Claims
- 1. A fluid handling system for movement of fluid relative to a sump, said system comprising:
- one or more individual canisters each capable of holding a captured vacuum for use in withdrawing said fluid from a sump and self containing said fluid therein;
- a separate container having a captured high vacuum for supplying said high vacuum to a canister and for receiving therefrom sump fluid to be stored in said separate container; and
- connecting means between said canister and said container for near simultaneously transferring said fluid and vacuum between the separate container and said canister.
- 2. A system in accordance with claim 1 wherein said fluid is a waste liquid and said system further comprises:
- a system which is sealable and closed to the outside atmosphere for vacuum exchange and waste liquid transfer; and
- said connecting means is manually operable for removably connecting said canister to said container for said simultaneous vacuum and waste liquid transfer.
- 3. A method of using the system of claim 1 wherein said separate container has a larger volume than an individual canister and said method comprises the step of:
- borrowing vacuum in small quantities via said connecting means to and from a larger contained vacuum in said separate container; and
- concurrently exchanging small quantities of fluids between said canister and the separate container.
- 4. A method of using the system of claim 2 wherein said separate container has a larger volume than an individual canister and said method comprises the additional steps of:
- withdrawing and capturing in said individual canister a waste liquid from a sump; and
- said connecting means comprises means for sealably closing said entire system to the outside atmosphere.
- 5. The system of claim 1 wherein said separate container is an intermediate container and said connecting means is characterized by comprising:
- a gravity drain positioned between said smaller canister and said intermediate container.
- 6. The system of claim 5 wherein said gravity drain is further characterized by comprising:
- positioning means for holding said smaller canister with a lowest drain of said canister being located above a highest inlet of said intermediate container; and
- said connecting means comprises fluid coupling means connected between said canister drain and said inlet of said intermediate container.
- 7. The system of claim 2 wherein said connecting means of said closed system is further characterized by comprising:
- one or more valve means selectively operable for opening a fluid conducting means for vacuum and/or waste liquid exchange between the smaller canister and said intermediate container.
- 8. The system of claim 2 wherein said closed system is further characterized by removing waste liquid in said intermediate container by pressure stored in said intermediate or seperate container, and said system further comprises:
- a self-tending valve connected to said intermediate container for automatically capturing either vacuum or pressure in said intermediate container.
- 9. The system of claim 8 wherein said self-tending valve eliminates the requirement for a manual valve operation by a user desiring to switch from a vacuum mode to a pressure mode for said intermediate container, and said system further comprises:
- a fluid path through said self tending valve with sealable seats and seat closing means for automatically capturing and holding, in the intermediate container of the system, either vacuum or pressure above a threshold pressure amount.
- 10. The system of claim 8 wherein said intermediate container includes separate inputs for pressure and vacuum, and said seat closing means in self-tending valve comprises:
- a ball gate for capturing a vacuum in said intermediate container; and
- means associated with said ball gate for avoiding a false closure of said ball gate when a vacuum is applied to said vacuum input.
- 11. The system of claim 10 wherein said false closure avoidance means of said self-tending valve comprises:
- a sealable top and bottom port for said fluid path, with said top port being sized smaller than the bottom port, which bottom port is connected to the container; and
- said ball gate having a weight selected to avoid impulse lifting when vacuum is first applied to said top port.
- 12. The system of claim 10 wherein said false closure avoidance means of said self-tending valve comprises:
- a sealable top and bottom port for said fluid path, with said top port adapted for connection to a vacuum source and the bottom port being connected to the container; and
- spring means or a sliding weight located between said top port and said ball with said spring/weight having sufficient downward force to hold said ball in an unseated position relative to said top port to avoid an impulse closure tending to be caused by an upward impulse force.
- 13. The system of claim 12 wherein said self-tending device comprises:
- a calibrated threshold means for causing the pressure capture portion of said valve to remain dormant in a vacuum mode; and
- pressure retaining means associated with said threshold means for capturing said pressure in said container at, or above, said pressure threshold amount.
- 14. The system of claim 13 wherein said threshold means of said self-tending device comprises:
- a spring or a sliding weight having a predetermined weight equal to the force of said pressure in said container.
- 15. The system of claim 10 wherein said self-tending device further comprises:
- a pressure capturing and a vacuum capturing chamber each having check balls and ball seats.
- 16. The system of claim 15 wherein said self-tending device further comprises:
- said lower ball is a vacuum capturing ball and seats against a corresponding ball seat for capturing a desired vacuum in said container.
- 17. The system of claim 15 wherein said self-tending device further comprises:
- an upper pressure capturing ball and corresponding ball seat;
- a lower vacuum capturing ball and corresponding ball seat for capturing a desired vacuum in said container; and
- said chambers being separated by a divider which is configured with air passages and each of said balls being contained within its own chamber.
- 18. The system of claim 16 wherein said self-tending device, as a vacuum is attained in the valve chamber, further comprises:
- said lower ball operating as a high vacuum check valve by seating itself against its seat in order to capture the attained vacuum in the container; and
- said upper ball has a calibrated spring mounted above the ball and between said upper ball and its seat for holding an attained pressure in said container when said pressure collapses said spring and seats said ball against its seat.
- 19. The system of claim 17 wherein said self-tending device, as pressurized air is infused into the intermediate container, further comprises:
- the pressurized air acts upwardly against said upper ball and overcomes the spring and sealably seats same against its seat to thereby capture the pressure in said container tank; and
- said lower ball also moves upwardly during pressurizing, then rests loosely on its seat by gravity and does not contribute any function in this pressurized mode.
- 20. The system of claim 6 wherein
- said canister is hand portable, vacuum sealable and controllable for suctioning waste liquid from an external sump, for self containing the withdrawn liquid, and for transporting said captured waste liquid in said canister(s) by hand to the intermediate container;
- said system being further characterized by comprising:
- an open/close valve on said canister for capturing a high vacuum therein;
- a manually operable valve means for controllably exposing the captured vacuum in said canister to waste liquid to be suctioned from said sump;
- a connecting hose located between said manually operable valve and the sump; and
- transfer means connected between a drain for said canister and an inlet for said intermediate container.
- 21. A system comprised of:
- at least one sealable intermediate canister and one or more sealable portable canisters of differing volumetric size and differing partial vacuums;
- means for gravity liquid exchange between said intermediate and portable canisters; and
- means for vacuum equalization by a vacuum exchange between said portable canisters and said intermediate canister.
- 22. An apparatus recited in claim 21 wherein each canister within the closed system may contain both vacuum and liquid and the system further comprises:
- means for simultaneous vacuum exchange between two independent partially evacuated canisters wherein both may also contain differing amounts of liquid and differing levels of vacuum as well.
- 23. A fluid transfer method of exchanging liquid and vacuum in a closed system without exposing either liquid or vacuum to the atmosphere, said method comprising the steps of:
- containing a first vacuum and a liquid in a first sealed container;
- separately containing another liquid and second vacuum in a second sealed container;
- interconnecting the first and second sealed containers by a single liquid and vacuum conduit; and
- feeding liquid between the first and second containers through said conduit as the respective vacuums in said containers self-equalize.
- 24. The method of claim 23 wherein either or both of the containers may have a partial fill of liquid, and comprising the further method step of:
- placing the second container at a lower elevation than the first container;
- establishing a positive pressure in the second container relative to the first container; by the introduction of ambient air into said second container; and
- relying on that positive pressure to run liquid uphill through said conduit to said first container.
- 25. The method of claim 23 wherein either or both of the containers may have a partial fill of liquid, and wherein said feeding step further comprises:
- relying on gravity working within a vacuum from a higher location of said first container relative to said second container for said liquid exchange.
- 26. The method of claim 23 wherein said containers may have a partial fill of liquid and said second container is a series of separate individual canisters and said method comprises the further step of:
- coupling the individual ones of said series of canisters to said first container by a common shared conduit; and
- exchanging liquid and vacuum between said first container and any one or all of said individual canisters of said canister series.
- 27. The method of claim 23 wherein said canisters may have a partial fill of liquid and said method comprises the further step of:
- exchanging the same total liquid and vacuum as though said canister series and said second container were the equivalent to a single large tank volume.
- 28. The method of claim 23 wherein said liquid in said first container is of such viscosity as to have a reduced exchange speed, and said method further comprises:
- controllably exhausting the vacuum in said first container and thus reducing the net vacuum of the closed system in order to increase the speed of liquid exchange between the first and second container.
- 29. The method of claim 27 wherein said method step for increased exchange speed further comprises:
- developing a greater differential vacuum between the first and second containers in order to achieve said increased exchange speed for liquid transfer at a relatively small loss of vacuum for the total system.
- 30. An apparatus and system for portable transferring fluid from an external sump to an intermediate canister, and later in time from the intermediate canister to another waste receiving reservoir, said apparatus comprising;
- a pre-chargeable, sealable intermediate canister which may be evacuated to form a near absolute vacuum captured in the intermediate canister when the canister is disconnected from a vacuum source, and which canister may also be pressurized to capture and hold a positive pressure in said canister when the canister is disconnected from a pressure source;
- one or more pre-chargeable, sealable, smaller canisters which may be placed in temporary fluid and/or vacuum communication with said intermediate canister after said intermediate canister has been vacuum pre-charged; and
- closed system configuring means for exchanging both vacuum and fluid contents between said smaller canister and said intermediate canister.
- 31. A self-tending pressure or vacuum capture valve adapted for throughput connection to a container, which container may hold either a predetermined amount of vacuum or pressure, said valve comprising:
- a throughput path for applying either a vacuum or for closing against an applied pressure in the container;
- sealable port closure means operative for automatically capturing in said container either vacuum or pressure; and
- inhibiting means causing said closure means to remain dormant during evacuation of the container in a vacuum mode and yet operative, when the desired vacuum or pressure has been attained, for capture of said predetermined vacuum or pressure amount.
- 32. A self-tending pressure or vacuum capture valve in accordance with claim 31 wherein said throughput path has a pair of ends, and said valve further comprises:
- a pair of opposing sealing seats located at each end of said throughput path; and
- said capture means sealably closes against one of said seats for sealing pressure in said container and closes against the other seat for holding a desired vacuum in said container.
- 33. A self-tending pressure or vacuum capture valve in accordance with claim 32, said capture means of said valve further comprises:
- at least one ball movable in either of two directions for vacuum or pressure sealing at an appropriate seat and thereby interrupting said throughput path.
- 34. A self-tending pressure or vacuum capture valve in accordance with claim 33, said capture means of valve further comprising:
- said ball, when seated against said vacuum sealing seat, forming a vacuum check valve and when seated against a pressure sealing seat forms a pressure check valve.
- 35. A self-tending pressure or vacuum capture valve in accordance with claim 31, said capture means of valve further comprises:
- a pair of balls positioned in said throughput path, with one ball being a pressure sealing ball and the other ball being a vacuum sealing ball;
- a pair of seats in said throughput path; and
- one of said seats being a pressure sealing seat responsive to said pressure sealing ball seating thereon for capturing pressure supplied to the interior of said container and a vacuum sealing seat for capturing vacuum in said container when said vacuum ball is seated against said vacuum sealing seat.
- 36. A self-tending pressure or vacuum capture valve in accordance with claim 31, wherein said inhibiting means further comprises:
- a ball having a weight and/or volumetric flow rate selected to inhibit said capture means during a vacuum evacuation mode but serving as a vacuum check valve when evacuation is completed.
- 37. A self-tending pressure or vacuum capture valve in accordance with claim 31, said threshold means of said valve further comprises:
- a volumetric flow rate spring holding said ball away from said pressure seat during a vacuum evacuation mode but said spring capable of being overcome and acting as a pressure check valve when said threshold pressure amount is exceeded in the interior of said container.
- 38. A self-tending pressure or vacuum capture valve in accordance with claim 31, said inhibiting means of said valve further comprises:
- a sliding dowel and ball having a combined weight for holding said ball away from said pressure seat during a vacuum evacuation mode but said weight being overcome and allowing said ball to seat as a pressure check valve when said threshold pressure is exceeded.
- 39. A self-tending pressure or vacuum capture valve in accordance with claim 31 wherein said closure means further comprises:
- a single ball in a chamber having a top and bottom port in said throughput path.
- 40. A self-tending pressure or vacuum capture valve in accordance with claim 31 wherein said closure means further comprises:
- a pair of chambers formed in said throughput path; and
- a pair of balls, with one ball each located in one chamber each of said pair for selectively opening or closing said path into said respective chamber.
- 41. A self-tending pressure or vacuum capture valve in accordance with claim 40 wherein said closure means further comprises:
- a divider wall located between said chambers; and
- air passage holes through said chamber divider wall.
- 42. A self-tending valve connected to a container and having a pair of communicating ports through said valve and into said container, which container stores pressure and vacuum, said valve comprising:
- capture means operative in either a vacuum or a pressure mode for automatically capturing in said container either vacuum or a pressure amount equal to or in excess of a predetermined pressure threshold;
- means operative in conjunction with said capture means for causing said capture means to remain dormant during evacuation of the container in a vacuum mode; and
- said capture means responsive to said threshold means by capturing said pressure in said container when the amount of applied pressure in the container becomes equal to or higher than said predetermined threshold amount.
Parent Case Info
My invention of U.S. Pat. No. 5,405,247 ('247 patent) entitled Pre-charged Vacuum Fluid Charge/Disposal Apparatus, issued in April, 1995 on an original application filed in 1990. This continuation-in-part is from my divisional application of the same title filed on Feb. 28, 1995 having Ser. No. 08/395,805 scheduled for issuance shortly now U.S. Pat. No. 5,772,402.
US Referenced Citations (7)
Continuation in Parts (1)
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395805 |
Feb 1995 |
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