Claims
- 1. A method for insulating stators of rotary electric machines having field winding-carrying stator cores with central cylindrical bores for rotors, the face of the cylindrical bores having channels for holding the field windings, the field windings looped outside the channels to form top and bottom field windings, the insulating method comprising the steps of:
- placing the stator in an open-ended sleeve adapted to form a cylinder to surround the field windings;
- closing one of the open ends of the sleeve;
- placing the sleeve in an upright position with the open end up;
- pouring a solidifying vehicle into the stator bore;
- inserting in the stator bore a cylindrical piston adapted to slidably fit in the stator bore so that the piston and the sleeve form an annular space accommodating the field windings; and
- forcing the piston into the stator bore to force the vehicle into the annular space throughout the bottom field windings and up the channels to cover the top field windings so that the field windings are encapsulated.
- 2. A method in accordance with claim 1 wherein the sleeve is an outer casing which houses the rotary electric machine.
- 3. A method in accordance with claim 1 wherein the solidifying vehicle is a resin.
- 4. A method in accordance with claim 3 wherein the resin is chosen from the group consisting of polyepoxides, polycarbonates, polyesters, polyethylenes, polypropylenes, vinyl polymers, and mixtures thereof.
- 5. A method in accordance with claim 3 wherein the resin is a polyepoxide.
- 6. A method in accordance with claim 3 wherein the resin additionally comprises a filler.
- 7. A method in accordance with claim 6 wherein the vehicle has a high filler to resin ratio.
- 8. A method in accordance with claim 1 wherein the piston is provided with an outer plastic wrapper.
- 9. A method in accordance with claim 1 wherein the cylindrical sleeve comprises top and bottom cylindrical sleeve sections for square stators.
- 10. A method in accordance with claim 1 wherein closing one of the open ends comprises the step of closing one of the ends with a plate having an integral tapered retaining disk adapted to receive the sleeve.
- 11. A method in accordance with claim 1 further comprising the step of holding the sleeve and stator in place as the piston is forced into the stator bore.
- 12. A method in accordance with claim 1 wherein forcing the piston into the stator bore comprises the step of forcing the piston into the stator with a mechanical piston drive.
- 13. A method of insulating stators of rotary electric machines having a stator core carrying field windings and having a central bore, the face of the cylindrical bores having channels for holding the field windings, the insulating method comprising the steps of:
- placing the stator in an open ended sleeve forming a cylinder around the field windings of the stator;
- closing one of the open ends of the sleeve;
- introducing a solidifying vehicle into the stator bore;
- inserting in the stator bore a cylindrical piston adapted to slidably fit in the stator bore so that the piston and the sleeve form an annular space accommodating the field windings of the stator; and
- exerting pressure on the solidifying vehicle to drive the vehicle into the annular space throughout the bottom field windings and up the field windings channels to cover the top field windings, so that the field windings are encapsulated.
- 14. A method in accordance with claim 13 wherein the sleeve is an outer casing which houses the rotary electric machine.
- 15. A method in accordance with claim 13 wherein the sleeve comprises top and bottom sleeve sections.
- 16. A method in accordance with claim 13 wherein closing one of the open ends comprises the step of closing one of the ends with a plate having an integral tapered retaining disk adapted to receive the sleeve.
- 17. A method in accordance with claim 13 further comprising the step of holding the sleeve and stator in place as pressure is exerted on the solidifying vehicle.
- 18. A method in accordance with claim 13 wherein the solidifying vehicle is a resin.
- 19. A method in accordance with claim 13 wherein the resin is chosen from the group consisting of polyepoxides, polycarbonates, polyesters, polyethylenes, polypropylenes, vinyl polymers, and mixtures thereof.
- 20. A method in accordance with claim 18 wherein the resin is a polyepoxide.
- 21. A method in accordance with claim 18 wherein the resin additionally comprises a filler.
- 22. A method in accordance with claim 21 wherein the vehicle has a high filler to resin ratio.
- 23. A method in accordance with claim 13 wherein exerting pressure on the solidifying vehicle comprises the step of forcing a piston into the stator bore containing the vehicle, wherein the piston is adapted to fit slidably into the stator bore.
- 24. A method in accordance with claim 23 wherein forcing a piston into the stator bore comprises the step of forcing the piston into the stator with a mechanical piston drive.
- 25. A method in accordance with claim 23 wherein the piston is provided with an outer plastic wrapper.
Parent Case Info
This application is a divisional of U.S. application Ser. No. 08/613,842, filed Mar. 11, 1996, now U.S. Pat. No. 5,759,589 which is hereby incorporated by reference.
US Referenced Citations (8)
Divisions (1)
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Number |
Date |
Country |
Parent |
613842 |
Mar 1996 |
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