Claims
- 1. A fluid handling facility comprising:
a facility to secure at least one transport ship carrying a cryogenic liquid; a first stage pumping system with sufficient pressure and volume to offload the cryogenic liquid from the transport ship; a second stage pumping system raising the pressure of the cryogenic liquid to convert the cryogenic liquid into a dense phase fluid, the second stage pumping system also providing sufficient pressure and volume to move the dense phase fluid through an elongate tubular heat exchanger and transfer the dense phase fluid into an uncompensated salt cavern; the heat exchanger warming the dense phase fluid to a temperature compatible with the uncompensated salt cavern, using a warmant selected from the group consisting of seawater, fresh water and warmants from industrial processes; and the heat exchanger having at least one cryogenically compatible inner conduit and a non-cryogenically compatible outer conduit.
- 2. The facility of claim 1 wherein the facility to secure at least one transport ship is selected from the group consisting of a dock, an offshore platform, a dolphin, a single point mooring/docking and multiple anchored mooring/docking lines.
- 3. The facility of claim 1 wherein the heat exchanger is selected from the group consisting of a single stage coaxial land mounted design, a single stage coaxial subsea mounted design, a multi-stage coaxial land mounted design, and a multi-stage coaxial subsea mounted design.
- 4. The facility of claim 1 wherein the heat exchanger has a Froude Number in excess of 10 when in operation.
- 5. A method for storing and discharging a fluid from an uncompensated salt cavern and distribution through a pipeline to a market:
securing a transport ship carrying a cryogenic liquid to a mooring/docking facility; offloading the cryogenic liquid from the transport ship; pumping the cryogenic liquid, at sufficient pressure to convert the liquid into a dense phase fluid, through a heat exchanger where the dense phase fluid is warmed using a warmant selected from the group consisting of seawater, fresh water and warmants from industrial processes, to a temperature that is compatible with an uncompensated salt cavern; transferring the warmed dense phase fluid into the uncompensated salt cavern; and discharging the warmed dense phase fluid from the uncompensated salt cavern through a pipeline to a market.
- 6. The method of claim 5 wherein the mooring/docking facility is selected from the group consisting of a dock, an offshore platform, a dolphin, a single point mooring/docking and multiple anchored mooring/docking lines.
- 7. The method of claim 5 wherein the heat exchanger is selected from the group consisting of a single stage coaxial land mounted design, a single stage coaxial subsea mounted design, a multi-stage coaxial land mounted design, and a multi-stage coaxial subsea mounted design.
- 8. The method of claim 5 wherein the heat exchanger has a Froude Number in excess of 10 during operation.
- 9. A liquefied natural gas (LNG) terminal comprising:
a mooring/docking facility for at least one LNG ship; a first stage pumping system to transfer the LNG from the LNG ship to a second stage pumping system; the second stage pumping system providing sufficient pressure to move the LNG through a conventional vaporizer system and into an uncompensated salt cavern, the vaporizer system having sufficient reinforcing to withstand the pressures of the second stage pumping system; and the conventional vaporizer system warming the LNG to a temperature compatible with the uncompensated salt cavern, using a warmant selected from the group consisting of seawater, fresh water and warmants from industrial processes.
- 10. A method for storing and discharging fluid from an uncompensated salt cavern and distribution through a pipeline to a market comprising:
securing a transport ship to a mooring/docking facility, the ship carrying a cryogenic liquid; transferring the cryogenic liquid from the transport ship to a pumping system; pumping the cryogenic liquid through a conventional vaporizer system where the liquid changes to a warmed fluid that has been warmed to a temperature that is compatible with an uncompensated salt cavern, the vaporizer system being reinforced to withstand the pressures of the pumping system; transferring the warmed fluid into the uncompensated salt cavern; and discharging the warmed fluid from the uncompensated salt cavern through a pipeline to a market.
- 11. A liquefied natural gas (LNG) terminal comprising:
a mooring/docking facility for at least one LNG ship; a low pressure pumping system with sufficient pressure to transfer the LNG from the LNG ship to a high pressure pumping system; the high pressure pumping system raising the pressure of the LNG to convert the LNG into dense phase natural gas (DPNG), the high pressure pumping system also providing sufficient pressure to move the DPNG through a Bishop Process heat exchanger and transfer the DPNG into an uncompensated salt cavern; the heat exchanger warming the DPNG to a temperature compatible with the uncompensated salt cavern, using a warmant selected from the group consisting of seawater, fresh water and warmants from industrial processes.
- 12. The terminal of claim 11 wherein the Bishop Process heat exchanger has at least one inner conduit formed from cryogenically compatible material and a outer conduit that is formed from material that is not cryogenically compatible, the inner conduit being of sufficient strength to contain the pressures of the DPNG from the high pressure pumping system.
- 13. The terminal of claim 11 wherein the mooring/docking facility is selected from the group consisting of a dock, an offshore platform, a dolphin, a single point mooring/docking and a facility with multiple anchored mooring/docking lines.
- 14. The terminal of claim 11 wherein the Bishop Process heat exchanger is selected from the group consisting of a single stage coaxial land mounted design, a single stage coaxial subsea mounted design, a multi-stage coaxial land mounted design, and a multi-stage coaxial subsea mounted design.
- 15. A method for storing dense phase natural gas (DPNG) in an uncompensated salt cavern:
securing a LNG ship to a mooring/docking facility; transferring the LNG from the LNG ship to a high pressure pumping system; pumping the LNG, at sufficient pressure to convert the LNG into DPNG, through a Bishop Process heat exchanger where the DPNG is warmed to a temperature that is compatible with an uncompensated salt cavern, a warmant being selected from the group consisting of seawater, fresh water and warmants from industrial processes; and transferring the warmed DPNG into the uncompensated salt cavern.
- 16. The method of claim 15 wherein the Bishop Process heat exchanger has at least one inner conduit formed from cryogenically compatible material and a outer conduit that is formed from material that is not cryogenically compatible, the inner conduit being of sufficient strength to contain the pressures of the DPNG from the high pressure pumping system.
- 17. The method of claim 15 wherein the mooring/docking facility is selected from the group consisting of a dock, an offshore platform, a dolphin, a single point mooring/docking and multiple anchored mooring/docking lines.
- 18. The method of claim 15 wherein the Bishop Process heat exchanger is selected from the group consisting of a single stage coaxial land mounted design, a single stage coaxial subsea mounted design, a multi-stage coaxial land mounted design, and a multi-stage coaxial subsea mounted design.
- 19. A method for storing and discharging dense phase natural gas (DPNG) from an uncompensated salt cavern and distribution through a pipeline to a market comprising:
securing an LNG ship to a mooring/docking facility; transferring a LNG from the LNG ship to a high pressure pumping system; pumping the LNG, at sufficient pressure to convert the LNG into DPNG, through a Bishop Process heat exchanger where the DPNG is warmed to a temperature that is compatible with an uncompensated salt cavern, a warmant being selected from the group consisting of seawater, fresh water and warmants from industrial processes; transferring the warmed DPNG into the uncompensated salt cavern; discharging the DPNG from the uncompensated salt cavern through a pipeline to a market.
- 20. A fluid handling terminal comprising:
a mooring/docking facility for at least one transport ship carrying at least one cryogenic liquid; a low pressure pumping system with sufficient pressure to transfer the cryogenic liquid from the transport ship to a high pressure pumping system; the high pressure pumping system raising the pressure of the cryogenic liquid to convert the cryogenic liquid into dense phase fluid, the high pressure pumping system also providing sufficient pressure to move the dense phase fluid through a Bishop Process heat exchanger and transfer the dense phase fluid into an uncompensated salt cavern; the heat exchanger warming the dense phase fluid to a temperature compatible with the uncompensated salt cavern, using a warmant selected from the group consisting of seawater, fresh water and warmants from industrial processes.
- 21. The terminal of claim 20 wherein the Bishop Process heat exchanger has at least one inner conduit formed from cryogenically compatible material and a outer conduit that is formed from material that is not cryogenically compatible, the inner conduit being of sufficient strength to contain the pressures of the dense phase fluid from the high pressure pumping system.
- 22. The terminal of claim 20 wherein the mooring/docking facility is selected from the group consisting of a dock, an offshore platform, a dolphin, a single point mooring/docking and multiple anchored mooring/docking lines.
- 23. The terminal of claim 20 wherein the Bishop Process heat exchanger is selected from the group consisting of a single stage coaxial land mounted design, a single stage coaxial subsea mounted design, a multi-stage coaxial land mounted design, and a multi-stage coaxial subsea mounted design.
- 24. A method for storing a fluid in an uncompensated salt cavern:
securing a transport ship carrying a cryogenic liquid to a mooring/docking facility; transferring the cryogenic liquid from the transport ship to a high pressure pumping system; pumping the cryogenic liquid, at sufficient pressure to convert the liquid into a dense phase fluid, through a Bishop Process heat exchanger where the dense phase fluid is warmed using a warmant being selected from the group consisting of seawater, fresh water and warmants from industrial processes; and transferring the warmed dense phase fluid into the uncompensated salt cavern, the dense phase fluid being warmed to a temperature that is compatible with the uncompensated salt cavern.
- 25. The method of claim 24 wherein the Bishop Process heat exchanger has at least one inner conduit formed from cryogenically compatible material and a outer conduit that is formed from material that is not cryogenically compatible, the inner conduit being of sufficient strength to contain the pressures of the DPNG from the high pressure pumping system.
- 26. The method of claim 24 wherein the mooring/docking facility is selected from the group consisting of a dock, an offshore platform, a dolphin, a single point mooring/docking and multiple anchored mooring/docking lines.
- 27. The method of claim 24 wherein the Bishop Process heat exchanger is selected from the group consisting of a single stage coaxial land mounted design, a single stage coaxial subsea mounted design, a multi-stage coaxial land mounted design, and a multi-stage coaxial subsea mounted design.
- 28. A method for storing and discharging a fluid from an uncompensated salt cavern and distribution through a pipeline to a market:
securing a transport ship carrying a cryogenic liquid to a mooring/docking facility; transferring the cryogenic liquid from the transport ship to a high pressure pumping system; pumping the cryogenic liquid, at sufficient pressure to convert the liquid into a dense phase fluid, through a Bishop Process heat exchanger where the dense phase fluid is warmed using a warmant being selected from the group consisting of seawater, fresh water and warmants from industrial processes; transferring the warmed dense phase fluid into the uncompensated salt cavern, the dense phase fluid being warmed to a temperature that is compatible with the uncompensated salt cavern; and discharging the warmed dense phase fluid from the uncompensated salt cavern through a pipeline to a market.
- 29. A liquefied natural gas (LNG) terminal comprising:
a mooring/docking/docking facility for at least one LNG ship; a first stage pumping system to transfer the LNG from the LNG ship to a second stage pumping system; the second stage pumping system providing sufficient pressure to move the LNG through a conventional vaporizer system and into an uncompensated salt cavern; the conventional vaporizer system warming the LNG to a temperature compatible with the uncompensated salt cavern, using a warmant selected from the group consisting of seawater, fresh water and warmants from industrial processes.
- 30. The terminal of claim 29 wherein the mooring/docking facility is selected from the group consisting of a dock, an offshore platform, a dolphin, a single point mooring/docking and multiple anchor mooring/docking lines.
- 31. The terminal of claim 29 wherein the conventional vaporizer system is selected from the group consisting of heated vaporizers, integral heated vaporizers, remotely heated vaporizers, ambient heated vaporizers (a/k/a open rack vaporizers), and process vaporizers.
- 32. A method for storage of fluid in an uncompensated salt cavern:
securing an LNG ship to a mooring/docking facility; transferring an LNG from the LNG ship to a pumping system; pumping the LNG through a conventional vaporizer system where the fluid is warmed to a temperature that is compatible with an uncompensated salt cavern; and transferring the warmed fluid into the uncompensated salt cavern.
- 33. The method of claim 32 wherein the mooring/docking facility is selected from the group consisting of a dock, an offshore platform, a dolphin, a single point mooring/docking and multiple anchor mooring/docking lines.
- 34. The method of claim 32 wherein the conventional vaporizer system is selected from the group consisting of heated vaporizers, integral heated vaporizers, remotely heated vaporizers, ambient heated vaporizers (a/k/a open rack vaporizers), and process vaporizers.
- 35. A method for storing and discharging fluid from an uncompensated salt cavern and distribution through a pipeline to a market comprising:
securing a cryogenic transport ship to a mooring/docking facility; transferring a cryogenic fluid from the cryogenic transport ship to a pumping system; pumping the cryogenic fluid through a conventional vaporizer system where the fluid is warmed to a temperature that is compatible with an uncompensated salt cavern; transferring the warmed fluid into the uncompensated salt cavern; and discharging the warmed fluid from the uncompensated salt cavern through a pipeline to a market.
- 36. The method of claim 35 wherein the mooring/docking facility is selected from the group consisting of a dock, an offshore platform, a dolphin, a single point mooring/docking and multiple anchor mooring/docking lines.
- 37. The method of claim 35 wherein the conventional vaporizer system is selected from the group consisting of heated vaporizers, integral heated vaporizers, remotely heated vaporizers, ambient heated vaporizers (a/k/a open rack vaporizers), and process vaporizers.
- 38. A fluid handling terminal comprising:
a mooring/docking facility for at least one transport ship carrying a cryogenic liquid; a low pressure pumping system to transfer the cryogenic liquid from the transport ship to a high pressure pumping system; the high pressure pumping system raising the pressure of the cryogenic liquid to convert the cryogenic liquid into a dense phase fluid, the high pressure pumping system also providing sufficient pressure to move the dense phase fluid through a conventional vaporizer system and transfer the dense phase fluid into an uncompensated salt cavern, the conventional vaporizer system being modified and strengthened to withstand the high pressure of the dense phase fluid from the high pressure pumping system; the conventional vaporizer system warming the LNG to a temperature compatible with the uncompensated salt cavern, using a warmant selected from the group consisting of seawater, fresh water and warmants from industrial processes.
- 39. The terminal of claim 38 wherein the mooring/docking facility is selected from the group consisting of a dock, an offshore platform, a dolphin, a single point mooring/docking and multiple anchored mooring/docking lines.
- 40. The terminal of claim 38 wherein the conventional vaporizer system is selected from the group consisting of heated vaporizers, integral heated vaporizers, remotely heated vaporizers, ambient heated vaporizers (a/k/a open rack vaporizers), and process vaporizers.
- 41. A method for storing dense phase fluid in an uncompensated salt cavern:
securing a transport ship to a mooring/docking facility, the ship carrying a cryogenic liquid; transferring the cryogenic liquid from the transport ship to a high pressure pumping system; pumping the cryogenic liquid, at sufficient pressure to convert the cryogenic liquid into a dense phase fluid, through a conventional vaporizer system where the dense phase fluid is warmed to a temperature that is compatible with an uncompensated salt cavern, the conventional vaporizer system being modified and strengthened to withstand the high pressure of the dense phase fluid from the high pressure pumping system; and transferring the warmed dense phase fluid into the uncompensated salt cavern.
- 42. The method of claim 41 wherein the mooring/docking facility is selected from the group consisting of a dock, an offshore platform, a dolphin, a single point mooring/docking and multiple anchored mooring/docking lines.
- 43. The method of claim 41 wherein the conventional vaporizer system is selected from the group consisting of heated vaporizers, integral heated vaporizers, remotely heated vaporizers, ambient heated vaporizers (a/k/a open rack vaporizers), and process vaporizers.
- 44. A method for storing and discharging a dense phase fluid from an uncompensated salt cavern and distribution through a pipeline to a market comprising:
securing a cryogenic transport ship to a mooring/docking facility; transferring a cryogenic liquid from the cryogenic transport ship to a pumping system; pumping the cryogenic liquid, at sufficient pressure to convert the cryogenic liquid into a dense phase fluid, through a conventional vaporizer system where the dense phase fluid is warmed to a temperature that is compatible with an uncompensated salt cavern, the conventional vaporizer system being modified and strengthened to withstand the high pressure of the dense phase fluid from the pumping system; transferring the warmed dense phase fluid into the uncompensated salt cavern; and discharging the warmed dense phase fluid from the uncompensated salt cavern through a pipeline to a market.
- 45. A Bishop Process heat exchanger comprising:
at least one elongate inner conduit, at least a portion of which is formed from cryogenically compatible materials; an outer conduit surrounding at least a portion of the inner conduit, the outer conduit formed from non-cryogenically compatible materials; a plurality of centralizers mounted inside the outer conduit to position the inner conduit generally in a coaxial relationship with the outer conduit to define an annular passageway for a warmant; a pump system to circulate warmant through the annular passageway between the inner conduit and the outer conduit; a high pressure pumping system to raise the pressure of a cold fluid to change it to a dense phase fluid and to move the dense phase fluid through the inner conduit; and the inner conduit formed from a material that is strong enough to withstand the high pressure of the dense phase fluid from the high pressure pumping system.
- 46. The apparatus of claim 45 wherein the pressure of the cold fluid is sufficient to create a Froude Number in excess of 10 in the heat exchanger.
- 47. The apparatus of claim 45 wherein the inner conduit includes a plurality of conduits positioned by the centralizers in a generally coaxial relationship with the outer conduit.
- 48. A Bishop Process heat exchanger comprising:
at least one elongate inner conduit, at least a portion if which is formed from cryogenically compatible materials; an intermediate conduit surrounding at least a portion of the inner conduit, the intermediate conduit formed from cryogenically compatible materials; an outer conduit surrounding at least a portion of the intermediate conduit, the outer conduit formed from not-cryogenically compatible materials; a plurality of centralizers mounted inside the intermediate conduit to position the inner conduit generally in a coaxial relationship with the inner conduit to defining a first annular passageway; a second set of centralizers mounted inside the outer conduit, to position the intermediate conduit generally in a coaxial relationship with the outer conduit to define an second annular passageway for a warmant; a pump system to circulate warmant through the second annular passageway and the inner conduit; a high pressure pumping system to raise the pressure of a cold fluid to change it to a dense phase fluid and to move the dense phase fluid through the first annular passageway; and the inner conduit and the intermediate conduit formed from a material that is strong enough to withstand the high pressure of the dense phase fluid from the high pressure pumping system.
- 49. The apparatus of claim 48 wherein the flow characteristics in the heat exchanger are sufficient to create a Froude Number in excess of 10 during operation.
- 50. A Bishop Process heat exchanger comprising:
at least one elongate inner conduit, at least a portion of which is formed from cryogenically compatible materials; an outer conduit surrounding at least a portion of the inner conduit, the outer conduit formed from non-cryogenically compatible materials; a plurality of positioners mounted inside the outer conduit to position the inner conduit generally in a coaxial relationship with the outer conduit to define a generally annular passageway for a warmant; a warmant pump system to circulate warmant through the annular passageway between the inner conduit and the outer conduit, the warmant selected from the group consisting of seawater, fresh water, and warmants from industrial processes; a high pressure pumping system to raise the pressure of a LNG in excess of 1200 psig to convert it to a dense phase natural gas (DPNG) and to move the DPNG through the inner conduit; the inner conduit formed from a material that is strong enough to withstand the pressures of the DPNG from the high pressure pumping system; and the heat exchanger having a Froude Number in excess of 10 during operation.
- 51. The apparatus of claim 50 wherein the inner conduit if formed from a nickel steel alloy.
- 52. The apparatus of claim 50 wherein the outer conduit is formed from a group consisting of plastic and fiberglass.
- 53. The apparatus of claim 50 wherein the flowpath of the DPNG and the warmant through the heat exchanger is generally parallel.
- 54. The apparatus of claim 50 wherein the flowpath of the DPNG and the warmant through the heat exchanger are generally counter to each other.
- 55. The apparatus of claim 50 further including a flexible joint at an end of the inner conduit to facilitate connection of the cryogenically compatible inner conduit with a non-cryogenically compatible downstream piping system.
- 56. The apparatus of claim 50 wherein the heat exchanger has a serpentine pattern to reduce the overall footprint of the heat exchanger.
- 57. A Bishop Process heat exchanger comprising:
a first section having: at least one elongate inner conduit, at least a portion of which is formed from cryogenically compatible materials; an outer conduit surrounding at least a portion of the inner conduit, the outer conduit formed from non-cryogenically compatible materials; a plurality of positioners mounted inside the outer conduit to position the inner conduit generally in a coaxial relationship with the outer conduit to define a generally annular passageway for a warmant; a first warmant pump system to circulate warmant through the annular passageway in the first section of the heat exchanger; a second section having:
at least one elongate inner conduit, at least a portion of which is formed from cryogenically compatible materials; an outer conduit surrounding at least a portion of the inner conduit, the outer conduit formed from non-cryogenically compatible materials; a plurality of positioners mounted inside the outer conduit to position the inner conduit generally in a coaxial relationship with the outer conduit to define a generally annular passageway for a warmant; a second warmant pump system to circulate warmant through the annular passageway in the second section of the heat exchanger; a high pressure pumping system to raise the pressure of a LNG in excess of 1200 psig to convert it to a dense phase natural gas (DPNG) and to move the DPNG through the inner conduit in both the first and second sections of the heat exchanger; and the heat exchanger having a Froude Number in excess of 10 during operation.
- 58. The Bishop Process heat exchanger of claim 57 wherein the high pressure pumping system including a plurality of pumps each having a nominal pumping rate of 2,200 gpm at a pressure in excess of 1800 psig with total horsepower requirements for the high pressure pumping system being in excess of 24,000.
- 59. A method of warming liquefied natural gas (LNG) and converting the LNG into dense phase natural gas (DPNG) for subsequent storage in an uncompensated salt cavern, comprising;
pressurizing the LNG to a pressure that will keep the LNG outside of the two-phase envelope and change the LNG into DPNG; warming the DPNG in a Bishop Process heat exchanger to a temperature that is compatible with a salt cavern; and storing the DPNG in an uncompensated salt cavern.
- 60. A method of warming liquefied natural gas (LNG) and converting the LNG into dense phase natural gas (DPNG) for storage and discharge from an uncompensated salt cavern and distribution through a pipeline to a market comprising;
pressurizing the LNG to a pressure that will keep the LNG outside of the two-phase envelope and change the LNG into DPNG; warming the DPNG in a Bishop Process heat exchanger to a temperature that is compatible with a salt cavern; storing the DPNG in an uncompensated salt cavern; and discharging the DPNG from the uncompensated salt cavern through a pipeline to market.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims priority of U.S. provisional patent application No. 60/342,157 filed Dec. 19, 2001.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60342157 |
Dec 2001 |
US |