Method for manufacturing a neutral ring for use in rotating electrical machine
10658898 ยท 2020-05-19
Assignee
Inventors
- Yasushi HAYASAKA (Tokyo, JP)
- Masanori Matsumoto (Tokyo, JP)
- Yasunori Otsuki (Tokyo, JP)
- Tetsuo Fujigaki (Tokyo, JP)
- Yoshihiro Yasui (Tokyo, JP)
- Motonobu Iizuka (Tokyo, JP)
- Masaaki Endou (Tokyo, JP)
- Atsushi Fukunaga (Tokyo, JP)
- Takeshi Nakayama (Tokyo, JP)
Cpc classification
H02K15/0062
ELECTRICITY
H02K15/10
ELECTRICITY
International classification
H02K15/00
ELECTRICITY
Abstract
A method for manufacturing a neutral ring includes connecting a cut-off neutral ring to an arc-shaped connection element. The method also includes filling an insulator between the cut-off neutral ring and a connection element. The neutral ring shunts the rotor coil in three phases.
Claims
1. A method for manufacturing a neutral ring for use in a rotating electrical machine, the method comprising steps of: cutting off the neutral ring in part, wherein the rotating electrical machine includes a rotor coil, a rotor core, a bind that receives centrifugal force of the rotor coil, and a lead-out wire that extends from the rotor coil and of which one end is connected to the rotor coil and the other end is connected to the neutral ring; connecting the cut-off neutral ring to an arc-shaped connection element; forming a plurality of members in the arc-shape to overlap with one another; and filling an insulator between the cut-off neutral ring and the connection element, wherein the neutral ring shunts the rotor coil in three phases.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(8) An embodiment of the present invention will be described with reference to
(9)
(10) The rotor 1 includes: a rotor core 9; a core back 10 that fixes the rotor core 9 to a rotor shaft 13; a rotor clamp 11; a key 12; a coil 3 including a K-phase coil 3a, an L-phase coil 3b, an M-phase coil 3c that penetrates into the rotor core 9; a bind 2 that receives centrifugal force of the coil 3; and a K-phase lead-out wire 4a, an L-phase lead-out wire 4b, an M-phase lead-out wire 4c that are connected to the coil 3 (one end of each lead-out wire is connected to the coil 3 and the other end thereof is connected to a neutral ring 6 including neutral ring members 6a, 6b and 6c, to connect the coil 3 to the neutral ring 6). An insulator 7 made of glass cloth, mica, epoxy or the like is filled between the coil 3 and the neutral ring 6.
(11) As shown in
(12) A neutral point of the K-phase coil 3a is connected to the K-phase neutral ring member 6a via the K-phase lead-out wire 4a with a K-phase brazing 5a or the like. The same applies to respective connections of the L-phase coil 3b and the M-phase coil 3c to the L-phase neutral ring member 6b and the M-phase neutral ring member 6c.
(13) The neutral ring members 6a, 6b, 6c of respective phase are members obtained by forming elongated conductive plates having low resistance, such as copper and aluminum alloy in an arc shape. The arc-shaped neutral ring members 6a, 6b, 6c for respective phases are overlapped in a circumferential direction and connected at respective connection points 14a, 14b, 14c by brazing or the like. This forms the neutral ring 6 that serves as the neutral point for each phase coil.
(14) The neutral ring members 6a, 6b, 6c for respective phases are arranged outermost at places where those are connected to the coils 3a, 3b, 3c for respective phases. As the neutral ring members 6a, 6b, 6c extend in the circumferential direction (clockwise direction in
(15) In
(16) The embodiment shown in
CB>A[formula 1]
(17) By satisfying the formula 1, the neutral ring members 6a, 6b, 6c are formed to be ring springs cut in part. Therefore, the neutral ring members 6a, 6b, 6c have low rigidity against a load in a radial direction to easily follow deformation of the coils 3a, 3b, 3c and the lead-out wires 4a, 4b, 4c in the radial direction. Thus, stress caused by the deformation of the coils 3a, 3b, 3c and the lead-out wires 4a, 4b, 4c in the radial direction which the neutral ring members 6a, 6b, 6c receive can be reduced. In addition, though being different from
B>CA[formula 2]
(18) In this case, the neutral ring 6 is formed in double layers to allow for reducing a mass of the neutral ring 6.
(19) The neutral ring members 6a, 6b, 6c may be formed in double layers or triple layers. At this time, each of the neutral ring members 6a, 6b, 6c is arranged as a single body entity with an insulator 8 such as a glass tape and a resin tape, and is connected to each of the connection points 14a, 14b, 14c by brazing or the like. Alternatively, each of the neutral ring members 6a, 6b, 6c may be not insulated as a single body entity but lashed with the glass tape for integration. In addition, overlapping portions of respective neutral ring members 6a, 6b, 6c may have resin to slide with each other. In the same manner, the neutral ring members 6a, 6b, 6c may not be connected by brazing or the like at the connection points 14a, 14b, 14c, but may be contacted by lashing connection or by a structure such as a pin, a bolt or a dovetail groove with which the connection points and the neutral ring members can slide to each other.
(20) Referring to
(21) The K-phase neutral ring member 6a will be described as an example of alteration. At first, the neutral ring 15 is separated from the insulator 7. Since being adhered or lashed by the glass tape or the like to the insulator 7, the neutral ring 15 is separated by cutting off the glass tape or the like. At this time, the insulator 7 should not be broken, nor removed to a large extent.
(22) Then, the neutral ring 15 is cut off in part from a cutting position 15a to a cutting position 17a. The cutting position 15a is around the brazing 5a between the lead-out wire 4a and the neutral ring 15 but does not affect the connection by the brazing 5a. In this example, the cutting position is located at the left side of the brazing 5a. The cutting position 17a is located between the K-phase and L-phase coils where jumper wires and/or lead wires to an outside of the rotor are not interrupted. Further, the cutting position 17a is located away from the L-phase coil to allow the neutral ring 15 to have sufficient flexibility after the neutral ring 15 is cut off. Cutting off the ring at a position to allow the ring to have flexibility facilitates connecting the neutral rings to be described later. In the same manner as the cutting positions for K-phase neutral ring, the respective cutting positions 15b, 17b, and cutting positions 15c, 17c of the L-phase and M-phase coils are positions offset from positions of the K-phase coil by amount of distance between respective two coils.
(23) Next, new connection elements 18 of the neutral ring in an arc shape (
(24) The K-phase neutral ring 21a is arranged along an inner circumference of the insulator 7, and is overlapped by the M-phase neutral ring member 6c around the lead-out wire 4c of the M-phase coil 3c. Accordingly, the K-phase neutral ring 21a is arranged at an inner circumference side of the M-phase neutral ring 21c that is formed with the connected M-phase neutral ring member 6c. The other end 20 of the connection element 18 (
(25) The cutting portions of the neutral ring for each phase, that is, the regions between the cutting positions 15a and 17a, between the cutting positions 15b and 17b, and between the cutting positions 15c and 17c, have gaps between the neutral rings 21a, 21b, 21c and the insulator 7 when the connection elements 18 are connected respectively as shown in
(26) In the present embodiment, the method shows how the neutral ring of the present invention can be formed from the related neutral ring. When the neutral ring is cut off to connect to the connection element, the length of the connection element is determined in consideration of rotor balance. In some cases, balance weights in consideration of the rotor balance may be placed in the regions where the insulators 22a, 22b, 22c are filled with.
(27) Finally, advantages of the present invention are described with reference to
central angle 1<central angle 2[formula 3]
is true, the following formula can be derived from calculations for beams.
displacement 1<displacement 2[formula 4]
(28) Therefore, the neutral ring having a flexible structure can be obtained by overlapping a plurality of arc-shaped members.