Claims
- 1. A rotary atomizer including a shaft rotatable about an axis, the shaft having a passageway extending longitudinally along the shaft, a bell cup coupled to the shaft, the bell cup having an interior defined by an axially rearward metal back region, an axially forward metal discharge edge, and a metal side region extending from the back region toward the discharge edge and terminating at the discharge edge, the back region including a port having a forward end, the back region including an intermediate portion between the forward end and the side region, the intermediate portion being oriented axially further away from the discharge edge than the forward end is axially from the discharge edge, and a feed tube oriented in the passageway and having a discharge end through which liquid coating material is discharged.
- 2. The apparatus of claim 1 wherein the back region, discharge edge and side region are all constructed from the same metal.
- 3. The apparatus of claim 1 wherein the metal back region, metal discharge edge and metal side region are all aluminum.
- 4. The apparatus of claim 1 wherein the metal back region, metal discharge edge and metal side region are all titanium.
- 5. The apparatus of claim 1 wherein the discharge end is oriented axially forward of the intermediate portion.
- 6. The apparatus of claim 5 wherein the discharge end is substantially coplanar with the forward end.
- 7. The apparatus of claim 5 wherein the port includes a somewhat frustoconical surface having a base oriented adjacent the intermediate portion.
- 8. The apparatus of claim 7 wherein the discharge end is substantially coplanar with the forward end.
- 9. The apparatus of claim 1 further including a high-magnitude potential supply coupled to the rotary atomizer for providing electrical charge to coating material discharged from the discharge edge.
- 10. The apparatus of claim 1 wherein the port includes a somewhat frustoconical surface having a base oriented adjacent the intermediate portion.
- 11. The apparatus of claim 1 wherein the discharge end is substantially coplanar with the forward end.
- 12. A bell cup for attachment to the shaft of a rotator to be rotated by the rotator to atomize coating material supplied to an interior of the bell cup, the bell cup interior defined by an axially rearward metal back region, an axially forward metal discharge edge, and a metal side region extending from the back region toward the discharge edge and terminating at the discharge edge, the back region including a port having a forward end through which coating material to be atomized is supplied to the interior, the back region including an intermediate portion between the forward end and the side region, the intermediate portion being oriented axially further away from the discharge edge than the forward end is axially from the discharge edge.
- 13. The apparatus of claim 12 wherein the back region, discharge edge and side region are all constricted from the same metal.
- 14. The apparatus of claim 12 wherein the metal back region, metal discharge edge and metal side region are all aluminum.
- 15. The apparatus of claim 12 wherein the metal back region, metal discharge edge and metal side region are titanium.
- 16. The apparatus of claim 12 further including a feed tube for supplying coating material to the interior, the feed tube having a discharge end substantially coplanar with the forward end, liquid coating material being discharged through the discharge end.
- 17. A method of atomizing coating material, the method including providing a bell cup having an interior defined by an axially rearward metal back region, an axially forward metal discharge edge, and a metal side region extending from the back region toward the discharge edge and terminating at the discharge edge, the back region including a port having a forward end, the back region including an intermediate portion between the forward end and the side region, the intermediate portion being oriented axially further away from the discharge edge than the forward end is axially from the discharge edge, rotating the bell cup about a rotational axis, and feeding liquid coating material to the port.
- 18. The method of claim 17 wherein providing a bell cup having an interior defined by an axially rearward metal back region, an axially forward metal discharge edge, and a metal side region includes providing a bell cup having an interior defined by an axially rearward back region, an axially forward discharge edge, and a side region, all of the same metal.
- 19. The method of claim 17 wherein providing a bell cup having an interior defined by an axially rearward metal back region, an axially forward metal discharge edge, and a metal side region includes providing a bell cup having an interior defined by an axially rearward aluminum back region, an axially forward aluminum discharge edge, and an aluminum side region.
- 20. The method of claim 17 wherein providing a bell cup having an interior defined by an axially rearward metal back region, an axially forward metal discharge edge, and a metal side region includes providing a bell cup having an interior defined by an axially rearward titaninum back region, an axially forward titaninum discharge edge, and a titaninum side region.
- 21. The method of claim 17 wherein feeding liquid coating material to the port includes feeding liquid coating material to the forward end.
- 22. The method of claim 17 wherein providing a back region including a port having a forward end includes providing a bell cup having a somewhat frustoconical surface having a base oriented adjacent the intermediate portion.
- 23. The method of claim 17 further including providing electrical charge to coating material discharged from the discharge edge.
- 24. A method of atomizing coating material, the method including providing a rotator having an output shaft rotatable about an axis, providing a passageway extending longitudinally along the shaft, coupling a bell cup to the shaft, defining in the bell cup an interior having an axially rearward metal back region including a port having a forward end, an axially forward metal discharge edge, and a metal side region extending from the back region toward the discharge edge and terminating at the discharge edge, also providing on the back region a metal intermediate portion between the forward end and the side region and oriented axially further away from the discharge edge than the forward end is axially from the discharge edge, and providing in the passageway a feed tube, terminating the feed tube at a discharge end substantially coplanar with the forward end, and discharging liquid coating material through the discharge end.
- 25. The method of claim 24 wherein defining in the bell cup an interior having an axially rearward metal back region, an axially forward metal discharge edge, and a metal side region, and providing on the back region a metal intermediate portion between the forward end and the side region includes defining in the bell cup an interior having an axially rearward back region, an axially forward discharge edge, and a side region, and providing on the back region an intermediate portion, all of the same metal.
- 26. The method of claim 24 wherein defining in the bell cup an interior having an axially rearward metal back region, an axially forward metal discharge edge, and a metal side region, and providing on the back region a metal intermediate portion between the forward end and the side region includes defining in the bell cup an interior having an axially rearward aluminum back region, an axially forward aluminum discharge edge, and an aluminum side region, and providing on the back region an aluminum intermediate portion.
- 27. The method of claim 24 wherein defining in the bell cup an interior having an axially rearward metal back region, an axially forward metal discharge edge, and a metal side region, and providing on the back region a metal intermediate portion between the forward end and the side region includes defining in the bell cup an interior having an axially rearward titaninum back region, an axially forward titaninum discharge edge, and a titaninum side region, and providing on the back region a titaninum intermediate portion.
- 28. The method of claim 24 wherein defining in the bell cup an interior having an axially rearward back region including a port having a forward end and an intermediate portion between the forward end and the side region and oriented axially further away from the discharge edge than the forward end includes providing a somewhat frustoconical surface having a base oriented adjacent the intermediate portion.
- 29. The method of claim 24 further including providing electrical charge to coating material discharged from the discharge edge.
- 30. A method of dispensing coating material including providing a bell cup having an axis of rotation, defining in the bell cup an interior including an axially rearward metal back region, an axially forward metal discharge edge, and a metal side region extending from the back region toward the discharge edge and terminating at the discharge edge, including in the back region a port having a forward end through which coating material to be atomized is supplied to the interior, including in the back region a metal intermediate portion between the forward end and the side region and oriented axially further away from the discharge edge than the forward end is axially from the discharge edge, rotating the bell cup about its axis, and feeding coating material to the forward end.
- 31. The method of claim 30 wherein defining in the bell cup a metal back region, a metal discharge edge, and a metal side region and including in the back region a metal intermediate portion includes defining in the bell cup a back region, a discharge edge, and a side region and including in the back region an intermediate portion, all of the same metal.
- 32. The method of claim 30 wherein defining in the bell cup a metal back region, a metal discharge edge, and a metal side region and including in the back region a metal intermediate portion includes defining in the bell cup an aluminum back region, an aluminum discharge edge, and an aluminum side region and including in the back region an aluminum intermediate portion.
- 33. The method of claim 30 wherein defining in the bell cup a metal back region, a metal discharge edge, and a metal side region and including in the back region a metal intermediate portion includes defining in the bell cup a titaninum back region, a titaninum discharge edge, and a titaninum side region and including in the back region a titaninum intermediate portion.
- 34. The method of claim 30 wherein feeding coating material to the forward end includes feeding coating material through a feed tube having a discharge end substantially coplanar with the forward end, liquid coating material being discharged through the discharge end.
- 35. The method of claim 30 further including providing electrical charge to coating material discharged from the discharge edge.
- 36. Apparatus for atomizing coating material, the apparatus including bell cup means for defining an interior including an axially rearward metal back region, an axially forward metal discharge edge, and a metal side region extending from the back region toward the discharge edge and terminating at the discharge edge, the back region including a port having a forward end, the back region including a metal intermediate portion between the forward end and the side region, the intermediate portion being oriented axially further away from the discharge edge than the forward end is axially from the discharge edge, means for rotating the bell cup means about a rotational axis, and means for feeding liquid coating material to the port.
- 37. Apparatus for atomizing coating material, the apparatus including bell cup means for defining an interior having an axially rearward metal back region including a port having a forward end, an axially forward metal discharge edge, a metal side region extending from the back region toward the discharge edge and terminating at the discharge edge, and a metal intermediate portion between the forward end and the side region and oriented axially further away from the discharge edge than the forward end is axially from the discharge edge, means for rotating the bell cup means about its axis, the means for rotating the bell cup means having an output shaft rotatable about an axis, the output shaft having a passageway extending longitudinally along the output shaft, means for coupling the bell cup means to the output shaft, and means in the passageway for supplying coating material to the interior, the means for supplying coating material terminating at a discharge end substantially coplanar with the forward end.
- 38. Apparatus for dispensing coating material including bell cup means defining an axis of rotation and an interior including an axially rearward metal back region, an axially forward metal discharge edge, and a metal side region extending from the back region toward the discharge edge and terminating at the discharge edge, the back region including port means having a forward end through which coating material to be atomized is supplied to the interior, the back region further including an intermediate portion between the forward end and the side region and oriented axially further away from the discharge edge than the forward end is axially from the discharge edge, means for rotating the bell cup about its axis, and means for feeding coating material to the forward end.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] Priority is claimed under 35 U.S.C. §119(e) to U.S. Provisional Patent Application Serial No. 60/335,195 filed Oct. 31, 2001, the disclosure of which is hereby incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60335195 |
Oct 2001 |
US |