CN105634166A - Synchronous s reluctance motor rotor - Google Patents

Synchronous s reluctance motor rotor Download PDF

Info

Publication number
CN105634166A
CN105634166A CN201410696215.1A CN201410696215A CN105634166A CN 105634166 A CN105634166 A CN 105634166A CN 201410696215 A CN201410696215 A CN 201410696215A CN 105634166 A CN105634166 A CN 105634166A
Authority
CN
China
Prior art keywords
rotor
grid
motor
magnetic resistance
synchronous
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Pending
Application number
CN201410696215.1A
Other languages
Chinese (zh)
Inventor
余国权
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Tianjin Santroll Electric Automobile Technology Co Ltd
Original Assignee
Tianjin Santroll Electric Automobile Technology Co Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Tianjin Santroll Electric Automobile Technology Co Ltd filed Critical Tianjin Santroll Electric Automobile Technology Co Ltd
Priority to CN201410696215.1A priority Critical patent/CN105634166A/en
Publication of CN105634166A publication Critical patent/CN105634166A/en
Pending legal-status Critical Current

Links

Landscapes

  • Synchronous Machinery (AREA)
  • Permanent Field Magnets Of Synchronous Machinery (AREA)
  • Iron Core Of Rotating Electric Machines (AREA)

Abstract

The invention discloses a synchronous reluctance motor rotor. The motor rotor comprises a rotor iron core. The motor rotor is characterized in that the rotor iron core is formed by superposing rotor punching sheets; each rotor punching sheet comprises a plurality of symmetric magnetic poles; the N poles and the S poles, along the circumference of the rotor, of the magnetic poles are alternately arranged; each magnetic pole comprises multiple layers of grids; a relationship between a minimum distance A between every two adjacent magnetic poles and a polar distance T of the rotor is that A is greater than or equal to T/14 and less than or equal to T/6; magnetic steel is arranged in part of the grids; and the rest of the grids are kept empty or non-magnetic and non-conductive materials such as epoxy resin and the like are put into the rest of the grids. According to the structure, the cost is reduced and a machining process is simple; and a motor is wide in speed adjustment range, high in saliency ratio and small in torque fluctuation.

Description

A kind of synchronous magnetic resistance motor rotor
Technical field
The present invention relates to a kind of synchronous magnetic resistance motor structure, be specifically related to a kind of permanent magnetism assist type synchronous magnetic resistance motor rotor structure.
Technical background
Current power automobile (include pure electric automobile and hybrid vehicle) used by drive motor, be generally AC induction motor and permagnetic synchronous motor. Though it is AC induction motor simple in construction, reliable, but there is the inherent defect that power density is relatively low, Constant-power speed range is narrower, simultaneously because asynchronous machine rotor has copper loss, rotor heating amount will be conducted to bearing place, the life-span of bearing will be greatly reduced, thus causing that motor bulk life time shortens; Although rotor heating amount is relatively low while that permagnetic synchronous motor efficiency being higher, power density is higher, Constant-power speed range is wider, but it is general based on permanent-magnet torque, its counter electromotive force is too high in high speed, out of control can damage system, is unfavorable for the control that vehicle high-speed runs. Therefore, research and develop one and drive for electric automobile, there is rotor heating amount while of high efficiency, high power density, wide speed regulating range relatively low, and the motor being absent from back-emf damage system risk is just necessary.
Synchronous magnetic resistance motor has power density height, speed-regulating range width, efficiency is high, the advantages such as volume is little, but owing to needing the performance providing permanent magnet to provide motor performance, so often adopting rare-earth permanent magnet, and rare-earth permanent magnet is non-renewable, expensive, in order to save rare metal resources, alleviate environmental pressure, more in order to improve motor performance, efficiency, the present invention proposes a kind of new permanent magnetism assist type permagnetic synchronous motor and rotor mechanism thereof, the processing of this structure is simple, lower mechanical strength is high at a high speed, counter electromotive force is low, and salient pole is than big, torque ripple is little.
Summary of the invention
The present invention is for overcoming deficiency of the prior art, a kind of new permanent magnetism assist type synchronous magnetic resistance motor and rotor structure thereof are proposed, solve the inherent shortcoming of existing permagnetic synchronous motor and AC induction motor, and compare existing synchronous magnetic resistance motor, processing technique is simple, salient pole ratio is big, torque ripple is little.
For achieving the above object, the technical scheme is that
A kind of synchronous magnetic resistance motor rotor, including rotor core, described rotor core is overrided to form by rotor punching, described rotor punching includes the magnetic pole of several symmetries, described magnetic pole is extremely alternately arranged along described rotor circumference N pole and S, described magnetic pole includes multilamellar grid, and between described each adjacent pole, the relation between minimum spacing A and rotor polar distance T is: T/14��A��T/6.
Described magnetic pole includes 3��4 layers of grid.
The subtended angle �� that described each adjacent pole adjacent cells is formed ranges for: 10 �㡫60 ��.
It is 10%��50% that the volume of described magnetic pole grid placement magnet steel accounts for the ratio of grid cumulative volume.
In described magnetic pole grid, part places magnet steel, and remainder is vacant
In described magnetic pole grid, a part places magnet steel, and remainder places epoxy resin.
Described magnet steel is Nd-Fe-B magnet steel.
Described stator winding is distributed winding.
A kind of hybrid electric drive system, including electromotor, change speed gear box, motor, described electromotor, change speed gear box, motor are linked in sequence, and described motor is any one above-mentioned synchronous magnetic resistance motor.
Compared with existing synchronous magnetic resistance motor, the present invention has remarkable advantage and beneficial effect, is embodied as:
1, use the synchronous magnetic resistance motor rotor of the present invention, adopt part to place the design of magnet steel, reduce the consumption that makes of magnet steel, save cost;
2, use the synchronous magnetic resistance motor rotor of the present invention, devise the position of grid and the distribution of magnet steel, further increase utilization rate and the electric efficiency of reluctance torque;
Accompanying drawing explanation
Fig. 1 is the schematic diagram of synchronous magnetic resistance motor rotor first embodiment of the present invention;
Fig. 2 be in synchronous magnetic resistance motor rotor of the present invention the grid number of plies and salient pole than and the relation schematic diagram of torque;
Fig. 3 be in synchronous magnetic resistance motor rotor of the present invention same layer grid number and salient pole than and the relation schematic diagram of torque;
Fig. 4 is; In synchronous magnetic resistance motor rotor of the present invention between adjacent pole minimum spacing and salient pole than and the relation schematic diagram of torque
Fig. 5 be in synchronous magnetic resistance motor rotor of the present invention between adjacent pole grid angle and salient pole than and the relation schematic diagram of torque;
Fig. 6 is the relation schematic diagram of magnet steel filling rate and non-loaded line back-emf in synchronous magnetic resistance motor rotor of the present invention;
Fig. 7 be in synchronous magnetic resistance motor rotor of the present invention adjacent two layers grid distance and salient pole than and the relation schematic diagram of torque;
Fig. 8 is the relation schematic diagram of the spacing of same grid layer adjacent cells and maximum speed lower rotor part shear stress and torque in synchronous magnetic resistance motor rotor of the present invention;
Fig. 9 is the schematic diagram of synchronous magnetic resistance motor rotor the second embodiment of the present invention;
Figure 10 is the schematic diagram of synchronous magnetic resistance motor rotor the 3rd embodiment of the present invention;
Figure 11 is the schematic diagram of synchronous magnetic resistance motor rotor the 4th embodiment of the present invention.
Detailed description of the invention
Specific embodiment of the invention method is as follows:
Existing permagnetic synchronous motor sets the expensive rare earth permanent-magnetic material that uses more, and owing to the counter electromotive force of permanent magnet distribution generation is bigger; Although synchronous magnetic resistance motor can provide less counter electromotive force, but owing to its rotor does not use permanent magnet, therefore when motor size is identical, the power density of synchronous magnetic resistance motor is much smaller.
Synchronous magnetic resistance motor rotor provided by the invention has multiple permanent magnet trough group, and often group permanent magnet trough includes multilamellar grid. What is called " grid " refers to the channel-shaped arranged in rotor core or runs through the structure of rotor core vertically herein, is similar to the magnetic pole groove of permagnetic synchronous motor, but can fill in this grid or be not filled with permanent magnet material. Fig. 1 is synchronous magnetic resistance motor rotor structural representation in first embodiment of the invention, rotor core is overrided to form by rotor punching, rotor punching is made up of six symmetrical magnetic poles, each magnetic pole is made up of multilamellar grid, show that the grid number of plies of each magnetic pole is on the impact of motor output torque and motor salient pole ratio as shown in Figure 2 through substantial amounts of test and emulation. So-called " salient pole ratio " ratio referring to motor quadrature axis inductance and d-axis inductance herein. The present embodiment selects 3 layers of lattice structure, every layer of grid is made up of some linear grids, in structure shown in Fig. 1, every layer of grid is set to more than 2 grids, all grids have identical width, there is between adjacent two layers grid identical spacing H, and there is between every layer of grid adjacent cells identical interval W, and it being made up of along outer circle of motor rotor radius ecto-entad ground floor grid sets two grids, two grids are a linear array; When rotor size allows, ground floor grid can be made up of more than two grid, and each grid is not necessarily arranged in a linear. The second layer inside by ground floor grid sets and n-th layer grid sets are made up of the grid of more than 2 respectively, form mutually the angle less than 180 degree between each two grid. In the present embodiment, second layer grid sets and third layer grid sets are made up of three grids respectively, and the grid of each layer of grid sets constitutes U-shaped arrangement to rotor outer. When technique allows, each layer of grid sets can include 3 even more than grid, and grid is not limited to identical length. For the drive motor that automotive field uses, the grid number of plies of each magnetic pole is on the impact of motor output torque and motor salient pole ratio as shown in Figure 2, and the grid number of every layer of grid for motor output torque and motor salient pole ratio impact as shown in Figure 3, therefore, it is in motor output torque and the consideration of motor salient pole ratio, more preferably selects 3��4 layers of grid, every layer of grid comprises 3��4 grids, opposing arcuate structure, this structure processing technique is simpler, it is easy to operation.
Rotor of the present invention adopts and is along the circumferential direction arranged in N pole and S pole form alternately, test data shows that the ratio of minimum spacing A and the rotor polar distance T under same magnetic steel bar part between adjacent two magnetic poles has considerable influence for the salient pole ratio of motor and output torque, for making interpolar width A increase magnetic flux and prevent magnetic saturation phenomenon, and grid is moved to the direction of rotor outer periphery, but this will cause that magnet steel is away from internal rotor, thus reducing q axle inductance, therefore interpolar width A can not be excessive. As shown in Figure 4, can be obtained by test data in figure, when A is in T/14��T/6, inductance will not occur being decreased obviously because of saturated between permanent magnet pole, without because too close to the excircle of rotor, the magnet steel in rotor occurs that q axle inductance declines rapidly, therefore, choosing distance between two poles A is T/14��T/6, it is most preferred that select T/10��T/8. The magnetic linkage of motor and the difference of d axle inductance and q axle inductance is increased in the consumption situation not increasing stator copper, thus increasing salient pole ratio and the output torque of motor, this is highly beneficial for the efficiency of the copper loss of reduction motor, raising motor, so that the result of salient pole ratio and output torque reaches optimum, also can control leakage field a less value that can accept.
The size of the angle [alpha] that adjacent pole grid extended line is formed directly influences the distance between distance and the magnetic pole of rotor magnetic pole and rotor center, thus having influence on the performance of motor, such as motor salient pole ratio and output torque, the angle [alpha] correspondence motor salient pole ratio of adjacent pole grid extended line formation and the result of the test of output torque are as shown in Figure 5, can be shown that �� should choose 10 �㡫60 �� by data in figure, optimal choice is 20 �㡫40 ��, then can ensure that salient pole ratio and the optimal effectiveness of output torque. With the use of distributed stator winding, the motor stator of described distributed winding does not have convex pole to slap, each magnetic pole is formed coil groups by one or several coil according to certain rule setting-in wiring, forms the magnetic pole of opposed polarity after energising, and the fluctuation ensure that reluctance torque is little.
The present embodiment adopt Nd-Fe-B magnet steel and non-magnetic non-conductive material with the use of, Nd-Fe-B magnet steel is placed in the second layer interlude with third layer grid, and other portion is vacant or places the non-magnetic non-conducting materials such as epoxy resin, what greatly reduce Nd-Fe-B magnet steel makes consumption, save material, alleviate weight, simultaneously because whole magnetic circuit only employs part magnet steel. and how to choose magnet steel loading and motor performance is also had a significant impact, the test data of magnet steel filling rate correspondence non-loaded line back-emf is as shown in Figure 6, wherein magnet steel filling rate is defined as magnet steel overall width/grid groove overall width, and non-loaded line back-emf is defined as under rated speed non-loaded line back-emf. the maximum speed of usual driving motor for electric automobile is generally 2��3 times of rated speed, if ensureing to roll off the production line back-emf less than supply voltage the most at a high speed, then the non-loaded line back-emf peak value/supply voltage under rated speed is 0.33��0.5, preferred magnet steel filling rate is 10%��50%, optimal choice 20%��40%, thus can make the advantage that motor performance takes into account magneto and asynchronous machine, the shortcoming that simultaneously can as far as possible avoid magneto and asynchronous machine again, both can guarantee that this motor was higher than asynchronous machine efficiency, speed-regulating range width, also can guarantee that the counter electromotive force under it is at a high speed is little, not over supply voltage, guarantee the normal operation of motor.
In addition, design in conjunction with rotor multilamellar magnet structure, the q axle inductance that can make synchronous magnetic resistance motor increases rapidly, increase the difference in inductance of q axle and d axle as far as possible, improve the utilization rate of magnetic resistance of motor torque further, for this purpose, the present invention designs and passes through the ratio emulating spacing H and the rotor polar distance T drawn between each magnetic pole adjacent gate compartment impact for motor salient pole ratio and output torque, " rotor polar distance " described herein T=�� * D1/ (2p), wherein D1 is diameter of stator bore, and p is number of pole-pairs. The ratio corresponding motor salient pole ratio of the spacing H between adjacent gate compartment and rotor polar distance T and the concrete test data of output torque are as shown in Figure 7, can be shown that between each grid layer, the ratio selection range of spacing H and rotor polar distance T is T/16��T/8 by data in figure, it is most preferred that take T/12��T/10.
Further, in each grid layer, mechanical strength and the leakage field of motor are controlled also to have a significant impact by the spacing W between grid, the air gap delta of motor=(D1-D2)/2, wherein D1 is diameter of stator bore, D2 is rotor diameter, in each grid layer grid distance W corresponding to output torque and rotor maximum speed down cut stress test data as shown in Figure 8, data in figure can obtain each layer grid distance W and should choose ��/3��3 ��, it is preferable that W is �ġ�2 ��.
The magnetic structure that the synchronous magnetic resistance motor rotor of the present invention adopts, its reluctance torque accounts for the ratio of total torque about 70%, permanent-magnet torque accounts for the ratio of total torque about 30%, about its efficiency 4 points higher than the asynchronous machine efficiency of same grade, speed adjustable range can from rated speed to 2 times rated speed, and its peak power can remain unchanged.
Fig. 9 is the structural representation of synchronous magnetic resistance motor rotor the second embodiment of the present invention, in the present embodiment magnet steel be only filled with from rotor center nearest one layer.
Figure 10 is the structural representation of synchronous magnetic resistance motor rotor the 3rd embodiment of the present invention, and one layer of grid layer that in the present embodiment, distance rotor center is farthest is three-stage structure.
Figure 11 is the structural representation of synchronous magnetic resistance motor rotor the 4th embodiment of the present invention, one layer of grid layer that in the present embodiment, distance rotor center is farthest is three-stage structure and magnet steel be only filled with from rotor center nearest one layer.
For the one exemplary embodiment for the present invention; be understood as the present invention claims protection domain in a certain demonstrative example therein; there is the directiveness that those skilled in the art realize corresponding technical scheme act on, but not limitation of the invention.

Claims (9)

1. a synchronous magnetic resistance motor rotor, including rotor core, it is characterized in that: described rotor core is overrided to form by rotor punching, described rotor punching includes the magnetic pole of several symmetries, described magnetic pole is extremely alternately arranged along described rotor circumference N pole and S, described magnetic pole includes multilamellar grid, and between described each adjacent pole, the relation between minimum spacing A and rotor polar distance T is: T/14��A��T/6.
2. synchronous magnetic resistance motor rotor according to claim 1, it is characterised in that: described magnetic pole includes 3��4 layers of grid.
3. synchronous magnetic resistance motor rotor according to claim 2, it is characterised in that: the subtended angle �� that described each adjacent pole adjacent cells is formed ranges for: 10 �㡫60 ��.
4. synchronous magnetic resistance motor rotor according to claim 3, it is characterised in that: it is 10%��50% that the volume of described magnetic pole grid placement magnet steel accounts for the ratio of grid cumulative volume.
5. synchronous magnetic resistance motor rotor according to claim 4, it is characterised in that: in described magnetic pole grid, part places magnet steel, and remainder is vacant.
6. synchronous magnetic resistance motor rotor according to claim 4, it is characterised in that: in described magnetic pole grid, a part places magnet steel, and remainder places epoxy resin.
7. the synchronous magnetic resistance motor rotor according to claim 5 or claim 6, it is characterised in that: described magnet steel is Nd-Fe-B magnet steel.
8. synchronous magnetic resistance motor rotor according to claim 1, it is characterised in that: described stator winding is distributed winding.
9. a hybrid electric drive system, including electromotor, change speed gear box, motor, described electromotor, change speed gear box, motor are linked in sequence, it is characterised in that: described motor is any one synchronous magnetic resistance motor described in claim 1-8.
CN201410696215.1A 2014-11-26 2014-11-26 Synchronous s reluctance motor rotor Pending CN105634166A (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN201410696215.1A CN105634166A (en) 2014-11-26 2014-11-26 Synchronous s reluctance motor rotor

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN201410696215.1A CN105634166A (en) 2014-11-26 2014-11-26 Synchronous s reluctance motor rotor

Publications (1)

Publication Number Publication Date
CN105634166A true CN105634166A (en) 2016-06-01

Family

ID=56048820

Family Applications (1)

Application Number Title Priority Date Filing Date
CN201410696215.1A Pending CN105634166A (en) 2014-11-26 2014-11-26 Synchronous s reluctance motor rotor

Country Status (1)

Country Link
CN (1) CN105634166A (en)

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112234727A (en) * 2020-09-30 2021-01-15 东南大学 Variable permanent magnet flux linkage synchronous reluctance motor system and efficiency optimization control method
CN112968553A (en) * 2021-01-26 2021-06-15 珠海格力电器股份有限公司 Rotor assembly and self-starting permanent magnet synchronous reluctance motor
CN112968556A (en) * 2021-01-26 2021-06-15 珠海格力电器股份有限公司 Rotor assembly and self-starting permanent magnet synchronous reluctance motor

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112234727A (en) * 2020-09-30 2021-01-15 东南大学 Variable permanent magnet flux linkage synchronous reluctance motor system and efficiency optimization control method
CN112234727B (en) * 2020-09-30 2021-07-23 东南大学 Efficiency optimization control method for variable permanent magnet flux linkage synchronous reluctance motor system
CN112968553A (en) * 2021-01-26 2021-06-15 珠海格力电器股份有限公司 Rotor assembly and self-starting permanent magnet synchronous reluctance motor
CN112968556A (en) * 2021-01-26 2021-06-15 珠海格力电器股份有限公司 Rotor assembly and self-starting permanent magnet synchronous reluctance motor
CN112968553B (en) * 2021-01-26 2022-05-17 珠海格力电器股份有限公司 Rotor assembly and self-starting permanent magnet synchronous reluctance motor

Similar Documents

Publication Publication Date Title
CN204794417U (en) Hybrid power system of synchronous reluctance machine rotor and applied this rotor
CN101707405B (en) Halbach array external rotor of composite-structure permanent magnet motor
CN101325349B (en) Permanent magnetism type motor of wide speed-adjusting magnetic flux memory type stator
CN102761182B (en) Motor rotor and motor with same
CN104810945A (en) Synchronous reluctance motor rotor applied to hybrid power system
CN105207438A (en) Magnetic field modulation type stator-rotor mixed permanent magnet memory motor
CN104578477A (en) Mixed permanent magnetic pole-alternating and magnetic flux-switching memory motor and winding switching magnetism-weakening control method thereof
CN102223036A (en) Hybrid excitation E-shaped iron core axial magnetic field permanent magnet brushless motor
CN103973062A (en) Flux-switching hybrid permanent magnet memory motor with high power density
CN105914984B (en) A kind of strong magnetic-type permanent magnet synchronous motor of change magnetic flux-
CN101651371B (en) Stator surface mounted doubly salient permanent magnet motor with auxiliary salient pole
CN112072811B (en) Embedded-permanent magnet reluctance type mixed magnetic pole type memory motor
CN109995211A (en) A kind of stator is the same as polar form hybrid permanent magnet memory electrical machine
CN105322744A (en) Split type combined permanent magnet brushless motor for electric vehicle
CN104467334A (en) Stator magnetism gathering type mixed permanent magnet memory motor
CN204906017U (en) Refabrication electric automobile PMSM
CN103095078A (en) Transverse laminated synchronous reluctance motor with auxiliary permanent magnets
CN106357076A (en) Halbach magnetic-gathering axial magnetic field mixed permanent-magnetic memory motor
US20170077771A1 (en) Steel-magnet embedded mixed excitation motor
CN107124084B (en) Non-uniform mixed permanent magnet excitation topological structure of permanent magnet linear synchronous motor
CN105703502A (en) Synchronous reluctance motor rotor structure
CN110994834B (en) Alternating-direct axis inductance variable permanent magnet brushless motor and wide-area efficient optimization design method thereof
CN105634166A (en) Synchronous s reluctance motor rotor
CN204465182U (en) A kind of synchronous magnetic resistance motor structure and hybrid electric drive system
CN106059131B (en) A kind of mixed magnetic circuit driving motor

Legal Events

Date Code Title Description
C06 Publication
PB01 Publication
WD01 Invention patent application deemed withdrawn after publication

Application publication date: 20160601

WD01 Invention patent application deemed withdrawn after publication