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CN110784046B - Stator assembly and motor having the same - Google Patents

Stator assembly and motor having the same Download PDF

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Publication number
CN110784046B
CN110784046B CN201810850679.1A CN201810850679A CN110784046B CN 110784046 B CN110784046 B CN 110784046B CN 201810850679 A CN201810850679 A CN 201810850679A CN 110784046 B CN110784046 B CN 110784046B
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slot
layer
winding
stator
phase
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CN110784046A (en
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齐文明
游斌
鲁浩
舒圣浪
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BYD Co Ltd
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BYD Co Ltd
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    • 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
    • H02K3/12Windings characterised by the conductor shape, form or construction, e.g. with bar conductors arranged in slots
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K15/00Processes or apparatus specially adapted for manufacturing, assembling, maintaining or repairing of dynamo-electric machines
    • H02K15/04Processes or apparatus specially adapted for manufacturing, assembling, maintaining or repairing of dynamo-electric machines of windings prior to their mounting into the machines
    • H02K15/043Processes or apparatus specially adapted for manufacturing, assembling, maintaining or repairing of dynamo-electric machines of windings prior to their mounting into the machines winding flat conductive wires or sheets
    • H02K15/0432Distributed windings
    • H02K15/0433Distributed windings of the wave winding type
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K15/00Processes or apparatus specially adapted for manufacturing, assembling, maintaining or repairing of dynamo-electric machines
    • H02K15/08Forming windings by laying conductors into or around core parts
    • H02K15/085Forming windings by laying conductors into or around core parts by laying conductors into slotted stators
    • 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

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

Abstract

本发明公开了一种定子组件和具有该定子组件的电机,定子组件包括定子铁芯和定子绕组,定子铁芯上具有多个定子槽,定子绕组包括A相绕线,A相绕线包括依次连接的多个第一子绕线段、一个第二子绕线段、多个第三子绕线段、一个第四子绕线段、一个桥接线、一个第五子绕线段、多个第六子绕线段、一个第七子绕线段和多个第八子绕线段,中性线连接C相、B相、A相对应的星点,在A相绕线的第二子绕线段、第七子绕线段的相应的焊接端处,该焊接端跨越(y‑1)个定子槽,由此可以减少该焊接端处的距离,而对于A相的整个绕线过程,可以减少A相星点线和A相引出线之间距离,由此易于焊接连接。

Figure 201810850679

The invention discloses a stator assembly and a motor with the stator assembly. The stator assembly includes a stator iron core and a stator winding, the stator iron core is provided with a plurality of stator slots, the stator winding includes an A-phase winding, and the A-phase winding includes sequential A plurality of connected first sub-winding segments, a second sub-winding segment, a plurality of third sub-winding segments, a fourth sub-winding segment, a bridge line, a fifth sub-winding segment, and a plurality of sixth sub-winding segments , a seventh sub-winding segment and multiple eighth sub-winding segments, the neutral line is connected to the corresponding star points of C-phase, B-phase, and A, and the second sub-winding segment and the seventh sub-winding segment of the A-phase winding At the corresponding welding end of the A-phase, the welding end spans (y-1) stator slots, thereby reducing the distance at the welding end, and for the entire winding process of the A-phase, the A-phase star point line and the A-phase star point line can be reduced. The distance between the phase outgoing wires is thus easy to solder connections.

Figure 201810850679

Description

Stator assembly and motor with same
Technical Field
The invention relates to the field of motors, in particular to a stator assembly and a motor with the same.
Background
The Chinese patent application publication No. 200780022091.7 entitled "electrodes and connections between multiple sets of segmented hairpins" adopts two winding sets, wherein the 1, 2 layers and the 3, 4 layers are different winding sets, the 1 st layer and the 2 nd layer are first winding sets, and the 3 rd layer and the 4 th layer are second winding sets.
In the patent, 4 layers of windings, namely 1 layer and 2 layers, and 3 layers and 4 layers are respectively wound, two winding sleeves are adopted, the structure is complex, the types of coils are relatively more, and the process is more complex; the outgoing line and the star point line are both arranged at the inserting side, namely the forming end, so that the occupied space is large; the distribution of the three-phase star point lines and the outgoing lines is more dispersed, and the three-phase star point lines and the outgoing lines are not easy to connect. From the analysis of the electrical connection, the voltage difference between different layers in the same groove is high in the winding form, and the layers are easy to break down under high voltage, so that short circuit is caused, and the motor fails.
Disclosure of Invention
The present invention is directed to solving at least one of the problems of the prior art. Therefore, an object of the present invention is to provide a stator assembly, which has simple manufacturing process of winding and safe and reliable electrical connection.
The invention also provides a motor which is provided with the stator assembly.
The stator assembly provided by the embodiment of the invention is suitable for a z-slot 2 p-stage m-phase motor, the number of slots of each pole and each phase is q-z/m/(2 p), the number of parallel branches is a, and a is less than or equal to q, and the stator assembly comprises:
a cylindrical stator core having a plurality of stator slots arranged at intervals in a circumferential direction of the stator core;
a stator winding constructed of a plurality of U-shaped conductor segments, each of the U-shaped conductor segments including a bend and first and second in-slot portions connected to the bend, respectively, the first in-slot portion of the U-shaped conductor segment passing through one of the slot layers of one of the stator slots and the second in-slot portion passing through one of the other stator slots, the first and second in-slot portions passing through the stator slots with ends thereof exceeding the stator core to form a weld end on which the first and second in-slot portions of the plurality of U-shaped conductor segments located in adjacent layers are welded;
the U-shaped conductor segments comprise first-type conductor segments and second-type conductor segments, the first in-slot portions of the first-type conductor segments being located in the outermost slot layer of the respective stator slot, and the second in-slot portions of the first-type conductor segments being located in the innermost slot layer of the respective stator slot; the first in-slot portions of the second type conductor segments and the second in-slot portions of the second type conductor segments are located in the inner slot layers of the corresponding stator slots, the inner slot layers include sub-outer slot layers and sub-inner slot layers, the first in-slot portions of the second type conductor segments are located in the sub-inner slot layers of the corresponding stator slots, and the second in-slot portions of the second type conductor segments are located in the sub-outer slot layers of the corresponding stator slots;
the phase A winding comprises a plurality of first sub winding line segments, a second sub winding line segment, a plurality of third sub winding line segments, a fourth sub winding line segment, a bridging line, a fifth sub winding line segment, a plurality of sixth sub winding line segments, a seventh sub winding line segment and a plurality of eighth sub winding line segments which are connected in sequence, the initial position of the phase A winding is connected with a phase A leading-out line, and the terminal end of the phase A winding is connected with a phase A star point line;
the first sub winding section is wound by the following method:
s11, leading out the A phase leading-out wire to the radial outermost slot layer of the initial slot of the A phase winding for preparing to wind the first sub winding section at the initial end, connecting the rest first sub winding sections with the first sub winding section in front of the A phase leading-out wire, and connecting the A phase leading-out wire with the first in-slot part of the first type conductor section at the radial outermost slot layer at the welding end;
s12, spanning y stator slots in a first direction, wherein y is an integer and y is z/2p, and spanning from an outermost slot layer to an innermost slot layer of the initial slots of the a-phase winding;
s13, crossing along a second direction, wherein the number of layers of each crossing y stator slot layers is changed by one, the number of layers is changed from inside to outside along the radial direction to the radially outermost slot layer, and the second direction is opposite to the first direction;
the second sub-winding section is wound by the following method:
s21, the winding starts from the outermost slot layer of the corresponding stator slot, spans y stator slots in the first direction, and spans from the outermost slot layer to the innermost slot layer;
s22, spanning along the second direction, wherein the number of layers spanning each y stator slot groove layers is changed by one layer, and the number of layers is changed from inside to outside along the radial direction to the radial secondary outer slot layer;
s23, after the winding crosses y-1 stator slots along the second direction and the number of layers changes towards the radial outermost slot layer, the slot where the winding is located is the slot where the termination end of the second sub-winding section is located, the slot is adjacent to the slot where the A-phase leading-out wire is located, the outermost slot layer is located on one side, facing the first direction, of the A-phase leading-out wire, the part of the second sub-winding section crossing the (y-1) stator slots is a welding end, and the welding end is formed by welding a first in-slot part of the first conductor section and a second in-slot part of the second conductor section;
the third sub winding section is wound by the following method:
s31, spanning y stator slots along the first direction and spanning from the outermost slot layer to the innermost slot layer;
s32, crossing along a second direction, wherein the number of layers of each crossing y stator slot layers is changed by one, the number of layers is changed from inside to outside along the radial direction to the radially outermost slot layer, and the second direction is opposite to the first direction;
the fourth sub winding section is wound by the following method:
s41, the winding starts from the outermost slot layer of the corresponding stator slot, spans y stator slots in the first direction, and spans from the outermost slot layer to the innermost slot layer of the initial slots;
s42, crossing along the second direction, wherein the number of layers of every y stator slot layers is changed by one, wherein the number of layers is changed from inside to outside along the radial direction to the radial secondary outer slot layer, and the terminal end of the fourth sub-winding line segment is positioned in the secondary outer slot layer;
s43, welding one end of the bridging line with the terminal end of the fourth sub-winding line segment, wherein the bridging line spans y stator slots on the same layer along the first direction;
the fifth sub winding section is wound by the following method:
p11, the winding crosses from the other end of the bridge connection line along the first direction, and the number of layers of each crossing y stator slot layers is changed by one, wherein the number of layers is changed from outer to inner along the radial direction to the radially innermost slot layer;
p12, spanning y stator slots in the second direction, and spanning from the innermost slot layer to the outermost slot;
the sixth sub winding section is wound by the following method:
p21, the winding starts from the outermost layer of the corresponding stator slot and crosses along the first direction, the number of layers of each crossing y stator slot layers changes by one, wherein the number of layers changes from outside to inside along the radial direction to the radially innermost slot layer;
p22, spanning y stator slots in the second direction, and spanning from the innermost slot layer to the outermost slot;
the seventh sub winding section is wound by the following method:
p31, the winding spanning y-1 stator slots in the first direction starting from the outermost slot layer of the corresponding stator slot, wherein the number of layers varies by one layer to the radially inner slot layer, and the part of the seventh sub-winding segment spanning the (y-1) stator slots is a welding end welded by the first in-slot part of the first type of conductor segment and the second in-slot part of the second type of conductor segment;
p32, spanning along the first direction, wherein the number of layers per y stator slot layers is changed by one, wherein the number of layers is changed from outer to inner along the radial direction to the radially innermost slot layer;
p33, spanning y stator slots in the second direction, and spanning from the innermost slot layer to the outermost slot;
the eighth sub-winding section is wound by the following method:
p41, the winding starts from the outermost layer of the corresponding stator slot and crosses along the first direction, the number of layers of each crossing y stator slot layers changes by one, wherein the number of layers changes from outside to inside along the radial direction to the radially innermost slot layer;
p42 spanning y stator slots in the second direction and from the innermost slot layer to the outermost slot from which the a phase dotted line is drawn;
stator winding still includes neutral line, neutral line includes main part section and first bellying, the main part section is followed stator core's circumferential direction extends, first bellying is located the one end of main part section, first bellying is followed stator core circumferential direction's lateral wall with the edge of A looks star point line the lateral wall welding of stator core circumferential direction, neutral line and C looks star point line, B looks star point line are all connected.
According to the stator assembly of the embodiment of the invention, at the corresponding welding ends of the second and seventh sub-winding segments of the a-phase winding, the welding ends span (y-1) stator slots, and the C-phase star point line, the B-phase star point line and the a-phase star point line are connected by the neutral line, so that the distance at the welding ends can be reduced, and for the whole winding process of the a-phase, the distance between the a-phase star point line and the a-phase outgoing line can be reduced, so that the welding connection is easy. In addition, the winding type wiring mode is adopted, the span of partial welding ends is adjusted, the voltage distribution in the same groove is uniform, the voltage difference of the flat wires between adjacent layers is small, the insulation breakdown risk of the motor can be effectively reduced, the reliability is high, the number of required coil types is small, the structure process is simple, required equipment is few, and batch production is easy to carry out.
In some embodiments, the neutral line further includes a second protrusion portion located at the other end of the main body segment, and a side wall of the second protrusion portion in the circumferential direction of the stator core is welded to a side wall of the C-phase star line in the circumferential direction of the stator core.
In some embodiments, the neutral line further includes a third boss located intermediate the first boss and the second boss, the third boss being welded to the B-phase star point line along the sidewall of the stator core in the radial direction.
In some embodiments, the main body segment is provided with at least one of the first boss, the second boss, and the third boss on an axial-direction side wall of the stator core.
In some embodiments, the U-shaped conductor segments have equal cross-sectional areas in the direction of extension of the conductor segments.
In some embodiments, the number of slot layers in each stator slot is an even number.
In some embodiments, the first sub-winding segment is three segments; the third sub winding line segment is three segments; the sixth sub winding line segment is three segments; the eighth sub-winding line segment is three segments.
In some embodiments, the stator assembly is suitable for an electric machine having a slot number z of 48, a pole pair number p of 4, a phase number of 3, and a pitch y of 6, wherein each of the 48 stator slots has 4 slot layers a, B, C, d, wherein the slot layer a is located at the outermost radial side of the stator core, the slot layer d is located at the innermost radial side of the stator core, and the 3 phases include an a phase, a B phase, and a C phase, and wherein the winding of the a phase of the stator core is routed as follows:
1a->7d->1c->43b->37a->
43d->37c->31b->25a->
31d->25c->19b->13a->
19d->13c->7b->2a->
8d->2c->44b->38a->
44d->38c->32b->26a->
32d->26c->20b->14a->
20d->14c->8b->
14b->20c->26d->
20a->26b->32c->38d->
32a->38b->44c->2d->
44a->2b->8c->14d->
8a->13b->19c->25d->
19a->25b->31c->37d->
31a->37b->43c->1d->
43a->1b->7c->13d->7a;
wherein the winding from the 1 st moat a layer to the 13 th moat a layer comprises a plurality of repeatedly wound first sub-winding segments, and the first-type conductor segments span the 1 st moat a layer and the 7 th moat d layer, the 37 th moat a layer and the 43 th moat d layer, the 25 th moat a layer and the 31 th moat d layer in the winding from the 1 st moat a layer to the 13 th moat a layer; the second type conductor segment spans the 1 st and 43 th slot c layers, the 37 th and 31 th slot c layers, and the 25 th and 19 th slot c layers;
the winding from the 13 th channel-a layer to the 2 nd channel-a layer is the second sub-winding segment, wherein the first conductor segment spans the 13 th channel-a layer and the 19 th channel-d layer; the second type conductor segment spans the 13 th slot c layer and the 7 th slot b layer; in the second sub-winding segment, the free end of the second in-slot portion of the second-type conductor segment located in the 7 th slot-b layer is welded to the free end of the first in-slot portion of the first-type conductor segment located in the 2 nd slot-a layer to construct a welded end spanning 5 stator slots;
the winding from the 2 nd to the 14 th slot-a layers comprises a plurality of repeatedly wound third sub-winding segments, and in the winding from the 2 nd to the 14 th slot-a layers, the first-type conductor segments span the 2 nd and 8 th slot-d layers, the 38 th and 44 th slot-a layers, the 26 th and 32 th slot-a layers; the second type conductor segment spans the 2 nd and 44 th slot-b layers, the 38 th and 32 th slot-b layers, the 26 th and 20 th slot-b layers;
the winding from the 14 th slot-a layer to the 8 th slot-b layer is the fourth sub-winding segment, wherein the first conductor segment spans the 14 th slot-a layer and the 20 th slot-d layer; the second type conductor segment spans the 14 th slot c layer and the 8 th slot b layer;
the bridge line spans from the 8 th groove b layer to the 14 th groove b layer;
the winding from the 14 th slot-b layer to the 20 th slot-a layer is the fifth sub-winding segment, wherein the first-type conductor segment spans the 26 th slot-d layer and the 20 th slot-a layer; the second type conductor segment spans the 14 th slot b layer and the 20 th slot c layer;
the winding from the 20 th slot a layer to the 14 th slot d layer comprises a plurality of repeatedly wound sixth sub-line segments, and in the winding from the 20 th slot a layer to the 14 th slot d layer, the first conductor segment spans the 38 th slot d layer and the 32 th slot a layer, the 2 nd slot d layer and the 44 th slot a layer, the 14 th slot d layer and the 8 th slot a layer; the second type conductor segment spans the 26 th and 32 th slot b layers, the 38 th and 44 th slot b layers, and the 2 nd and 8 th slot b layers;
the winding from the 14 th slot-d layer to the 25 th slot-d layer is the seventh sub-winding segment, wherein the first-type conductor segment spans the 25 th slot-a layer and the 19 th slot-a layer; the second type conductor segment spans the 13 th slot b layer and the 19 th slot c layer; in the seventh sub-winding segment, the free end of the first in-slot portion of the first-type conductor segment located in the 8 th slot-a layer is welded to the free end of the second in-slot portion of the second-type conductor segment located in the 13 th slot-b layer to construct a welded end spanning 5 stator slots;
the winding from the 25 th slot-d layer to the 7 th slot-a layer is a plurality of eighth repeatedly wound sub-winding segments, and in the winding from the 25 th slot-d layer to the 7 th slot-a layer, the first conductor segments span the 25 th slot-d layer and the 19 th slot-a layer, the 37 th slot-d layer and the 31 th slot-a layer, the 1 st slot-d layer and the 43 rd slot-a layer, and the 13 th slot-d layer and the 7 th slot-a layer; the second type conductor segment spans the 25 th and 31 th slot b layers, the 37 th and 43 th slot b layers, and the 1 st and 7 th slot b layers.
In some embodiments, the outgoing lines corresponding to the phases A, B and C are circumferentially different by 4 stator slots.
In some embodiments, the bridge wire is located at one side of the weld end of the stator core.
In some embodiments, the stator winding comprises an a-phase winding, a B-phase winding and a C-phase winding, the winding method of the B-phase winding is the same as that of the a-phase winding, the starting position of the B-phase winding is connected with a B-phase outgoing line, and the terminal end of the B-phase winding is connected with a B-phase star point line; the winding method of the C-phase winding is the same as that of the A-phase winding, the starting position of the C-phase winding is connected with a C-phase outgoing line, and the terminating end of the C-phase winding is connected with a C-phase star point line; the star point lines corresponding to the phase A, the phase B and the phase C are different by 4 stator slots in the circumferential direction, and the neutral line is connected with the star point line of the phase C and the star point line of the phase B.
An electric machine according to an embodiment of the invention comprises a stator assembly as described above.
According to the motor of the embodiment of the present invention, at the respective welding ends of the second and seventh sub-winding sections of the a-phase winding, which span (y-1) stator slots, and the C-phase, B-phase, and a-phase star point lines are connected by the neutral wire, whereby the distance at the welding ends can be reduced, and for the entire winding process of the a-phase, the distance between the a-phase star point line and the a-phase outgoing line can be reduced, whereby the welding connection is easy. In addition, the winding type wiring mode is adopted, the span of partial welding ends is adjusted, the voltage distribution in the same groove is uniform, the voltage difference of the flat wires between adjacent layers is small, the insulation breakdown risk of the motor can be effectively reduced, the reliability is high, the number of required coil types is small, the structure process is simple, required equipment is few, and batch production is easy to carry out.
Drawings
The above and/or additional aspects and advantages of the present invention will become apparent and readily appreciated from the following description of the embodiments, taken in conjunction with the accompanying drawings of which:
the above and/or additional aspects and advantages of the present invention will become apparent and readily appreciated from the following description of the embodiments, taken in conjunction with the accompanying drawings of which:
FIG. 1 is a winding diagram of the A-phase windings of a stator assembly according to an embodiment of the present invention;
FIG. 2 is a partial winding schematic of the A-phase windings of the stator assembly according to an embodiment of the present invention;
FIG. 3 is a partial winding schematic of the A-phase windings of the stator assembly according to an embodiment of the present invention;
FIG. 4 is a partial winding schematic of the A-phase windings of the stator assembly according to an embodiment of the present invention;
FIG. 5 is a partial winding schematic of the A-phase windings of the stator assembly according to an embodiment of the present invention;
FIG. 6 is a wiring schematic of the A-phase windings of the stator assembly according to an embodiment of the present invention;
FIG. 7 is a wiring schematic of the A, B, and C phase windings of the stator assembly according to an embodiment of the present invention;
FIG. 8 is a schematic structural view of a stator assembly according to an embodiment of the present invention;
FIG. 9 is an enlarged partial schematic view at A of FIG. 8;
FIG. 10 is a schematic diagram of the neutral line of FIG. 8;
FIG. 11 is a schematic diagram of the bridge threads of FIG. 8;
FIG. 12 is a structural schematic diagram of a stator assembly according to an embodiment of the present invention;
FIG. 13 is an enlarged partial schematic view at B of FIG. 12;
FIG. 14 is a schematic diagram of the bridge threads of FIG. 12;
FIG. 15 is a schematic structural view of a U-shaped conductor segment of a stator assembly according to an embodiment of the present invention;
FIG. 16 is a schematic structural view of a U-shaped conductor segment of a stator assembly according to an embodiment of the present invention;
FIG. 17 is a schematic structural view of a U-shaped conductor segment of a stator assembly according to an embodiment of the present invention;
FIG. 18 is a schematic structural view of a U-shaped conductor segment of a stator assembly according to an embodiment of the present invention;
FIG. 19 is a schematic structural view of a U-shaped conductor segment of a stator assembly according to an embodiment of the present invention;
FIG. 20 is a partial schematic structural view of a stator assembly according to an embodiment of the present invention;
FIG. 21 is a partial schematic structural view of a stator assembly according to an embodiment of the present invention;
FIG. 22 is a partial schematic structural view of a stator assembly according to an embodiment of the present invention;
FIG. 23 is a schematic view of the mating of a first type of conductor segment and a second type of conductor segment of a stator assembly according to an embodiment of the present invention;
FIG. 24 is a partial schematic structural view of a stator assembly according to an embodiment of the present invention;
FIG. 25 is a schematic view of the mating of a first type of conductor segment and a second type of conductor segment of a stator assembly according to an embodiment of the present invention;
FIG. 26 is a partial schematic structural view of a stator assembly according to an embodiment of the present invention;
FIG. 27 is a partial schematic structural view of a stator assembly according to an embodiment of the present invention;
fig. 28 is a schematic view of the mating of a first type of conductor segment and a second type of conductor segment of a stator assembly according to an embodiment of the present invention.
Reference numerals:
the stator assembly 1000 is shown in a schematic view,
the stator core 100, the stator slots 101,
the stator winding 200 is wound on a stator,
a U-shaped conductor segment 201, a first type of conductor segment 203, a second type of conductor segment 204,
a bending portion 210, a first connecting portion 211, a second connecting portion 212, an intermediate connecting portion 213,
a first in-slot portion 214, a second in-slot portion 215,
a weld end 220, a weld end 220' spanning y-1 stator slots,
the phase a winding 230A is wound on the core,
a first sub-winding portion 231, a second sub-winding portion 232, a third sub-winding portion 233, a fourth sub-winding portion 234,
a fifth sub-winding wire section 235, a sixth sub-winding wire section 236, a seventh sub-winding wire section 237, an eighth sub-winding wire section 238,
the bridge threads 240, connecting segments 241, first segments 242, second segments 243, curved segments 244,
the side wall 2421 of the first section located radially inward of the stator core,
the side wall 2431 of the second segment located radially inward of the stator core,
bridge line 240A for phase a, bridge line 240B for phase B, bridge line 240W for phase C,
the length of the first sidewall 245, the second sidewall 246,
the third side wall 247 is provided with a third side wall,
the length of the fourth sidewall 248, the fifth sidewall 249,
phase a outgoing line 251A, phase a star point line 252A,
phase B outgoing line 251B, phase B star point line 252B,
phase C outgoing line 251W, phase C star point line 252W,
a neutral line 260, a main body segment 261, a first boss 262, a second boss 263, a third boss 264,
a side wall 2621 of the first protrusion in the circumferential direction of the stator core,
a side wall 252a1 of the phase star point line in the circumferential direction of the stator core,
a side wall 2631 of the second convex portion in the circumferential direction of the stator core,
a side wall 252W1 of the C-phase star point line in the stator core circumferential direction,
a side wall 2641 of the third convex portion in the radial direction of the stator core,
the B-phase star point line is along the sidewall 252B1 in the radial direction of the stator core,
the main body segment is a sidewall 2611 in the axial direction of the stator core.
Detailed Description
Reference will now be made in detail to embodiments of the present invention, examples of which are illustrated in the accompanying drawings, wherein like or similar reference numerals refer to the same or similar elements or elements having the same or similar function throughout. The embodiments described below with reference to the accompanying drawings are illustrative only for the purpose of explaining the present invention, and are not to be construed as limiting the present invention.
A stator assembly 1000 in accordance with an embodiment of the present invention is described below with reference to fig. 1-28.
As shown in fig. 1 to 8, a stator assembly 1000 according to an embodiment of the present invention is suitable for a z-slot 2 p-stage m-phase motor, where the number of slots per phase per pole is q ═ z/m/(2p), the number of parallel branches is a, and a ≦ q, and includes: a cylindrical stator core 100 and a stator winding 200.
The stator core 100 has a plurality of stator slots 101 arranged at intervals along a circumferential direction of the stator core 100. The stator winding 200 is constructed by a plurality of U-shaped conductor segments 201, each of the U-shaped conductor segments 201 includes a bent portion 210 and a first in-slot portion 214 and a second in-slot portion 215 connected to the bent portion 210, respectively, the first in-slot portion 214 of the U-shaped conductor segment 201 passes through one of the slot layers of one of the stator slots 101, the second in-slot portion 215 passes through one of the slot layers of the other stator slot 101, the first in-slot portion 214 and the second in-slot portion 215 pass through the stator slot 101 and then end portions thereof protrude beyond the stator core 100 to form a weld end 220, and the first in-slot portion 214 and the second in-slot portion 215 of the plurality of U-shaped conductor segments 201 located in adjacent layers are welded and connected on the weld end 220.
The bent portions 210 of the U-shaped conductor segments 201 are located at one side of the stator core 100 to form a hairpin end, the hairpin end can select different coil structures according to the process and actual requirements, and the welding end 220 is located at the other side of the stator core 100. For example, the U-shaped conductor segment 201 may be a flat coil, i.e., a coil with a large length-width ratio (e.g., the intermediate connection portion 213 of the bent portion 210 is configured to be an open annular structure, i.e., the middle portion of the bent portion 210 forms a nose structure, as shown in fig. 15 and 16), and the U-shaped conductor segment 201 may also be a stamped coil (e.g., the intermediate connection portion 213 of the bent portion 210 is configured to be a straight structure, i.e., the middle portion of the bent portion 210 forms a flat head structure, as shown in fig. 18 and 19).
The U-shaped conductor segments 201 comprise conductor segments of a first type 203 and conductor segments of a second type 204, the first in-slot portions 214 of the conductor segments of the first type 203 being located in the outermost slot layer of the respective stator slot 101 and the second in-slot portions 215 of the conductor segments of the first type 203 being located in the innermost slot layer of the respective stator slot 101; the first in-slot portions 214 of the conductor segments 204 of the second type and the second in-slot portions 215 of the conductor segments 204 of the second type are located in the inner slot layers of the corresponding stator slots 101, the inner slot layers comprising a sub-outer slot layer (e.g. slot layer d as shown in fig. 1-2) and a sub-inner slot layer (e.g. slot layer c as shown in fig. 1-2), the first in-slot portions 214 of the conductor segments 204 of the second type being located in the sub-inner slot layer of the corresponding stator slot 101, and the second in-slot portions 215 of the conductor segments 204 of the second type being located in the sub-outer slot layer of the corresponding stator slot.
It will be appreciated that the U-shaped conductor segments 201 may be classified into two categories depending on where the first in-slot portions 214, the second in-slot portions 215 are located, wherein the first in-slot portions 214 of the first type conductor segments 203 are located in the outermost slot layer of the respective stator slot 101 and the second in-slot portions 215 are located in the innermost slot layer of the respective stator slot 101; the first in-slot portion 214 and the second in-slot portion 215 of the second type of conductor segment 204 are each located in an inner slot layer, e.g. a sub-inner layer or a sub-outer layer, of the respective stator slot 101.
The stator winding 200 includes an a-phase winding 230A, where the a-phase winding 230A includes a plurality of first sub-winding segments 231, a second sub-winding segment 232, a plurality of third sub-winding segments 233, a fourth sub-winding segment 234, a bridge 240, a fifth sub-winding segment 235, a plurality of sixth sub-winding segments 236, a seventh sub-winding segment 237, and a plurality of eighth sub-winding segments 238, which are connected in sequence, an initial end of the a-phase winding 230A is connected to an a-phase outgoing line 251A, and a terminal end of the eighth sub-winding segment 238 is connected to an a-phase star point line 252A.
It should be noted that "phase a" herein may designate any one of the subcomponents, and is taken as an example for convenience of description.
As shown in fig. 1, the plurality of first sub-winding segments 231 are sequentially connected, the first sub-winding segment 231 located at the head end is directly connected to the a-phase outgoing line 251A, and the first sub-winding segment 231 located at the tail end is directly connected to the second sub-winding segment 232. The plurality of third sub-winding segments 233 are sequentially connected, the third sub-winding segment 233 positioned at the head end is directly connected to the second sub-winding segment 232, and the third sub-winding segment 233 positioned at the tail end is directly connected to the fourth sub-winding segment 234. As shown in fig. 1, the plurality of sixth sub-winding segments 236 are sequentially connected, the sixth sub-winding segment 236 positioned at the head end is directly connected to the fifth sub-winding segment 235, and the sixth sub-winding segment 236 positioned at the tail end is directly connected to the seventh sub-winding segment 237. The eighth sub-winding segments 238 are sequentially connected, the eighth sub-winding segment 238 positioned at the head end is directly connected to the seventh sub-winding segment 237, and the eighth sub-winding segment 238 positioned at the tail end is directly connected to the a-phase star point line.
As shown in fig. 1 and 2, the first sub-winding segment 231 is wound by the following method:
s11, the phase a lead-out wire 251A is led out to the radially outermost slot layer of the initial slot of the phase a winding wire 230A, where the initial slot of the phase a winding wire 230A is the stator slot 101 that is first inserted when the phase a lead-out wire 251A starts to be ready for winding, so as to be ready for winding the first sub-winding wire segment 231 located at the initial position, the remaining first sub-winding wire segments 231 are connected to the first sub-winding wire segment 231 located in front of the first sub-winding wire segment, and the phase a lead-out wire 251A is connected to the first in-slot portion 214 of one first type conductor segment 203 located at the radially outermost slot layer at the welding end 220. For example, as shown in fig. 1, the a-phase lead line 251A is led out from the outermost layer a of the 1 st groove, which is the initial groove;
s12, spanning y stator slots 101 in a first direction (the direction shown in fig. 1), wherein y is an integer and y is z/2p, and spanning from an outermost slot layer to an innermost slot layer of an initial slot of the a-phase winding 230A;
s13, crossing in a second direction (the direction shown in fig. 1) opposite to the first direction, wherein the number of layers varies from inside to outside in the radial direction to the radially outermost slot layer for every y slot layers 101;
as shown in fig. 1 and 5, the second sub-winding segment 232 is wound by the following method:
s21, the winding starts from the outermost slot layer of the corresponding stator slots 101, spans y stator slots 101 in the first direction, and spans from the outermost slot layer to the innermost slot layer;
s22, spanning along the second direction, wherein the number of layers of the slot layers of the y stator slots 101 is changed by one layer every time the slot layers are spanned, and the number of layers is changed from inside to outside along the radial direction to the radial secondary outer slot layer;
s23, after the winding crosses y-1 stator slots 101 along the second direction and the number of layers changes towards the radial outermost slot layer, the slot where the winding is located is the slot where the termination end of the second sub-winding section 232 is located, the groove is adjacent to the groove where the a-phase outgoing line 251A is located, and the outermost groove layer is located on one side of the a-phase outgoing line 251A facing the first direction, the portion of the second sub-winding segment 232 that spans the (y-1) stator slots 101 is a weld end 220, the welding terminals 220 are formed by welding the first in-slot portions 214 of the first-type conductor segments 203 and the second in-slot portions 215 of the second-type conductor segments 204, for example, in the example shown in fig. 5, the weld end 220' spanning (y-1) stator slots is formed by welding the free end of the second in-slot portion 215 located at the 7 th slot b layer with the first in-slot portion 214 located at the 2 nd slot a layer;
as shown in fig. 1, the third sub-winding segment 233 is wound by:
s31, spanning y stator slots 101 in the first direction, and spanning from the outermost slot layer to the innermost slot layer;
s32, crossing along a second direction, wherein the number of layers of the slot layers of every y stator slots 101 is changed by one, the number of layers is changed from inside to outside along the radial direction to the radially outermost slot layer, and the second direction is opposite to the first direction;
as shown in fig. 1 and 3, the fourth sub-winding segment 234 is wound by the following method:
s41, the winding starts from the outermost slot layer of the corresponding stator slot 101, spans y stator slots 101 in the first direction, and spans from the outermost slot layer to the innermost slot layer of the initial slots;
s42, crossing along the second direction, where the number of layers per y stator slot 101 slot layers changes by one, where the number of layers changes from inside to outside along the radial direction to the next outer slot layer along the radial direction, and the terminal end of the fourth sub-winding segment 234 is located in the next outer slot layer;
s43, welding one end of the bridge wire 240 to the terminal end of the fourth sub-winding wire segment 234, and crossing the y stator slots 101 on the same layer along the first direction with the bridge wire 240, as shown in fig. 3;
as shown in fig. 1 and 3, the fifth sub-winding segment 235 is wound by the following method:
p11, the other end of the bridge wire 240 is welded to the beginning of the fifth winding wire segment 235 to prepare for winding a fifth sub-winding wire segment 235, the winding wire crosses from the other end of the bridge wire 240 in the first direction, and the number of layers per layer crossing y stator slots 101 varies by one, wherein the number of layers varies radially from the outside to the inside to the radially innermost slot layer;
p12, spanning y stator slots 101 in the second direction, and spanning from the innermost slot layer to the outermost slot;
as shown in fig. 1, the sixth sub-winding segment 236 is wound by the following method:
p21, the winding starts from the outermost layer of the corresponding stator slot 101 and crosses along the first direction, the number of layers of slot layers changes by one layer every y stator slots 101, wherein the number of layers changes from outer to inner along the radial direction to the radially innermost slot layer;
p22, spanning y stator slots 101 in the second direction, and spanning from the innermost slot layer to the outermost slot;
as shown in fig. 1 and 4, the seventh sub-winding segment 237 is wound by the following method:
p31, the winding starting from the outermost slot layer of the respective stator slot 101, spanning y-1 stator slots 101 in the first direction, wherein the number of layers varies by one to the radially inner slot layer, the part of the seventh sub-winding segment 237 spanning the (y-1) stator slots 101 being a welding terminal 220, which welding terminal 220 is formed by welding the first in-slot portions 214 of the conductor segments of the first type 203 and the second in-slot portions 215 of the conductor segments of the second type 204, e.g. in the example shown in fig. 5, the welding terminal 220' spanning the (y-1) stator slots is formed by welding the free end of the first in-slot portion 214 at the 8 th slot-a layer with the second in-slot portion 215 at the 13 th slot-b layer;
p32, spanning along the first direction, wherein the number of layers per y stator slot 101 slot layers is changed by one, wherein the number of layers is changed from outer to inner along the radial direction to the radially innermost slot layer;
p33, spanning y stator slots 101 in the second direction, and spanning from the innermost slot layer to the outermost slot;
as shown in fig. 1 and 2, the eighth sub-winding segment 238 is wound by the following method:
p41, the winding starts from the outermost layer of the corresponding stator slot 101 and crosses along the first direction, the number of layers of slot layers changes by one layer every y stator slots 101, wherein the number of layers changes from outer to inner along the radial direction to the radially innermost slot layer;
p42, spanning y stator slots 101 in the second direction, and spanning from the innermost slot layer to the outermost slot from which the a phase dotted line 252A leads, for example, in the example shown in fig. 2, the a phase dotted line 252A leads from the 7 th slot a layer.
According to the stator assembly 1000 of the embodiment of the present invention, at the welding ends 220 ' of the second and seventh sub-winding segments 232 and 237 of the a-phase winding wire 230A, the welding ends 220 ' span (y-1) stator slots 101, whereby the distance at the welding ends 220 ' can be reduced, and for the entire a-phase winding process, the distance between the a-phase star point line 252A and the a-phase lead-out line 251A can be reduced, thereby facilitating the welding connection. In addition, by adopting a wave winding type wiring mode and combining with the adjustment of the span of part of the welding end 220, the voltage distribution in the same groove is uniform, the voltage difference of the flat wires between adjacent layers is small, the insulation breakdown risk of the motor can be effectively reduced, the reliability is high, the types of required coils are few, the structure and the process are simple, required equipment is few, and batch production is easy to carry out.
In addition, it should be further noted that the winding manner of other phases of the stator assembly 1000 may be the same as that of the phase a, so that the distance between the corresponding phase star point line and the corresponding phase outgoing line may be reduced on the whole, and the performance of the motor may be further optimized, so that the voltage distribution in the same slot is more uniform, the voltage difference between the flat lines between adjacent layers is reduced, the risk of insulation breakdown of the motor is reduced, and the reliability of the motor is improved.
In some embodiments, the U-shaped conductor segments 201 are equal in cross-sectional area in the direction of extension of the conductor segments. In some embodiments, the number of slot layers in each stator slot 101 is an even number. Therefore, the performance of the motor can be further optimized, and the operation reliability of the motor is improved.
In some embodiments, the first sub-winding segment 231 is three segments; the third sub winding section 233 is three sections; the sixth sub-winding section 236 is three sections; the eighth sub-winding segment 238 has three segments.
According to some embodiments of the present invention, as shown in fig. 1 to 7, the stator assembly 1000 is adapted to an electric machine having a slot number z of 48, a pole pair number p of 4, a phase number 3, and a pitch y of 6, wherein each of the 48 stator slots 101 has 4 slot layers a, B, C, d, wherein the slot layer a is located at the outermost radial side of the stator core 100, the slot layer d is located at the innermost radial side of the stator core 100, and the 3 phases include an a phase, a B phase, and a C phase, wherein the a-phase winding 230A of the stator has the following route:
1a->7d->1c->43b->37a->
43d->37c->31b->25a->
31d->25c->19b->13a->
19d->13c->7b->2a->
8d->2c->44b->38a->
44d->38c->32b->26a->
32d->26c->20b->14a->
20d->14c->8b->
14b->20c->26d->
20a->26b->32c->38d->
32a->38b->44c->2d->
44a->2b->8c->14d->
8a->13b->19c->25d->
19a->25b->31c->37d->
31a->37b->43c->1d->
43a->1b->7c->13d->7a;
wherein the winding from the 1 st moat a layer to the 13 th moat a layer includes a plurality of the first sub-winding segments 231 repeatedly wound, and the first-type conductor segments 203 span the 1 st moat a layer and the 7 th moat d layer, the 37 th moat a layer and the 43 th moat d layer, the 25 th moat a layer and the 31 th moat d layer in the winding from the 1 st moat a layer to the 13 th moat a layer; the second type conductor segment 204 spans the 1 st and 43 th slot c layers, the 37 th and 31 th slot c layers, and the 25 th and 19 th slot c layers;
a winding from the 13 th moat-a layer to the 2 nd moat-a layer is the second sub-winding segment 232, wherein the first-type conductor segment 203 spans the 13 th moat-a layer and the 19 th moat-d layer; the second type conductor segment 204 spans the 13 th slot c layer and the 7 th slot b layer; in the second sub-winding segment 232, the free end of the second in-slot portion 215 of the second-type conductor segment 204 located in the 7 th slot-b layer is welded to the free end of the first in-slot portion 214 of the first-type conductor segment 203 located in the 2 nd slot-a layer to construct a welding end 220' spanning 5 stator slots 101;
the winding from the 2 nd to the 14 th slot-a layers includes a plurality of repeatedly wound third sub-winding segments 233, and in the winding from the 2 nd to the 14 th slot-a layers, the first-type conductor segments 203 span the 2 nd and 8 th slot-d layers, the 38 th and 44 th slot-a layers, the 26 th and 32 th slot-a layers; the second type of conductor segment 204 spans the 2 nd and 44 th, 38 th and 32 th, 26 th and 20 th slot c layers;
a winding from the 14 th moat-a layer to the 8 th moat-b layer is the fourth sub-winding segment 234, wherein the first-type conductor segment 203 spans the 14 th moat-a layer and the 20 th moat-d layer; the second type conductor segment 204 spans the 14 th slot c layer and the 8 th slot b layer;
the bridge threads 240 span from the 8 th slot b layer to the 14 th slot b layer;
a winding from the 14 th slot-b layer to the 20 th slot-a layer is the fifth sub-winding segment 235, wherein the first-type conductor segment 203 spans the 26 th slot-d layer and the 20 th slot-a layer; the second type conductor segment 204 spans the 14 th slot b layer and the 20 th slot c layer;
the winding from the 20 th moat a layer to the 14 th moat d layer comprises a plurality of sixth sub-line segments 236 repeatedly wound, and in the winding from the 20 th moat a layer to the 14 th moat d layer, the first-type conductor segments 203 span the 38 th and 32 th moat a layers, the 2 nd and 44 th moat d layers, the 14 th and 8 th moat d layers; the second type conductor segment 204 spans the 26 th and 32 th slot b layers, the 38 th and 44 th slot b layers, the 2 nd and 8 th slot b layers;
a winding from the 14 th slot-d layer to the 25 th slot-d layer is the seventh sub-winding segment 237, wherein the first-type conductor segment 203 spans the 25 th slot-a layer and the 19 th slot-a layer; the second type conductor segment 204 spans the 13 th slot b layer and the 19 th slot c layer; in the seventh sub-winding segment, the free ends of the first in-slot portions 214 of the first-type conductor segments 203 located in the 8 th slot-a layer are welded to the free ends of the second in-slot portions 215 of the second-type conductor segments 204 located in the 13 th slot-b layer to construct welding ends 220' spanning 5 stator slots;
the winding from the 25 th slot-d layer to the 7 th slot-a layer is a plurality of eighth sub-winding segments 238 which are repeatedly wound, and in the winding from the 25 th slot-d layer to the 7 th slot-a layer, the first-type conductor segments 203 span the 25 th slot-d layer and the 19 th slot-a layer, the 37 th slot-d layer and the 31 th slot-a layer, the 1 st slot-d layer and the 43 th slot-a layer, the 13 th slot-d layer and the 7 th slot-a layer; the second type of conductor segment 204 spans the 25 th and 31 th slot b layers, the 37 th and 43 th slot b layers, and the 1 st and 7 th slot b layers.
In some embodiments, the corresponding star point lines of phase a, phase B, and phase C are circumferentially separated by 4 stator slots 101. In some embodiments, the outgoing lines for phase a, phase B, and phase C are circumferentially separated by 4 stator slots 101.
In some embodiments, as shown in fig. 8, 12, 20, 21, 2, the bridge wire 240 is located at one side of the weld end 220 of the stator core 100. In some embodiments, as shown in fig. 8, 12, 20, 21, 26, the outgoing line and the star point line of the corresponding phase are located on one side of the welding end 220 of the stator core 100. Therefore, the height of the welding end 220 can be fully utilized, the space is saved, and the height of the motor is reduced.
In some embodiments, the phase B winding is wound in the same manner as the phase a winding 230A. In some embodiments, the C-phase winding is wound in the same manner as the a-phase winding 230A. Therefore, the distance between the corresponding star point line and the corresponding leading-out line can be reduced on the whole, the performance of the motor can be further optimized, the voltage distribution in the same groove is more uniform, the voltage difference of flat wires between adjacent layers is reduced, the insulation breakdown risk of the motor is reduced, and the reliability of the motor is improved.
In some embodiments, the stator winding 200 includes a phase a winding 230A, B and a phase C winding, the phase B winding is wound in the same manner as the phase a winding, the initial end of the phase B winding is connected to a phase B outgoing line 251B, and the terminal end of the phase B winding is connected to a phase B star point line 252B; the winding method of the C-phase winding is the same as that of the A-phase winding, the initial end of the C-phase winding is connected with a C-phase outgoing line 251W, and the terminal end of the C-phase winding is connected with a C-phase star point line 252W; the star point lines corresponding to the phase A, the phase B and the phase C are different by 4 stator slots 101 in the circumferential direction.
As shown in fig. 8-10, the stator winding 200 further includes a neutral line 260, and the neutral line 260 may be connected to each of the a-phase, C-phase, and B-phase star lines. The neutral line 260 includes a main body segment 261 and a first protrusion 262, the main body segment 261 extends in the circumferential direction of the stator core 100, the first protrusion 262 is located at one end of the main body segment 261, and the first protrusion 262 is welded to a side wall 2621 of the circumferential direction of the stator core 100 along the a-phase star point line 252A along a side wall 252A1 of the circumferential direction of the stator core 100. It should be noted that, by welding the side wall 2621 of the first protruding portion 262 along the circumferential direction of the stator core 100 with the star point line, not only the radial size of the stator winding 200 can be reduced, but also the welding area can be increased by using the protruding structure, so that the size of the stator assembly can be reduced, and the stability and the safety of the motor can be improved.
According to some embodiments of the present invention, as shown in fig. 8 to 10, the neutral line 260 further includes a second protruding portion 263, the second protruding portion 263 is located at the other end of the main body segment 261, and a side wall 2631 of the second protruding portion 263 in the circumferential direction of the stator core 100 is welded to a side wall 252W1 of the C-phase star point line 252W in the circumferential direction of the stator core 100. It should be noted that, by welding the sidewall 2631 of the second protruding portion 263 along the circumferential direction of the stator core 100 with a star point line, not only the radial size of the stator winding 200 can be reduced, but also the welding area can be increased by using a protruding structure, so that the volume of the stator assembly can be reduced, and the stability and the safety of the motor can be improved.
According to some embodiments of the present invention, as shown in fig. 10, the neutral line 260 further includes a third protruding portion 264, the third protruding portion 264 is located between the first protruding portion 262 and the second protruding portion 263, and a sidewall 2641 of the third protruding portion 264 in the radial direction of the stator core 100 is welded to a sidewall 252B1 of the B phase star point line 252B in the radial direction of the stator core 100. It should be noted that, by welding the third protruding portion 264 with the star point line along the sidewall 2641 of the stator core 100 in the radial direction, not only the radial size of the stator winding 200 can be reduced, but also the welding area can be increased by using a protruding structure, thereby reducing the volume of the stator assembly and improving the stability and safety of the motor.
As shown in fig. 10, the main body segment 261 is provided with at least one of the first protrusion 262, the second protrusion 263, and the third protrusion 264 on a sidewall 2611 in the axial direction of the stator core 100. In some embodiments, the neutral line 260 may adopt a sheet metal structure, which not only saves space, but also has the advantages of good manufacturability and low cost.
As shown in fig. 8-11, in some embodiments, the bridge threads 240 include a connecting segment 241, a first segment 242, and a second segment 243. Specifically, the connecting section 241 extends in the circumferential direction of the stator core 100, the first section 242 extends in the axial direction of the stator core 100, the first section 242 is connected to one end of the connecting section 241, the side wall 2421 of the first section 242 located radially inside the stator core 100 is welded to the welding end 220 of the corresponding U-shaped conductor segment 201, the second section 243 extends in the axial direction of the stator core 100, the second section 243 is connected to the other end of the connecting section 241, and the side wall 2431 of the second section 243 located radially inside the stator core 100 is welded to the welding end 220 of the corresponding U-shaped conductor segment 201.
Further, as shown in fig. 8, an end surface of one end of the first segment 242 is welded to the connecting segment 241, and an end surface of one end of the second segment 243 is welded to the connecting segment 241. Thereby saving space. For convenience of processing and production cost saving, in some embodiments, the bridge connector 240 is an integrally formed piece. According to some embodiments of the present invention, as shown in fig. 8, the first segment 242 and the second segment 243 are located on the same side of the connecting segment 241. To facilitate welding of the bridge wires 240 with the corresponding welding terminals 220, in the example shown in fig. 8, the ends of the connection segments 241 are each bent radially inward of the stator core 100 to form bent segments 244, and the connection segments 241 are U-shaped. Therefore, the connecting section 241 of the U-shaped structure has an avoidance space, and can avoid the outer coil. In addition, the bridge lines 240 are mainly arranged in the radial direction of the stator core 100, occupying no axial space thereof, and the axial height of the stator core 100 can be reduced. In some embodiments, each phase bridge wire 240 of the stator winding 200 may be machined by using sheet metal parts, which is relatively low in cost.
As shown in fig. 12 to 14, according to some embodiments of the present invention, the opposite sidewalls of the bridge wire 240 in the radial direction of the stator core 100 are a first sidewall 245, a second sidewall 246, and one of the first sidewall 245 and the second sidewall 246 is welded with the corresponding welding terminal 220. For example, in the example shown in fig. 14, the bridge wire 240 has a long shape and a curvature in the circumferential direction of the stator core 100, so that the structure of the bridge wire 240 can be simplified to facilitate the manufacturing process and save the manufacturing cost.
As shown in fig. 12 and 13, in some embodiments, the bridge wire 240 is provided on an end surface of the welding end 220 in the axial direction of the stator core 100, and a side wall of the connecting segment 241 facing the welding end 220 is a third side wall 247, and the third side wall 247 is welded to the corresponding welding end 220. Further, the opposite side walls of the bridge wire 240 in the circumferential direction of the stator core 100 are a fourth side wall 248 and a fifth side wall 249, and the fourth side wall 248 and the fifth side wall 249 are respectively welded to the corresponding welding ends 220.
In some embodiments, the bridge threads 240 of one portion of the stator winding 200 may be bridge threads 240 as shown in fig. 11, and the bridge threads 240 of another portion may be bridge threads 240 as shown in fig. 14. For example, in the example shown in fig. 12, the stator winding 200 includes a phase winding 230A, B and a phase winding C, the winding method of the phase winding B is the same as the winding method of the phase winding 230A, and the winding method of the phase winding C is the same as the winding method of the phase winding 230A, where as shown in fig. 6 and 7, the bridge of the phase winding a 230A is a phase bridge 240A, the bridge of the phase winding B is a phase bridge 240B, and the bridge of the phase winding C is a phase bridge 240W, where any one of the phase bridge 240B and the phase bridge 240W may be the bridge 240 as shown in fig. 14, or the bridge 240 as shown in fig. 11.
In some embodiments, the bending portion 210 includes a first connection portion 211, a second connection portion 212, and an intermediate connection portion 213, the first connection portion 211 is connected to the first in-slot portion 214, one end of the intermediate connection portion 213 is connected to the first connection portion 211, the other end of the intermediate connection portion 213 is connected to the second connection portion 212, and the second connection portion 212 is connected to the second in-slot portion 215. As shown in fig. 15 to 17 and 21 to 25, the intermediate connection part 213 has an annular structure with an opening, and one end of the intermediate connection part 213 is twisted with respect to the other end of the intermediate connection part 213 in a radial direction of the stator core 100. It will be appreciated that the intermediate connection 213 is configured in a nose configuration.
According to some embodiments of the present invention, as shown in fig. 21-23, the intermediate connection 213 of the first-type conductor segments 203 is the same shape as the intermediate connection 213 of the second-type conductor segments 204. Further, as shown in fig. 21-23, the intermediate connection portions 213 of the first-type conductor segments 203 are sleeved on the intermediate connection portions 213 of the second-type conductor segments 204. In some embodiments, the intermediate connection 213 of the second-type conductor segments 204 is located directly below the intermediate connection 213 of the first-type conductor segments 203.
According to some embodiments of the present invention, as shown in fig. 18, 19, 25, and 28, the bent portion 210 includes a first connection portion 211, a second connection portion 212, and an intermediate connection portion 213, the first connection portion 211 is connected to the first in-slot portion 214, one end of the intermediate connection portion 213 is connected to the first connection portion 211, the other end of the intermediate connection portion 213 is connected to the second connection portion 212, the second connection portion 212 is connected to the second in-slot portion 215, and one end of the intermediate connection portion 213 is twisted with respect to the other end of the intermediate connection portion 213 in a radial direction of the stator core 100. The intermediate connection portion 213 of the first-type conductor segment 203 has an open ring structure, and the intermediate connection portion 213 of the second-type conductor segment 204 has a linear structure. It will be appreciated that the intermediate connection portions 213 of the first type of conductor segments 203 are configured in a nose end configuration and the intermediate connection portions 213 of the second type of conductor segments 204 are configured in a flat head configuration, whereby the nose end configuration can give way to the flat head configuration and the design of the flat head configuration is also effective in reducing the height of the coil.
In some embodiments, as shown in fig. 25, the intermediate connection 213 of the second-type conductor segment 204 is located directly below the intermediate connection 213 of the first-type conductor segment 203. Thus, the intermediate connection portions 213 of the first-type conductor segments 203 can avoid the intermediate connection portions 213 of the second-type conductor segments 204, and the intermediate connection portions 213 of the second-type conductor segments 204 can be designed to effectively reduce the height of the coil.
According to some embodiments of the present invention, as shown in fig. 26 to 28, the bent portion 210 includes a first connection portion 211, a second connection portion 212, and an intermediate connection portion 213, the first connection portion 211 is connected to the first in-slot portion 214, one end of the intermediate connection portion 213 is connected to the first connection portion 211, the other end of the intermediate connection portion 213 is connected to the second connection portion 212, the second connection portion 212 is connected to the second in-slot portion 215, the intermediate connection portion 213 has a linear structure, and one end of the intermediate connection portion 213 is twisted with respect to the other end of the intermediate connection portion 213 in a radial direction of the stator core 100. It is understood that the intermediate connection portion 213 has a long bar-shaped structure, and in order to make the cylindrical stator core 100 have a certain curvature of the intermediate connection portion 213, and in order to facilitate winding, both ends of the intermediate connection portion 213 are twisted at a certain angle along the radial direction of the stator core 100, that is, the intermediate connection portion 213 has a flat head structure, so that the height of the coil can be reduced.
In some embodiments, as shown in fig. 28, the length of the intermediate connection 213 of the first-type conductor segments 203 is greater than the length of the intermediate connection 213 of the second-type conductor segments 204. In some embodiments, the twist angle of the intermediate connection 213 of the first-type conductor segment 203 is the same as the twist angle of the intermediate connection 213 of the second-type conductor segment 204. In order to improve the regularity of the winding and reduce the volume of space occupied by the bent portions, in some embodiments, such as shown in fig. 28, the intermediate connection portion 213 of the second-type conductor segment 204 is located directly below the intermediate connection portion 213 of the first-type conductor segment 203.
An electric machine according to an embodiment of the invention comprises a stator assembly 1000 as described above.
According to the motor of the embodiment of the present invention, at the respective welding terminals 220 ' of the second and seventh sub-winding segments 232 and 237 of the a-phase winding wire 230A, the welding terminals 220 ' span (y-1) stator slots 101, whereby the distance at the welding terminals 220 ' can be reduced, and for the entire winding process of the a-phase, the distance between the a-phase star point wire 252A and the a-phase lead-out wire 251A can be reduced, whereby the welding connection is easy. In addition, by adopting a wave winding type wiring mode and combining with the adjustment of the span of part of the welding end 220, the voltage distribution in the same groove is uniform, the voltage difference of the flat wires between adjacent layers is small, the insulation breakdown risk of the motor can be effectively reduced, the reliability is high, the types of required coils are few, the structure and the process are simple, required equipment is few, and batch production is easy to carry out.
In the description herein, references to the description of the term "one embodiment," "some embodiments," "an illustrative embodiment," "an example," "a specific example," or "some examples" or the like mean that a particular feature, structure, material, or characteristic described in connection with the embodiment or example is included in at least one embodiment or example of the invention. In this specification, the schematic representations of the terms used above do not necessarily refer to the same embodiment or example. Furthermore, the particular features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
While embodiments of the invention have been shown and described, it will be understood by those of ordinary skill in the art that: various changes, modifications, substitutions and alterations can be made to the embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the claims and their equivalents.

Claims (11)

1.一种定子组件,适用于z槽2p级m相的电机中,其每极每相槽数为q=z/m/(2p),并联支路数为a,a≤q,其特征在于,包括:1. A stator assembly, suitable for a z-slot 2p-level m-phase motor, the number of slots per pole and phase is q=z/m/(2p), the number of parallel branches is a, a≤q, and its characteristics are: is, including: 圆筒形的定子铁芯,所述定子铁芯上具有沿所述定子铁芯的圆周方向间隔排列的多个定子槽;a cylindrical stator core, the stator core is provided with a plurality of stator slots spaced along the circumferential direction of the stator core; 定子绕组,所述定子绕组由多个U形导体段构造成,每个所述U形导体段包括折弯部和分别连接至所述折弯部的第一槽内部分和第二槽内部分,所述U形导体段的第一槽内部分穿过其中一个定子槽中的其中一个槽层,所述第二槽内部分穿过另一个定子槽中的其中一个槽层,所述第一槽内部分和所述第二槽内部分穿过所述定子槽后其端部超出所述定子铁芯以形成焊接端,在所述焊接端上所述多个U形导体段的位于相邻层的所述第一槽内部分和所述第二槽内部分焊接连接;a stator winding constructed from a plurality of U-shaped conductor segments, each of the U-shaped conductor segments including a bend and a first in-slot portion and a second in-slot portion connected to the bend, respectively , the first in-slot portion of the U-shaped conductor segment passes through one of the slot layers in one of the stator slots, the second in-slot portion passes through one of the slot layers in the other stator slot, and the first After the in-slot portion and the second in-slot portion pass through the stator slot, the ends thereof protrude beyond the stator core to form a welding end, on which the plurality of U-shaped conductor segments are located adjacent to each other. the first in-slot portion and the second in-slot portion of the layer are welded together; 所述定子绕组还包括中性线,所述中性线包括主体段和第一凸起部,所述主体段沿所述定子铁芯的周向方向延伸,所述第一凸起部位于所述主体段的一端,所述第一凸起部沿所述定子铁芯周向方向的侧壁与A相星点线的沿所述定子铁芯周向方向的侧壁焊接,所述中性线与所述定子绕组的其余各相星点线均连接;The stator winding further includes a neutral wire, and the neutral wire includes a main body segment and a first protruding portion, the main body segment extending along the circumferential direction of the stator core, and the first protruding portion is located at the At one end of the main body section, the side wall of the first protruding portion along the circumferential direction of the stator core is welded to the side wall of the phase A star line along the circumferential direction of the stator core, and the neutral The line is connected with the star point lines of the other phases of the stator winding; 所述中性线还包括第二凸起部,所述第二凸起部位于所述主体段的另一端,所述第二凸起部沿所述定子铁芯周向方向的侧壁与C相星点线的沿所述定子铁芯周向方向的侧壁焊接;The neutral line further includes a second protruding portion, the second protruding portion is located at the other end of the main body segment, and the side wall of the second protruding portion along the circumferential direction of the stator core is connected to C. welding the side walls of the phase star point line along the circumferential direction of the stator core; 所述中性线还包括第三凸起部,所述第三凸起部位于所述第一凸起部和所述第二凸起部中间,所述第三凸起部沿所述定子铁芯径向方向的侧壁与B相星点线沿所述定子铁芯径向方向的侧壁焊接。The neutral line further includes a third raised part, the third raised part is located between the first raised part and the second raised part, and the third raised part is along the stator iron. The side wall in the radial direction of the core is welded to the side wall in the radial direction of the stator core with the star point line of the B-phase. 2.根据权利要求1所述的定子组件,其特征在于,所述主体段在所述定子铁芯的轴线方向的侧壁上设有所述第一凸起部、所述第二凸起部和所述第三凸起部中的至少一个。2 . The stator assembly according to claim 1 , wherein the main body section is provided with the first protruding portion and the second protruding portion on the side wall in the axial direction of the stator iron core. 3 . and at least one of the third raised portions. 3.根据权利要求2所述的定子组件,其特征在于,所述U形导体段包括第一类导体段和第二类导体段,所述第一类导体段的第一槽内部分位于相应的定子槽的最外槽层,所述第一类导体段的第二槽内部分位于相应的定子槽的最内槽层;所述第二类导体段的第一槽内部分和所述第二类导体段的第二槽内部分均位于相应的定子槽的内槽层,所述内槽层包括次外槽层和次内槽层,所述第二类导体段的第一槽内部分位于相应定子槽的次内槽层,所述第二类导体段的第二槽内部分位于相应定子槽的次外槽层;所述A相绕线包括依次连接的多个第一子绕线段、一个第二子绕线段、多个第三子绕线段、一个第四子绕线段、一个桥接线、一个第五子绕线段、多个第六子绕线段、一个第七子绕线段和多个第八子绕线段,所述A相绕线的起始位置连接A相引出线,所述A相绕线的终止端连接A相星点线;3 . The stator assembly according to claim 2 , wherein the U-shaped conductor segment comprises a first-type conductor segment and a second-type conductor segment, and the first in-slot portion of the first-type conductor segment is located in the corresponding 3 . The outermost slot layer of the stator slot, the second slot inner part of the first type conductor segment is located in the innermost slot layer of the corresponding stator slot; the first slot inner part of the second type conductor segment and the The second in-slot portions of the second-class conductor segments are all located in the inner slot layers of the corresponding stator slots, the inner slot layers include a secondary outer slot layer and a secondary inner slot layer, and the first-slot inner portions of the second-class conductor segments are located in the inner slot layers of the corresponding stator slots. located in the secondary inner slot layer of the corresponding stator slot, and the second inner slot portion of the second type conductor segment is located in the secondary outer slot layer of the corresponding stator slot; the A-phase winding includes a plurality of first sub-winding segments connected in sequence , a second sub-winding segment, a plurality of third sub-winding segments, a fourth sub-winding segment, a bridge line, a fifth sub-winding segment, a plurality of sixth sub-winding segments, a seventh sub-winding segment and multiple The eighth sub-winding segment, the starting position of the A-phase winding is connected to the A-phase lead wire, and the terminating end of the A-phase winding is connected to the A-phase star-point line; 所述第一子绕线段通过如下方法进行绕制:The first sub-winding segment is wound by the following method: S11、将A相引出线引出至所述A相绕线的初始槽的径向最外槽层,用以准备绕制位于初始端的第一子绕线段,其余第一子绕线段与该位于其前面的第一子绕线段连接,所述A相引出线在焊接端上与位于径向最外槽层的一个第一类导体段的第一槽内部分连接;S11. Lead out the A-phase lead wire to the radially outermost groove layer of the initial groove of the A-phase winding, so as to prepare for winding the first sub-winding segment at the initial end, and the remaining first sub-winding segments and the The front first sub-winding segment is connected, and the A-phase lead-out wire is connected to the inner part of the first slot of a first-type conductor segment located in the radially outermost slot layer on the welding end; S12、沿第一方向跨越y个定子槽,其中y为整数且y=z/2p,且从所述A相绕线的初始槽的最外槽层跨越至最内槽层;S12, spanning y stator slots along the first direction, where y is an integer and y=z/2p, and spanning from the outermost slot layer to the innermost slot layer of the initial slot of the A-phase winding; S13、沿第二方向跨越,每跨越y个定子槽槽层的层数变化一层,其中层数沿径向从内到外变化直至径向最外槽层,所述第二方向与所述第一方向相反;S13, spanning along the second direction, the number of layers of each spanning y stator slot layers varies by one layer, wherein the number of layers varies from the inside to the outside in the radial direction to the outermost slot layer in the radial direction, and the second direction is the same as the The first direction is opposite; 所述第二子绕线段通过如下方法进行绕制:The second sub-winding segment is wound by the following method: S21、绕线从相应的定子槽的最外槽层开始,沿所述第一方向跨越y个定子槽,且从最外槽层跨越至最内槽层;S21, the winding starts from the outermost slot layer of the corresponding stator slot, spans y stator slots along the first direction, and spans from the outermost slot layer to the innermost slot layer; S22、沿所述第二方向跨越,每跨越y个定子槽槽层的层数变化一层,其中层数沿径向从内到外变化直至径向次外槽层;S22, spanning along the second direction, the number of layers of each spanning y stator slot slot layers changes by one layer, wherein the number of layers varies from the inside to the outside along the radial direction to the radial sub-outer slot layer; S23、绕线沿所述第二方向跨越y-1个定子槽、且层数向径向最外槽层变化后,绕线所在的槽为所述第二子绕线段终止端所在的槽,所述第二子绕线段终止端所在的槽与所述A相引出线所在的槽相邻,且该最外槽层位于所述A相引出线的朝向第一方向的一侧,所述第二子绕线段的跨越所述y-1个所述定子槽的部分为焊接端,该焊接端由所述第一类导体段的第一槽内部分和所述第二类导体段的第二槽内部分焊接而成;S23. After the winding spans y-1 stator slots along the second direction, and the number of layers changes to the radially outermost slot layer, the slot where the winding is located is the slot where the termination end of the second sub-winding segment is located, The slot where the termination end of the second sub-winding segment is located is adjacent to the slot where the phase A lead wire is located, and the outermost slot layer is located on the side of the phase A lead wire facing the first direction, and the first The part of the two sub-winding segments spanning the y-1 stator slots is the welding end, and the welding end is formed by the first slot part of the first type of conductor segment and the second part of the second type of conductor segment. The inner part of the groove is welded; 所述第三子绕线段通过如下方法进行绕制:The third sub-winding segment is wound by the following method: S31、沿第一方向跨越y个定子槽,且从最外槽层跨越至最内槽层;S31, spanning y stator slots along the first direction, and spanning from the outermost slot layer to the innermost slot layer; S32、沿第二方向跨越,每跨越y个定子槽槽层的层数变化一层,其中层数沿径向从内到外变化直至径向最外槽层,所述第二方向与所述第一方向相反;S32, spanning along the second direction, the number of layers of each spanning y stator slot layers changes by one layer, wherein the number of layers varies from the inside to the outside in the radial direction to the outermost slot layer in the radial direction, and the second direction is the same as the The first direction is opposite; 所述第四子绕线段通过如下方法进行绕制:The fourth sub-winding segment is wound by the following method: S41、绕线从相应的定子槽的最外槽层开始,沿所述第一方向跨越y个定子槽,且从初始槽的最外槽层跨越至最内槽层;S41, the winding starts from the outermost slot layer of the corresponding stator slot, spans y stator slots along the first direction, and spans from the outermost slot layer of the initial slot to the innermost slot layer; S42、沿所述第二方向跨越,每跨越y个定子槽槽层的层数变化一层,其中层数沿径向从内到外变化直至径向次外槽层,所述第四子绕线段的终止端位于该次外槽层内;S42, spanning along the second direction, the number of layers of each spanning y stator slot layers changes by one layer, wherein the number of layers varies from the inside to the outside in the radial direction to the second outer slot layer in the radial direction, and the fourth sub-winding The terminating end of the line segment is located in the secondary outer groove layer; S43、所述桥接线的一端与所述第四子绕线段的终止端焊接,所述桥接线沿第一方向同层跨越y个定子槽;S43, one end of the bridging wire is welded with the terminal end of the fourth sub-winding segment, and the bridging wire spans y stator slots on the same layer along the first direction; 所述第五子绕线段通过如下方法进行绕制:The fifth sub-winding segment is wound by the following method: P11、绕线从所述桥接线的另一端沿所述第一方向跨越,每跨越y个定子槽槽层的层数变化一层,其中层数沿径向从外到内变化直至径向最内槽层;P11. The winding spans along the first direction from the other end of the bridging line, and the number of layers of each spanning y stator slot layers changes by one layer, wherein the number of layers changes from the outside to the inside along the radial direction until the radial maximum inner groove layer; P12、沿所述第二方向跨越y个定子槽,且从最内槽层跨越至最外层槽;P12, spanning y stator slots along the second direction, and spanning from the innermost slot layer to the outermost slot; 所述第六子绕线段通过如下方法进行绕制:The sixth sub-winding segment is wound by the following method: P21、绕线从相应的定子槽的最外层开始,沿所述第一方向跨越,每跨越y个定子槽槽层的层数变化一层,其中层数沿径向从外到内变化直至径向最内槽层;P21. The winding starts from the outermost layer of the corresponding stator slot, and spans along the first direction. The number of layers of each spanning y stator slot layers changes by one layer, and the number of layers varies from outside to inside along the radial direction until The radially innermost groove layer; P22、沿所述第二方向跨越y个定子槽,且从最内槽层跨越至最外层槽;P22, spanning y stator slots along the second direction, and spanning from the innermost slot layer to the outermost slot; 所述第七子绕线段通过如下方法进行绕制:The seventh sub-winding segment is wound by the following method: P31、绕线从相应的定子槽的最外槽层开始,沿所述第一方向跨越y-1个定子槽,其中层数向径向内侧槽层变化一层,所述第七子绕线段的跨越所述y-1个所述定子槽的部分为焊接端,该焊接端由所述第一类导体段的第一槽内部分和所述第二类导体段的第二槽内部分焊接而成;P31. The winding starts from the outermost slot layer of the corresponding stator slot, and spans y-1 stator slots along the first direction, wherein the number of layers changes to the radially inner slot layer by one layer, and the seventh sub-winding segment The part that spans the y-1 stator slots is a welded end, and the welded end is welded by the first in-slot part of the first type of conductor segment and the second in-slot part of the second type of conductor segment made; P32、沿所述第一方向跨越,每跨越y个定子槽槽层的层数变化一层,其中层数沿径向从外到内变化直至径向最内槽层;P32, spanning along the first direction, the number of layers of each spanning y stator slot layers changes by one layer, wherein the number of layers varies from the outside to the inside along the radial direction to the innermost groove layer in the radial direction; P33、沿所述第二方向跨越y个定子槽,且从最内槽层跨越至最外层槽;P33, spanning y stator slots along the second direction, and spanning from the innermost slot layer to the outermost slot; 所述第八子绕线段通过如下方法进行绕制:The eighth sub-winding segment is wound by the following method: P41、绕线从相应的定子槽的最外层开始,沿所述第一方向跨越,每跨越y个定子槽槽层的层数变化一层,其中层数沿径向从外到内变化直至径向最内槽层;P41. The winding starts from the outermost layer of the corresponding stator slot and spans along the first direction. The number of layers of each spanning y stator slot layers changes by one layer, wherein the number of layers varies from outside to inside along the radial direction until The radially innermost groove layer; P42、沿所述第二方向跨越y个定子槽,且从最内槽层跨越至最外层槽,所述A相星点线从该最外层槽引出。P42, spanning y stator slots along the second direction, and spanning from the innermost slot layer to the outermost slot, and the A-phase star-dot line is drawn out from the outermost slot. 4.根据权利要求3所述的定子组件,其特征在于,在所导体段的延伸方向上,所述U形导体段的横截面面积相等。4 . The stator assembly according to claim 3 , wherein the U-shaped conductor segments have equal cross-sectional areas in the extending direction of the conductor segments. 5 . 5.根据权利要求3所述的定子组件,其特征在于,每个所述定子槽中所述槽层的层数为偶数。5 . The stator assembly according to claim 3 , wherein the number of layers of the slot layers in each of the stator slots is an even number. 6 . 6.根据权利要求3所述的定子组件,其特征在于,所述第一子绕线段为三段;所述第三子绕线段为三段;6. The stator assembly according to claim 3, wherein the first sub-winding segment is three segments; the third sub-winding segment is three segments; 所述第六子绕线段为三段;所述第八子绕线段为三段。The sixth sub-winding segment is three segments; the eighth sub-winding segment is three segments. 7.根据权利要求3-6中任一项所述的定子组件,其特征在于,所述定子组件适用于的电机的槽数z=48,极对数p=4,相数=3,节距y=6,所述48个定子槽中的每个槽内均具有4个槽层a、b、c、d,其中槽层a位于所述定子铁芯径向最外侧,槽层d位于所述定子铁芯的径向最内侧,3相包括A相、B相和C相,其中所述定子铁芯的A相绕线的路线如下:7 . The stator assembly according to claim 3 , wherein the number of slots of the motor to which the stator assembly is applicable is z=48, the number of pole pairs p=4, the number of phases=3, the number of segments Distance y=6, each of the 48 stator slots has 4 slot layers a, b, c, and d, wherein the slot layer a is located at the outermost radial direction of the stator core, and the slot layer d is located at the outermost position in the radial direction of the stator core. The radial innermost of the stator iron core, the 3 phases include A phase, B phase and C phase, wherein the winding route of the A phase of the stator iron core is as follows: 1a->7d->1c->43b->37a->1a->7d->1c->43b->37a-> 43d->37c->31b->25a->43d->37c->31b->25a-> 31d->25c->19b->13a->31d->25c->19b->13a-> 19d->13c->7b->2a->19d->13c->7b->2a-> 8d->2c->44b->38a->8d->2c->44b->38a-> 44d->38c->32b->26a->44d->38c->32b->26a-> 32d->26c->20b->14a->32d->26c->20b->14a-> 20d->14c->8b->20d->14c->8b-> 14b->20c->26d->14b->20c->26d-> 20a->26b->32c->38d->20a->26b->32c->38d-> 32a->38b->44c->2d->32a->38b->44c->2d-> 44a->2b->8c->14d->44a->2b->8c->14d-> 8a->13b->19c->25d->8a->13b->19c->25d-> 19a->25b->31c->37d->19a->25b->31c->37d-> 31a->37b->43c->1d->31a->37b->43c->1d-> 43a->1b->7c->13d->7a;43a->1b->7c->13d->7a; 其中,从第1槽a层到第13槽a层的绕线包括多个重复绕制的所述第一子绕线段,从第1槽a层到第13槽a层的绕线中,所述第一类导体段跨越第1槽a层和第7槽d层、第37槽a层和第43槽d层、第25槽a层和第31槽d层;所述第二类导体段跨越第1槽c层和第43槽b层、第37槽c层和第31槽b层、第25槽c层和第19槽b层;Wherein, the winding from the first slot a layer to the 13th slot a layer includes a plurality of the first sub-winding segments that are repeatedly wound, and the winding from the first slot a layer to the 13th slot a layer, so The conductor segment of the first type spans the first slot a layer and the seventh slot d layer, the 37th slot a layer and the 43rd slot d layer, the 25th slot a layer and the 31st slot d layer; the second type conductor segment Across the 1st groove c layer and the 43rd groove b layer, the 37th groove c layer and the 31st groove b layer, the 25th groove c layer and the 19th groove b layer; 从第13槽a层到第2槽a层的绕线为所述第二子绕线段,其中,所述第一类导体段跨越第13槽a层和第19槽d层;所述第二类导体段跨越第13槽c层和第7槽b层;在第二子绕线段中,位于第7槽b层的第二类导体段的第二槽内部分的自由端与位于第2槽a层的第一类导体段的第一槽内部分的自由端焊接,以构造出跨越5个定子槽的焊接端;The winding from the 13th slot a layer to the second slot a layer is the second sub-winding segment, wherein the first type conductor segment spans the 13th slot a layer and the 19th slot d layer; the second The class conductor segment spans the 13th slot c layer and the 7th slot b layer; in the second sub-winding segment, the free end of the second slot portion of the second class conductor segment located in the 7th slot b layer is located in the second slot. The free ends of the first in-slot portions of the first type conductor segments of layer a are welded to construct welded ends spanning 5 stator slots; 从第2槽a层到第14槽a层的绕线包括多个重复绕制的第三子绕线段,从第2槽a层到第14槽a层的绕线中,所述第一类导体段跨越第2槽a层和第8槽d层、第38槽a层和第44槽d层、第26槽a层和第32槽d层;所述第二类导体段跨越第2槽c层和第44槽b层、第38槽c层和第32槽b层、第26槽c层和第20槽b层;The winding from the 2nd slot a layer to the 14th slot a layer includes a plurality of repeatedly wound third sub-winding segments, and in the winding from the 2nd slot a layer to the 14th slot a layer, the first type The conductor segment spans the 2nd slot a layer and the 8th slot d layer, the 38th slot a layer and the 44th slot d layer, the 26th slot a layer and the 32nd slot d layer; the second type conductor segment spans the 2nd slot layer c layer and the 44th groove b layer, the 38th groove c layer and the 32nd groove b layer, the 26th groove c layer and the 20th groove b layer; 从第14槽a层到第8槽b层的绕线为所述第四子绕线段,其中,所述第一类导体段跨越第14槽a层和第20槽d层;所述第二类导体段跨越第14槽c层和第8槽b层;The winding from the 14th slot a layer to the 8th slot b layer is the fourth sub-winding segment, wherein the first type conductor segment spans the 14th slot a layer and the 20th slot d layer; the second The conductor-like segment spans the 14th slot c layer and the 8th slot b layer; 所述桥接线从第8槽b层跨越至第14槽b层;The bridge line spans from the 8th slot b layer to the 14th slot b layer; 从第14槽b层到第20槽a层的绕线为所述第五子绕线段,其中,所述第一类导体段跨越第26槽d层和第20槽a层;所述第二类导体段跨越第14槽b层和第20槽c层;The winding from the 14th slot b layer to the 20th slot a layer is the fifth sub-winding segment, wherein the first type conductor segment spans the 26th slot d layer and the 20th slot a layer; the second The conductor-like segment spans the 14th slot b layer and the 20th slot c layer; 从第20槽a层到第14槽d层的绕线包括多个重复绕制的第六子线段,从第20槽a层到第14槽d层的绕线中,所述第一类导体段跨越第38槽d层和第32槽a层、第2槽d层和第44槽a层、第14槽d层和第8槽a层;所述第二类导体段跨越第26槽b层和第32槽c层、第38槽b层和第44槽c层、第2槽b层和第8槽c层;The winding from the 20th slot a layer to the 14th slot d layer includes a plurality of repeatedly wound sixth sub-line segments. In the winding from the 20th slot a layer to the 14th slot d layer, the first type conductor The segment spans the 38th slot d layer and the 32nd slot a layer, the 2nd slot d layer and the 44th slot a layer, the 14th slot d layer and the 8th slot a layer; the second type conductor segment spans the 26th slot b layer and the 32nd groove c layer, the 38th groove b layer and the 44th groove c layer, the 2nd groove b layer and the 8th groove c layer; 从第14槽d层到第25槽d层的绕线为所述第七子绕线段,其中,所述第一类导体段跨越第25d槽a层和第19槽a层;所述第二类导体段跨越第13槽b层和第19槽c层;在第七子绕线段中,位于第8槽a层的第一类导体段的第一槽内部分的自由端与位于第13槽b层的第二类导体段的第二槽内部分的自由端焊接,以构造出跨越5个定子槽的焊接端;The winding from the 14th slot d layer to the 25th slot d layer is the seventh sub-winding segment, wherein the first type conductor segment spans the 25d slot a layer and the 19th slot a layer; the second The class conductor segment spans the 13th slot b layer and the 19th slot c layer; in the seventh sub-winding segment, the free end of the first slot portion of the first class conductor segment located in the 8th slot a layer is located in the 13th slot. The free ends of the second in-slot portions of the second type conductor segments of layer b are welded to construct welded ends spanning 5 stator slots; 从第25槽d层到第7槽a层的绕线为多个重复绕制的第八子绕线段,从第25槽d层到第7槽a层的绕线中,所述第一类导体段跨越第25槽d层和第19槽a层、第37槽d层和第31槽a层、第1槽d层和第43槽a层、第13槽d层和第7槽a层;所述第二类导体段跨越第25槽b层和第31槽c层、第37槽b层和第43槽c层、第1槽b层和第7槽c层。The winding from the 25th slot d layer to the 7th slot a layer is a plurality of eighth sub-winding segments that are repeatedly wound. Among the windings from the 25th slot d layer to the 7th slot a layer, the first type The conductor segment spans the 25th slot d layer and the 19th slot a layer, the 37th slot d layer and the 31st slot a layer, the 1st slot d layer and the 43rd slot a layer, the 13th slot d layer and the 7th slot a layer ; The second type of conductor segment spans the 25th slot b layer and the 31st slot c layer, the 37th slot b layer and the 43rd slot c layer, the 1st slot b layer and the 7th slot c layer. 8.根据权利要求7所述的定子组件,其特征在于,A相、B相、C相对应的引出线在周向上相差4个定子槽。8 . The stator assembly according to claim 7 , wherein the lead wires corresponding to the A-phase, the B-phase, and the C-phase differ by four stator slots in the circumferential direction. 9 . 9.根据权利要求7所述的定子组件,其特征在于,所述桥接线位于所述定子铁芯的所述焊接端的一侧。9 . The stator assembly of claim 7 , wherein the bridge wire is located on one side of the welded end of the stator core. 10 . 10.根据权利要求3所述的定子组件,其特征在于,所述定子绕组包括A相绕线、B相绕线和C相绕线,所述B相绕线的绕线方法与所述A相的绕线方法相同,所述B相绕线的起始位置连接B相引出线,所述B相绕线的终止端连接B相星点线;10 . The stator assembly according to claim 3 , wherein the stator winding comprises A-phase winding, B-phase winding and C-phase winding, and the winding method of the B-phase winding is the same as that of the A-phase winding. 11 . The winding methods of the phases are the same, the starting position of the B-phase winding is connected to the B-phase lead wire, and the termination end of the B-phase winding is connected to the B-phase star-point line; 所述C相绕线的绕线方法与所述A相的绕线方法相同,所述C相绕线的起始位置连接C相引出线,所述C相绕线的终止端连接C相星点线;The winding method of the C-phase winding is the same as the winding method of the A-phase. The starting position of the C-phase winding is connected to the C-phase lead wire, and the end of the C-phase winding is connected to the C-phase star. Dotted line; A相、B相、C相对应的星点线在周向上相差4个定子槽,所述中性线与C相星点线、B相星点线均连接。The star-dot lines corresponding to the A-phase, the B-phase, and the C-phase differ by four stator slots in the circumferential direction, and the neutral line is connected to the C-phase star-dot line and the B-phase star-dot line. 11.一种电机,其特征在于,包括如权利要求1-10中任一项所述的定子组件。11. An electric machine, characterized by comprising the stator assembly of any one of claims 1-10.
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Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1433122A (en) * 2002-01-18 2003-07-30 株式会社电装 Stator of rotating motor for vehicle and its making process
CN1442943A (en) * 2002-03-01 2003-09-17 株式会社电装 Vehicle A.C. generator stator
CN1489259A (en) * 2002-10-11 2004-04-14 三菱电机株式会社 Stator of alternating-current generator for vehicle and manufacturing method thereof
CN1520006A (en) * 2003-01-22 2004-08-11 ��ʽ�����װ Stator assembly for vehicle alternators
CN102545418A (en) * 2010-12-28 2012-07-04 株式会社电装 Stator for electric rotating machine and method of manufacturing the same
WO2013061903A1 (en) * 2011-10-27 2013-05-02 住友電気工業株式会社 Coil segment, stator using coil segments, and method for manufacturing coil segments
CN104426271A (en) * 2013-08-21 2015-03-18 株式会社电装 Stator for rotational electrical machine
CN106233582A (en) * 2014-03-31 2016-12-14 本田技研工业株式会社 The stator of electric rotating machine and the manufacture method of this stator
CN106612020A (en) * 2015-10-22 2017-05-03 三菱电机株式会社 Stator of a rotating electrical machine
CN107565720A (en) * 2017-09-20 2018-01-09 中国第汽车股份有限公司 A kind of stator winding of alternating current generator

Patent Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN1433122A (en) * 2002-01-18 2003-07-30 株式会社电装 Stator of rotating motor for vehicle and its making process
CN1442943A (en) * 2002-03-01 2003-09-17 株式会社电装 Vehicle A.C. generator stator
CN1489259A (en) * 2002-10-11 2004-04-14 三菱电机株式会社 Stator of alternating-current generator for vehicle and manufacturing method thereof
CN1520006A (en) * 2003-01-22 2004-08-11 ��ʽ�����װ Stator assembly for vehicle alternators
CN102545418A (en) * 2010-12-28 2012-07-04 株式会社电装 Stator for electric rotating machine and method of manufacturing the same
WO2013061903A1 (en) * 2011-10-27 2013-05-02 住友電気工業株式会社 Coil segment, stator using coil segments, and method for manufacturing coil segments
CN104426271A (en) * 2013-08-21 2015-03-18 株式会社电装 Stator for rotational electrical machine
CN106233582A (en) * 2014-03-31 2016-12-14 本田技研工业株式会社 The stator of electric rotating machine and the manufacture method of this stator
CN106612020A (en) * 2015-10-22 2017-05-03 三菱电机株式会社 Stator of a rotating electrical machine
CN107565720A (en) * 2017-09-20 2018-01-09 中国第汽车股份有限公司 A kind of stator winding of alternating current generator

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