IP Library Granted Patent US 12,158,302
Granted Patent B2
US 12,158,302 · App. 18/603,139 · Granted Dec 3, 2024

Apparatus and systems for liquefaction of natural gas

Inventors: Alex Brigden (Vancouver, CA); Angus Remfry (Vancouver, CA); Glen Cunial (Vancouver, CA); Tom Boguslawski (Vancouver, CA)
Assignee: STEELHEAD LNG (ASLNG) LTD.
F25J1/0022B63B39/03F25J1/004F25J1/0278F25J1/0284F25J2220/64F25J2245/02
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Quick Facts
Patent No.
US 12,158,302
App. No.
18/603,139
Granted
Dec 3, 2024
Kind
B2
Abstract

Described herein are apparatuses and systems related to at-shore liquefaction of natural gas. The at-shore water-based apparatuses can include a hull, an air-cooled electrically-driven refrigeration system (“AER System”), a plurality of liquefied natural gas (“LNG”) storage tanks that are on a lower deck of the hull, and a closed loop ballast system. The closed loop ballast system can include a ballast fluid to assist in stabilizing the water-based apparatus moored to an at-shore location without discharging the ballast fluid to water proximate the at-shore location. Systems including an at-shore water-based apparatus can also include a land-based source of electricity and a land-based source of feed gas.

Claims (46)

1. An at-shore water-based apparatus for the liquefaction of natural gas, the at-shore water-based apparatus configured to be moored at an at-shore location, the apparatus comprising:

a hull defining a bow, a stern, and a centerline axis extending from the bow to the stern and having an upper deck;

an air-cooled electrically-driven refrigeration system (“AER System”) comprising one or more interconnected modules operatively configured to (i) receive electricity and feed gas from an external source, the external source being separate from the at-shore water-based apparatus, (ii) perform a refrigeration process for converting the feed gas into a liquefied natural gas (“LNG”) with the received electricity using a plurality of electrically-driven compressors and a cryogenic heat exchanger operatively configured on the water-based apparatus, (iii) discharge substantially all thermal energy from the refrigeration process to ambient air with air coolers on the water-based apparatus, and (iv) output the LNG, wherein the AER System comprises a first refrigeration train and a second refrigeration train where a substantial portion of the first refrigeration train is aft of a mid-ship axis of the hull and a substantial portion of the second refrigeration train is forward of the mid-ship axis such that a weight of the first refrigeration train is balanced against a weight of the second refrigeration train about the mid-ship axis;

a plurality of LNG storage tanks that are on a lower deck of the hull wherein each of the LNG storage tanks has a storage volume and is spaced apart in a single row along the centerline axis of the hull such that the storage volume of each tank is approximately centered on the centerline axis, the plurality of LNG storage tanks operatively configured to input the LNG from the AER System, and operatively configured to output the LNG to an LNG transport vessel that is separate from the water-based apparatus; and

a closed loop ballast system operable with a ballast fluid to assist in stabilizing the water-based apparatus moored to the at-shore location without discharging the ballast fluid to water proximate the at-shore location.

2. The apparatus of claim 1 , wherein the closed loop ballast system comprises:

a plurality of ballast tanks below the upper deck; and

one or more pumps operatively configured to move the ballast fluid between the plurality of ballast tanks.

3. The apparatus of claim 1 , wherein the closed loop ballast system comprises a first ballast tank and a second ballast tank,

wherein the hull defines a port side, a starboard side, and a mid-ship axis extending between the starboard side to the port side at a middle of the hull; and

wherein the first ballast tank is aft of the mid-ship axis and the second ballast tank is forward of the mid-ship axis.

4. The apparatus of claim 3 , wherein the closed loop ballast system comprises a first pump and a second pump, each of the first pump and the second pump is configured to move the ballast fluid between the first ballast tank and second ballast tank.

5. The apparatus of claim 4 , wherein the closed loop ballast system comprises a position sensor to identify a desired orientation of the water-based apparatus.

6. The apparatus of claim 5 , wherein the position sensor comprises a gyroscope.

7. The apparatus of claim 5 , wherein the position sensor is configured to communicate data to a controller which calculates a flow of ballast fluid to obtain the desired orientation and outputs signals to the first pump and the second pump to circulate ballast fluid between the first ballast tank and the second ballast tank.

8. The apparatus of claim 1 , wherein the closed loop ballast system comprises:

a position sensor;

a plurality of ballast tanks positioned below the upper deck; and

one or more pumps operable with a controller to move ballast fluid between the plurality of ballast tanks responsive to the position sensor without discharging any of the ballast fluid to water proximate to the at-shore location.

9. The apparatus of claim 1 , wherein the at-shore location comprises a jetty, a quayside, or a shoreline.

10. The apparatus of claim 1 , wherein the at-shore location is selected from the group consisting of a jetty, a quayside, and a shoreline.

11. The apparatus of claim 1 , wherein the at-shore location comprises a position proximate to a shoreline location.

12. The apparatus of claim 1 , wherein the at-shore location is a position proximate to a shoreline location.

13. An at-shore water-based apparatus for the liquefaction of natural gas, the at-shore water-based apparatus configured to be moored at an at-shore location, the apparatus comprising:

a hull having a bow, a stern, and a centerline axis extending from the bow to the stern;

an air-cooled electrically-driven refrigeration system (“AER System”) comprising one or more interconnected modules operatively configured to (i) receive electricity and feed gas from an external source, the external source being separate from the at-shore water-based apparatus, (ii) perform a refrigeration process for converting the feed gas into a liquefied natural gas (“LNG”) with the received electricity using a plurality of electrically-driven compressors and a cryogenic heat exchanger operatively configured on the water-based apparatus, (iii) discharge substantially all thermal energy from the refrigeration process to ambient air with air coolers on the water-based apparatus, and (iv) output the LNG, wherein the AER System comprises a first refrigeration train and a second refrigeration train where a substantial portion of the first refrigeration train is aft of a mid-ship axis of the hull and a substantial portion of the second refrigeration train is forward of the mid-ship axis such that a weight of the first refrigeration train is balanced against a weight of the second refrigeration train about the mid-ship axis;

a plurality of LNG storage tanks that are on a lower deck of the hull wherein each of the LNG storage tanks has a storage volume and is spaced apart in a single row along the centerline axis of the hull such that the storage volume of each tank is approximately centered on the centerline axis, the plurality of LNG storage tanks operatively configured to input the LNG from the AER System, and operatively configured to output the LNG to an LNG transport vessel that is separate from the water-based apparatus; and

a closed loop ballast system comprising a plurality of ballast tanks below an upper deck of the hull and one or more pumps operatively configured to move ballast fluid between the plurality of ballast tanks.

14. The apparatus of claim 13 , wherein the closed loop ballast system does not discharge ballast fluid to water proximate the at-shore location.

15. The apparatus of claim 13 , wherein the closed loop ballast system comprises a first ballast tank and a second ballast tank, wherein the first ballast tank is aft of a mid-ship axis of the hull and the second ballast tank is forward of the mid-ship axis of the hull, wherein the mid-ship axis extends between a starboard side of the hull to a port side of the hull at the middle of the hull.

16. The apparatus of claim 15 , wherein the one or more pumps move ballast fluid between the first ballast tank and the second ballast tank to assist in stabilizing the water-based apparatus.

17. The apparatus of claim 13 , wherein closed loop ballast system further comprises a position sensor, the position sensor being configured to communicate data to a controller which calculates a flow of ballast fluid to obtain a desired orientation and outputs signals to a first pump and a second pump to circulate ballast fluid between a first ballast tank and a second ballast tank.

18. The apparatus of claim 17 , wherein the position sensor is configured to identify the desired orientation of the water-based apparatus.

19. A system for liquefaction of natural gas, the system comprising:

a land-based source of electricity;

a land-based source of feed gas;

an at-shore water-based apparatus moored to an at-shore location, the water-based apparatus comprising:

a hull defining a bow, a stern, and a centerline axis extending from the bow to the stern;

an air-cooled electrically-driven refrigeration system (“AER System”) comprising one or more interconnected modules operatively configured to (i) receive the land-based source of electricity and the land-based source of feed gas, (ii) perform a refrigeration process for converting the feed gas into a liquefied natural gas (“LNG”) with the received electricity using a plurality of electrically-driven compressors and a cryogenic heat exchanger on the water-based apparatus, (iii) discharge substantially all thermal energy from the refrigeration process to ambient air with air coolers on the water-based apparatus, and (iv) output the LNG, wherein the AER System comprises a first refrigeration train and a second refrigeration train where a substantial portion of the first refrigeration train is aft of a mid-ship axis of the hull and a substantial portion of the second refrigeration train is forward of the mid-ship axis such that a weight of the first refrigeration train is balanced against a weight of the second refrigeration train about the mid-ship axis;

a plurality of LNG storage tanks that are on a lower deck of the hull, wherein each of the LNG storage tanks has a storage volume and is spaced apart in a single row along the centerline axis of the hull such that the storage volume of each tank is approximately centered on the centerline axis, the plurality of LNG storage tanks operatively configured to receive the LNG from the AER System, and operatively configured to output the LNG to an LNG transport vessel that is separate from the water-based apparatus; and

a closed loop ballast system comprising a plurality of ballast tanks below an upper deck of the hull and one or more pumps operatively configured to move ballast fluid between the plurality of ballast tanks.

20. The system of claim 19 , wherein the closed loop ballast system does not discharge ballast fluid to water proximate the at-shore location.

21. The system of claim 19 , wherein the closed loop ballast system comprises a first ballast tank and a second ballast tank, wherein the first ballast tank is aft of a mid-ship axis of the hull and the second ballast tank is forward of the mid-ship axis of the hull, wherein the mid-ship axis extends between a starboard side of the hull to a port side of the hull at the middle of the hull.

22. The system of claim 21 , wherein the one or more pumps move ballast fluid between the first ballast tank and the second ballast tank to assist in stabilizing the water-based apparatus.

23. The system of claim 19 , wherein the feed gas is at least partially pre-processed.

24. The system of claim 19 , wherein closed loop ballast system further comprises a position sensor, the position sensor being configured to communicate data to a controller which calculates a flow of ballast fluid to obtain a desired orientation and outputs signals to the one or more pumps to circulate ballast fluid between the plurality of ballast tanks.

Assignments (6)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 1, 2024
From: STEELHEAD LNG CORP.
To: STEELHEAD LNG (SALISH) LTD.
Reel/Frame 067889/0059 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 1, 2024
From: STEELHEAD LNG (SALISH) LTD.
To: STEELHEAD LNG (ASLNG) LTD.
Reel/Frame 067889/0362 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 1, 2024
From: REMFRY, ANGUS; WORLEYPARSONS CANADA SERVICES LTD.
To: STEELHEAD LNG (ASLNG) LTD.
Reel/Frame 068104/0137 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 1, 2024
From: BRIGDEN, ALEXANDER
To: STEELHEAD LNG CORP.
Reel/Frame 068105/0001 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 1, 2024
From: BOGUSLAWSKI, THOMAS
To: STEELHEAD LNG CORP.
Reel/Frame 068105/0155 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 1, 2024
From: CUNIAL, GLEN
To: STEELHEAD LNG CORP.
Reel/Frame 068105/0233 →
Continuity (2)
Continuation 17050253
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