Cryogenic fluid transfer system and method
10890293 ยท 2021-01-12
Assignee
Inventors
Cpc classification
F17C2223/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2260/036
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2227/0311
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2225/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2227/042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2265/065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2260/025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2250/0408
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2227/0107
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2225/0161
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2205/0367
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2223/0161
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C5/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/014
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2270/0139
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C2221/033
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F17C7/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C7/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F17C5/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A system for transferring cryogenic fluid from a dispensing tank to a receiving tank is disclosed. The dispensing tank stores a supply of cryogenic liquid with a dispensing tank headspace above the liquid. A compressor has an inlet connected to the headspace of a receiving tank and an outlet connected to the headspace of the dispensing tank. A liquid transfer line is in fluid communication with the liquid side of the dispensing tank and the receiving tank. Cryogenic liquid is transferred from the dispensing tank to the receiving tank when the compressor is activated so as to transfer vapor from the headspace of the receiving tank to the headspace of the dispensing tank to create a pressure differential between the dispensing and receiving tanks.
Claims
1. A cryogenic fluid transfer system comprising: a. a dispensing tank having a dispensing tank headspace, said dispensing tank configured to store a supply of cryogenic liquid with the dispensing tank headspace above the supply of cryogenic liquid; b. a receiving tank having a receiving tank headspace; c. a compressor having an inlet and an outlet; d. a compressor inlet line in fluid communication with the receiving tank headspace and the compressor inlet; e. a compressor outlet line in fluid communication with the compressor outlet and the headspace of the dispensing tank; f. a liquid transfer line in fluid communication with the dispensing tank and the receiving tank and configured to transfer cryogenic liquid from the dispensing tank to the receiving tank when the compressor is activated so as to transfer vapor from the headspace of the receiving tank to the headspace of the dispensing tank to create a pressure differential between the dispensing and receiving tanks; and g. a compressor bypass line selectively in fluid communication with the headspaces of the dispensing and receiving tanks for equalizing pressures of the dispensing and receiving tanks.
2. The transfer system of claim 1 further comprising a heat exchanger having an inlet in fluid communication with the headspace of the receiving tank and an outlet in fluid communication with the inlet of the compressor, said heat exchanger configured so that vapor from the headspace of the receiving tank is warmed in the heat exchanger before traveling to the inlet of the compressor.
3. The transfer system of claim 2 wherein the heat exchanger is an ambient air heat exchanger.
4. The transfer system of claim 1 further comprising a sensor configured to sense a liquid level within the dispensing tank, said sensor in communication with a controller that is configured to deactivate the compressor when a liquid level within the dispensing tank drops below a predetermined level.
5. The transfer system of claim 1 further comprising a sensor configured to sense a liquid level within the receiving tank, said sensor in communication with a controller that is configured to deactivate the compressor when a liquid level within the receiving tank exceeds a predetermined level.
6. A cryogenic fluid transfer system comprising: a. a dispensing tank having a dispensing tank headspace, said dispensing tank configured to store a supply of cryogenic liquid with the dispensing tank headspace above the supply of cryogenic liquid; b. a receiving tank having a receiving tank headspace; c. a compressor having an inlet and an outlet; d. a compressor inlet line in fluid communication with the receiving tank headspace and the compressor inlet; e. a compressor outlet line in fluid communication with the compressor outlet and the headspace of the dispensing tank; f. a liquid transfer line in fluid communication with the dispensing tank and the receiving tank and configured to transfer cryogenic liquid from the dispensing tank to the receiving tank when the compressor is activated so as to transfer vapor from the headspace of the receiving tank to the headspace of the dispensing tank to create a pressure differential between the dispensing and receiving tanks; and g. a heat exchanger configured so that vapor from the headspace of the receiving tank is warmed in the heat exchanger before traveling to the inlet of the compressor, said heat exchanger including a first passage and a second passage in heat exchange relationship with one another, said second passage having an inlet in fluid communication with the headspace of the receiving tank and an outlet in fluid communication with the inlet of the compressor and said first passage having an inlet in fluid communication with the outlet of the compressor and an outlet in fluid communication with the headspace of the dispensing tank, said heat exchanger configured so that vapor warmed by compression in the compressor travels through the first passage of the heat exchange and heats vapor flowing through the second passage of the heat exchanger.
7. The transfer system of claim 6 comprising a compressor bypass line selectively in fluid communication with the headspaces of the dispensing and receiving tanks for equalizing pressures of the dispensing and receiving tanks.
8. The transfer system of claim 6 further comprising an equalization line that selectively allows the vapor of the receiving tank to flow into the liquid space of the dispensing tank to keep overall system pressure from exceeding a predetermined level.
9. The transfer system of claim 6 further comprising a sensor configured to sense a liquid level within the dispensing tank, said sensor in communication with a controller that is configured to deactivate the compressor when a liquid level within the dispensing tank drops below a predetermined level.
10. The transfer system of claim 6 further comprising a sensor configured to sense a liquid level within the receiving tank, said sensor in communication with a controller that is configured to deactivate the compressor when a liquid level within the receiving tank exceeds a predetermined level.
11. A cryogenic fluid transfer system comprising: a. a dispensing tank having a dispensing tank headspace, said dispensing tank configured to store a supply of cryogenic liquid with the dispensing tank headspace above the supply of cryogenic liquid; b. a receiving tank having a receiving tank headspace; c. a compressor having an inlet and an outlet; d. a compressor inlet line in fluid communication with the receiving tank headspace and the compressor inlet; e. a compressor outlet line in fluid communication with the compressor outlet and the headspace of the dispensing tank; f. a liquid transfer line in fluid communication with the dispensing tank and the receiving tank and configured to transfer cryogenic liquid from the dispensing tank to the receiving tank when the compressor is activated so as to transfer vapor from the headspace of the receiving tank to the headspace of the dispensing tank to create a pressure differential between the dispensing and receiving tanks; and g. an equalization line that selectively allows the vapor of the receiving tank to flow into the liquid space of the dispensing tank to keep overall system pressure from exceeding a predetermined level.
12. The transfer system of claim 11 further comprising a heat exchanger having an inlet in fluid communication with the headspace of the receiving tank and an outlet in fluid communication with the inlet of the compressor, said heat exchanger configured so that vapor from the headspace of the receiving tank is warmed in the heat exchanger before traveling to the inlet of the compressor.
13. The transfer system of claim 11 further comprising a compressor bypass line selectively in fluid communication with the headspaces of the dispensing and receiving tanks for equalizing pressures of the dispensing and receiving tanks.
14. The transfer system of claim 11 further comprising a sensor configured to sense a liquid level within the dispensing tank, said sensor in communication with a controller that is configured to deactivate the compressor when a liquid level within the dispensing tank drops below a predetermined level.
15. The transfer system of claim 11 further comprising a sensor configured to sense a liquid level within the receiving tank, said sensor in communication with a controller that is configured to deactivate the compressor when a liquid level within the receiving tank exceeds a predetermined level.
16. A cryogenic fluid transfer system comprising: a. a dispensing tank having a dispensing tank headspace, said dispensing tank configured to store a supply of cryogenic liquid with the dispensing tank headspace above the supply of cryogenic liquid; b. a receiving tank having a receiving tank headspace; c. a compressor having an inlet and an outlet; d. a compressor inlet line in fluid communication with the receiving tank headspace and the compressor inlet; e. a compressor outlet line in fluid communication with the compressor outlet and the headspace of the dispensing tank so that when the compressor is activated, vapor from the headspace of the receiving tank flows to the headspace of the dispensing tank so as to create a pressure differential between the dispensing and receiving tanks; f. a liquid transfer line in fluid communication with the dispensing tank and the receiving tank and configured to transfer cryogenic liquid from the dispensing tank to the receiving tank due to the pressure differential between the dispensing and receiving tanks; and g. a compressor bypass line selectively in fluid communication with the headspaces of the dispensing and receiving tanks for equalizing pressures of the dispensing and receiving tanks.
17. The transfer system of claim 16 further comprising a heat exchanger having an inlet in fluid communication with the headspace of the receiving tank and an outlet in fluid communication with the inlet of the compressor, said heat exchanger configured so that vapor from the headspace of the receiving tank is warmed in the heat exchanger before traveling to the inlet of the compressor.
18. The transfer system of claim 17 wherein the heat exchanger is an ambient air heat exchanger.
19. The transfer system of claim 16 further comprising a sensor configured to sense a liquid level within the dispensing tank, said sensor in communication with a controller that is configured to deactivate the compressor when a liquid level within the dispensing tank drops below a predetermined level.
20. The transfer system of claim 16 further comprising a sensor configured to sense a liquid level within the receiving tank, said sensor in communication with a controller that is configured to deactivate the compressor when a liquid level within the receiving tank exceeds a predetermined level.
21. A cryogenic fluid transfer system comprising: a. a dispensing tank having a dispensing tank headspace, said dispensing tank configured to store a supply of cryogenic liquid with the dispensing tank headspace above the supply of cryogenic liquid; b. a receiving tank having a receiving tank headspace; c. a compressor having an inlet and an outlet; d. a compressor inlet line in fluid communication with the receiving tank headspace and the compressor inlet; e. a compressor outlet line in fluid communication with the compressor outlet and the headspace of the dispensing tank so that when the compressor is activated, vapor from the headspace of the receiving tank flows to the headspace of the dispensing tank so as to create a pressure differential between the dispensing and receiving tanks; f. a liquid transfer line in fluid communication with the dispensing tank and the receiving tank and configured to transfer cryogenic liquid from the dispensing tank to the receiving tank due to the pressure differential between the dispensing and receiving tanks; and g. a heat exchanger configured so that vapor from the headspace of the receiving tank is warmed in the heat exchanger before traveling to the inlet of the compressor, said heat exchanger including a first passage and a second passage in heat exchange relationship with one another, said second passage having an inlet in fluid communication with the headspace of the receiving tank and an outlet in fluid communication with the inlet of the compressor and said first passage having an inlet in fluid communication with the outlet of the compressor and an outlet in fluid communication with the headspace of the dispensing tank, said heat exchanger configured so that vapor warmed by compression in the compressor travels through the first passage of the heat exchange and heats vapor flowing through the second passage of the heat exchanger.
22. The transfer system of claim 21 further comprising a compressor bypass line selectively in fluid communication with the headspaces of the dispensing and receiving tanks for equalizing pressures of the dispensing and receiving tanks.
23. A cryogenic fluid transfer system comprising: a. a dispensing tank having a dispensing tank headspace, said dispensing tank configured to store a supply of cryogenic liquid with the dispensing tank headspace above the supply of cryogenic liquid; b. a receiving tank having a receiving tank headspace; c. a compressor having an inlet and an outlet; d. a compressor inlet line in fluid communication with the receiving tank headspace and the compressor inlet; e. a compressor outlet line in fluid communication with the compressor outlet and the headspace of the dispensing tank so that when the compressor is activated, vapor from the headspace of the receiving tank flows to the headspace of the dispensing tank so as to create a pressure differential between the dispensing and receiving tanks; f. a liquid transfer line in fluid communication with the dispensing tank and the receiving tank and configured to transfer cryogenic liquid from the dispensing tank to the receiving tank due to the pressure differential between the dispensing and receiving tanks; and g. an equalization line that allows the vapor of the receiving tank to flow into the liquid space of the dispensing tank to keep overall system pressure from exceeding a predetermined level.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
DETAILED DESCRIPTION OF EMBODIMENTS
(3) Embodiments of the disclosure provide a fluid transfer system and method that utilizes a compressor to move vapor from the receiving tank to the dispensing tank, thereby simultaneously decreasing the receiving tank's pressure and increasing the dispensing tank's pressure so that cryogenic liquid may flow freely though a separate connecting line.
(4)
(5) A liquid transfer line 13 connects the liquid side or liquid space of the dispensing tank 10 to the liquid side or liquid space of receiving tank 12. It is to be understood that portions of the dispensing and receiving tank interiors may be either vapor or liquid spaces, depending on the liquid levels in the tanks.
(6) A heat exchanger inlet line 14 connects the headspace of receiving tank 12 to the inlet of a heat exchanger 17. A compressor inlet line 15b extends between the outlet of the heat exchanger 17 and the inlet of a compressor 16, while a compressor outlet line 15a extends between the outlet of the compressor 16 and the headspace of dispensing tank 10.
(7) An explanation of how the transfer system of
(8) With tanks 10 and 12 starting at equal pressures, and at least dispensing tank 10 containing a supply of cryogenic liquid 6, compressor 16 is powered on. Compressor 16 creates a differential pressure between the two tanks 10 and 12 by drawing vapor from the headspace 8 of receiving tank 12 through line 14 and warming it in heat exchanger 17. The compressor 16 receives the warmed vapor via line 15b and pushes it via line 15a to the headspace 7 of dispensing tank 10, as indicated by arrow 18. The resulting differential pressure between tanks 10 and 12 causes the cryogenic liquid 6 to flow from dispensing tank 10 to receiving tank 12 through liquid line 13, as indicated by arrow 19. The transfer occurs until the compressor 16 is is turned off or all of the liquid has been removed from dispensing tank 10.
(9) The system of
(10) It should be noted that heat exchanger 17 of
(11)
(12) A liquid transfer line 23 connects the liquid side or liquid space of the dispensing tank 20 to the liquid side or liquid space of receiving tank 22. It is to be understood that portions of the dispensing and receiving tank interiors may be either vapor or liquid spaces, depending on the liquid levels in the tanks.
(13) A heat exchanger inlet line 24b connects the headspace of receiving tank 22 to the inlet of a heat exchanger passage 30b. A compressor inlet line 25b extends between the outlet of the passage 30b of the heat exchanger 28 and the inlet of the compressor 26. A compressor outlet line 25a leads from the outlet of the compressor to the inlet of passage 30a of the heat exchanger 28. A heat exchanger outlet line 24a leads from the outlet of heat exchanger passage 30a to the headspace 27 of dispensing tank 20.
(14) The system of
(15) With the exception of the heat exchanger 28, the transfer system of
(16) As with the system of
(17) Additional embodiments of the transfer system of the disclosure may include additional plumbing lines or valving to allow additional user benefits.
(18) One example is a bypass line that is equipped with a valve, indicated at 40 and 42, respectively, in
(19) As another example, with reference to
(20) Valves 42 (
(21) These and other modifications are possible, but do not detract or alter the general concept of this disclosure, which is the closed-loop transfer system utilizing a compressor acting on the vapor flowing between a dispensing and receiving tank.
(22) As an example only, the systems of the disclosure may be used to fill a bulk cryogenic tank from a cryogenic transport trailer. An example of a cryogen in such an application includes, but is not limited to, liquid hydrogen. As another example, the systems of the disclosure may be used to fill liquid hydrogen fuel tanks on vehicles at a liquid hydrogen refueling station.
(23) While the preferred embodiments of the disclosure have been shown and described, it will be apparent to those skilled in the art that changes and modifications may be made therein without departing from the spirit of the disclosure, the scope of which is defined by the following claims.