This application relates to a structure and method for reducing condensation about a cryogenic service connection.
Cryogenic fluids are utilized in any number of applications.
In one application, hydrogen and oxygen may be stored on a vehicle having fuel cells. At a service location, the hydrogen and oxygen tanks must be refilled. Typically, there is a vent connection and a supply connection. Bayonet couplings include a valve biased to close each of the two connections.
When the tank is being filled, both of the bayonet valves are moved to open positions and a fluid is supplied into a tank through one connection, while a second connection allows air or other gases to vent outwardly of the tank.
There are challenges in the prior art in that leakage or remaining fluid around the valve can freeze after disconnection from the service connection. This can damage the valve and can result in leakage or interfere with future refuelling.
The system has a cryogenic tank and a connection for supplying a fluid to the cryogenic tank. The fluid connection is provided with at least one valve which may be selectively opened to receive the fluid. A vacuum chamber housing is positioned on an opposed side of the valve from the tank. A vacuum source is operated to remove fluid from the vacuum housing while fluid is being supplied through the valve to the tank. A method is also disclosed.
These and other features may be best understood from the following drawings and specification.
Fluid connections 15 and 16 communicate with the tank 46. The fluid connections include valve members (poppets) 40 and 44 which seat against valve seats 39 and 42. A separate housing 26 is located on an opposed side of the valves 40 and 44 relative to the tank 46. A source of vacuum 28 is shown connected to the housing 26. In practice, the vacuum connection 28 may actually come with the service connection as illustrated in
A rotating cover plate 30 is shown closing off ports 32 and 34 into the housing 26. The plate 30 can be seen to have a fluid connection 36 which has been rotated out of alignment with one of the openings or ports 32 and 34.
As shown in
As shown in
During the entire operation illustrated across
The output of the vacuum may be monitored to detect leaking, and thus provide an indication of a failure or faulty valve connection.
The present invention, thus, provides for a service connection that is less likely to experience the concerns mentioned above.
Although an embodiment of this invention has been disclosed, a worker of ordinary skill in this art would recognize that certain modifications would come within the scope of this invention. For that reason, the following claims should be studied to determine the true scope and content of this invention.
This application claims priority to U.S. Provisional Application No. 61/919,857, filed Dec. 23, 2013.
This invention was made with government support under Contract No. N00014-12-D-0372-0001 awarded by the United States Navy. The Government has certain rights in this invention.
| Number | Date | Country | |
|---|---|---|---|
| 61919857 | Dec 2013 | US |