Claims
- 1. A method for filling a storage vessel with compressed natural gas, comprising:(a) substantially filling a first tank assembly with compressed natural gas from a gas source to a pressure greater than atmospheric; then (b) drawing hydraulic oil from a reservoir and pumping the hydraulic oil into the first tank assembly into direct contact with the gas contained therein, causing the gas in the first tank assembly to flow into a storage vessel as the first tank assembly fills with hydraulic oil; (c) while step (b) is occurring, supplying compressed natural gas from the gas source to the second tank assembly to a pressure greater than atmospheric, the pressure of the gas in the second tank assembly causing any hydraulic oil in the second tank assembly to flow into the reservoir; then (d) when the first tank assembly is substantially filled with hydraulic oil and the second tank assembly substantially filled with gas and emptied of any hydraulic oil, performing step (b) for the second tank assembly and step (c) for the first tank assembly; and (e) repeating step (d) until the storage vessel is filled with gas to a selected pressure.
- 2. The method according to claim 1, further comprising removing from the hydraulic oil absorbed gas after the hydraulic oil has returned from the tank assemblies to the reservoir and prior to the hydraulic oil being pumped back into the tank assemblies.
- 3. The method according to claim 1, further comprising providing each of the tanks with a hydraulic oil port on one end for ingress and egress of the hydraulic oil and providing each of the tanks with a gas port on an opposite end for ingress and egress of the gas.
- 4. The method according to claim 1, wherein the first tank assembly becomes filled with hydraulic oil at a different time than the second tank assembly becomes emptied of hydraulic oil.
- 5. The method according to claim 1, further comprising detecting the event when the first tank assembly is full of hydraulic oil and the event when the second tank assembly is emptied of hydraulic oil, then beginning to pump hydraulic oil into the second tank assembly only after both events have occurred, the events occurring at different times.
- 6. The method according to claim 1, further comprising:exposing the hydraulic oil in the reservoir to atmospheric pressure.
- 7. The method according to claim 1, wherein the pumping of step (b) is performed by a variable displacement pump that reduces displacement as the pressure in the storage vessel increases.
- 8. The method according to claim 1, wherein:step (a) comprises simultaneously pumping hydraulic oil at the same flow rates and pressures into a plurality of first tanks connected together in parallel, defining the first tank assembly; and step (c) comprises simultaneously filling with gas a plurality of second tanks connected together in parallel, defining the second tank assembly.
- 9. The method according to claim 1, wherein the pumping of step (b) is performed by two pumps of differing displacements, the pump with a larger displacement than the other pumping until the pressure of the gas in the storage vessel reaches a set level, then shutting off the pump with the larger displacement, and by the pump with the smaller displacement alone afterward until reaching the selected pressure in the storage vessel.
- 10. An apparatus for filling a storage vessel with a compressed natural gas, comprising:first and second tank assemblies, each of the tank assemblies adapted to be connected to a gas source for receiving compressed natural gas and to a storage vessel for delivering gas at a higher pressure than the pressure of the gas of the gas source, the tank assemblies being free of any pistons; a reservoir containing a quantity of hydraulic oil, the reservoir being connected to the tank assemblies and being open to atmospheric pressure; a pump having an intake connected to the reservoir for receiving the hydraulic oil and an outlet leading to the tank assemblies; and a position valve connected between the reservoir and the tank assemblies and between the pump and the tank assemblies for alternately supplying hydraulic oil to one of the tank assemblies and draining hydraulic oil from the other of the tank assemblies to the reservoir, the hydraulic oil being pumped coming into contact with the gas contained within each of the tank assemblies for forcing the gas therefrom into the storage vessel.
- 11. The apparatus according to claim 10, wherein the tank assemblies are vertically mounted with their upper ends connected to the storage vessel and also to the gas source and their lower ends connected to the position valve.
- 12. The apparatus according to claim 10, further comprising at least one check valve that prevents flow from the tank assemblies to the gas source.
- 13. The apparatus according to claim 10, wherein each of the tank assemblies comprises a plurality of tanks connected together in parallel.
- 14. The apparatus according to claim 10, further comprising:a pair of sensors for each of the tank assemblies, one of the sensors in each pair sensing when the hydraulic oil reaches a selected maximum level in the tank assemblies and providing a signal, and the other of the sensors in each pair sensing when the hydraulic oil reaches a selected minimum level in the tank assemblies and providing a signal; and a controller that receives the signals from the sensors and changes the position of the position valve in response thereto once both of the signals have been received.
- 15. The apparatus according to claim 10, further comprising:a degassing device cooperatively associated with the reservoir for removing absorbed gas in the hydraulic oil being returned to the reservoir.
- 16. A system for filling a storage vessel with a gas, comprising:a gas source for supplying compressed natural gas at a pressure greater than atmospheric; first and second tank assemblies, each of the tank assemblies having a gas port on one end and a hydraulic oil port on the other end, the tank assemblies being free of any pistons between the ends; a gas source line leading from the gas source to each of the gas ports for supplying gas to the first and second tank assemblies; a check valve in the gas source line to prevent flow from the first and second tank assemblies back to the gas source; a storage vessel; a storage vessel line leading from each of the gas outlets to the storage vessel for delivering gas from the first and second tank assemblies to the storage vessel; a check valve in the storage vessel line to prevent flow from the storage vessel back to the first and second tank assemblies; a position valve connected to the hydraulic oil ports of the tank assemblies; a reservoir for containing hydraulic oil the reservoir having a receiving line connected to the position valve for receiving hydraulic oil from each of the tank assemblies depending upon the position of the position valve, the reservoir being open to atmospheric pressure; a pump having an intake in fluid communication with the reservoir and an outlet line leading to the position valve for pumping hydraulic oil into each of the tank assemblies into direct contact with the gas contained therein, depending upon the position of the position valve; and a controller having a sensor that senses when the first tank assembly has reached a maximum level of hydraulic oil, and shifts the position valve to supply hydraulic oil from the pump to the second tank assembly and to drain hydraulic oil from the first tank assembly to the reservoir, the entry of the hydraulic oil into the second tank assembly forcing the gas to flow from the second tank assembly to the storage vessel, the draining of hydraulic oil from the first tank assembly allowing gas from the gas source to flow into the first tank assembly.
- 17. The system according to claim 16, wherein the tank assemblies are mounted with their gas ports at a higher elevation than their hydraulic oil ports for draining hydraulic fluid from the tank assemblies with the assistance of gravity.
- 18. The system according to claim 16, further comprising a degassing device cooperatively associated with the reservoir for removing absorbed gas in the hydraulic oil flowing into the reservoir.
- 19. The system according to claim 16, wherein the pump is a variable displacement pump.
- 20. The system according to claim 16, wherein the pump comprises a pair of fixed displacement pumps connected in parallel with each other, one having a larger displacement than the other.
Parent Case Info
This application claims the provisional filing date of application filed Aug. 23, 2001, Ser. No. 60/314,506 entitled “Wet Compressor System”.
US Referenced Citations (13)
Foreign Referenced Citations (1)
Number |
Date |
Country |
56092381 |
Jul 1981 |
JP |
Provisional Applications (1)
|
Number |
Date |
Country |
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60/314506 |
Aug 2001 |
US |