C., a liquid hourly space velocity of about 0.75 to 1.50 hr −1 and a pressure of 710 to 890 psig to produce an oligomerized effluent, wherein a first at least about 10 wt.-% of the oligomerized effluent hydrocarbons have boiling points between the boiling point of n-octane and the boiling point of n-undecane and wherein a second at least about 10 wt.-% of the oligomerized effluent hydrocarbons have boiling points between the boiling point of n-dodecane and the boiling point of n-pentadecane; separating the oligomerized effluent by distillation to produce a jet range hydrocarbon stream and a recycle stream comprising C 8 olefins; and passing at least a portion of the recycle stream to the dimerization zone, wherein the jet-range hydrocarbons comprise between 14 and 16 wt % C 16 hydrocarbons. 8. The method of claim 7 , wherein the C 4 olefins are derived from dehydrating a renewable alcohol with a 14 C/ 12 C ratio indicative of atmospheric carbon. 9. The method of claim 7 , wherein the binder comprises alumina powder and wherein in the combined MTT zeolite and alumina powder, the MTT zeolite is present in an amount of from about 5 to about 85 wt % MTT with the balance alumina powder. 10. The method of claim 7 , wherein the binder comprises alumina powder and wherein in the combined MTT zeolite and alumina powder, the MTT zeolite is present in an amount of from about 20 to about 82 wt % MTT with the balance alumina powder. 11. The method of claim 7 , further comprising hydrogenating the jet range hydrocarbon stream in a hydrogenation reactor. 12. A method for producing jet-range hydrocarbons comprising: dimerizing C 4 olefins over SPA or acidic ion exchange resin catalysts in a dimerization zone to produce dimers of the C 4 olefins, wherein conversion of the C 4 olefins in the dimerizing step is greater than or equal to about 90% and wherein the dimerization zone is operated to favor C 8 compounds; oligomerizing a stream comprising the dimers of the C 4 olefins over a catalyst consisting of a MTT zeolite on a binder in an oligomerization reactor to produce an oligomerized effluent, wherein a first at least about 10 wt.-% of the oligomerized effluent hydrocarbons have boiling points between the boiling point of n-octane and the boiling point of n-undecane and wherein a second at least about 10 wt.-% of the oligomerized effluent hydrocarbons having boiling points between the boiling point of n-dodecane and the boiling point of n-pentadecane; separating the oligomerized effluent by distillation to produce a jet range hydrocarbon stream and a recycle stream comprising C 8 olefins; and passing at least a portion of the recycle stream to the dimerization zone.
Higher olefins · CPC title
of the pentasil type, e.g. types ZSM-5, ZSM-8 or ZSM-11, as exemplified by patent documents US3702886, GB1334243 and US3709979, respectively · CPC title
Silicates, aluminosilicates or borosilicates of titanium, zirconium or hafnium · CPC title
with crystalline alumino-silicates {or with catalysts comprising} molecular sieves · CPC title
MWW-type, e.g. MCM-22, ERB-1, ITQ-1, PSH-3 or SSZ-25 · CPC title
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