IP Library Granted Patent US 10,859,313
Granted Patent B2
US 10,859,313 · App. 15/988,601 · Granted Dec 8, 2020

Process for separating hydrogen from an olefin hydrocarbon effluent vapor stream

Inventors: James Zhao (Houston, TX); Shukui Zhao (Katy, TX)
Assignee: EnFlex, Inc.
F25J3/0252F25J3/0219F25J3/062F25J3/0645F25J3/0655F25J2200/02F25J2205/04F25J2210/04F25J2210/12F25J2210/62F25J2215/02F25J2215/04F25J2215/10F25J2215/64F25J2230/08F25J2230/20F25J2230/30F25J2230/32F25J2230/60F25J2235/60F25J2240/04F25J2240/40F25J2245/02F25J2270/06F25J2270/904
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Quick Facts
Patent No.
US 10,859,313
App. No.
15/988,601
Granted
Dec 8, 2020
Kind
B2
Abstract

One or more specific embodiments disclosed herein includes a method for separating hydrogen from an olefin hydrocarbon rich compressed effluent vapor stream, employing a single heat exchanger, multiple gas-liquid separators, multiple expander/compressor sets, and a rectifier attached to a liquid product drum.

Claims (30)

1. A process for the separation of hydrogen from an olefin hydrocarbon rich compressed effluent vapor stream from a dehydrogenation unit, which process comprises:

a. introducing a compressed effluent vapor stream into a processing unit;

b. cooling the compressed effluent vapor stream in a heat exchanger;

c. separating hydrogen from olefin and heavy paraffinic components in the cooled compressed effluent vapor stream in a first separator to provide a first vapor stream and a first liquid stream;

d. cooling the first vapor stream in the heat exchanger;

e. separating hydrogen from olefin and heavy paraffinic components in the cooled first vapor stream in a second separator to provide a second vapor stream and a second liquid stream;

f. warming the second vapor stream in the heat exchanger;

g. isentropically expanding the warmed second vapor stream, wherein the pressure and temperature of the warmed second vapor stream are lowered;

h. dividing the isentropically expanded second vapor stream into a first split stream and a second split stream;

i. warming the first split stream in the heat exchanger;

j. compressing the warmed first split stream;

k. cooling the compressed first split stream in a first discharge cooler;

l. withdrawing a gas product from the processing unit;

m. cooling a liquid paraffinic stream in the heat exchanger;

n. combining the cooled liquid paraffinic stream with the second split stream to provide a combined feed;

o. vaporizing the combined feed in the heat exchanger;

p. withdrawing the vaporized combined feed from the processing unit;

q. lowering the pressure of the first liquid stream in a control valve, wherein the temperature of the first liquid stream is reduced;

r. partially vaporizing the cooled first liquid stream in the heat exchanger;

s. flashing the partially vaporized first liquid stream in a liquid product drum to provide a hydrogen-rich gas, wherein the hydrogen-rich gas travels to a rectifier connected to the liquid product drum;

t. combining the hydrogen-rich gas and the second liquid stream in the rectifier, wherein the hydrogen-rich gas is further purified;

u. warming the hydrogen-rich gas from the rectifier in the heat exchanger to provide a flashed vapor stream;

v. pumping a third liquid stream from the liquid product drum to the heat exchanger, wherein the third product stream is warmed; and

w. providing a liquid product from the processing unit.

2. The process of claim 1 , wherein the step of isentropically expanding the warmed second vapor stream is performed by two expanders in series.

3. The process of claim 1 , wherein the step of compressing the warmed first split stream is performed by two compressors in series.

4. The process of claim 1 , wherein the heat exchanger comprises a warm section and a cold section.

5. The process of claim 4 , wherein the warm section and the cold section each comprise one or more brazed aluminum heat exchanger cores.

6. The process of claim 4 , which further comprises combining one or more liquid paraffinic side streams with the combined feed prior to the step of combining the cooled liquid paraffinic stream with the second split stream.

7. The process of claim 6 , wherein the one or more liquid paraffinic side streams comprises two liquid paraffinic side streams.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 7, 2020
From: ZHAO, JAMES; ZHAO, SHUKUI
To: ENFLEX, INC.
Reel/Frame 054566/0377 →
Continuity (2)
Continuation In Part 15600758 · May 21, 2017
Related Publication 20190137172A1 · May 9, 2019
Cited By (3)
US 12,215,923 US 12,455,113 US 12,516,878