WO2017149934A1 - Structure d'enroulement pour stator de machine électrique tournante - Google Patents

Structure d'enroulement pour stator de machine électrique tournante Download PDF

Info

Publication number
WO2017149934A1
WO2017149934A1 PCT/JP2017/000492 JP2017000492W WO2017149934A1 WO 2017149934 A1 WO2017149934 A1 WO 2017149934A1 JP 2017000492 W JP2017000492 W JP 2017000492W WO 2017149934 A1 WO2017149934 A1 WO 2017149934A1
Authority
WO
WIPO (PCT)
Prior art keywords
point
continuous coil
round continuous
coil
input point
Prior art date
Application number
PCT/JP2017/000492
Other languages
English (en)
Japanese (ja)
Inventor
敦誉 小柴
貞一郎 千葉
Original Assignee
株式会社小松製作所
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 株式会社小松製作所 filed Critical 株式会社小松製作所
Priority to DE112017000116.1T priority Critical patent/DE112017000116T5/de
Publication of WO2017149934A1 publication Critical patent/WO2017149934A1/fr

Links

Images

Classifications

    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K3/00Details of windings
    • H02K3/04Windings characterised by the conductor shape, form or construction, e.g. with bar conductors
    • H02K3/28Layout of windings or of connections between windings
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K1/00Details of the magnetic circuit
    • H02K1/06Details of the magnetic circuit characterised by the shape, form or construction
    • H02K1/12Stationary parts of the magnetic circuit
    • H02K1/16Stator cores with slots for windings
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K15/00Methods or apparatus specially adapted for manufacturing, assembling, maintaining or repairing of dynamo-electric machines
    • H02K15/02Methods or apparatus specially adapted for manufacturing, assembling, maintaining or repairing of dynamo-electric machines of stator or rotor bodies
    • H02K15/024Methods or apparatus specially adapted for manufacturing, assembling, maintaining or repairing of dynamo-electric machines of stator or rotor bodies with slots
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K15/00Methods or apparatus specially adapted for manufacturing, assembling, maintaining or repairing of dynamo-electric machines
    • H02K15/04Methods or apparatus specially adapted for manufacturing, assembling, maintaining or repairing of dynamo-electric machines of windings, prior to mounting into machines
    • H02K15/0414Windings consisting of separate elements, e.g. bars, hairpins, segments, half coils
    • H02K15/0421Windings consisting of separate elements, e.g. bars, hairpins, segments, half coils consisting of single conductors, e.g. hairpins

Definitions

  • the present invention relates to a winding structure of a rotating electric machine stator that can suppress the height of a coil end.
  • a wave winding using a square wire is formed by connecting a plurality of pine needle-shaped segment conductors.
  • a wave shape is formed by joining the tip ends of the segment conductors that are installed adjacent to each other in the circumferential direction. As the number of windings increases, the magnetomotive force can be increased and the current can be reduced within the voltage saturation range.
  • the coils of each phase have two constituent coils connected in parallel, and the neutral ends, which are the ends on the neutral point side of the two constituent coils, are arranged side by side in the core radial direction.
  • the neutral ends which are the ends on the neutral point side of the two constituent coils, are arranged side by side in the core radial direction.
  • two neutral ends arranged side by side in the core radial direction are respectively connected in a state in which the connection conductor is sandwiched from both sides in the core radial direction.
  • connection points welding points
  • the crossover increases in proportion to the increase in the number of turns.
  • the feeding point of each phase can be connected from the outer peripheral side of the stator, the neutral point needs to be extended and connected from the inner peripheral side of the stator to the outer peripheral side, resulting in a high coil end. Or if it connects so that a connection conductor may be pinched
  • the present invention has been made in view of the above, and an object of the present invention is to provide a winding structure of a rotating electrical machine stator capable of suppressing the height of a coil end.
  • a winding structure of a rotating electrical machine stator has a predetermined slot in a stator core in which a plurality of teeth and a plurality of slots are alternately formed in the circumferential direction.
  • a winding structure of a rotating electrical machine stator in which coils are wound at a pitch, and an input point and an output point are formed on the lead side, and two rows of coils are wound in a circumferential direction at a predetermined slot pitch in two rows
  • the first two-continuous continuous coil and the first two-continuous continuous coil have the same structure and are arranged with a predetermined slot pitch shifted with respect to the circumferential direction with respect to the first two-continuous continuous coil.
  • a plurality of two-layer wave winding coils composed of two two-round continuous coils are arranged in the radial direction, and the input points and the output points of the first two-round continuous coils are arranged in the same radial direction, and The input point and the output point of the second two-round continuous coil are arranged in the same radial direction, and the output point and the inner peripheral side of the first two-round continuous coil on the outer peripheral side adjacent in the radial direction are arranged.
  • the input point of the first two-round continuous coil is sequentially connected to the input point of the second two-round continuous coil on the outer peripheral side adjacent in the radial direction and the second two-round continuous coil on the inner peripheral side.
  • the output point is sequentially connected, and the output point of the first two-round continuous coil on the innermost circumference and the input point of the second two-round continuous coil located on the second outermost layer from the innermost circumference
  • the output point of the two-round continuous coil is the first current of two one-phase coils that are double-star connected.
  • As a force point and a second current input point at least the first neutral point of each phase and the second neutral point of each phase are connected to segment conductors each having a slot insertion portion, and one layer in the radial direction. It is characterized by being arranged at positions shifted by minutes.
  • the winding structure of the rotating electrical machine stator is a rotating electrical machine stator in which a coil is wound in a predetermined slot pitch on a stator core in which a plurality of teeth and a plurality of slots are alternately formed in the circumferential direction.
  • a first two-turn continuous coil having a winding structure, in which an input point and an output point are formed on the lead portion side, and two rows of coils are wound in a circumferential direction at a predetermined slot pitch
  • the first A two-layer wave having the same structure as the two-turn continuous coil of FIG. 5 and comprising a second two-turn continuous coil arranged with the predetermined slot pitch shifted with respect to the circumferential direction with respect to the first two-turn continuous coil.
  • a plurality of wound coils are arranged in the radial direction, the input points and the output points of the first two-round continuous coil are arranged in the same radial direction, and the input of the second two-round continuous coil point And the output points are arranged in the same radial direction, and the output point of the first two-round continuous coil on the outer peripheral side adjacent in the radial direction and the input point of the first two-round continuous coil on the inner peripheral side, Are sequentially connected, and the input point of the second continuous coil on the outer peripheral side adjacent to the radial direction and the output point of the second continuous coil on the inner peripheral side are sequentially connected, and the innermost peripheral
  • the winding structure of the rotating electrical machine stator according to the present invention is the above invention, wherein the first two-round continuous coil and the second two-round continuous coil are pine needle-shaped segments from the lead portion side to the slot.
  • the conductor is inserted, the end of the segment conductor is welded on the side opposite to the lead portion, the output point of the first two-turn continuous coil on the outer peripheral side adjacent in the radial direction, and the first two turns on the inner peripheral side
  • the connection with the input point of the continuous coil and the connection between the input point of the second two-round continuous coil on the outer peripheral side adjacent in the radial direction and the output point of the second two-round continuous coil on the inner peripheral side And connected by a pine needle-shaped segment conductor having a slot insertion portion.
  • the first two-round continuous coil and the second two-round continuous coil intersect each other at a predetermined slot pitch in the radial direction. It is characterized by being wound.
  • the predetermined slot pitch is a value obtained by dividing the number of slots by the number of poles of the rotor.
  • the winding structure of the rotating electrical machine stator according to the present invention is characterized in that, in the above invention, the slot has a semi-closed slot shape.
  • the output point of the outer peripheral first continuous coil adjacent to the radial direction and the input point of the first peripheral continuous coil on the inner peripheral side are sequentially connected to be adjacent in the radial direction.
  • the input point of the second continuous coil on the outer peripheral side and the output point of the second continuous coil on the inner peripheral side are sequentially connected to output the first continuous coil on the innermost side.
  • the first neutral point and the second neutral point of the double star connection or the double star connection are made to the point and the input point of the second continuous coil located on the second outer peripheral side from the innermost periphery.
  • the output points of the two continuous coils of two are connected to the first input points of two one-phase coils that are double-star connected, and 2 input points, or the first neutral point and the second neutral point of a double star connection, and at least the first neutral point of each phase and the second neutral point of each phase are respectively inserted into slots.
  • Segment conductors having a portion are connected and arranged at a position shifted by one layer in the radial direction.
  • the two conductors that connect the neutral points of the two one-phase coils in parallel can be arranged adjacent to each other in the radial direction and do not overlap. For this reason, even in the case of double star connection, the height of the coil end on the lead portion side can be suppressed.
  • FIG. 1 is a diagram illustrating a state in which wave windings are wound around a stator core when a rotating electrical machine stator used in a rotating electrical machine such as a permanent magnet type rotating electrical machine is configured.
  • FIG. 2 is a perspective view showing a winding state of the first two-round continuous coil.
  • FIG. 3 is a view of the first two-round continuous coil developed linearly as seen from the lead portion side.
  • FIG. 4 is a perspective view showing a winding state when the first two-round continuous coil is arranged in the outer circumferential direction.
  • FIG. 5 shows a linear development of a two-layer wave winding coil in which a second two-turn continuous coil having the same configuration as that of the first two-turn continuous coil is shifted in the rotational direction by 6 slot pitches.
  • FIG. 6 is a perspective view showing a winding state of a two-layer wave winding coil in which a second two-turn continuous coil having the same configuration as that of the first two-turn continuous coil is shifted by six slot pitches in the rotational direction side. It is.
  • FIG. 7 is a cross-sectional view showing a winding state of the wave winding coil for one phase.
  • FIG. 8 is a diagram showing the connection between the first two continuous coils and between the second two continuous coils.
  • FIG. 9 is a diagram showing a winding state when the connection shown in FIG. 8 and the connection at the neutral point are pine needle shaped segment conductors.
  • 10 is a perspective view of the rotating electrical machine stator in the connected state shown in FIG.
  • FIG. 11 is a perspective view of another connection configuration of the rotating electric machine stator in the coupled state shown in FIG. 9 as seen from the lead portion side.
  • FIG. 12 is a perspective view of the rotating electrical machine stator as viewed from the side opposite the lead portion.
  • FIG. 13 is an explanatory diagram for explaining a connected state in the case of an eight-turn configuration using four two-layer wave winding coils.
  • FIG. 14 is an explanatory diagram for explaining a connected state in the case of a four-turn configuration using two two-layer wave winding coils.
  • FIG. 15 is an explanatory diagram for explaining a connected state in the case of a six-turn configuration using three two-layer wave winding coils.
  • FIG. 16 is an explanatory diagram for explaining a connection state in a 10-turn configuration using five two-layer wave winding coils.
  • FIG. 17 is an explanatory diagram for explaining a connection state in a 12-turn configuration using six two-layer wave winding coils.
  • FIG. 18 is an explanatory diagram for explaining a connected state in a 14-turn configuration using seven two-layer wave winding coils.
  • FIG. 19 is a generalized view of the connection relationship of the pine needle-shaped segment conductors for connecting the respective two-round continuous coils in the first two-round continuous coil and the second two-round continuous coil.
  • FIG. 20 is a generalized view of another connection relationship of the pine needle-shaped segment conductors for connecting the respective two-round continuous coils in the first two-round continuous coil and the second two-round continuous coil.
  • FIG. 21 is a cross-sectional view of the stator core in the case where the slot has a semi-closed slot shape.
  • FIG. 1 is a diagram showing a state in which a wave winding is wound around a stator core when a rotating electrical machine stator used in a rotating electrical machine such as a permanent magnet type rotating electrical machine is configured.
  • the stator core 1 has a plurality of teeth 2 and a plurality of slots 3 in the circumferential direction RT, which are regularly formed in an annular shape on the inner peripheral side, which is the region E side where the rotor is inserted. Yes.
  • 48 slots 3 are formed. Note that the number of poles of the rotor (not shown) is eight.
  • the rotating electric machine has a function of an electric motor and / or a generator.
  • the stator core 1 is configured by laminating a plurality of annular electromagnetic steel plates.
  • the winding wound around the stator core 1 is formed into a wave shape using a plurality of segment conductors 10. Both end portions of the pine needle-shaped segment conductor 10 are inserted into the slots 3 at a predetermined slot pitch in the direction of the central axis AX from the lead portion side (feeding portion side) 1a.
  • the portion of the inserted segment conductor 10 that protrudes from the opposite lead side 1b, that is, the portion that protrudes from the slot insertion portion, is bent so as to spread in the circumferential direction RT, and the tip 10a of the segment conductor 10 is adjacent to another adjacent segment conductor. 10 is welded to the tip 10a.
  • a first two-turn continuous coil CA1 which is a wave winding composed of a plurality of segment conductors 10 is formed.
  • winding is a square wire, especially a flat wire.
  • FIG. 2 is a perspective view showing a winding state of the first two-round continuous coil.
  • FIG. 3A is a view of the first two-round continuous coil CA1 developed linearly as viewed from the lead portion side 1a.
  • the tip ends 10a of the segment conductors 21 to 28 are connected in series by welding on the non-lead portion side 1b.
  • Both end portions of the segment conductors 22 to 24 and 26 to 28 are inserted into the slot 3 at a pitch of 6 slots.
  • the segment conductors 22, 26, 23, 27, 24, and 28 are inserted with a shift of one slot pitch.
  • the segment conductors 22 to 24 are arranged with a 6-slot pitch therebetween.
  • segment conductors 26 to 28 are arranged at a 6-slot pitch from each other.
  • the segment conductor 21 is arranged in the connection area EA, and the one inserted into the slot 3 at a 7-slot pitch is separated at the lead portion side 1a, and the segment conductor 21a having the input point a2 which is the separated end, It consists of the segment conductor 21b which has the output point a1 which is an edge part.
  • the segment conductor 25 in the connection area EA has a role of connecting the first coil to the second coil, and both ends thereof are inserted into the slots 3 at a pitch of 5 slots.
  • the segment conductors 25 disposed between the segment conductors 24 and 26 are disposed at a 6-slot pitch with respect to each of the segment conductors 24 and 26.
  • the welded portions T21 to T28 connect the tip ends of adjacent segment conductors on the side opposite to the lead portion 1b by welding.
  • the weld T21 connects the segment conductors 21a and 22 with each other.
  • the weld T22 connects the segment conductors 22 and 23.
  • the welded portion T23 connects the segment conductors 23 and 24 together.
  • the weld T24 connects the segment conductors 24 and 25.
  • the welded portion T25 connects the segment conductors 25 and 26.
  • the weld T26 connects the segment conductors 26 and 27.
  • the weld T27 connects the segment conductors 27 and 28.
  • the weld T28 connects the segment conductors 28 and 21b.
  • the current input from the input point a2 is sequentially, in the clockwise direction CW, segment conductor 21a, weld T21, segment conductor 22, weld T22, segment conductor 23, weld T23, segment conductor 24, weld T24, segment
  • the conductor 25 flows through the first round, and the segment conductor 25, the welded portion T25, the segment conductor 26, the welded portion T26, the segment conductor 27, the welded portion T27, the segment conductor 28, the welded portion T28, It flows through the segment conductor 21b and the second round of wave winding ends and reaches the output point a1.
  • the conductors arranged in the adjacent slots have the same current direction, for example, the conductors arranged at the slot position 6 and the slot position 7.
  • the first two-turn continuous coil CA1 is wound in a zigzag manner in the slot 3 every six slot pitches, and is adjacent to the radially adjacent layer L1 on the inner peripheral side and the layer L2 on the outer peripheral side. It is wound alternately.
  • the layer represents the winding position in the slot 3 and is shown as layers L1, L2,..., L8 sequentially from the inner periphery side to the outer periphery side.
  • each segment conductor is arranged in an arc shape along the circumferential direction in the stator core 1, the first winding and the second winding intersect at the lead portion side 1a and the non-lead portion side 1b. To do.
  • the segment conductor 27 extending from the layer L1 to the lead portion side 1a extends in the circumferential direction, shifts to the position of the layer L2 at a pinna shaped apex portion 27t (see FIG. 2), and further extends in the circumferential direction. Enter layer L2 of the eye slot.
  • the segment conductors 23 arranged with a one-slot pitch deviation extend from the layer L1 to the lead portion side 1a and extend in the circumferential direction, and shift to the position of the layer L2 at the pinna shaped vertex 23t and further extend in the circumferential direction. , Enters layer L2 of the slot of the sixth slot pitch.
  • the segment conductor 23 is disposed under the segment conductor 27 from the layer L1 to the lead portion side 1a until reaching the vertex portion 23t, and enters the layer L2 of the slot of the sixth slot pitch from the vertex portion 23t.
  • the apex portions 27t and 23t have an upwardly convex chevron shape, and a one-slot pitch shift occurs according to the one-slot pitch shift of the segment conductors 27 and 23.
  • the vertex portions 27t and 23t are shift points at which the segment conductors 27 and 23 shift from the layer L1 to the layer L2, but are shifted by one slot pitch. For this reason, the intersection where the upper and lower sides of the segment conductors 27 and 23 are interchanged is performed at the positions of the vertex portions 27t and 23t. By performing this intersection, the height at each coil end can be suppressed without twisting the flat wire.
  • FIG. 4 is a perspective view showing a winding state when the first two-round continuous coils CA2 to CA4 having the same configuration as the first two-round continuous coil CA1 are sequentially arranged in the outer circumferential direction.
  • the first two-turn continuous coil CA2 is alternately wound between the layers L3 and L4.
  • the first two-turn continuous coil CA3 is alternately wound between the layers L5 and L6.
  • the first two-turn continuous coil CA4 is alternately wound between the layers L7 and L8.
  • the input points a2, a4, a6, a8 and the output points a1, a3, a5, a7 of the first two-turn continuous coil CA are gathered in the connection region EA and along the radial direction RCA. Each is arranged linearly.
  • the output point a7 and the input point a6, the output point a5 and the input point a4, and the output point a3 and the input point a2 are connected to reach the output point a1.
  • One wave winding coil is formed. That is, the first two continuous coils CA1 to CA4 are connected in series by the connection in the connection area EA. Further, due to this connection, the conductors arranged in the same slot, for example, the conductors of the layers L1, L3, L5, and L7 at the slot position 7, have the same current direction.
  • the second two-turn continuous coil CB1 having the same configuration as the first two-turn continuous coil CA1 is arranged shifted by 6 slot pitches in the clockwise direction CW side.
  • the conductors arranged in the same slot around which the coil is wound for example, the conductors of the layer L1 and the layer L2 at the slot position 7, need to have the same current direction, the first 2
  • the input point a2 of the continuous loop coil CA1 is a current input point
  • the input point b2 of the second continuous coil CB1 is a current output point
  • the output point b1 is a current input point.
  • the current directions of the coils in the same slot are the same.
  • the input point b2 and the output point b1 of the second two-turn continuous coil CB1 are arranged in a connection region EB shifted by 6 slot pitches from the connection region EA.
  • the second two-round continuous coils CB2 ⁇ CB4 is sequentially arranged in the outer circumferential direction (radial direction RCB). That is, four two-layer wave winding coils are arranged in the outer peripheral direction.
  • the input points b2, b4, b6, b8 and the output points b1, b3, b5, b7 of the second continuous coil CB (CB1 to CB4) are gathered in the connection region EB and along the radial direction RCB. Each is arranged linearly.
  • first two-round continuous coils CA1 to CA4 and second two-round continuous coils CB1 to CB4 eight layers (L1 to L8) are provided in two adjacent slots.
  • the coils are densely arranged by shifting in the circumferential direction RT by 6 slot pitches.
  • the output point a7 and the input point a6, the output point a5 and the input point a4, the output point a3 and the input point a2 are set. Each is connected to form one wave coil U1. Further, in the second two-round continuous coils CB1 to CB4, the input point b8 and the output point b5, the input point b6 and the output point b3, and the input point b4 and the output point b1 are respectively connected to form one wave coil U2. Form. These two wave winding coils U1 and U2 become the parallel wave winding coils U1 and U2 at the time of double star connection.
  • the output point a1 of the first two-turn continuous coil CA1 located in the innermost layer L1 is the neutral point N1 (U1out) of the wave winding coil U1.
  • the input point b2 of the second continuous coil CB1 located in the second layer L2 from the innermost circumference is a neutral point N2 (U2out) of the wave winding coil U2.
  • the input point a8 of the first two-turn continuous coil CA4 located in the outermost layer L8 is the current input point U1in of the wave winding coil U1.
  • the output point b7 of the second two-round continuous coil CB4 located in the second layer L7 from the outermost circumference is the current input point U2in of the wave winding coil U2.
  • the current input points U1in and U2in are arranged on the outermost peripheral side.
  • the current input points U1in and U2in are arranged on the outermost peripheral side of each slot 3.
  • the current input points U1in and U2in can be connected on the outermost peripheral side of the slot 3 to be a U-phase current input point Uin.
  • the V-phase wave winding coils V1 and V2 and the W-phase wave winding coils W1 and W2 are arranged in two slots in the circumferential direction.
  • a three-phase coil having a double star connection can be generated by arranging adjacently with a pitch shift. That is, as shown in FIG. 8 (b), U-phase wave coils U1, U2, V-phase wave coils V1, V2, and W-phase wave coils W1, W2 are doubled at neutral points N1, N2.
  • a star connected coil can be generated.
  • current input points Uin, Vin, and Win are U-phase, V-phase, and W-phase feed points, respectively.
  • each current input connected to the current input points U1in, U2in, V1in, V2in, W1in, W2in are arranged on the outermost peripheral side of each slot 3.
  • each current input connected to the current input points U1in, U2in, V1in, V2in, W1in, W2in The points Uin, Vin, and Win can also be arranged on the outermost peripheral side of each slot 3.
  • the neutral point N1 of each phase is connected by a trifurcated segment conductor LN1 having a slot insertion portion.
  • the neutral point N2 of each phase is connected by a trifurcated segment conductor LN2 having a slot insertion portion.
  • the output points a1, a3, a5, a7, b1, b3, b5, b7 and the input points a2, a4, a6, a8, b2, b4, b6, b8 Although the output point and the input point, which are the tips of the conductors, are connected, a pine needle-shaped segment conductor similar to the segment conductor 10 is used for the actual connection.
  • the wave winding coil U1 connects the output point a7 and the input point a6, the output point a5 and the input point a4, and the output point a3 and the input point a2 with the pine needle-shaped segment conductors 41, 42, and 43, respectively.
  • the wave winding coil U2 connects the input point b8 and the output point b5, the input point b6 and the output point b4, and the input point b5 and the output point b1 by pine needle-shaped segment conductors 51, 52, and 53, respectively.
  • the segment conductor 10 is shifted to the outer peripheral layer by one layer at the apex portion while extending six pitches in the clockwise direction CW, whereas the segment conductors 41, 42, and 43 are in the clockwise direction CW. Shifts to the inner circumference by one layer at the apex while extending 7 slots pitch, and the segment conductors 51, 52, 53 extend by three layers at the apex while extending by 7 slots in the clockwise direction CW. Shift to. Similarly to the segment conductor 10, the segment conductors 41, 42, 43, 51, 52, and 53 are bent so as to spread in the circumferential direction RT and their tips are welded.
  • FIG. 10 is a perspective view of the rotating electrical machine stator as viewed from the lead portion side 1a.
  • the neutral point N1 is connected by the trifurcated segment conductor LN1 at the innermost circumference corresponding to the layer L1, and the second layer L2 from the innermost circumference is connected.
  • the neutral point N2 is connected by a three-pronged segment conductor LN2.
  • the two conductors connecting the neutral points N1 and N2 can be arranged adjacent to each other in the radial direction and do not overlap in the direction of the central axis AX. For this reason, the height of the coil end 5a on the lead portion 1a side can be minimized.
  • the segment conductors LN1 and LN2 may bundle three segment conductors and connect the neutral points N1 and N2.
  • the segment conductors of the current input points U1in and U2in are bundled to be the current input point Uin
  • the segment conductors of the current input points V1in and V2in are bundled to be the current input point Vin
  • the segment conductors of the current input points W1in and W2in are The current input point Win is bundled.
  • the coil end 5a on the lead portion side 1a does not require welding, and the current input points U1in, U2in, V1in, V2in, W1in, W2in are arranged on the outermost periphery. Therefore, the height of the coil end 5a can be suppressed.
  • first two-round continuous coil CA and the second two-round continuous coil CB are connected by the shortest three-pronged segment conductors LN1, LN2 on the inner circumference side, and between the first two-round continuous coils CA1 to CA4, Also, since the second two-round continuous coils CB1 to CB4 are connected by the shortest segment conductors 41 to 43 and 51 to 53, the coil circumferential length is shortened, and the resistance value of the coil can be suppressed.
  • the first two-turn continuous coils CA1 to CA4 and the second two-turn continuous coils CB1 to CB4 are connected as shown in FIG.
  • the U-phase wave winding coil U1 is connected to the input point a8 of the first two-round continuous coil CA4 in which the current input point U1in is arranged in the layer L8.
  • the output point a7 of the first two-turn continuous coil CA4 arranged in the layer L7 and the input point a6 of the first two-turn continuous coil CA3 arranged in the layer L6 are connected by a pine needle-shaped segment conductor 41.
  • An output point a5 of the first two-turn continuous coil CA3 arranged in the layer L5 and an input point a4 of the first two-turn continuous coil CA2 arranged in the layer L4 are connected by a pine needle-shaped segment conductor 42.
  • An output point a3 of the first two-turn continuous coil CA2 arranged in the layer L3 and an input point a2 of the first two-turn continuous coil CA1 arranged in the layer L2 are connected by a pine needle-shaped segment conductor 43.
  • the output point a1 of the first two-turn continuous coil CA1 arranged in the layer L1 is connected to the neutral point LN1 by a pine needle-shaped segment conductor.
  • the U-phase wave winding coil U2 is connected to the output point b7 of the second two-round continuous coil CB4 in which the current input point U2in is arranged in the layer L7.
  • An input point b8 of the second two-round continuous coil CB4 arranged in the layer L8 and an output point b5 of the second two-round continuous coil CB3 arranged in the layer L5 are connected by a pine needle-shaped segment conductor 51.
  • An input point b6 of the second two-round continuous coil CB3 arranged in the layer L6 and an output point b3 of the second two-round continuous coil CB2 arranged in the layer L3 are connected by a pine needle-shaped segment conductor 52.
  • An input point b4 of the second two-round continuous coil CB2 arranged in the layer L4 and an output point b1 of the second two-round continuous coil CB1 arranged in the layer L1 are connected by a pine needle-shaped segment conductor 53.
  • the input point b2 of the second two-turn continuous coil CB1 arranged in the layer L2 is connected to the neutral point LN2 by a pine needle-shaped segment conductor.
  • the U-phase wave winding coils U1 and U2 described above are eight (8-turn) two-round continuous coils, which are the first two-round continuous coils CA1 to CA4 and the second two-round continuous coils CB1 to CB4.
  • FIG. 19 is a diagram that generalizes the connection relationship of the pine needle-shaped segment conductors for connecting the respective two-round continuous coils in the first two-round continuous coil CA and the second two-round continuous coil CB. is there.
  • two continuous coils wound over two adjacent layers by wave winding are each N / 2 in the radial direction with respect to the number of turns N (N also means the number of layers and the number of turns).
  • the first two-turn continuous coil CA includes N / 2 first two-turn continuous coils CA1 to CA (N / 2) with respect to the number N of turns.
  • the second two-round continuous coil CB includes N / 2 second two-round continuous coils CB1 to CB (N / 2) with respect to the number N of turns. Further, the first two-turn continuous coil CA and the second two-turn continuous coil CB are arranged with a 6-slot pitch shift.
  • Input points a2, a4,..., A (N-6), a (N-4), a (N-2), and a (N) corresponding to the input point a2 and the like of the first continuous coil CA are , Layers (N-2m), (N-2 (m-1)), ..., (N-6), (N-4), (N-2), (N), and the central axis It arrange
  • input points b2, b4,..., B (N-6), b (N-4), b (N-2), b (corresponding to the input point b2 etc. of the second two-turn continuous coil CB N) are arranged in layers (N-2m), (N-2 (m-1)), ..., (N-6), (N-4), (N-2), (N), and Are arranged on a straight line extending radially from the central axis AX.
  • m is an integer equal to or greater than 1
  • the first continuous coil CA has a layer (N ⁇ ) at the position of the number of turns (N ⁇ (2m ⁇ 1)).
  • the pine needle is between the output point a (N- (2m-1)) of (2m-1)) and the input point a (N-2m) of the layer (N-2m) at the position of the number of turns (N-2m) Connected with segmented conductors.
  • the second continuous coil CB has the input point b (N-2 (m ⁇ 1) of the layer (N ⁇ 2 (m ⁇ 1)) at the position of the number of turns (N ⁇ 2 (m ⁇ 1)). ))
  • the output point b (N- (2m + 1)) of the layer (N- (2m + 1)) at the position of the number of turns (N- (2m + 1)) is connected by a pine needle-shaped segment conductor.
  • the output point a1 of the first two-turn continuous coil CA becomes the neutral point N1 (U1out) and corresponds to the second layer L2 from the innermost circumference.
  • the input point b2 of the second two-turn continuous coil CB becomes a neutral point N2 (U2out), and the neutral point N1 of each phase is connected by the segment conductor LN1 on the innermost peripheral side.
  • the neutral point N2 is connected by the segment conductor LN2 on the innermost peripheral side.
  • the neutral point N1 (U1out) and the neutral point N2 (U2out) are connected to the segment conductor LN1 and the segment conductor LN2 on the inner peripheral side, respectively, and the current input point U1in and the current input point U2in Are connected to the current input point Uin on the U-phase feeder line side on the outer peripheral side, but as shown in FIG. 20, the neutral point N1 (U1out) and the neutral point N2 (U2out) are arranged on the outer peripheral side, The current input point U1in and the current input point U2in may be arranged on the inner peripheral side.
  • the input point a (N) is connected to the neutral point N1 (U1out)
  • the output point b (N-1) is connected to the neutral point N2 (U2out)
  • the output point a1 may be connected to the current input point U1in
  • an increase in coil end height due to the coupling of the neutral points N1 and N2 can be suppressed.
  • the slot 3 has a semi-closed slot shape having a flange extending in the circumferential direction from the tip of the tooth 2.
  • a flange extending in the circumferential direction from the tip of the tooth 2.
  • annular slots 3 are formed, the number of poles of the rotor is 8, and the first two-round continuous coil CA and the second two-round continuous coil CB are arranged at a six-slot pitch.
  • the number of slots is Ns and the number of poles of the rotor is Np
  • the first two-round continuous coil CA and the second two-round continuous coil CB are (Ns / Np) What is necessary is just to shift the slot pitch of minutes.
  • this double star connection includes two wave winding coils U1 and U2 arranged in parallel as one neutral point. It is preferable to connecting. This is because one neutral point causes a circulating current between the two wave winding coils U1 and U2.

Landscapes

  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Manufacturing & Machinery (AREA)
  • Windings For Motors And Generators (AREA)

Abstract

Afin de fournir une structure d'enroulement qui est destinée à un stator de machine électrique tournante et qui peut limiter la hauteur des extrémités de bobine, la présente invention est configurée de sorte que : des premières bobines continues à double boucle CA1-CA4 et des premières bobines continues à double boucle CB1-CB4 sont décalées à six pas d'encoche par rapport à la direction de rotation ; des points de sortie a7, a5, a3 et des points d'entrée a6, a4, a2 sont respectivement et séquentiellement connectés ; des points de sortie b8, b6, b4 et des points d'entrée b5, b3, b1 sont respectivement et séquentiellement connectés ; le point de sortie a1 le plus à l'intérieur est un point neutre N1 ; le point d'entrée b2 le plus à l'intérieur est un point neutre N2 ; le point d'entrée a8 le plus à l'extérieur est un point d'entrée de courant U1in pour une bobine de phase unique qui est connectée en parallèle ; et le point de sortie b7 le plus à l'extérieur est un point d'entrée de courant U2in pour une bobine de phase unique. Le point neutre N1 et le point neutre N2, qui sont destinés à des phases respectives, sont chacun connectés à un conducteur de segment qui a une partie d'insertion de fente et sont décalés d'une couche dans le sens radial.
PCT/JP2017/000492 2016-02-29 2017-01-10 Structure d'enroulement pour stator de machine électrique tournante WO2017149934A1 (fr)

Priority Applications (1)

Application Number Priority Date Filing Date Title
DE112017000116.1T DE112017000116T5 (de) 2016-02-29 2017-01-10 Wicklungsstruktur eines stators für eine rotierende elektrische maschine

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
JP2016037990A JP6649803B2 (ja) 2016-02-29 2016-02-29 回転電機ステータの巻線構造
JP2016-037990 2016-02-29

Publications (1)

Publication Number Publication Date
WO2017149934A1 true WO2017149934A1 (fr) 2017-09-08

Family

ID=59743850

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/JP2017/000492 WO2017149934A1 (fr) 2016-02-29 2017-01-10 Structure d'enroulement pour stator de machine électrique tournante

Country Status (3)

Country Link
JP (1) JP6649803B2 (fr)
DE (1) DE112017000116T5 (fr)
WO (1) WO2017149934A1 (fr)

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2021219306A1 (fr) * 2020-04-30 2021-11-04 Valeo Siemens Eautomotive Germany Gmbh Stator pour une machine électrique, et machine électrique
JP2022522017A (ja) * 2019-03-22 2022-04-13 サイック・モーター・コーポレーション・リミテッド モータ用巻線構造及びモータ

Families Citing this family (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN109586461B (zh) * 2017-09-29 2021-08-10 比亚迪股份有限公司 定子组件和具有其的电机和车辆
WO2019116918A1 (fr) * 2017-12-14 2019-06-20 アイシン・エィ・ダブリュ株式会社 Stator
JP6591574B2 (ja) 2018-01-15 2019-10-16 本田技研工業株式会社 波巻コイルの保持装置、保持方法及び挿入方法
DE102020207499A1 (de) * 2019-12-18 2021-06-24 Robert Bosch Gesellschaft mit beschränkter Haftung Stator für einen Elektromotor
DE102020121347A1 (de) * 2020-08-13 2022-02-17 Valeo Siemens Eautomotive Germany Gmbh Stator für eine elektrische Maschine und elektrische Maschine
DE102020213237A1 (de) 2020-10-20 2022-04-21 Mahle International Gmbh Stator für eine elektrische Maschine
DE102020213647A1 (de) * 2020-10-29 2022-05-05 Valeo Siemens Eautomotive Germany Gmbh Stator für eine elektrische Maschine und elektrische Maschine

Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2014096858A (ja) * 2012-11-07 2014-05-22 Denso Corp 固定子および回転電機

Family Cites Families (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP5365862B2 (ja) * 2009-08-19 2013-12-11 アイシン・エィ・ダブリュ株式会社 回転電機用電機子

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2014096858A (ja) * 2012-11-07 2014-05-22 Denso Corp 固定子および回転電機

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2022522017A (ja) * 2019-03-22 2022-04-13 サイック・モーター・コーポレーション・リミテッド モータ用巻線構造及びモータ
JP7337945B2 (ja) 2019-03-22 2023-09-04 サイック・モーター・コーポレーション・リミテッド モータ用巻線構造及びモータ
US12068651B2 (en) 2019-03-22 2024-08-20 Saic Motor Corporation Limited Winding structure for electric motor and electric motor
WO2021219306A1 (fr) * 2020-04-30 2021-11-04 Valeo Siemens Eautomotive Germany Gmbh Stator pour une machine électrique, et machine électrique

Also Published As

Publication number Publication date
DE112017000116T5 (de) 2018-05-30
JP6649803B2 (ja) 2020-02-19
JP2017158255A (ja) 2017-09-07

Similar Documents

Publication Publication Date Title
WO2017149934A1 (fr) Structure d'enroulement pour stator de machine électrique tournante
JP5896250B2 (ja) 回転電機の固定子
JP5585823B2 (ja) 回転電機の固定子及びその製造方法
US11418070B2 (en) Stator and rotary electric machine
JP6126147B2 (ja) 3相交流電動機
JP2016152752A (ja) 回転電機の固定子
JP6626514B2 (ja) 回転電機
JP2016152751A (ja) 回転電機の固定子
JP2013055732A (ja) 回転電機ステータ
JP2014007938A (ja) 回転電機及び回転電機の製造方法
WO2017149935A1 (fr) Structure d'enroulement pour stator de machine électrique tournante
CN116195172A (zh) 定子和电动机
KR20140083780A (ko) 헤어핀 접속기구 및 이를 구비한 헤어핀 권선모터
US8914967B2 (en) Method for producing a distributed lap winding for polyphase systems
JP2022152032A (ja) モータ
US10348147B2 (en) Rotating armature, rotating electric machine comprising a plurality of coil portions, and rotating armature manufacturing method
WO2021019843A1 (fr) Structure d'enroulement pour machine tournante
JP6835240B2 (ja) コイル
CN112332564A (zh) 一种电机定子及电机
WO2021153552A1 (fr) Induit
JP5904099B2 (ja) 回転電機のステータ
US20240297539A1 (en) Stator for rotating electrical machine and method for manufacturing stator for rotating electrical machine
JP6209984B2 (ja) ステータの巻線構造およびステータの製造方法
JP2015019452A (ja) コイル及びコイル形成方法
JP5611094B2 (ja) 回転電機

Legal Events

Date Code Title Description
WWE Wipo information: entry into national phase

Ref document number: 112017000116

Country of ref document: DE

121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 17759406

Country of ref document: EP

Kind code of ref document: A1

122 Ep: pct application non-entry in european phase

Ref document number: 17759406

Country of ref document: EP

Kind code of ref document: A1