Claims
- 1. A normally closed valve for controlling flow of fluid from an inverted fluid reservoir, the valve comprising:
retaining means for coupling the valve to an inverted fluid reservoir; a central fluid opening for flow of fluid from the fluid reservoir through the valve; a valve post slidably disposed within the central fluid opening, the valve post having a first end and a second end and a stem portion, the first end of the valve post having a sealing means adapted to seal the central fluid opening and prevent fluid flow through the valve in a normally closed position; a resilient biasing means coupled to the valve post, the biasing means creating a biasing force for seating the sealing means of the valve post against the central fluid opening when the valve is in the normally closed position.
- 2. The valve of claim 1 in which the valve post further comprises a fluid path defined by:
a fluid inlet located on the stem portion; a fluid outlet located at the second end; and a hollow portion of the stem portion extending between the fluid inlet and the fluid outlet, such that when the valve is opened, fluid is able to flow around the sealing means of the valve post, into the fluid inlet, through the hollow portion of the stem portion
- 3. The valve of claim 1 in which the resilient biasing means is a flexible dome-shaped member.
- 4. The valve of claim 3 in which the flexible dome-shaped member is formed of silicone rubber.
- 5. The valve of claim 3 in which the flexible dome-shaped member is formed of flexible material.
- 6. The valve of claim 3 in which the flexible dome-shaped member has a dome portion and the valve post is coupled to the dome portion.
- 7. The valve of claim 1 in which the resilient biasing means is a spring member.
- 8. The valve of claim 1 in which the valve post has a plurality of axial ribs extending longitudinally along the stem portion.
- 9. The valve of claim 1 in which the valve further comprises a valve cap portion, the central fluid opening disposed within the valve cap.
- 10. The valve of claim 1 in which the valve further comprises a valve cap portion, the central fluid opening disposed within the valve cap.
- 11. The valve of claim 10 in which the central fluid opening comprises central hollow shaft region.
- 12. The valve of claim 11 in which the valve post is slidably disposed within the hollow shaft region.
- 13. The valve of claim 11 in which the valve post has a plurality of axial ribs extending longitudinally along the stem portion, the axial ribs serving to guide the valve post as it moves slidably within the hollow shaft region.
- 14. The valve of claim 1 in which the retaining means further comprises a leakproof seal between the valve and the inverted fluid reservoir.
- 15. The valve of claim 1 further comprising an air vent for venting the fluid reservoir.
- 16. The valve of claim 1 further comprising an air vent, the air vent comprising a passageway for air from outside the fluid reservoir to enter the fluid reservoir.
- 17. The valve of claim 16 further comprising a restricting means for restricting the air passageway.
- 18. The valve of claim 17 in which the restricting means prevents fluid from the fluid reservoir from leaking through the air vent.
- 19. The valve of claim 17 in which the restricting means comprises a duck bill valve.
- 20. The valve of claim 17 in which the restricting means comprises a check valve.
- 21. The valve of claim 17 in which the restricting means comprises a ball and spring-type check valve.
- 22. The valve of claim 16 in which the air passageway is defined by a dip tube.
- 23. The valve of claim 16 in which the air passageway is defined by an elongated dip tube.
- 24. The valve of claim 17 in which the restricting means controls the flow rate of fluid flow from the valve.
- 25. The valve of claim 17 in which the restricting means controls the air flow rate through the air vent.
- 26. The valve of claim 25 in which the air flow rate is controlled to allow a vacuum to develop within the fluid reservoir, thereby controlling the flow rate of fluid through the valve.
- 27. The valve of claim 25 in which the air flow rate is controlled to allow a partial vacuum to develop within the fluid reservoir, thereby controlling the flow rate of fluid through the valve.
- 28. The valve of claim 1 further comprising a seat portion located circumferentially around the central fluid opening.
- 29. The valve of claim 1 in which the biasing force is sufficient to overcome the force of static fluid pressure created by fluid in the inverted fluid reservoir.
- 30. The valve of claim 1 in which the biasing force can be overcome by manual operation.
- 31. The valve of claim 1 further comprising an actuator coupled to the resilient biasing means to overcome the biasing force.
- 32. The valve of claim 1 further comprising an actuator coupled to the valve post to overcome the biasing force.
- 32. The valve of claim 1 further comprising a trigger-type actuator coupled to the resilient biasing means to overcome the biasing force.
- 33. The valve of claim 1 further comprising a trigger-type actuator coupled to the resilient biasing means to allow a user to overcome the biasing force with a single finger.
- 34. The valve of claim 2 further comprising a second sealing portion, the second sealing portion located on the stem portion between the fluid inlet and the second end of the valve post, the second sealing portion preventing fluid leakage between the valve post and the central fluid opening when the valve is open.
- 35. A fluid reservoir cap with integral, normally-closed fluid valve for dispensing fluid from an inverted fluid reservoir, the cap comprising:
retaining portion for mechanically coupling the fluid reservoir cap to a fluid reservoir; a valve cap portion disposed between the retaining portion and the fluid reservoir, the valve cap portion having a central hollow cylindrical post shaft with central fluid opening therethrough; a valve post disposed movably within the post shaft of the valve cap portion, the valve post having a first end and a second end, the valve post having a sealing portion adjacent the first end, the valve post biased in the direction of flow of fluid through the valve such that the sealing portion forms a fluid seal between the valve post and the central fluid opening, the valve post further having an internal hollow portion adjacent the second end defining a fluid path, the fluid path extending between a fluid inlet adjacent the sealing portion and a fluid outlet at the second end of the valve post; and a flex dome formed of flexible, resilient material, the flex dome disposed between the valve cap portion and the second end of the valve post, the flex dome attached to the valve post adjacent the second end of the valve post and at the arched portion of the flex dome, the flex dome biasing the valve post in the direction of flow of fluid through the valve.
- 36. The cap of claim 34 wherein the retaining portion comprises a fluid sealing portion such that when maintained in an inverted position, the fluid sealing portion prevents unintended leakage of fluid between the cap and the reservoir.
- 37. A decoupled fluid valve actuator system in which the actuator is decoupled from the valve, for controlled fluid distribution from a cleaning system having an inverted fluid reservoir with normally closed fluid valve, the fluid reservoir coupled to a fluid nozzle or manifold mounted on the cleaning system, the decoupled valve actuator system comprising:
trigger means for manual actuation of the decoupled actuator system; an actuator lever, the actuator lever having a pivot point between a first end and a second end; and a mechanical linkage between the trigger means and the actuator lever, the mechanical linkage for communicating an actuating force from the trigger means to the first end of the actuator lever such that when the actuating force is applied to the trigger means, the actuating lever pivots and the second end of the actuator lever is caused to impinge upon the fluid valve.
- 38. The decoupled fluid valve actuator system of claim 37 in which the trigger means is mounted on a handle portion of the cleaning system.
- 39. The decoupled fluid valve actuator system of claim 37 in which the trigger means is mounted within a handle portion of the cleaning system.
- 40. The decoupled fluid valve actuator system of claim 37 in which the mechanical linkage comprises a pull rod.
- 41. The decoupled fluid valve actuator system of claim 40 in which the pull rod has a proximal end and a distal end, and in which the proximal end of the pull rod is in mechanical contact with the trigger means and the distal end of the pull rod is in mechanical contact with the first end of the actuator lever.
- 42. The decoupled fluid valve actuator system of claim 40 in which the pull rod is further comprised of a plurality of mechanically connected sections.
- 43. The decoupled fluid valve actuator system of claim 42 in which the plurality of mechanically connected sections are coupled together using threaded couplings.
- 44. The decoupled fluid valve actuator system of claim 42 in which the plurality of mechanically connected sections are coupled together using quick-connect couplings.
- 45. The decoupled fluid valve actuator system of claim 42 in which the plurality of mechanically connected sections are coupled together using bayonet mounting-type couplings.
- 46. The decoupled fluid valve actuator system of claim 42 in which the plurality of mechanically connected sections are coupled together using disconnectable couplings.
- 47. The decoupled fluid valve actuator system of claim 42 in which the plurality of mechanically connected sections are coupled together using over-torque proof couplings.
- 48. The decoupled fluid valve actuator system of claim 42 in which the plurality of mechanically connected sections are coupled together using one-way assembly couplings.
- 49. The decoupled fluid valve actuator system of claim 42 in which the plurality of mechanically connected sections are coupled together using no-disassembly couplings.
- 50. A decoupled, normally closed fluid valve and actuator system in which the valve is decoupled from the actuator for use with a cleaning system which communicates fluid from an inverted fluid reservoir to a fluid nozzle or manifold mounted on the cleaning system, the decoupled valve and actuator system comprising:
a normally closed poppet valve connected to the fluid reservoir, the valve having a slidable valve post with sealing portion thereon; trigger means for manual actuation of the decoupled valve and actuator system; a decoupled actuator lever, the actuator lever having a pivot point between a first end and a second end; and a mechanical linkage between the trigger means and the actuator lever, the mechanical linkage for communicating an actuating force from the trigger means to the first end of the actuator lever, such that when the fluid reservoir is inverted and coupled to the cleaning system with the valve post in proximity with the second end of the actuator lever and an actuating force is applied to the trigger means, the actuating force is communicated through the mechanical linkage to the first end of the decoupled actuator lever causing the lever to pivot about its pivot point and the second end to impinge upon the valve post, thereby communicating the actuating force directly to the slidable valve post of the poppet valve.
RELATED INVENTIONS
[0001] This Application is a Divisional of related pending U.S. patent application Ser. No. 09/689,433 filed Oct. 11, 2000 entitled ADVANCED CLEANING SYSTEM, which is incorporated herein by reference in its entirety, and claims any and all benefits to which it is entitled therefrom. This application is also related to and incorporates by reference, in its entirety, U.S. Provisional Patent Applications Serial Nos. 60/192,040 and 60/317,911 filed Mar. 24, 2000 and September 6, respectively, and claims any and all benefits to which it is entitled therefrom.
Provisional Applications (2)
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Number |
Date |
Country |
|
60192040 |
Mar 2000 |
US |
|
60317911 |
Sep 2001 |
US |
Divisions (1)
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Number |
Date |
Country |
Parent |
09689433 |
Oct 2000 |
US |
Child |
10234959 |
Aug 2002 |
US |