IP Library Granted Patent US 7,300,642
Granted Patent B1
US 7,300,642 · App. 11/004,036 · Granted Nov 27, 2007

Process for the production of ammonia and Fischer-Tropsch liquids

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Quick Facts
Patent No.
US 7,300,642
App. No.
11/004,036
Granted
Nov 27, 2007
Kind
B1
Abstract

A gasification plant for producing ammonia, Fischer-Tropsch fuels, and electrical power from carbon-bearing feedstocks.

Claims (63)

1. A method comprising the steps of:

separating oxygen from nitrogen from air in an air separation unit;

introducing a carbonaceous raw material, water and oxygen from the air separation unit into a synthesis gas generator under synthesis gas forming operating conditions to form a synthesis gas;

cooling the synthesis gas to condense and remove water;

removing sulfur compounds and carbon dioxide from the synthesis gas using an acid gas removal system, thereby forming a cleaned synthesis gas;

introducing a portion of the cleaned synthesis gas into a Fischer-Tropsch reactor and forming primarily aliphatic hydrocarbons and carbon dioxide;

separating liquid hydrocarbons from Fischer-Tropsch tail gas comprising unreacted carbon monoxide, carbon dioxide, and gaseous hydrocarbons;

combining a portion of the cleaned synthesis gas with the Fischer-Tropsch tail gas to form a gas mixture;

compressing the gas mixture to an elevated pressure, thereby forming a compressed mixture;

introducing the compressed mixture together with steam into one or more shift reactors to convert a portion of the carbon monoxide and water to hydrogen and carbon dioxide;

introducing the shifted gases into a hydrogen membrane separator to produce a stream of hydrogen-rich gases and a stream of hydrogen-lean gases;

burning the hydrogen-lean gases in a gas turbine combustor of a combined cycle plant to drive a generator mechanically coupled to a gas turbine during a production of electricity;

compressing the hydrogen-rich gases to an elevated pressure;

introducing the compressed hydrogen-rich gases into a pressure swing adsorption unit to produce a stream of high purity hydrogen;

introducing the high-purity hydrogen together with nitrogen from the air separation unit into a reactor to produce ammonia for sale.

2. The process of claim 1 further comprising the step of removing carbon dioxide from the shifted gases in an absorption unit before hydrogen separation occurs.

3. The process of claim 1 , wherein the step of removing sulfur compounds and carbon dioxide from the synthesis gas further comprises introducing hydrogen sulfide into a sulfur recovery system to produce sulfur for export.

4. The process of claim 1 further comprising the step of introducing a portion of the high-purity hydrogen from the pressure adsorption unit into a reactor to upgrade the liquid hydrocarbons by hydrotreating.

5. A process comprising the steps of:

separating oxygen from nitrogen from air in an air separation unit;

introducing a carbonaceous raw material, water and oxygen from the air separation unit into a synthesis gas generator under synthesis gas forming operating conditions to form a synthesis gas;

cooling the synthesis gas to condense and remove water;

removing sulfur compounds and carbon dioxide from the synthesis gas using an acid gas removal system, thereby forming a cleaned synthesis gas;

introducing a portion of the cleaned synthesis gas into a Fischer-Tropsch reactor and forming primarily aliphatic hydrocarbons and carbon dioxide;

separating liquid hydrocarbons from Fischer-Tropsch tail gas comprising unreacted carbon monoxide, carbon dioxide, and gaseous hydrocarbons;

compressing the tail gas to an elevated pressure, thereby forming a compressed gas;

introducing the compressed gas together with steam into a steam methane reformer, thereby producing a reformer effluent comprising hydrogen, carbon monoxide, and carbon dioxide;

combining a portion of the cleaned synthesis gas with the reformer effluent to form a gas mixture;

introducing the gas mixture into one or more shift reactors to convert a portion of the carbon monoxide and water to hydrogen and carbon dioxide;

removing carbon dioxide from the shifter effluent using an absorption system, thereby forming a highly concentrated hydrogen stream comprising trace amounts of CO and CO 2 ;

converting the CO and CO 2 to methane using a methanator, thereby forming a methanator effluent comprising high purity hydrogen;

introducing the methanator effluent together with nitrogen from the air separation unit into a reactor to produce ammonia;

introducing a stream of purge gases containing hydrogen from the ammonia reactor into a hydrogen membrane separator to produce a stream of hydrogen-rich gases and a stream of hydrogen-lean gases;

feeding the hydrogen-lean gases to a heat recovery steam generator to drive a generator mechanically coupled to a steam turbine during a production of electricity;

compressing the hydrogen-rich gases to an elevated pressure;

introducing the compressed hydrogen-rich gases into a pressure swing adsorption unit to produce a stream of high purity hydrogen;

introducing the high-purity hydrogen into a reactor to upgrade separated liquid hydrocarbons by hydrotreating.

6. The process of claim 5 further comprising exploiting the ammonia.

7. The process of claim 5 further comprising the step of pretreating the Fischer-Tropsch tail gas in an adiabatic pre-reformer.

8. The process of claim 5 , wherein the step of removing sulfur compounds and carbon dioxide from the synthesis gas further comprises introducing hydrogen sulfide into a sulfur recovery system to produce sulfur for export.

9. The process of claim 5 , wherein the steam methane reformer, the one or more shift reactors, the carbon absorption system, the methanator, and the ammonia synthesis reactor form an ammonia loop of an existing ammonia production plant.

10. A process comprising the steps of:

separating oxygen from nitrogen from air in an air separation unit;

introducing a carbonaceous raw material, water and oxygen from the air separation unit into a synthesis gas generator under synthesis gas forming operating conditions to form a synthesis gas;

cooling the synthesis gas to condense and remove water;

removing sulfur compounds and carbon dioxide from the synthesis gas using an acid gas removal system, thereby forming a cleaned synthesis gas;

introducing a portion of the cleaned synthesis gas into a Fischer-Tropsch reactor and forming primarily aliphatic hydrocarbons and carbon dioxide;

separating liquid hydrocarbons from Fischer-Tropsch tail gas comprising unreacted carbon monoxide, carbon dioxide, and gaseous hydrocarbons;

compressing the tail gas to an elevated pressure, thereby forming a compressed gas;

pretreating the compressed gas in an adiabatic pre-reformer;

introducing the pretreated gas together with steam into a steam methane reformer, thereby producing a reformer effluent comprising hydrogen, carbon monoxide, and carbon dioxide;

combining a portion of the cleaned synthesis gas with the reformer effluent to form a gas mixture;

introducing the gas mixture into one or more shift reactors to convert a portion of the carbon monoxide and water to hydrogen and carbon dioxide;

removing carbon dioxide from the shifter effluent using an absorption system, thereby forming a highly concentrated hydrogen stream comprising trace amounts of CO and CO 2 ;

converting the CO and CO 2 to methane using a methanator, thereby forming a methanator effluent comprising high purity hydrogen;

introducing the methanator effluent together with nitrogen from the air separation unit into a reactor to produce ammonia;

introducing a stream of purge gases containing hydrogen from the ammonia reactor into a hydrogen membrane separator to produce a stream of hydrogen-rich gases and a stream of hydrogen-lean gases;

feeding the hydrogen-lean gases to a heat recovery steam generator to drive a generator mechanically coupled to a steam turbine during a production of electricity;

compressing the hydrogen-rich gases to an elevated pressure;

introducing the compressed hydrogen-rich gases into a pressure swing adsorption unit to produce a stream of high purity hydrogen;

introducing the high-purity hydrogen into a reactor to upgrade separated liquid hydrocarbons by hydrotreating.

11. The process of claim 10 further comprising exploiting the ammonia.

12. The process of claim 10 , wherein the steam methane reformer, the one or more shift reactors, the carbon absorption system, the methanator, and the ammonia synthesis reactor form an ammonia loop of an existing ammonia production plant.

Assignments (8)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 3, 2014
From: RENTECH, INC.
To: RES USA, LLC
Reel/Frame 033683/0266 →
CORRECTIVE ASSIGNMENT TO CORRECT THE RELEASE BY SECURED PARTY, TO REMOVE RECEIVING PARTY RENTECH, INC. ERRONEOUSLY LISTED ON THE COVER SHEET PREVIOUSLY RECORDED ON REEL 026428 FRAME 0416. ASSIGNOR(S) HEREBY CONFIRMS THE REMOVAL OF RECEIVING PARTY RENTECH, INC. Recorded Jun 24, 2011
From: CREDIT SUISSE AG, CAYMAN ISLANDS BRANCH
To: RENTECH ENERGY MIDWEST CORPORATION
Reel/Frame 026499/0449 →
RELEASE OF SECURITY INTEREST Recorded Jun 10, 2011
From: CREDIT SUISSE AG, CAYMAN ISLANDS BRANCH
To: RENTECH ENERGY MIDWEST CORPORATION; RENTECH, INC.
Reel/Frame 026428/0416 →
SECURITY AGREEMENT Recorded Jun 10, 2011
From: RENTECH ENERGY MIDWEST CORPORATION; RENTECH, INC.
To: CREDIT SUISSE AG, CAYMAN ISLANDS BRANCH
Reel/Frame 026429/0156 →
RELEASE OF SECURITY INTEREST Recorded Jun 10, 2011
From: CREDIT SUISSE AG, CAYMAN ISLANDS BRANCH
To: RENTECH ENERGY MIDWEST CORPORATION; RENTECH, INC.
Reel/Frame 026427/0307 →
SECURITY AGREEMENT Recorded Jan 29, 2010
From: RENTECH ENERGY MIDWEST CORPORATION
To: CREDIT SUISSE AG, CAYMAN ISLANDS BRANCH
Reel/Frame 023870/0270 →
SECURITY AGREEMENT Recorded Jun 12, 2008
From: RENTECH ENERGY MIDWEST CORPORATION; RENTECH, INC.
To: CREDIT SUISSE, CAYMAN ISLANDS BRANCH
Reel/Frame 021085/0306 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 11, 2005
From: PEDERSEN, PETER S.; YAKOBSON, DENNIS L.
To: RENTECH, INC.
Reel/Frame 016456/0920 →