Claims
- 1. A planar carbon segment commutator assembly comprising:
an annular hub comprising electrical insulating material; a plurality of metallic conductor sections supported in an annular circumferentially-spaced array on the hub, each conductor section including a first front projection integrally extending from a front surface of each conductor section; a plurality of carbon commutator segments disposed on respective ones of the conductor sections and defining a flat composite annular front commutating surface, the front projections disposed in cavities in corresponding commutator segments; and the first front projection of each conductor section having a first cross-section parallel to and adjacent the back surface of a corresponding commutator segment and a second cross-section parallel to and spaced axially forward of the first cross-section, the second cross-section having a greater area than the first cross section to prevent withdrawal of the first front projection of each conductor section from its corresponding commutator segment and mechanically locking the commutator segments to their corresponding supporting conductor sections.
- 2. A planar carbon segment commutator assembly as defined in claim 1 in which the first front projection of each conductor section has a trapezoidal cross-section and is disposed within a complementary recess in a corresponding carbon segment.
- 3. A planar carbon segment commutator assembly as defined in claim 2 in which the hub includes a central rotational hub axis and the first front projections of the conductor sections together define a segmented composite first front projection ring coaxially disposed relative to the hub axis, the trapezoidal cross-sections of the first front projections being vertically and radially oriented relative to the hub axis.
- 4. A planar carbon segment commutator assembly as defined in claim 3 in which the first front projection of each conductor section includes a surface discontinuity and each carbon segment includes a corresponding discontinuity complementing and engaging the surface discontinuity of the corresponding conductor section projection.
- 5. A planar carbon segment commutator assembly as defined in claim 4 in which the surface discontinuities comprise grooves formed into a front face of each first front projection and are oriented radially relative to the hub axis.
- 6. A planar carbon segment commutator assembly as defined in claim 1 in which a second front projection extends from the front surface of each conductor section and engages a complementary recess in a corresponding carbon segment, the second front projections of the conductor sections together defining a segmented composite second front projection ring concentrically disposed relative to the first front projection ring.
- 7. A planar carbon segment commutator assembly as defined in claim 1 in which each conductor section includes an integral first back projection integrally extending from a back surface of each conductor section and disposed in cavities in the hub.
- 8. A planar carbon segment commutator assembly as defined in claim 7 in which the first back projection of each conductor section has a first cross-section parallel to and adjacent a front surface of a corresponding commutator segment and a second cross-section parallel to and spaced axially aft of the first cross-section, the second cross-section having a greater area than the first cross section.
- 9. A planar carbon segment commutator assembly as defined in claim 8 in which the first back projection of each conductor section has a trapezoidal cross-section and is disposed within a complementary recess in the hub.
- 10. A planar carbon segment commutator assembly as defined in claim 9 in which the first back projections of the conductor sections together define a segmented composite first back projection ring coaxially disposed relative to the hub axis, the trapezoidal cross-sections of the first back projections being vertically and radially oriented relative to the hub axis.
- 11. A planar carbon segment commutator assembly as defined in claim 10 in which the first back projection of each conductor section includes a surface discontinuity and the hub includes a corresponding discontinuity complementing and engaging the surface discontinuity of the corresponding conductor section projection.
- 12. A planar carbon segment commutator assembly as defined in claim 11 in which the surface discontinuities comprise grooves formed into a back surface of each first back projection and are oriented radially relative to the hub axis.
- 13. A planar carbon segment commutator assembly as defined in claim 10 in which a second back projection extends from the back surface of each conductor section and engages a complementary recess in, the second back projections of the conductor sections together defining a segmented composite second back projection ring concentrically disposed relative to the first back projection ring.
- 14. A method for making a planar carbon segment commutator that includes a plurality of metallic conductor sections supported in an annular circumferentially-spaced array on a hub comprising electrical insulating material, each conductor section including a first front projection integrally extending from a front surface of each conductor section and embedded in one of a plurality of carbon commutator segments, the commutator segments defining a flat composite annular front commutating surface; the method including the steps of:
forming an annular conductor substrate with a first annular front projection extending integrally and axially from a front surface of the substrate; forming an annular carbon disk on the conductor substrate by overmolding a carbon compound onto the front surface of the conductor substrate and around the first annular front projection and allowing the compound to harden; providing an annular hub comprising an insulating material; connecting the conductor substrate to a front surface of the hub; and forming electrically isolated, circumferentially spaced commutator segments and corresponding mechanically interlocked conductor sections by forming radial cuts through the annular carbon disk and the metal substrate, respectively.
- 15. The method of claim 14 in which the step of forming the annular conductor substrate includes:
casting the conductor substrate from a first metallic material; and stamping the conductor substrate from a metal blank.
- 16. The method of claim 14 in which the step of forming the annular conductor substrate includes providing a coating on the first metallic material, the coating comprising a metallic material more conductive than the first metallic material.
- 17. The method of claim 14 in which the step of forming the annular conductor substrate includes forming the first annular front projection to include a distal end cross-sectional area greater than a base end cross sectional area of the first front projection.
- 18. The method of claim 14 in which the step of forming an annular carbon disk on the conductor substrate includes compression molding carbon onto the front surface of the conductor substrate and around the first annular front projection.
- 19. The method of claim 14 in which:
the step of forming the conductor substrate includes forming a second annular front projection concentric with the first annular front projection; and the step of forming an annular carbon disk on the conductor substrate includes molding carbon around the second annular front projection.
- 20. The method of claim 14 in which the step of forming a conductor substrate includes forming a first circular back projection that extends integrally and axially from a back surface of the substrate.
- 21. The method of claim 20 in which:
the step of forming the first circular back projection includes forming a circular back projection having a distal end cross-sectional area greater than a base end cross sectional area of the first front projection; and the steps of providing a hub and connecting the conductor substrate to the hub include molding insulating material onto the back surface of the metal substrate and around the first circular back projection.
- 22. The method of claim 20 in which the step of forming a conductor substrate includes forming a second circular back projection that extends integrally and axially from the back surface of the substrate and is concentric with the first circular back projection.
- 23. The method of claim 22 in which:
the step of forming the second back projection includes forming a second back projection having a distal end cross-sectional area greater than a base end cross sectional area of the first front projection; and the steps of providing a hub and connecting the conductor substrate to the hub include compression molding insulating material onto the back surface of the metal substrate and around the second circular back projection.
Parent Case Info
[0001] This Application is a Divisional Application of Ser. No. 09/629,922, filed on Jul. 31, 2000.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09629922 |
Jul 2000 |
US |
Child |
09962764 |
Sep 2001 |
US |