IP Library Granted Patent US 10,179,883
Granted Patent B2
US 10,179,883 · App. 15/887,588 · Granted Jan 15, 2019

Integrated PTSA/membrane method and system for H

Inventor: Michael J. Mitariten (Pittstown, NJ)
Assignee: Air Liquide Advanced Technologies U.S. LLC
C10L3/104B01D53/047B01D53/0462B01D53/229C10L3/103C12M21/04B01D2256/245B01D2257/104B01D2257/304B01D2257/504B01D2257/708B01D2257/80B01D2258/05B01D2259/40001B01D2259/402B01D2259/403B01D2259/404B01D2259/40013C10G2300/1011C10G2300/207C10L2200/0469C10L2290/542C10L2290/548
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Quick Facts
Patent No.
US 10,179,883
App. No.
15/887,588
Filed
Feb 2, 2018
Granted
Jan 15, 2019
Kind
B2
Art Unit
1772
USPC
585/818
Abstract

Biogas containing H 2 S and CO 2 is upgraded by removing H 2 S using PTSA and CO 2 using two stages of gas separation membranes. The first stage permeate may optionally be used a regeneration gas stream. The second stage permeate may optionally be used a cool down gas stream. The PTSA unit includes two or more adsorbent beds each selective for water, VOCs, and H 2 S over CO 2 and for H 2 S over methane.

Claims (34)

1. A biogas upgrading method based upon PTSA and gas separation membranes, comprising the steps of:

compressing a stream of biogas with a main compressor;

feeding, to a PTSA unit, a PTSA feed gas stream withdrawn from an outlet of the main compressor;

removing H 2 S from the PTSA feed gas stream with the PTSA unit, the PTSA unit comprising two or more adsorbent beds each of which is selective for water, VOCs, and H 2 S over CO 2 and for H 2 S over methane, each of said beds being subjected to a PTSA cycle comprising the phases of: adsorption of water, VOCs, and H 2 S from the PTSA feed gas stream; depressurization; thermal regeneration using a regeneration gas stream in which adsorbed water, VOCs, and H 2 S are desorbed; cool down using a cool down gas stream; and repressurization;

withdrawing an H 2 S-depleted PTSA product stream from the PTSA unit;

feeding the PTSA product stream to a first gas separation membrane stage comprising one or more gas separation membranes selective for CO 2 and O 2 over methane;

withdrawing, from the first gas separation membrane stage, a first stage permeate stream enriched in CO 2 and O 2 and deficient in methane compared to the PTSA product stream and a first stage retentate stream deficient in CO 2 and O 2 and enriched in methane compared to the PTSA product stream;

feeding the first stage retentate stream to a second gas separation membrane stage comprising one or more gas separation membranes selective for CO 2 and O 2 over methane; and

withdrawing, from the second gas separation membrane stage, a second stage permeate stream enriched in CO 2 and deficient in methane compared to the first stage retentate stream and a second stage retentate stream deficient in CO 2 and enriched in methane compared to the first stage retentate stream, wherein the second stage retentate stream is a product natural gas stream, wherein the repressurization of the beds is performed with one or more of the PTSA feed gas stream, the PTSA product gas stream, the first stage retentate stream, and the second stage retentate stream.

2. The method of claim 1 , wherein the compressed feed gas is cooled prior to introduction to the PTSA.

3. The method of claim 1 , wherein some or all of the second stage permeate stream is the cool down gas stream and the cool down gas stream is received from the PTSA unit by a suction inlet of the main compressor where it is combined with the compressed biogas stream.

4. The method of claim 1 , wherein the second stage permeate stream is received at and compressed by a secondary compressor and the compressed second stage permeate stream is fed to the first gas separation stage along with the PTSA product stream.

5. The method of claim 1 , wherein a waste gas comprised of the regeneration gas stream and the H 2 S, water, and VOCs desorbed from one or more adsorbent beds of the PTSA unit is thermally oxidized at a thermal oxidizer.

6. The method of claim 1 , wherein the regeneration gas stream is comprised of some or all of the first stage permeate stream which has been heated to a temperature above the PTSA feed gas temperature.

7. The method of claim 6 , wherein a waste gas stream comprised of the regeneration gas stream and the H 2 S, water, and VOCs desorbed from one or more adsorbent beds of the PTSA unit is thermally oxidized at a thermal oxidizer.

8. The method of claim 6 , wherein some or all of the second stage permeate stream is the cool down gas stream and the cool down gas stream is received from the PTSA unit at a suction inlet of the main compressor where it is combined with the compressed biogas stream.

9. The method of claim 1 , further comprising the step of, removing amounts of H 2 S present in the PTSA feed gas stream by an H 2 S removal unit prior to feeding the PTSA feed gas stream to the PTSA unit, wherein the PTSA unit removes amounts of water and VOCs from the PTSA feed gas stream and also amounts of the H 2 S remaining in the PTSA feed gas stream after treatment by the H 2 S removal unit.

10. The method of claim 1 , wherein the regeneration gas stream is heated to the temperature above the PTSA feed gas temperature through heat exchange, at a heat exchanger, with cooling oil circulating through the first compressor.

11. The method of claim 10 , wherein some or all of the regeneration gas stream is the first stage permeate stream.

12. The method of claim 1 , wherein a waste gas comprised of the regeneration gas stream and the H 2 S, water, and VOCs desorbed from one or more adsorbent beds of the PTSA unit is thermally oxidized at a thermal oxidizer and the regeneration gas stream is heated to the temperature above the PTSA feed gas temperature through heat exchange, at a heat exchanger, with hot gas produced in the thermal oxidizer.

13. The method of claim 1 , wherein the PTSA unit comprises first and second adsorbent beds, and the PTSA unit cycle comprises:

a first phase during which the first bed undergoes adsorption and the second bed undergoes depressurization and then thermal regeneration;

a second phase during which the first bed undergoes adsorption and the second bed undergoes cool down and then repressurization;

a third phase during which the second bed undergoes adsorption and the first bed undergoes depressurization and then thermal regeneration; and

a fourth phase during which the second bed undergoes adsorption and the first bed undergoes cool down and then repressurization.

14. The method of claim 1 , wherein the PTSA unit comprises first, second, and third adsorbent beds, and the PTSA unit cycle comprises:

a first phase during which the first bed undergoes adsorption, the second bed undergoes cool down and then repressurization, and the third bed undergoes depressurization and then thermal regeneration;

a second phase during which the second bed undergoes adsorption, the third bed undergoes cool down and then repressurization, and the first bed undergoes depressurization and then thermal regeneration; and

a third phase during which the third bed undergoes adsorption, the first bed undergoes cool down and then repressurization, and the second bed undergoes depressurization and then thermal regeneration.

15. The method of claim 1 , wherein the PTSA unit comprises first, second, third, and fourth adsorbent beds, and the PTSA unit cycle comprises:

a first phase during which the first and fourth beds undergo adsorption, the second bed undergoes cool down and then repressurization, and the third bed undergoes depressurization and then thermal regeneration;

a second phase during which the first and second beds undergo adsorption, the third bed undergoes cool down and then repressurization, and the fourth bed undergoes depressurization and then thermal regeneration;

a third phase during which the second and third beds undergo adsorption, the fourth bed undergoes cool down and then repressurization, and the first bed undergoes depressurization and then thermal regeneration; and

a fourth phase during which the third and fourth beds undergo adsorption, the first bed undergoes cool down and then repressurization, and the second bed undergoes depressurization and then thermal regeneration.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 3, 2026
From: AIR LIQUIDE ADVANCED TECHNOLOGIES U.S. LLC
To: L'AIR LIQUIDE, SOCIÉTÉ ANONYME POUR L'ETUDE ET L'EXPLOITATION DES PROCÉDÉS GEORGES CLAUDE
Reel/Frame 075167/0451 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 2, 2018
From: MITARITEN, MICHAEL J.
To: AIR LIQUIDE ADVANCED TECHNOLOGIES U.S. LLC
Reel/Frame 045090/0628 →
Continuity (2)
Provisional Application 62454255 · Feb 3, 2017
Related Publication 20180223205A1 · Aug 9, 2018
Cited By (2)
US 12,680,060 US 12,734,475