Claims
- 1. A dispensing system for viscous vegetable oil containing compositions comprising;
- a viscous fluid vegetable oil containing composition having a viscosity greater than 60 cps;
- a closed, self contained pressurized container for holding said fluid and delivering said fluid to a delivery passageway;
- said container having a reservoir for holding said fluid for dispensing;
- said delivery passageway having an outlet;
- a nozzle assembly having an inlet end and an outlet end;
- said nozzle assembly inlet interconnected with said outlet of said delivery passageway;
- said nozzle assembly having a mechanical break up chamber at said nozzle assembly inlet for receipt of fluid from said delivery passageway;
- a first and second passageway located in said nozzle assembly to split said fluid from said delivery passageway into two streams;
- each said first and second passageway having a cross sectional area less than one half the cross sectional area of said mechanical break up chamber so that the velocity of said fluid increases in the first and second passageway from its velocity in said delivery passageway;
- a first and second discharge means in fluid communication with said first and second passageway, said first discharge means having a first discharge axis to dispense the fluid from said nozzle assembly and said second discharge means having a second discharge axis to dispense fluid from said nozzle assembly;
- said first and second discharge means including a first and second discharge outlet to separately direct the fluid flow from the first and second passageways beyond the nozzle assembly prior to the intersection of fluid flowing along the first and second discharge axis;
- said first discharge axis and said second discharge axis intersecting at a collision point exterior to said nozzle assembly so that when said fluid is delivered from said reservoir and discharged to the atmosphere the fluid exiting from said first discharge means collides with the fluid exiting from said second discharge means to break the fluid into small droplets to form a wide angle mist for application to a surface.
- 2. The viscous fluid dispensing system of claim 1 further comprising:
- a third and fourth passageway located in said nozzle assembly adjacent to and in fluid communication with said first and second passageway;
- said third and fourth passageway having a smaller cross sectional area than that of said first and second passageway so that the velocity of the fluid increases from its velocity in said first and second passageway;
- said third and fourth passageway located intermediate to said first and second passageway and said first and second discharge means.
- 3. The dispensing system for viscous fluids according to claim 1 wherein said first and second passageways are conduit means and said pressurized container is selected from the group consisting of pressurized bladder pack cans and pressured aerosol cans.
- 4. The dispensing system for viscous fluids according to claim 2 wherein said first, second, third and fourth passageways are conduit means and said pressurized container is selected from the group consisting of pressurized bladder pack cans and pressurized aerosol cans.
- 5. The dispensing system for viscous fluids according to claim 3 wherein the sum of the cross sectional areas of said first conduit and said second conduit is from 1/2 to 1/200 of the cross sectional area of said mechanical break up chamber.
- 6. The dispensing system according to claim 5 wherein the sum of the cross sectional areas of said first and second conduit is 1/4 to 1/100 of the cross sectional area of said mechanical break up chamber.
- 7. The dispensing system according to claim 6 wherein the sum of the cross sectional areas of said first and second conduit is 1/4 to about 1/50 of the cross sectional area of said mechanical break up chamber.
- 8. The dispensing system according to claim 4 wherein the cross sectional area of said third and fourth conduits is between 1/2 and 1/200 of the cross sectional area of said mechanical break up chamber.
- 9. The dispensing system for viscous fluids according to claim 8 wherein said first and second conduits are the same size and the sum of cross sectional areas of said first conduit and said second conduit is about one-quarter of the cross sectional area of said mechanical break up chamber.
- 10. The dispensing system according to claim 6 wherein the cross sectional area of said third conduit is about one-twelfth the cross sectional area of said first conduit and the cross sectional area of said fourth conduit is about one-twelfth of the cross sectional area of the second conduit.
- 11. The dispensing system for viscous fluids according to claim 1 wherein said collision point is located less than one-half inch from said first and second discharge means.
- 12. The dispensing system for viscous fluids according to claim 1 wherein said collision point is located about one-quarter inch from said discharge means.
- 13. The dispensing system for viscous fluids according to claim 2 wherein said collision point is located less than one-half inch from said first and second discharge means.
- 14. The dispensing system for viscous fluids according to claim 2 wherein said collision point is located less than one quarter from said first and second discharge means.
- 15. The dispensing system for viscous fluids according to claim 1 further comprising an annular collar located on said nozzle assembly to hold said nozzle assembly in fluid communication with said delivery passageway.
- 16. The viscous fluids dispensing according to claim 2 further comprising:
- a first projection and a second projection located on the outlet end of said nozzle assembly;
- a v-shaped notch separating said first and second projections;
- said first and second discharge means located on opposite side walls of said v-shaped notch.
- 17. The viscous fluids dispensing system according to claim 15 further comprising a first projection and a second projection located on the outlet end of said nozzle assembly;
- a v-shaped notch separating said first and second projections;
- said first and second discharge means located on opposite side walls of said v-shaped notch.
- 18. The dispensing system according to claim 1 wherein the impingement angle C is from 40.degree. to 140.degree..
- 19. The system according to claim 3 wherein the closed pressurized system is an aerosol can having a suitable aerosol propellant.
- 20. The system according to claim 19 wherein said propellant is a non-hydrocarbon, gaseous propellant.
- 21. The system according to claim 20 wherein said propellant is selected from the group, air, nitrogen, carbon dioxide, nitrous oxide and argon.
- 22. The system according to claim 21 wherein the propellant is nitrous oxide
- 23. The system according to claim 21 wherein the propellant is air.
- 24. The system according to claim 4 wherein the closed pressurized system is an aerosol can having a suitable aerosol propellant.
- 25. The system according to claim 24 wherein said propellant is a non-hydrocarbon, gaseous propellant.
- 26. The system according to claim 25 wherein said propellant is selected from the group, air, nitrogen, carbon dioxide, nitrous oxide and argon.
- 27. A self contained, closed pressurized container for the delivery of a pressurized fluid comprising:
- a delivery passageway for the transfer of pressurized fluid from said container;
- a nozzle assembly having an inlet end and an outlet end;
- said nozzle assembly inlet interconnected with said outlet of said delivery passageway;
- said nozzle assembly having a mechanical break up chamber at said nozzle assembly inlet for receipt of fluid from said delivery passageway;
- a first and second passageway located in said nozzle assembly to split the fluid from said mechanical break up chamber into two streams;
- each said first and second passageway having a cross sectional area less than one half the cross sectional of the mechanical break up chamber so that the velocity of said fluid increases in the first and second passageway from its velocity in said mechanical break up chamber;
- a first and second discharge means in fluid communication with said first and second passageway, said first discharge means having a first discharge axis to dispense the fluid from said nozzle assembly and said second discharge means having a second discharge axis to dispense fluid from said nozzle assembly;
- said first and second discharge means including a first and second discharge outlet to separately direct the fluid flow from the first and second passageways beyond the nozzle assembly prior to the intersection of fluid flowing along the first and second discharge axis;
- said first discharge axis and said second discharge axis intersecting at a collision point exterior to said nozzle assembly so that when said fluid is delivered from said reservoir and discharged to the atmosphere the fluid exiting from said first discharge means collides with the fluid exiting from said second discharge means to break the fluid into small droplets to form a wide angle mist for application to a surface.
- 28. A closed self contained pressurized container according to claim 27 further comprising:
- a third and fourth passageway located in said nozzle assembly adjacent to and in fluid communication with said first and second passageway;
- the cross sectional areas of said third and fourth passageway being smaller than that of said first and second passageway so that the velocity of the fluid increases from its velocity in said first and second passageway;
- said third and fourth passageway located intermediate to said first and second passageway and said first and second discharge means.
- 29. The closed, self contained pressurized container according to claim 27 wherein said first and second passageway are conduit means.
- 30. The closed, self contained pressurized container according to claim 28 wherein said first, second, third and fourth passageways are conduit means.
- 31. The closed self contained pressurized container according to claim 30 wherein the sum of cross sectional areas of said first conduit and said second conduit is from 1/2 to 1/200 of the cross sectional area of said mechanical break up chamber.
- 32. The closed, self contained pressurized container according to claim 31 wherein the sum of the cross sectional areas of said first and second conduit is 1/4 to 1/100 of the cross sectional area of said mechanical break up chamber.
- 33. The closed, self contained pressurized container according to claim 32 wherein the sum of the cross sectional areas of said first and second conduits is 1/4 to about 1/50 of the cross sectional area of said mechanical break up chamber.
- 34. The closed, self contained pressurized container according to claim 30 wherein the cross sectional areas of said third and fourth conduits is between 1/2 and 1/200 of the cross sectional area of said mechanical break up chamber.
- 35. The closed, self contained pressurized container according to claim 34 wherein the first and second conduits are the same size and the cross sectional area of said first and second conduits is about one-quarter of the cross sectional area of the mechanical break up chamber.
- 36. The closed, self contained pressurized container according to claim 35 wherein said first and second conduits are the same size and the cross sectional area of said third conduit is about one-twelfth the cross sectional area of said first conduit and the cross sectional area of said fourth conduit is about onetwelfth of the cross sectional area of the second conduit.
- 37. The closed, self contained pressurized container according to claim 27 further comprising:
- a first projection and a second projection located on the outlet end of said nozzle assembly;
- a v-shaped notch separating said first and second projections;
- said first and second discharge means located on opposite side walls of said v-shaped notch.
- 38. The closed, pressurized container according to claim 27 wherein the impingement angle .beta. is from 40.degree. to 140.degree..
- 39. The container of claim 27 wherein said pressurized container is selected from the group consisting of pressurized bladder cans and pressurized aerosol cans.
- 40. The container of claim 39 wherein said pressurized container is an aerosol can containing a suitable aerosol propellant.
- 41. The container of claim 40 wherein said aerosol propellant is a non-hydrocarbon gaseous propellant.
- 42. The container of claim 41 wherein said aerosol propellant is selected from the group of air, nitrogen, carbon dioxide, nitrous oxide and argon.
- 43. The container of claim 42 wherein the aerosol propellant is nitrous oxide.
- 44. The container of claim 43 wherein the aerosol propellant is air.
- 45. The container of claim 28 wherein said pressurized container is selected from the group consisting of pressurized bladder cans and pressurized aerosol cans.
- 46. The container of claim 45 wherein said pressurized container is an aerosol can containing a suitable aerosol propellant.
- 47. The container of claim 46 wherein said aerosol propellant is a non-hydrocarbon gaseous propellant.
- 48. The container of claim 47 wherein said aerosol propellant is selected from the group of air, nitrogen, carbon dioxide, nitrous oxide and argon.
- 49. The container of claim 48 wherein the aerosol propellant is nitrous oxide.
- 50. The container of claim 48 wherein the aerosol propellant is air.
Parent Case Info
This is a Continuation-in-Part of co-pendent patent application Ser. No. 553,786 filed Jul. 12, 1990 now U.S. Pat. No. 5,088,699.
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
553786 |
Jul 1990 |
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