IP Library › Granted Patent US 11,352,567
Granted Patent B2
US 11,352,567 · App. 16/942,948 · Granted Jun 7, 2022

Processes for converting organic material-containing feeds via pyrolysis

Inventors: Mohsen N. Harandi (New Hope, PA); Paul F. Keusenkothen (Houston, TX)
Assignee: ExxonMobil Chemical Patents Inc.
C10G1/10C10G1/002C10G2300/1003C10G2400/06C10G2400/20C10G2400/22
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Quick Facts
Patent No.
US 11,352,567
App. No.
16/942,948
Granted
Jun 7, 2022
Kind
B2
Abstract

Processes for converting an organic-material-containing feed comprising contacting the feed with a plurality of fluidized hot particles in a pyrolysis zone to product a first pyrolysis effluent, optionally contacting the first pyrolysis effluent with a quenching stream to impart additional pyrolysis of organic materials contained in the quenching stream, separating at least a portion of the particles and feeding them to a combustion zone where the particles are heated to an elevated temperature, optionally contacting the combustion zone effluent with a second organic-material-containing stream to produce, e.g., syngas, and feeding at least a portion of the heated particles to the pyrolysis zone.

Claims (65)

1. A process for converting a hydrocarbon-containing feed by pyrolysis, comprising:

(I) feeding the hydrocarbon-containing feed into a pyrolysis reaction zone;

(II) feeding a plurality of fluidized particles having a first temperature into the pyrolysis reaction zone, wherein the first temperature is sufficiently high to enable pyrolysis of at least a portion of the hydrocarbon-containing feed on contacting the particles;

(III) contacting at least a portion of the hydrocarbon-containing feed with the particles in the pyrolysis reaction zone to effect pyrolysis of at least a portion of the hydrocarbon-containing feed to produce a first pyrolysis effluent comprising olefins, hydrogen, and the particles;

(IV) contacting at least a portion of the particles in the first pyrolysis effluent downstream of the pyrolysis reaction zone with a first quenching stream comprising an organic material to effect the pyrolysis of at least a portion of the organic material in the first quenching stream and obtain a second pyrolysis effluent comprising olefins, hydrogen, and the particles;

(V) separating the second pyrolysis effluent to obtain a first hydrocarbon stream rich in hydrocarbons and a first particle stream rich in the particles;

(IX) quenching the first hydrocarbon stream;

(X) separating the quenched first hydrocarbon stream to obtain a second hydrocarbon stream rich in hydrocarbons and a third particle stream rich in the particles;

(XI) feeding at least a portion of the particles in the third particle stream to the combustion zone;

(XII) obtaining from the second hydrocarbon stream a gas oil stream and a bottoms heavy stream;

(XIII) quenching the first hydrocarbon stream at least partly using at least a portion of the gas oil stream; and

(XIV) feeding at least a portion of bottoms heavy stream to the combustion zone as a fuel for oxidation.

2. The process of claim 1 , wherein the organic material contained in the first quenching stream comprises (i) a plastic waste, (ii) a hydrocarbon present in an industrial waste stream, (iii) a resid-containing crude fraction, or (iv) any mixture of two or more of (i), (ii), and (iii).

3. The process of claim 1 , further comprising:

(VI) heating at least a portion of the particles in the first particle stream in a combustion zone; and

(VII) feeding at least a portion of the heated particles to the pyrolysis reaction zone as at least a portion of the plurality of fluidized particles fed into the pyrolysis reaction zone in step (II).

4. The process of claim 1 , wherein step (IV) is carried out by contacting the first quenching stream with the first pyrolysis effluent before a separation of a portion of the particles from the first pyrolysis effluent stream.

5. The process of claim 4 , wherein the first pyrolysis effluent has a temperature in a range from 600 to 900° C. immediately before contacting the first quenching stream in step (IV).

6. The process of claim 1 , wherein step (IV) is carried out by contacting the first quenching stream with a stream rich in the particles separated from the first pyrolysis stream.

7. The process of claim 1 , wherein the first quenching stream has a temperature in a range from 200 to 400° C. immediately before contacting the first pyrolysis effluent.

8. The process of claim 3 , wherein step (VI) comprises:

(VIa) feeding at least a portion of the first particle stream into the combustion zone;

(VIb) feeding an oxidizing gas stream into the combustion zone;

(VIc) optionally feeding an fuel into the combustion zone;

(VId) reacting the oxidizing gas with the particles in the first particle stream and/or the optional fuel to provide heat energy; and

(VIe) heating the particles in the combustion zone.

9. The process of claim 3 , further comprising between steps (VI) and (VII):

(VIII) contacting at least a portion of the heated particles with a second organic-material-containing stream to produce a gas/particle mixture stream comprising molecular hydrogen and/or CO.

10. The process of claim 9 , wherein the contacting in step (VIII) is carried out at a temperature of the heated particles in a range from 1000 to 1400° C., and a residence time in a range from 100 to 2000 ms, such that the gas/particle mixture stream has a temperature in a range from 550 to 900° C.

11. The process of claim 9 , wherein the first quenching stream and/or the second organic-material-containing stream, which are the same or different, further independently comprise a carrier comprising one or more of steam, methane, ethane, propane, a naphtha, a gas oil, a vacuum gas oil, and mixtures thereof.

12. The process of claim 9 , wherein the second organic-material-containing stream comprises water.

13. The process of claim 1 , wherein in the pyrolysis zone, the first temperature is in a range from 800 to 1400° C.

14. The process of claim 1 , wherein at least one of the following is met:

the weight ratio of the particles to the hydrocarbon-containing feed is in a range from 10:1 to 50:1;

the contacting in the pyrolysis reaction zone in step (III) has a residence time from 10 to 2,000 milliseconds; and

the contacting in the pyrolysis reaction zone in step (III) is performed under an absolute pressure from 200 kPa to 700 kPa.

15. The process of claim 3 , further comprising, after step (VI) and before step (VII), the following steps:

(VI-1) separating the combustion zone effluent and/or the gas/particle mixture stream into a second particle stream rich in the heated particles and a gas stream;

(VI-2) separating the particles, if any, contained in the gas stream using a cyclone; and

(VI-3) feeding at least a portion of the particles separated in step (VI-2) to the combustion zone.

16. The process of claim 9 , wherein the gas/particle mixture stream comprises molecular hydrogen and CO.

17. The process of claim 1 , further comprising:

(XV) recovering at least an olefin product from at least a portion of the first hydrocarbon stream and/or the second hydrocarbon stream in a first product recovery system.

18. The process claim 1 , wherein the hydrocarbon-containing feed is provided by:

(XV) feeding a gas-liquid mixture of a resid-containing feed into a flashing drum;

(XVI) obtaining from the flashing drum a flashing drum vapor effluent and a flashing drum liquid effluent; and

(XVII) providing at least a portion of the flashing drum liquid effluent as at least a portion of the hydrocarbon-containing feed.

19. The process of claim 18 , further comprising:

(XVIII) feeding at least a portion of the flashing drum vapor effluent into a steam cracker operated under steam cracking conditions;

(XIX) obtaining a steam cracker mixture effluent from the steam cracker; and

(XX) recovering at least an olefin product from the steam cracker effluent.

20. A process for converting a hydrocarbon-containing feed by pyrolysis, comprising:

(Ia) obtaining at least a portion of the hydrocarbon-containing feed by:

(Ia-1) feeding a gas-liquid mixture of a resid-containing feed into a flashing drum;

(Ia-2) obtaining from the flashing drum a flashing drum vapor effluent and a flashing drum liquid effluent; and

(Ia-3) providing at least a portion of the flashing drum liquid effluent as at least a portion of the hydrocarbon-containing feed;

(I) feeding the hydrocarbon-containing feed into a pyrolysis reaction zone;

(II) feeding a plurality of fluidized particles having a first temperature into the pyrolysis reaction zone, wherein the first temperature is sufficiently high to enable pyrolysis of at least a portion of the hydrocarbon-containing feed on contacting the particles;

(III) contacting at least a portion of the hydrocarbon-containing feed with the particles in the pyrolysis reaction zone to effect pyrolysis of at least a portion of the hydrocarbon-containing feed to produce a first pyrolysis effluent comprising olefins, hydrogen, and the particles;

(IV) contacting at least a portion of the particles in the first pyrolysis effluent downstream of the pyrolysis reaction zone with a first quenching stream comprising an organic material to effect the pyrolysis of at least a portion of the organic material in the first quenching stream and obtain a second pyrolysis effluent comprising olefins, hydrogen, and the particles;

(V) separating the second pyrolysis effluent to obtain a first hydrocarbon stream rich in hydrocarbons and a first particle stream rich in the particles;

(XVIII) feeding at least a portion of the flashing drum vapor effluent into a steam cracker operated under steam cracking conditions;

(XIX) obtaining a steam cracker mixture effluent from the steam cracker; and

(XX) recovering at least an olefin product from the steam cracker effluent, optionally in the first product recovery system.

21. The process of claim 20 , wherein the first quenching stream comprises (i) a plastic; (ii) an organic material in an industrial waste stream; (iii) a resid-containing crude fraction; or (iv) a mixture of any of two or more of (i), (ii), and (iii).

Continuity (3)
Provisional Application 62938392 · Nov 21, 2019
Provisional Application 62882218 · Aug 2, 2019
Related Publication 20210032545A1 · Feb 4, 2021
Cited By (1)
US 12,674,106