Claims
- 1. A progressive cavity pump comprising:
- a stator, said stator formed of a unitary support section having an outer cylindrical surface and a bonded internal helical surface section, said support section comprised of a substantially non-resilient composite material body formed of a filament fiber impregnated with a thermal setting resin; and
- said helical surface section comprised of a bonded resilient elastomer material.
- 2. A progressive cavity pump comprising:
- a stator, said stator formed of a unitary support section having an outer cylindrical surface and a bonded internal helical surface section, said support section comprised of a substantially non-resilient composite material formed of a filament fiber from the group of carbon fibers, boron fibers, ceramic fibers, glass fibers, thermoplastic fibers, natural fiber, metallic fibers, and synthetic fibers which are impregnated with a thermal setting resin;
- said helical surface section comprised of a bonded resilient elastomer material;
- a helical rotor operational within said stator; and
- means to rotate said rotor.
- 3. The pump of claim 2 wherein said rotor is a rigid composite.
- 4. The pump of claim 2 wherein said means to rotate said rotor includes a composite material flex shaft, said flex shaft comprised of a body formed of spaced metal end fittings for connection to said means to rotate and to said rotor, a flexible and axial mandrel connected to each said fitting, and composite filament and resin windings around said mandrel to create said body.
- 5. The pump of claim 4 wherein said filament windings and resin are wound at alternate angles of +45.degree. and -45.degree. to the axis of said mandrel.
- 6. The pump of claim 4 wherein a flex section is created in said flex shaft.
- 7. The pump of claim 6 wherein said portions of said filament windings and resin are wound at angles of 45.degree. to said axis while another portion is wound at <45.degree. to create said flex section.
- 8. The pump of claim 6 wherein said flex section is formed of an inward indentation.
- 9. The pump of claim 8 wherein said indentation is curved.
- 10. The pump of claim 9 wherein said curve is concave in axial cross-section.
- 11. The pump of claim 2 wherein said flex shaft comprises a body formed of spaced composite end fittings for connection to said means to rotate and to said rotor, a flexible and axial mandrel connected to each said fitting, and
- composite filament and resin windings around said mandrel to create said body.
- 12. The pump of claim 11 wherein said filament windings and resin are wound at alternate angles of +45.degree. and 45.degree. to the axis of said mandrel.
- 13. The pump of claim 11 wherein a flex section is created in said flex shaft.
- 14. The pump of claim 13 wherein said portions of said filament windings and resin are wound at angles of 45.degree. to said axis while another portion is wound at <45.degree. to create said flex section.
- 15. The pump of claim 13 wherein said flex section is formed of an inward indentation.
- 16. The pump of claim 15 wherein said indentation is curved.
- 17. The pump of claim 16 wherein said curve is concave in axial cross-section.
RELATED PATENTS AND APPLICATIONS
This is a continuation-in-part of application Ser. No. 08/447,122, filed May 22, 1995 now U.S. Pat. No. 5,611,397 which is a continuation-in-part of Ser. No. 08/194,835, filed Feb. 14, 1994, now U.S. Pat. No. 5,417,281, both of which are incorporated herein by reference.
US Referenced Citations (26)
Foreign Referenced Citations (3)
Number |
Date |
Country |
1528978 |
Jul 1969 |
DEX |
2040748 |
Feb 1972 |
DEX |
2713468 |
Sep 1978 |
DEX |
Continuation in Parts (2)
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Number |
Date |
Country |
Parent |
447122 |
May 1995 |
|
Parent |
194835 |
Sep 1994 |
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