Claims
- 1. An aerosol injector, the injector comprising:
a) a liquid tube, with a liquid tube orifice for ejecting a liquid to be atomized; b) a propellant cap comprising:
i) an annular orifice,
(1) the annular orifice disposed around an inner cylinder,
(a) the inner cylinder passing through the propellant cap, (b) the inner cylinder having an interior, (2) the liquid tube disposed within the inner cylinder interior; ii) an interior region flowing to the annular orifice; iii) a gas line flowing a pressurized gas into the interior region,
(1) the gas line having a gas line heater, (2) the gas line heater heating the pressurized gas to form a heated pressurized gas; iv) a heat- transfer region disposed between the inner cylinder and the liquid tube; c) where the heated pressurized gas is ejected from the annular orifice surrounding the liquid ejected from the liquid tube orifice, atomizing and heating the liquid.
- 2. The injector of claim 1 wherein:
a) the heat transfer region is comprised of one or more materials with a thermal conductivity of less than or equal to 1625Wm °K.
- 3. The injector of claim 1 wherein:
a) the heat transfer region is comprised of one or more materials with a thermal conductivity of less than or equal to 1720Wm °K.
- 4. The injector of claim 3 wherein:
a) the material is selected from the group consisting of: essentially stagnant air, epoxy, plastic, stainless steel, glass fibers, fluorocarbons and glass.
- 5. The injector of claim 1 wherein:
a) the liquid is selected from the group comprising sealant, adhesive, coating, and paint.
- 6. The injector of claim 5 wherein:
a) the liquid tube has an essentially constant cross-sectional area in the heat transfer region.
- 7. The injector of claim 1 wherein:
a) the heat transfer region is comprised of one or more materials with a thermal conductivity of less than or equal to 1810Wm °K.
- 8. The injector of claim 1 wherein:
a) the heat transfer region is comprised of one or more materials with a thermal conductivity of less than or equal to 195Wm °K.
- 9. The injector of claim 1 wherein:
a) the heat transfer region contains an ambient air flow; b) the ambient air flow is drawn by the heated pressurized gas exiting the annular orifice; c) whereby the ambient air flow cools the liquid tube, and prevents boiling of the liquid.
- 10. A method of sealing a previously installed duct using the aerosol injector of claim 1 the sealing method comprising:
a) forming a duct access region through one side of a previously installed air duct,
i) the air duct having an air flow with an air flow direction; b) inserting the aerosol injector into the previously installed air duct through the access region; c) aligning the aerosol injector with the direction of air flow in the duct; d) activating an air flow within the duct; and e) spraying a sealant through the aerosol injector to seal the duct in the direction of the air flow.
- 11. The injector of claim 1 further comprising:
a) an aerosol spray cone angle of less than 20°.
- 12. The injector of claim 1 further comprising:
a) an aerosol spray cone angle of less than 15°.
- 13. The injector of claim 1 further comprising:
a) an aerosol spray cone angle of less than 10°.
- 14. A method of sealing a previously installed duct comprising:
a) forming a duct access region through one side of a previously installed air duct; b) inserting an injector into the previously installed air duct through the access region; c) aligning the injector with the longer direction of the duct; d) activating an air flow within the duct; and e) spraying a sealant through the injector to seal the duct in the direction of the air flow.
- 15. An aerosol injector, the injector comprising:
a) a liquid tube, with a liquid tube orifice for spraying a liquid; b) a gas cap comprising:
i) a gas nozzle,
(1) the gas nozzle having an open cylindrical wall, forming an outer diameter of an annular tube, (2) a gas line feeding into the gas nozzle, (3) a gas line heater for heating a pressurized gas in the gas line, forming a heated pressurized gas, (4) a venturi bore disposed within the gas nozzle and passing through the gas nozzle, (5) the venturi bore forming an inner diameter of the annular orifice; ii) the liquid tube passing through the venturi bore; iii) a venturi region disposed between the inner diameter of the annular orifice and the liquid tube; iv) where the pressurized gas introduced into the gas line is heated by the gas line heater, and exits the annular orifice as the heated pressurized gas, drawing ambient air through the venturi region, thereby forming a venturi flow; c) whereby the venturi flow cools both the inner annulus and the liquid tube, and thereby reduces heat transfer from the heated pressurized gas to the liquid tube.
- 16. An aerosol injector, the injector comprising:
a) a liquid tube, with a liquid tube orifice for ejecting a liquid to be atomized; b) a gas cap comprising:
i) an annular orifice having an inner diameter,
(1) the annular orifice disposed around the liquid tube,
(a) the liquid tube having a portion disposed within the gas cap, (b) the liquid tube forming the inner diameter of the annular orifice, (2) the liquid tube having a constant cross section in the gas cap disposed portion; ii) an interior region flowing to the annular orifice; iii) a gas line flowing a pressurized gas into the interior region,
(1) the gas line having a gas line heater, (2) the gas line heater heating the pressurized gas to form a heated pressurized gas; c) where the heated pressurized gas is ejected from the annular orifice surrounding the liquid ejected from the liquid tube orifice, atomizing and heating the liquid.
- 17. The injector of claim 16 wherein:
a) the liquid tube is comprised of one or more materials with a thermal conductivity of less than or equal to 2025Wm °K.
- 18. The injector of claim 16 wherein:
a) the liquid is selected from the group comprising sealant, adhesive, coating, and paint.
- 19. A method of sealing a previously installed duct using the aerosol injector of claim 16 the sealing method comprising:
a) forming a duct access region through one side of a previously installed air duct,
i) the air duct having an air flow with an air flow direction; b) inserting the aerosol injector into the previously installed air duct through the access region; c) aligning the aerosol injector with the direction of air flow in the duct; d) activating an air flow within the duct; and e) spraying a sealant through the aerosol injector to seal the duct in the direction of the air flow.
- 20. The injector of claim 16 further comprising:
a) an aerosol spray cone angle of less than 20°.
- 21. The injector of claim 16 further comprising:
a) an aerosol spray cone angle of less than 15°.
- 22. The injector of claim 16 further comprising:
a) an aerosol spray cone angle of less than 10°.
- 23. A spray nozzle apparatus having a spray tip formed of co-terminal, concentric elements, comprising:
a) an innermost liquid tube for delivering to a liquid exit tip a liquid to be sprayed; b) an inner hollow member surrounding said liquid tube and defining a thermally insulating space between the innermost liquid tube and the hollow member; and c) an outermost propellant cap defining a propellant delivery and exit space between an outer surface of the inner hollow member and an inner surface of the propellant cap, said propellant delivery and exit space communicating with a delivery tube for heated propellant gas, d) whereby the heated propellant gas exiting the propellant delivery and exit space mixes with liquid exiting the liquid exit tip to form a spray.
- 24. The spray nozzle apparatus of claim 23, wherein the liquid exit of the liquid tube and the propellant exit space essentially define a plane orthogonal to the spray direction.
- 25. The spray nozzle apparatus of claim 23, wherein the thermally insulating space is occupied by air flowing into the nozzle apparatus and out of the insulating space adjacent the liquid tip exit.
- 26. The spray nozzle of claim 23, wherein the thermally insulating space is provided by a thickness of the innermost liquid tube, said innermost liquid tube being one or more of the group comprising epoxy, plastic, stainless steel, glass fibers, fluorocarbons and glass.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to U.S. provisional patent application serial No. 60/338,562 filed Dec. 3, 2001, entitled “Compact aerosol-sealant injector system,” hereby incorporated by reference.
STATEMENT REGARDING FEDERAL FUNDING
[0002] This invention was made with U.S. Government support under Contract Number DE-AC03-76SF00098 between the U.S. Department of Energy and The Regents of the University of California for the management and operation of the Lawrence Berkeley National Laboratory. The U.S. Government has certain rights in this invention.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60338562 |
Dec 2001 |
US |