IP Library Granted Patent US 8,973,398
Granted Patent B2
US 8,973,398 · App. 12/038,322 · Granted Mar 10, 2015

Apparatus and method for regasification of liquefied natural gas

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Quick Facts
Patent No.
US 8,973,398
App. No.
12/038,322
Granted
Mar 10, 2015
Kind
B2
Abstract

A method for vaporizing a liquefied natural gas (LNG) stream and recovering heavier hydrocarbons from the LNG utilizing a heat transfer fluid is disclosed.

Claims (80)

1. A method for vaporizing a liquefied natural gas stream and recovering LPG therefrom comprising:

flowing a first stream of liquefied natural gas having a first temperature from a LNG storage tank to a first heat exchanger;

heating the first stream of liquefied natural gas in the first heat exchanger to a second temperature;

introducing the first stream of liquefied natural gas at about the second temperature to a LPG recovery column;

fractionating the first stream of liquefied natural gas at about the second temperature in the LPG recovery column to produce a first lean natural gas stream and LPG;

compressing natural gas vapors from the LNG storage tank to form a natural gas vapor stream;

introducing the natural gas vapor stream to the LPG recovery column at a location below where the first stream of liquefied natural gas at about the second temperature is introduced;

providing heat to the LPG recovery column with a first heat transfer fluid stream in a reboiler, wherein the first heat transfer fluid stream exits the reboiler as a second heat transfer fluid stream, the second heat transfer fluid stream having a temperature less than ambient temperature;

vaporizing at least a portion of the first lean natural gas stream in a second heat exchanger with a third lean natural gas stream to produce a second lean natural gas stream;

heating the second lean natural gas stream in a third heat exchanger with a first portion of a third heat transfer fluid stream to produce the third lean natural gas stream;

cooling the third lean natural gas stream in the second heat exchanger with the first lean natural gas stream to produce a fourth lean natural gas stream;

heating the fourth lean natural gas stream in a fourth heat exchanger with a second portion of the third heat transfer fluid stream to produce a fifth lean natural gas stream suitable for delivery to a pipeline or for commercial use; and

cooling a first air stream by heat exchange with at least a portion of the second heat transfer fluid stream to produce a first chilled air stream and a fourth heat transfer fluid stream, wherein the first chilled air stream is an inlet air stream to a fired turbine.

2. The method of claim 1 , further comprising heating at least a portion of the fourth heat transfer fluid stream by heat exchange with an exhaust stream of the fired turbine, wherein the fired turbine produces the exhaust stream.

3. The method of claim 1 , wherein the fired turbine drives a generator that produces electrical energy.

4. The method of claim 1 , wherein the LPG comprises ethane and heavier hydrocarbons.

5. The method of claim 1 , wherein the heat transfer fluid streams are circulated by a heat transfer fluid circulation pump.

6. The method of claim 1 , further comprising utilizing an auxiliary heater to increase the temperature of one or more of the heat transfer fluid streams.

7. The method of claim 1 , wherein the first stream of liquefied natural gas is pumped from the LNG storage tank to the first heat exchanger.

8. The method of claim 7 , wherein the first stream of liquefied natural gas is pumped using one or more high head submersible pumps located within the LNG storage tank.

9. The method of claim 7 , wherein the natural gas vapor stream is introduced to the LPG recovery column at a location proximate a bottom end of the LPG recovery column.

10. The method of claim 9 , wherein the natural gas vapor stream provides heat duty to the LPG recovery column.

11. The method of claim 10 , wherein introducing the natural gas vapor stream to the LPG recovery column eliminates the need for a recondenser.

12. The method of claim 9 , further comprising providing at least a portion of the first stream of liquefied natural gas as an input to a recondenser.

13. The method of claim 1 , wherein the first stream of liquefied natural gas is heated in the first heat exchanger with the first lean natural gas stream from the LPG recovery column.

14. The method of claim 1 , wherein the second portion of the third heat transfer fluid stream exiting the fourth heat exchanger is the first heat transfer fluid stream.

15. The method of claim 1 , wherein the second, third and fourth heat exchangers are shell and tube type heat exchangers having a shell side and a tube side.

16. The method of claim 15 , wherein the second heat exchanger has the first lean natural gas stream entering the tube side and the third lean natural gas stream entering the shell side.

17. The method of claim 15 , wherein the third heat exchanger has the second lean natural gas stream entering the tube side and a portion of the third heat transfer fluid stream entering the shell side.

18. The method of claim 15 , wherein the fourth heat exchanger has the fourth lean natural gas stream entering the tube side and a portion of the third heat transfer fluid stream entering the shell side.

19. The method of claim 2 , wherein the third heat transfer fluid stream is heated with the exhaust stream of the turbine.

20. The method of claim 1 , wherein the third heat transfer fluid stream is heated by an auxiliary heater.

21. The method of claim 1 , further comprising:

compressing the first lean natural gas stream to produce a first compressed gas stream;

condensing the first compressed gas stream to a liquid state with the first stream of liquefied natural gas in the first heat exchanger to produce the first stream of liquefied natural gas at the second temperature and a first condensed gas stream;

pumping the first condensed gas stream to produce a first high-pressure lean natural gas stream; and

vaporizing the first high-pressure lean natural gas stream in the second heat exchanger.

22. The method of claim 1 , further comprising:

compressing the first lean natural gas stream to produce a first compressed gas stream; and

vaporizing the first compressed gas stream in the second heat exchanger.

23. The method of claim 1 , further comprising:

condensing the first lean natural gas stream to a liquid state with the first stream of liquefied natural gas in the first heat exchanger to produce the first stream of liquefied natural gas at the second temperature and a first condensed gas stream;

pumping the first condensed gas stream to produce a first high-pressure lean natural gas stream; and

vaporizing the first high-pressure lean natural gas stream in the second heat exchanger.

24. The method of claim 1 , wherein the first heat transfer fluid stream provides heat duty to the LPG recovery column in one or more of an inter-reboiler and a bottom reboiler.

25. The method of claim 1 , wherein the second heat transfer fluid stream exiting the LPG recovery column has a temperature less than 25° C.

26. A method for vaporizing a liquefied natural gas stream and recovering LPG therefrom comprising:

flowing a first stream of liquefied natural gas having a first temperature from a LNG storage tank to a first heat exchanger;

heating the first stream of liquefied natural gas in the first heat exchanger to a second temperature;

introducing the first stream of liquefied natural gas at about the second temperature to a LPG recovery column;

fractionating the first stream of liquefied natural gas at about the second temperature in the LPG recovery column to produce a first lean natural gas stream and LPG;

recovering at least a portion of the LPG from the LPG recovery column;

compressing natural gas vapors from the LNG storage tank to form a natural gas vapor stream;

introducing the natural gas vapor stream to the LPG recovery column at a location below where the first stream of liquefied natural gas at about the second temperature is introduced;

providing heat duty to the LPG recovery column with a first heat transfer fluid stream in a reboiler, wherein the first heat transfer fluid stream exits the reboiler as a second heat transfer fluid stream, the second heat transfer fluid stream having a temperature less than ambient temperature;

cooling a first air stream with at least a portion of the second heat transfer fluid stream in one or more heat exchangers to produce a first chilled air stream and a third heat transfer fluid stream, wherein the first chilled air stream is inlet air stream to a fired turbine;

heating the first stream of liquefied natural gas in the first heat exchanger with the first lean natural gas stream from the LPG recovery column to at least partially vaporize the first stream of liquefied natural gas prior to the LPG recovery column;

vaporizing at least a portion of the first lean natural gas stream in a second heat exchanger with a third lean natural gas stream to produce a second lean natural gas stream;

heating the second lean natural gas stream in a third heat exchanger with a first portion of a fourth heat transfer fluid stream to produce the third lean natural gas stream;

cooling the third lean natural gas stream in the second heat exchanger with the first lean natural gas stream to produce a fourth lean natural gas stream; and

heating the fourth lean natural gas stream in a fourth heat exchanger with a second portion of the fourth heat transfer fluid stream to produce a fifth lean natural gas stream suitable for delivery to a pipeline or for commercial use.

27. The method of claim 26 , wherein the fourth heat transfer fluid stream is heated with an exhaust stream of the fired turbine in a heat exchanger.

28. A method for vaporizing a liquefied natural gas stream and recovering LPG therefrom comprising:

flowing a first stream of liquefied natural gas having a first temperature from a LNG storage tank to a first heat exchanger;

heating the first stream of liquefied natural gas in the first heat exchanger to a second temperature;

introducing the first stream of liquefied natural gas at about the second temperature to a LPG recovery column;

fractionating the first stream of liquefied natural gas at about the second temperature in the LPG recovery column to produce a first lean natural gas stream and LPG;

recovering at least a portion of the LPG from the LPG recovery column;

compressing natural gas vapors from the LNG storage tank to form a natural gas vapor stream;

introducing the natural gas vapor stream to the LPG recovery column at a location below where the first stream of liquefied natural gas at about the second temperature is introduced;

providing heat duty to the LPG recovery column with a first heat transfer fluid stream in a reboiler, wherein the first heat transfer fluid stream exits the reboiler as a second heat transfer fluid stream, the second heat transfer fluid stream having a temperature less than ambient temperature;

cooling a first air stream with at least a portion of the second heat transfer fluid stream in one or more heat exchangers to produce a first chilled air stream and a third heat transfer fluid stream, wherein the first chilled air stream is an inlet air stream to a fired turbine;

compressing the first lean natural gas stream;

condensing the compressed first lean natural gas stream to a liquid state with the first stream of liquefied natural gas in the first heat exchanger to at least partially vaporize the first stream of liquefied natural gas prior to the LPG recovery column;

vaporizing at least a portion of the condensed first lean natural gas stream in a second heat exchanger with the third lean natural gas stream to produce a second lean natural gas stream;

heating the second lean natural gas stream in a third heat exchanger with a first portion of a fourth heat transfer fluid stream to produce a third lean natural gas stream;

cooling the third lean natural gas stream in the second heat exchanger with the condensed first lean natural gas stream to produce a fourth lean natural gas stream;

heating the fourth lean natural gas stream in a fourth heat exchanger with a second portion of the fourth heat transfer fluid stream to produce a fifth lean natural gas stream suitable for delivery to a pipeline or for commercial use; and

heating at least a portion of the third heat transfer fluid stream and at least a portion of the fourth heat transfer fluid stream with an exhaust stream of the fired turbine in a heat exchanger.

29. The method of claim 28 , wherein the second heat exchanger is a shell and tube type heat exchanger having a shell side and a tube side wherein the first lean natural gas stream enters the tube side and the third lean natural gas stream enters the shell side.

Assignments (2)
SECURITY INTEREST Recorded Apr 25, 2018
From: KELLOGG BROWN & ROOT LLC
To: BANK OF AMERICA, N.A., AS ADMINISTRATIVE AGENT
Reel/Frame 046022/0413 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 27, 2008
From: COYLE, DAVID A., MR.
To: KELLOGG BROWN & ROOT LLC
Reel/Frame 020569/0404 →