Claims
- 1. An air-cooled shaft comprising:(a) an annular body having an inner surface and an outer surface, and including a first axial region and a second axial region, wherein the first axial region has a first outside diameter and the second axial region has a second outside diameter less than the first outside diameter; (b) at least two helical channels formed on the inner surface; and (c) a plurality of external surfaces disposed in axially spaced relationship on the outer surface of the annular body in the second axial region, each external surface extending radially in a direction away from a longitudinal axis of the annular body.
- 2. The seal according to claim 1 further comprising a flange disposed around the annular body.
- 3. The seal according to claim 2 wherein the flange is disposed at a location on the annular body defining a boundary between the first and second axial regions.
- 4. The seal according to claim 2 wherein the flange has a plurality of bores.
- 5. The seal according to claim 2 wherein each external surface has an outside diameter, the flange has an outside diameter, and the outside diameter of each external surface is equal to the outside diameter of the flange.
- 6. The seal according to claim 2 wherein:(a) the flange includes a group of bores circumferentially spaced at a radial distance from the longitudinal axis of the annular body; (b) each external surface includes a group of bores circumferentially spaced at a radial distance from the longitudinal axis of the annular body; and (c) a center of each one of the group of bores of the flange is coincident with a center of a corresponding one of the group bores of each external surface.
- 7. The seal according to claim 1 wherein each external surface defines an annular disk.
- 8. The seal according to claim 1 wherein each external surface has an outside diameter equal to the first outside diameter of the first axial region.
- 9. The seal according to claim 1 wherein each external surface defines an annular fin.
- 10. The seal according to claim 1 wherein the first axial region has a first inside diameter and the second axial region has a second inside diameter, and a first radial distance between the first inside and first outside diameters of the first axial region is greater than a second radial distance between the second inside and second outside diameters of the second outside region.
- 11. The seal according to claim 1 wherein the helical channels define respective flow paths, and one of the flow paths travels along the inner surface 180 degrees out of phase with respect to at least one of the other flow paths.
- 12. The seal according to claim 1 wherein the annular body is cylindrical.
- 13. The seal according to claim 1 wherein one of the external surfaces is disposed in coaxial relationship with a length of at least one of the helical channels.
- 14. The seal according to claim 1 wherein at least one of the helical channels has a rectangular profile.
- 15. An air-cooled shaft seal for preventing fluid from leaking outside a housing through a hole in the housing, wherein a rotatable shaft is disposed in the housing and mounted in the hole such that an outer portion of the shaft extends outside the housing, the seal comprising:(a) an annular body having a cylindrical inner surface and inserted onto the shaft, wherein a first section of the annular body is disposed in the hole of the housing between an inner surface of the hole and an outer surface of the shaft, and a second section of the body is disposed outside the housing; (b) means for removably securing the annular body in fixed relationship to the housing; (c) means disposed on the second section of the annular body for permitting the transfer of heat energy to the atmosphere from an annular space defined between the cylindrical inner surface of the annular body and the outer surface of the shaft; and (d) means including at least two helical channels formed on the inner surface of the annular body for permitting a volume of fluid contained in the housing to enter the annular space during rotation of the shaft, wherein the means for permitting the transfer of heat energy causes the volume of fluid to at least partially solidify in the annular space.
- 16. A gear pump for transporting a viscous material under pressure comprising:(a) a housing having a first side including a first hole; (b) a shaft disposed in the housing and extending through the first hole, the shaft having a first outer section disposed outside the housing beyond the first hole; (c) a first sealing member annularly disposed around the shaft and defining an annular space between an inner surface of the first sealing member and the outer surface of the shaft, the first sealing member having a first portion disposed in the first hole and a second portion disposed outside the housing, the first portion having a first outside diameter and the second portion having a second outside diameter less than the first outside diameter; (d) a plurality of external surfaces disposed in axially spaced relationship on the second portion of the first sealing member; and (e) at least two helical channels formed on the inner surface of the sealing member.
- 17. The gear pump according to claim 16 wherein the shaft operably communicates with a motor.
- 18. The gear pump according to claim 16 wherein at least one of the helical channels of the first sealing member has an end communicating with an interior of the housing.
- 19. The gear pump according to claim 16 wherein at least one of the helical channels extends in a direction away from the housing according to a helical orientation opposite to a turning orientation defined by rotation of the shaft.
- 20. The gear pump according to claim 16 further comprising a flange disposed on the first sealing member.
- 21. The gear pump according to claim 20 wherein each external surface has an outside diameter, the flange has an outside diameter, and the outside diameter of each external surface is equal to the outside diameter of the flange.
- 22. The gear pump according to claim 16 wherein each external surface has an outside diameter equal to the first outside diameter of the first portion.
- 23. The gear pump according to claim 16 wherein each external surface defines an annular disk.
- 24. The gear pump according to claim 16 further comprising a second sealing member annularly disposed around the shaft, the second sealing member having a first portion disposed in a second hole of a second side of the housing and a second portion disposed outside the housing, the second sealing member including a plurality of external surfaces disposed in axially spaced relationship on the second portion of the second sealing member.
- 25. The gear pump according to claim 16 wherein the annular space between the inner surface of the sealing member and the outer surface of the shaft contains a polymeric material.
- 26. A method for cooling a shaft seal comprising the steps of:(a) providing a sealing member adapted for insertion onto a rotatable shaft and for sealing the shaft at a location in which the shaft extends through a wall of a housing, wherein the sealing member defines an annular space between an inner surface of the sealing member and an outer surface of the shaft; (b) forming at least two channels on the inner surface of the sealing member to permit a volume of fluid disposed in the housing to flow into the channels and within the annular space; (c) reducing a cross-sectional area of a section of the sealing member; and (d) forming a plurality of axially spaced fins disposed on the section of reduced cross-sectional area and that extend radially outwardly therefrom.
CROSS-REFERENCE TO RELATED APPLICATION
This application is a Divisional of co-pending U.S. patent application Ser. No. 09/303,702 filed May 3, 1999, the contents of which are incorporated herein by reference.
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