Slip ring assembly having a brush assembly axially applied to a conductive busbar ring
10109970 ยท 2018-10-23
Assignee
Inventors
- Michael E. Slipper (Ridley Park, PA, US)
- Tristan M. Wolfe (Philadelphia, PA, US)
- Daniel J. Simmons (Tucson, AZ, US)
Cpc classification
H01R39/10
ELECTRICITY
H01R39/00
ELECTRICITY
International classification
H01R39/00
ELECTRICITY
Abstract
The disclosed invention is a slip ring assembly that provides electrical power transfer to centrifugal turbomachinery while minimizing or eliminating the presence of wires in the flow path. The device transfers electrical power through a set of wires connected to a plurality of brushes that are held rotationally stationary, but allowed to displace axially or radially through a set of springs. The brushes make contact with conductive busbar rings, transferring electricity to the busbar rings. The busbar rings rotate with the centrifugal turbomachine with a set of wires that connect the busbar rings to the blades or other aerodynamic surfaces of the centrifugal turbomachine.
Claims
1. A slip ring assembly for providing electrical power transfer to a centrifugal turbomachine comprising: a conductive busbar ring fixed to an impeller shroud face of the centrifugal turbomachine; a brush assembly, with a front end and a rear end, wherein the front end of the brush assembly comprises a protruding conductive brush to connect to the conductive busbar ring on the impeller shroud face of the centrifugal turbomachine, and wherein the rear end of the brush assembly is axially connected to a bellmouth of the centrifugal turbomachine; and an electrical connector connected to the brush assembly to provide electrical power to the brush assembly from an external power source.
2. The slip ring assembly of claim 1, wherein a slot is machined into the front end of the brush assembly to accommodate a portion of the conductive brush.
3. The slip ring assembly of claim 2, wherein the conductive brush is spring loaded into the slot to secure a connection between the conductive brush and the conductive busbar ring.
4. The slip ring assembly of claim 1, wherein the rear end of the brush assembly is axially connected to an end of the bell mouth with bolts.
5. The slip ring assembly of claim 4, wherein an underside of the rear end of the brush assembly is contoured to conform to the shape of and an end of the bell mouth.
6. The slip ring assembly of claim 1, wherein electrical wires extend through the impeller shroud face to transfer electricity from the conductive bus bar to impeller blades of the centrifugal turbomachine.
Description
DRAWINGS
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DETAILED DESCRIPTION
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(8) The slip ring (105) can be a variety of diameters and widths and fabricated from a variety of materials to accommodate various voltage and current requirements. The materials include, but are not limited to, a combination of conductive and non-conductive metals, polymers, and composites such as graphite, gold, copper, etc. In this embodiment, the slip ring (105) has two conductive busbars (115 and 120) connected along its outer surface. The first conductive busbar (115) is sufficiently separated from the second conductive busbar (120) to prevent electrical shorting at higher voltages.
(9) The brush assembly (110), like the slip ring (105) can be fabricated from a variety of conductive and non-conductive materials. The brush assembly (110) has an oblong shape and is contoured to maintain radial contact with the slip ring (105). However, the brush assembly (110) can be shaped to work with alternate diameters and widths of slip rings. There are two conductive brushes (125) connected to each side of the inner surface of the brush assembly (110). The first conductive brush connects to the first conductive busbar (115) while the second conductive brush connects to the second conductive busbar (120). The conductive brushes (125) are backed by springs (not shown) to facilitate a constant connection to the conductive busbars (115 and 120). In alternate embodiments, multiple brush assemblies, with multiple brushes can be used to accommodate turbomachine requirements.
(10) Power and ground are delivered to the brush assembly (110) by wires: power (130) and ground (135). In this embodiment, the power wire (130) and ground wire (135) connect to the top side of the brush assembly (115). However, it is contemplated that the power (130) and ground (135) wires can connect to any part of the brush assembly (110). The power (130) and ground (135) wires are electrically connected to the conductive brushes (125) on the inner surface of the brush assembly (110) to provide electrical power and electrical ground to the entire slip ring assembly (100). In the embodiment shown in
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(13) The other end of the brush assembly (305) is fabricated with a slot (330) to accommodate a conductive brush (335) that fits securely into the slot (330) (with reference to each side of the slot). As with other embodiments, the brush assembly (300) can be fabricated from a variety of conductive and non-conductive materials. In alternate embodiments, instead of using a slot, the conductive brush (335) can be fabricated directly into an end of the brush assembly (305) or attached to the brush assembly (305) in some other way to maintain contact with the busbar on the centrifugal impeller shroud.
(14) Slip ring assembly (300) is seen more clearly attached to the turbomachine with an exploded view. The trough-shaped slot (330) of the brush assembly (305) is shown with the conductive brush (335) inserted. The conductive brush (335) is back-loaded with a spring (340) to facilitate constant contact with the conductive busbar (310). In this embodiment, the conductive busbar (310) is machined onto the face of the centrifugal impeller shroud (315). Electrical wires (345) extend through the centrifugal impeller housing (365) to transfer electricity from conductive busbar (310) to the impeller blades (350) and provide them with power. In alternate embodiments the number and position of these electrical wires (345) can be adjusted to provide power directly to various locations on the impeller blades (350). Power is provided to the brush assembly (300) via a single connector or wire (355) from an external power source (360). The slip ring assembly can be grounded in a number of ways including with a separate ring mounted in a different radial location on the turbomachine.
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(16) The brush assembly (415) is axially applied to the turbomachine. A wire (435) or other type of connector provides power to the brush assembly from an external source. This embodiment can also be grounded by either a separate ground formed by a conductive busbar/brush assembly located at a different radial location, or by a slip ring and wire connected through the shaft of the turbomachine. The brush assembly (415) may be secured to the bellmouth (440) of the turbomachine as shown in
(17) Although the invention has been described in detail with particular reference to preferred embodiments, other embodiments can achieve the same results. Variations and modifications of the present invention will be obvious to those skilled in the art and it is intended to cover, in the appended claims, all such modification and equivalents. The entire disclosure and all references, applications, patents and publications cited above are hereby incorporated by reference.