CN109378956A - Rotor structure, asynchronous starting synchronous magnetic resistance motor and compressor - Google Patents

Rotor structure, asynchronous starting synchronous magnetic resistance motor and compressor Download PDF

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Publication number
CN109378956A
CN109378956A CN201811446031.4A CN201811446031A CN109378956A CN 109378956 A CN109378956 A CN 109378956A CN 201811446031 A CN201811446031 A CN 201811446031A CN 109378956 A CN109378956 A CN 109378956A
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CN
China
Prior art keywords
magnetic
axis
holding tank
rotor
rotor structure
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Granted
Application number
CN201811446031.4A
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Chinese (zh)
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CN109378956B (en
Inventor
陈彬
史进飞
肖勇
李霞
余钦宏
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Gree Electric Appliances Inc of Zhuhai
Gree Green Refrigeration Technology Center Co Ltd of Zhuhai
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Zhuhai Gree Energy Saving Environmental Protection Refrigeration Technology Research Center Co Ltd
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Publication of CN109378956A publication Critical patent/CN109378956A/en
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    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K1/00Details of the magnetic circuit
    • H02K1/06Details of the magnetic circuit characterised by the shape, form or construction
    • H02K1/22Rotating parts of the magnetic circuit
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K1/00Details of the magnetic circuit
    • H02K1/06Details of the magnetic circuit characterised by the shape, form or construction
    • H02K1/22Rotating parts of the magnetic circuit
    • H02K1/26Rotor cores with slots for windings
    • H02K1/265Shape, form or location of the slots
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K19/00Synchronous motors or generators
    • H02K19/02Synchronous motors
    • H02K19/14Synchronous motors having additional short-circuited windings for starting as asynchronous motors
    • HELECTRICITY
    • H02GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
    • H02KDYNAMO-ELECTRIC MACHINES
    • H02K2213/00Specific aspects, not otherwise provided for and not covered by codes H02K2201/00 - H02K2211/00
    • H02K2213/03Machines characterised by numerical values, ranges, mathematical expressions or similar information

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  • Engineering & Computer Science (AREA)
  • Power Engineering (AREA)
  • Iron Core Of Rotating Electric Machines (AREA)
  • Synchronous Machinery (AREA)
  • Permanent Field Magnets Of Synchronous Machinery (AREA)

Abstract

The present invention provides a kind of rotor structure, asynchronous starting synchronous magnetic resistance motor and compressors.Multilayer magnetic barrier slit slot 13 is provided on rotor body 10, the both ends that magnetic hinders slit slot 13 extend along the q axis direction of rotor body 10, the radian of magnetic barrier slit slot 13 becomes larger outward along the radial direction of rotor body 10, the external arc that magnetic hinders slit slot 13 is greater than the Inner arc of magnetic barrier slit slot 13, and the width of magnetic barrier slit slot 13 gradually increases from the d axis of rotor body 10 to the both ends of magnetic barrier slit slot 13.Hinder slit slot by setting magnetic, can effectively increase the difference of the magnetic flux between d axis, q axis, enable the motor with the rotor structure to generate reluctance torque, increase the output torque and efficiency of motor, to improve the performance of motor.

Description

Rotor structure, asynchronous starting synchronous magnetic resistance motor and compressor
Technical field
The present invention relates to motor device technical fields, in particular to a kind of rotor structure, asynchronous starting synchronous reluctance Motor and compressor.
Background technique
Asynchronous starting synchronous magnetic resistance motor combines the design feature of induction machine and reluctance motor, is incuded by mouse cage and is produced Raw torque, which is realized, to be started, and is generated reluctance torque by inductor rotor gap and is realized permanent revolving speed operation, can directly connect power supply realization Starting operation.Asynchronous starting synchronous magnetic resistance motor, without rare earth permanent-magnetic material, is not also deposited compared with asynchronous starting and permanent magnet motor In demagnetization problem, motor cost is low, good reliability.
In the prior art, the q axis in the direction that magnetic flux easily flows through is set on rotor and is difficult to the side flowed through as magnetic flux To d axis at raised at least a pair of of the slit portion of the magnetic pole at 90 degree the two poles of the earth, and configuration is in the multiple of the peripheral side of slit portion Slot portion fills conductive material in slit portion and aforementioned slot portion.Slit portion is made for the shape of straight line, slot portion edge Circumferencial direction radially configures at equal intervals.Since slot portion radially configures at equal intervals, so that the magnetic flux between slot portion Direction vertical rotor surface Radial Flow.Slot portion hinders the circulation of magnetic flux q axis direction, the especially slit closer to d axis Portion, q axis flux obstruction is more obvious, and the circulation of d axis magnetic flux is more smooth, therefore d axis, q axis flux amount differ unobvious, salient pole Than little, motor output torque and efficiency cannot be met the requirements.Further, since slit portion is made for the shape of straight line, Rotor center has axis hole, causes d axis internal rotor space very big, slit is not arranged using internal rotor space well Portion is come the problems such as increasing the salient pole ratio of motor, cause motor overall performance low.
Summary of the invention
The main purpose of the present invention is to provide a kind of rotor structure, asynchronous starting synchronous magnetic resistance motor and compressor, with Solve the problems, such as that motor performance is low in the prior art.
To achieve the goals above, according to an aspect of the invention, there is provided a kind of rotor structure, comprising: rotor sheet Body is provided with multilayer magnetic barrier slit slot on rotor body, and the both ends that magnetic hinders slit slot extend along the q axis direction of rotor body, magnetic The radian of barrier slit slot becomes larger outward along the radial direction of rotor body, and it is narrow that the external arc that magnetic hinders slit slot is greater than magnetic barrier The Inner arc of slot, the width of magnetic barrier slit slot gradually increase from the d axis of rotor body to the both ends of magnetic barrier slit slot.
Further, holding tank is offered on rotor body, holding tank is multiple, week of multiple holding tanks along rotor body To being positioned apart from, the first magnetic flux path, the flow direction and q axis of the first magnetic flux path are formed between two neighboring holding tank Direction is parallel, and the flow direction of the first magnetic flux path and d axis are perpendicular.
Further, the first end of magnetic barrier slit slot is corresponding with a holding tank in multiple holding tanks, and magnetic barrier is narrow The second end of slot is corresponding with another holding tank in multiple holding tanks, and the magnetic of holding tank corresponding thereto hinders slit slot Between be formed with every bridge, forms the second magnetic flux path between two neighboring magnetic barrier slit slot, each magnetic hinders slit slot and two Holding tank is corresponding.
Further, multiple magnetic barrier slit slots are symmetrically arranged and/or multiple appearances about at least one of q axis and d axis Slot of receiving is symmetrically arranged about at least one of q axis and d axis.
Further, groove is additionally provided on the outer peripheral surface of rotor body, groove is located at the outer of the d axis direction of rotor body On surface.
Further, groove be two, two grooves be arranged in rotor body about on the axisymmetric outer peripheral surface of q.
Further, the depth capacity of the radial direction along rotor body of groove is H, wherein 0.5 δ≤2 δ of H <, In, width of air gap of the δ between rotor body and stator core.
Further, axis hole, both ends to the hole of axis hole along the extension of q axis direction of groove are offered in the middle part of rotor body The central angle that line is formed between the heart is α, wherein 20 °≤α≤45 °.
Further, the first magnetic flux path formed between two adjacent holding tanks, it is corresponding with two holding tanks The second magnetic flux path for being formed forms the magnetic circuit of connection between magnetic barrier slit slot, and the width of the first magnetic flux path is D1, and second The minimum widith of magnetic flux path is D2, wherein D1 >=D2.
Further, the width of the first magnetic flux path of q axis excessively formed between two adjacent holding tanks is D3, In, D3 > K, wherein K is the width of the stator tooth of stator core.
Further, axis hole and magnetic barrier slit slot are offered in the middle part of rotor body, hole wall to the magnetic of axis hole hinders slit slot Cell wall minimum range be D4, wherein 0.5 × D3≤D4.
Further, the cell wall of holding tank to rotor body outer peripheral surface minimum range be L1, wherein 0.5 δ≤L1 < δ, and/or every bridge minimum widith be L2, wherein the 0.5 δ≤air gap of L2 < δ, δ between rotor body and stator core is wide Degree.
Further, offer axis hole in the middle part of rotor body, the width of multiple magnetic barrier slit slots and be m, axis hole Hole wall to groove cell wall minimum range be m6, wherein m/m6=Q, 0.3≤Q≤0.5.
Further, the bottom of groove is in the bottom of the cambered surface or groove that are recessed towards the geometric center of rotor body It is faced directly including at least one.
Further, holding tank is for accommodating conductive non-magnetic material.
Further, the opposite two side walls of holding tank extended along q axis direction are parallel with q axis.
According to another aspect of the present invention, a kind of rotor structure is provided characterized by comprising rotor body, rotor Offer holding tank on ontology, holding tank be it is multiple, multiple holding tanks are along the arranged circumferentially spaced of rotor body, holding tank Extend along q axis direction, forms the first magnetic flux path, the flow direction and q axis of the first magnetic flux path between two neighboring holding tank Direction is parallel, and the flow direction of the first magnetic flux path and d axis are perpendicular.
Further, rotor body is additionally provided with magnetic barrier slit slot, and the extension of q axis direction, magnetic are prolonged in the both ends of magnetic barrier slit slot Hinder slit slot first end it is corresponding with a holding tank in multiple holding tanks, the magnetic barrier slit slot second end with it is multiple Another holding tank in holding tank is corresponding, is formed between the magnetic barrier slit slot of holding tank corresponding thereto every bridge.
Further, magnetic barrier slit slot is multiple, and multiple magnetic barrier slit slots are positioned apart from along d axis direction, two neighboring The second magnetic flux path is formed between magnetic barrier slit slot, it is corresponding with two holding tanks that each magnetic hinders slit slot.
Further, multiple magnetic barrier slit slots are symmetrically arranged and/or multiple appearances about at least one of q axis and d axis Slot of receiving is symmetrically arranged about at least one of q axis and d axis.
Further, groove is additionally provided on the outer peripheral surface of rotor body, groove is located at the outer of the d axis direction of rotor body On surface.
Further, groove be two, two grooves be arranged in rotor body about on the axisymmetric outer peripheral surface of q.
Further, the depth capacity of the radial direction along rotor body of groove is H, wherein 0.5 δ≤H < δ, In, width of air gap of the δ between rotor body and stator core.
Further, axis hole, both ends to the hole of axis hole along the extension of q axis direction of groove are offered in the middle part of rotor body The central angle that line is formed between the heart is α, wherein 20 °≤α≤45 °.
Further, the first magnetic flux path formed between two adjacent holding tanks, it is corresponding with two holding tanks The second magnetic flux path for being formed forms the magnetic circuit of connection between magnetic barrier slit slot, and the width of the first magnetic flux path is D1, and second The minimum widith of magnetic flux path is D2, wherein D1 >=D2.
Further, the width of the first magnetic flux path of q axis excessively formed between two adjacent holding tanks is D3, In, D3 > K, wherein K is the width of the stator tooth of stator core.
Further, axis hole and magnetic barrier slit slot are offered in the middle part of rotor body, hole wall to the magnetic of axis hole hinders slit slot Cell wall minimum range be D4, wherein 0.5 × D3≤D4.
Further, the cell wall of holding tank to rotor body outer peripheral surface minimum range be L1, wherein 0.5 δ≤L1 < δ, and/or every bridge minimum widith be L2, wherein the 0.5 δ≤air gap of L2 < δ, δ between rotor body and stator core is wide Degree.
Further, offer axis hole in the middle part of rotor body, the width of multiple magnetic barrier slit slots and be m, axis hole Hole wall to groove cell wall minimum range be m6, wherein m/m6=Q, 0.3≤Q≤0.5.
Further, the bottom of groove is in the bottom of the cambered surface or groove that are recessed towards the geometric center of rotor body It is faced directly including at least one.
Further, holding tank is for accommodating conductive non-magnetic material.
Further, the opposite two side walls of holding tank extended along q axis direction are parallel with q axis.
According to another aspect of the present invention, a kind of asynchronous starting synchronous magnetic resistance motor, including rotor structure, rotor are provided Structure is above-mentioned rotor structure.
According to another aspect of the present invention, a kind of compressor, including rotor structure are provided, rotor structure is above-mentioned turns Minor structure.
It applies the technical scheme of the present invention, slit slot is hindered by setting multilayer magnetic, increases d axis magnetic resistance, reduces d axis magnetic flux, Enable the motor with the rotor structure to generate reluctance torque, increases the output torque and efficiency of motor.It should so that having The motor of rotor structure can generate bigger reluctance torque, increase the output torque and efficiency of motor, to improve motor Performance.
Detailed description of the invention
The accompanying drawings constituting a part of this application is used to provide further understanding of the present invention, and of the invention shows Examples and descriptions thereof are used to explain the present invention for meaning property, does not constitute improper limitations of the present invention.In the accompanying drawings:
Fig. 1 shows the structural schematic diagram of the first embodiment of rotor structure according to the present invention;
Fig. 2 shows the structural schematic diagrams with the embodiment of motor stator assembly of rotor structure according to the present invention;
Fig. 3 shows the structural schematic diagram of the second embodiment of rotor structure according to the present invention;
Fig. 4 shows the structural schematic diagram of the 3rd embodiment of rotor structure according to the present invention;
Fig. 5 shows the structural schematic diagram of the fourth embodiment of rotor structure according to the present invention;
Fig. 6 shows the structural schematic diagram of the 5th embodiment of rotor structure according to the present invention;
Fig. 7 shows the torque curve comparison diagram of motor according to the present invention Yu motor in the prior art;
Wherein, the above drawings include the following reference numerals:
10, rotor body;11, holding tank;12, the first magnetic flux path;13, magnetic hinders slit slot;14, the second magnetic flux path;
20, every bridge;
30, groove;
40, axis hole;
50, stator core;51, stator tooth;
60, cast aluminium end ring.
Specific embodiment
It should be noted that in the absence of conflict, the features in the embodiments and the embodiments of the present application can phase Mutually combination.The present invention will be described in detail below with reference to the accompanying drawings and embodiments.
It should be noted that term used herein above is merely to describe specific embodiment, and be not intended to restricted root According to the illustrative embodiments of the application.As used herein, unless the context clearly indicates otherwise, otherwise singular shape Formula be also intended to include plural form, additionally, it should be understood that, when in the present specification use term "comprising" and/or When " comprising ", existing characteristics, step, operation, device, component and/or their combination are indicated.
It should be noted that term " first ", " second " etc. in the description and claims of this application and attached drawing It is to be used to distinguish similar objects, without being used to describe a particular order or precedence order.It should be understood that the art used in this way Language is interchangeable under appropriate circumstances, so that presently filed embodiment described herein for example can be in addition to scheming herein Sequence other than those of showing or describe is implemented.In addition, term " includes " and " having " and their any deformation, it is intended that Be to cover it is non-exclusive include, for example, containing the process, method, system, product or equipment of a series of steps or units Those of be not necessarily limited to be clearly listed step or unit, but may include be not clearly listed or for these processes, The intrinsic other step or units of method, product or equipment.
For ease of description, spatially relative term can be used herein, as " ... on ", " ... top ", " ... upper surface ", " above " etc., for describing such as a device shown in the figure or feature and other devices or spy The spatial relation of sign.It should be understood that spatially relative term is intended to comprising the orientation in addition to device described in figure Except different direction in use or operation.For example, being described as if the device in attached drawing is squeezed " in other devices It will be positioned as " under other devices or construction after part or construction top " or the device of " on other devices or construction " Side " or " under other devices or construction ".Thus, exemplary term " ... top " may include " ... top " " in ... lower section " two kinds of orientation.The device can also be positioned with other different modes and (is rotated by 90 ° or in other orientation), And respective explanations are made to the opposite description in space used herein above.
Now, the illustrative embodiments according to the application are more fully described with reference to the accompanying drawings.However, these are exemplary Embodiment can be implemented by many different forms, and should not be construed to be limited solely to implementation set forth herein Mode.It should be understood that these embodiments are provided so that disclosure herein is thoroughly and complete, and by this The design of a little illustrative embodiments is fully conveyed to those of ordinary skill in the art, in the accompanying drawings, for the sake of clarity, has The thickness of layer and region may be expanded, and makes that identical device is presented with like reference characters, thus will be omitted to it Description.
In conjunction with shown in Fig. 1 to Fig. 7, according to an embodiment of the invention, providing a kind of rotor structure.
Specifically, as shown in Figure 1, being provided with multilayer magnetic barrier slit slot 13 on rotor body 10, magnetic hinders the two of slit slot 13 Hold the q axis direction along rotor body 10 to extend, magnetic hinder the radian of slit slot 13 along rotor body 10 radial direction outward gradually Become larger, the external arc that magnetic hinders slit slot 13 is greater than the Inner arc of magnetic barrier slit slot 13, and magnetic hinders the width of slit slot 13 from rotor sheet It is gradually increased at the d axis of body 10 to the both ends of magnetic barrier slit slot 13.
In the present embodiment, slit slot is hindered by setting multilayer magnetic, increases d axis magnetic resistance, reduce d axis magnetic flux, so that having The motor of the rotor structure can generate reluctance torque, increase the output torque and efficiency of motor.
Wherein, offer holding tank 11 on rotor body 10, holding tank 11 be it is multiple, multiple holding tanks 11 are along rotor body 10 it is arranged circumferentially spaced.Holding tank 11 extends along q axis direction, and it is logical that the first magnetic flux is formed between two neighboring holding tank 11 The flow direction in road 12, the first magnetic flux path 12 is parallel with q axis direction, and the flow direction of the first magnetic flux path 12 and d axis It is perpendicular.The first end that magnetic hinders slit slot 13 is corresponding with a holding tank 11 in multiple holding tanks 11, which hinders slit slot 13 second end is corresponding with another holding tank 11 in multiple holding tanks 11, and the magnetic of holding tank 11 corresponding thereto hinders slit It is formed between slot 13 every bridge 20.The second magnetic flux path 14 is formed between two neighboring magnetic barrier slit slot 13, each magnetic barrier is narrow Slot 13 is corresponding with two holding tanks 11.
Wherein, " correspondence " herein referred to are as follows: as shown in Figure 1, magnetic barrier slit slot 13 the left side positioned at d axis first end and One end positioned at the holding tank 11 in the left side of d axis is disposed adjacent, wherein magnetic hinders the first end and the holding tank 11 of slit slot 13 Between have every bridge 20.Magnetic hinders the second end and the holding tank 11 on the right side for being located at d axis on the right side positioned at d axis of slit slot 13 One end be disposed adjacent, and magnetic barrier slit slot 13 second end and right side holding tank 11 between be likewise formed with every bridge 20, this Sample setting can equally effectively improve rotor body in the magnetic resistance of d axis direction.
Preferably, multiple magnetic barrier slit slots 13 are positioned apart from along d axis direction, shape between two neighboring magnetic barrier slit slot 13 At the second magnetic flux path 14, it is corresponding with two holding tanks 11 that each magnetic hinders slit slot 13.Setting can be further in this way Rotor body is improved in the magnetic resistance of d axis direction, then increases the difference of the magnetic flux between q axis and d axis.
Specifically, multiple magnetic barrier slit slots 13 are axisymmetrically arranged about q, and multiple magnetic barrier slit slots 13 are also about d axis pair Claim ground setting, multiple holding tanks 11 are axisymmetrically arranged about q, and multiple holding tanks 11 are also axisymmetrically arranged about d.
In order to further improve the magnetic resistance of the d axis direction of rotor body, also set up on the outer peripheral surface of the rotor body 10 Fluted 30.Groove 30 is set on the outer surface of rotor d axis direction, d axis can be arranged in the geometry of groove 30 At the heart.
Preferably, as depicted in figs. 1 and 2, groove 30 be two, two grooves 30 be arranged in rotor body 10 about q On axisymmetric outer peripheral surface.Wherein, the depth capacity of the radial direction along rotor body 10 of groove 30 is H, wherein 0.5 δ 2 δ of≤H <, wherein width of air gap of the δ between rotor body 10 and stator core 50.Further, in rotor body 10 Portion offers axis hole 40, the central angle of groove 30 formed along the both ends of q axis direction extension to line between the hole heart of axis hole 40 For α, wherein 20 °≤α≤45 °.
The first magnetic flux path 12 formed between two adjacent holding tanks 11, magnetic barrier corresponding with two holding tanks 11 The second magnetic flux path 14 formed between slit slot 13 forms the magnetic circuit (as shown in figure 1 shown in f1) of connection, and the first magnetic flux path 12 width is D1, and the minimum widith of the second magnetic flux path 14 is D2, wherein D1 >=D2.
The width of the first magnetic flux path 12 of q axis excessively formed between two adjacent holding tanks 11 is D3, wherein D3 > K, wherein K is the width of the stator tooth 51 of stator core 50.The hole wall of axis hole 40 hinders the minimum of the cell wall of slit slot 13 to magnetic Distance is D4, wherein 0.5 × D3≤D4.
The cell wall of holding tank 11 to rotor body 10 outer peripheral surface minimum range be L1, wherein 0.5 δ≤L1 < δ, every The minimum widith of bridge 20 is L2 (not shown), wherein 0.5 δ≤L2 < δ, δ is between rotor body 10 and stator core Width of air gap.The width of multiple magnetic barrier slit slots 13 and be m, the most narrow spacing of the cell wall of the hole wall of axis hole 40 to groove 30 From for m6, wherein m/m6=Q, 0.3≤Q≤0.5.As shown in Figure 1, being located at below q axis, there are five magnetic to hinder slit slot 13, they Width be respectively m1, m2, m3, m4 and m5, wherein m=m1+m2+m3+m4+m5.
As shown in Figures 3 to 6, the arc towards the geometric center recess of rotor body 10 can be set into the bottom of groove 30 Face.Certainly, the bottom of groove 30 also can be set into faces directly including at least one.Wherein, if the bottom of groove 30 includes extremely Few two when facing directly, wherein the two neighboring angle faced directly can be right angle, are also possible to obtuse angle.Preferably, holding tank 11 is used In accommodating conductive non-magnetic material as shown in figure 1 shown in f2.Wherein, as shown in Figure 1, the phase of holding tank extended along q axis direction Pair two side walls (1,2) it is parallel with q axis.
Rotor structure in above-described embodiment can be also used for motor device technical field, i.e., another party according to the present invention Face provides a kind of asynchronous starting synchronous magnetic resistance motor.The motor includes rotor structure, and rotor structure is in above-described embodiment Rotor structure.Multilayer magnetic barrier slit slot 13 is provided on rotor body 10, magnetic hinders the both ends of slit slot 13 along rotor body 10 Q axis direction extend, magnetic barrier slit slot 13 radian become larger outward along the radial direction of rotor body 10, magnetic hinder slit The external arc of slot 13 be greater than magnetic barrier slit slot 13 Inner arc, magnetic hinder slit slot 13 width from the d axis of rotor body 10 to The both ends of magnetic barrier slit slot 13 gradually increase.
In the present embodiment, slit slot is hindered by setting multilayer magnetic, increases d axis magnetic resistance, reduce d axis magnetic flux, so that having The motor of the rotor structure can generate reluctance torque, increase the output torque and efficiency of motor.
Specifically, this application provides a kind of asynchronous startings to synchronize dynamic magnetic resistance motor rotor structure, solves asynchronous machine effect Rate is low, the low problem of revolving speed, realizes the operation of motor effective constant revolving speed.Using the rotor structure, permanent magnet synchronous motor cost is solved Height, the low problem of reliabilities such as magnet demagnetization.The rotor structure does not use rare-earth magnet and drive control device, can be effectively Reduce manufacturing cost can be realized across-the-line starting and is synchronized dynamic reluctance motor using the rotor of the structure.
Design is combined with magnetic barrier by holding tank, holding tank generates induction torque and realizes starting, and is dragged in synchronization, passes through magnetic The reluctance torque that barrier effect generates realizes synchronism stability operation.
By the way that holding tank is arranged to horizontal mode in q axis direction, so that the smooth circulation of q axis flux, d axis magnetic flux Barrier completely, while groove is set in d axis rotor surface, d axis magnetic resistance is further increased, the difference of d axis, q axis flux amount is increased, So that the d axis direction in rotor generates bigger reluctance torque, increase motor power output and efficiency.
Hindered by reasonable magnetic and holding tank designs, should guaranteed reasonable magnetic barrier accounting design, guarantee that magnetic hinders it again Between magnetic flux path there can be no supersaturation, hinder magnetic flux flows, efficiently use rotor space, reached increase d as far as possible Axis, q axis flux amount difference effect.
The motor is made of the stator core with winding and rotor, and rotor is by rotor core and rotor with specific structure The cast aluminium end ring 60 at iron core both ends forms, and multiple holding tanks and pairs of magnetic barrier slit slot, Yi Jihe are provided on rotor core The axis hole of shaft cooperation, two sidelines are parallel with q axis up and down for holding tank.Groove is arranged in the d axis outer surface of rotor core.It accommodates Slot and magnetic barrier cooperate, and form magnetic flux barrier in d axis direction, and magnetic flux path is formed in q axis direction, and holding tank and magnetic barrier close In d axis or q axial symmetry.
Two sidelines are parallel with q axis up and down for holding tank, and purpose makes the smooth circulation of q axis flux, and d axis magnetic flux hinders completely Every the difference of increase d axis, q axis flux amount generates bigger reluctance torque, increases motor power output and efficiency.
Groove is arranged in the d axis outer surface of rotor core, and angle shared by the circular arc of groove respective rotor periphery is α, wherein 20 ° ≤α ≤45°.Groove depth capacity on d axis is H, wherein 0.5 δ≤2 δ of H <, groove shapes can be multiplicity.It can It is arc-shaped, rectangle, inverted trapezoidal etc..It is to increase d axis air-gap reluctance that purpose, which is arranged such, reduces d axis magnetic flux, increases salient pole ratio, Increase motor power output.
The conductive non-magnetic material such as aluminium is inserted in all holding tanks, is formed cast aluminium, is passed through the casting at rotor core both ends All holding tanks are connected to by aluminium end ring 60, form mouse cage, and mouse cage, which generates induction torque and starts motor and motor pulls in, to be turned Speed operation.
The distance of holding tank to rotor core exterior surface is L1, and the distance of holding tank to corresponding magnetic barrier is L2, and L1, L2 are full Foot: 0.5 δ≤L1 < δ, 0.5 δ≤L2 < δ, wherein width of air gap of the δ between stator core and rotor core is so set It sets, rotor field leakage field can be reduced, promote electric efficiency.
Magnetic flux path width D 1 between two neighboring holding tank be greater than or be equal to corresponding adjacent magnetic barrier slit slot it Between the width D 2 of minimum magnetic flux path that is formed, it may be assumed that D1 >=D2, its purpose is to guarantee between aluminium slot there are enough width, Magnetic field saturation is avoided the occurrence of, the magnetic flux circulation in channel between magnetic barrier is influenced.
Magnetic flux path and q overlapping of axles above and below q axis between first holding tank, magnetic flux path width are D3, D3 and stator The relationship of the wide K of tooth meets: D3 > K, the i.e. width in q axis flux channel are greater than the width of stator tooth, main the purpose is to guarantee Magnetic circuit channel is not in saturation, while magnetic flux being made to be efficiently entering stator tooth, forms torque.
The ratio between the width (m1+m2+m3+m4+m5) of all magnetic barrier slits and axis hole to the width (m6) of rotor outer periphery are Q, That is (m1+m2+m3+m4+m5)/m6=Q ∈ [0.3-0.5], it is therefore an objective to select reasonable magnetic barrier accounting, both guarantee enough magnetic Hinder width, effectively hinder d axis magnetic flux, and guarantee reasonable magnetic flux path, prevents magnetic flux supersaturation, increase q axis flux, Increase motor salient pole ratio.
The shaft of the motor can use magnetic conductive material;Non-magnet material can also be used in shaft, then requires shaft at this time The minimum widith that hinders to both sides magnetic of axis hole meet following require: 2*D4 >=D3, wherein D4 is the minimum width that shaft hinder to magnetic Degree hinders magnetic flux flows the purpose is to prevent the channel D4 from magnetic flux supersaturation occur.
The motor can be also used for compressor apparatus technical field, according to another aspect of the present invention, provide a kind of pressure Contracting machine, including rotor structure, rotor structure are the rotor structure in above-described embodiment.Multilayer magnetic is provided on rotor body 10 Hinder slit slot 13, the both ends that magnetic hinders slit slot 13 extend along the q axis direction of rotor body 10, and magnetic hinders the radian edge of slit slot 13 The radial direction of rotor body 10 becomes larger outward, and the external arc that magnetic hinders slit slot 13 is greater than the inner circle of magnetic barrier slit slot 13 Arc, the width of magnetic barrier slit slot 13 gradually increase from the d axis of rotor body 10 to the both ends of magnetic barrier slit slot 13.
In the present embodiment, slit slot is hindered by setting multilayer magnetic, increases d axis magnetic resistance, reduce d axis magnetic flux, so that having The motor of the rotor structure can generate reluctance torque, increase the output torque and efficiency of motor.Using the pressure of the rotor structure Contracting machine, it is high-efficient since motor power output is big, therefore can provide a kind of high-performance constant speed compressor.
Fig. 7 is that asynchronous in the present embodiment synchronizes dynamic reluctance motor and prior art motor torque curve compares Figure, under same stator scheme and electric current, the technical solution motor power output of the application will motor than in the prior art it is high by 15%, Motor power output increases, and electric efficiency is promoted.
In embodiment different magnetic barriers than and motor contribute relationship, motor power output is maximum when magnetic barrier is than being 0.42, and magnetic hinders ratio too Big or too small, motor power output can decline, and suitable magnetic barrier compares motor power output and is affected.
In above-mentioned optimal embodiment, the d axis outer surface groove of rotor core is removed, i.e., rotor outer surface is full circle, Holding tank is used, so that the smooth circulation of q axis flux, d axis magnetic flux obstructs completely, increases the difference of d axis, q axis flux amount, can also be with Obtain technical effect good than the motor of the prior art.
Than that described above, it is also necessary to which explanation is " one embodiment " spoken of in the present specification, " another implementation Example ", " embodiment " etc. refer to that specific features, structure or the feature of embodiment description is combined to be included in the application summary Property description at least one embodiment in.In the description multiple places occur statements of the same race be not centainly refer to it is same Embodiment.Furthermore, it is understood that when describing a specific features, structure or feature in conjunction with any embodiment, what is advocated is Realize that this feature, structure or feature are also fallen within the scope of the present invention in conjunction with other embodiments.
In the above-described embodiments, it all emphasizes particularly on different fields to the description of each embodiment, there is no the portion being described in detail in some embodiment Point, reference can be made to the related descriptions of other embodiments.
The foregoing is only a preferred embodiment of the present invention, is not intended to restrict the invention, for the skill of this field For art personnel, the invention may be variously modified and varied.All within the spirits and principles of the present invention, made any Modification, equivalent replacement, improvement etc., should all be included in the protection scope of the present invention.

Claims (34)

1. a kind of rotor structure characterized by comprising
Rotor body (10), multilayer magnetic barrier slit slot (13) is provided on the rotor body (10), and the magnetic hinders slit slot (13) both ends extend along the q axis direction of the rotor body (10), and the radian of magnetic barrier slit slot (13) is along the rotor The radial direction of ontology (10) becomes larger outward, and the external arc of magnetic barrier slit slot (13) is greater than the magnetic and hinders slit slot (13) width of Inner arc, magnetic barrier slit slot (13) hinders slit to the magnetic from the d axis of the rotor body (10) The both ends of slot (13) gradually increase.
2. rotor structure according to claim 1, which is characterized in that offer holding tank on the rotor body (10) (11), the holding tank (11) is multiple, multiple holding tank (11) setting circumferentially-spacedly along the rotor body (10) It sets, is formed the first magnetic flux path (12) between the two neighboring holding tank (11), the magnetic flux of first magnetic flux path (12) Direction is parallel with q axis direction, and the flow direction of first magnetic flux path (12) and d axis are perpendicular.
3. rotor structure according to claim 2, which is characterized in that the first end of magnetic barrier slit slot (13) with it is multiple A holding tank (11) in the holding tank (11) is corresponding, the second end of described magnetic barrier slit slot (13) with it is multiple Another described holding tank (11) in the holding tank (11) is corresponding, the magnetic of the holding tank (11) corresponding thereto It is formed between barrier slit slot (13) and forms the second magnetic flux path between bridge (20), two neighboring magnetic barrier slit slot (13) (14), each described magnetic barrier slit slot (13) is corresponding with two holding tank (11).
4. rotor structure according to claim 3, which is characterized in that
Multiple magnetic barriers slit slot (13) are symmetrically arranged about at least one of q axis and d axis, and/or
Multiple holding tanks (11) are symmetrically arranged about at least one of q axis and d axis.
5. rotor structure according to claim 3, which is characterized in that also set up on the outer peripheral surface of the rotor body (10) Fluted (30), the groove (30) are located on the outer surface of the d axis direction of the rotor body (10).
6. rotor structure according to claim 5, which is characterized in that the groove (30) is two, two grooves (30) it is arranged in the rotor body (10) about on the axisymmetric outer peripheral surface of q.
7. rotor structure according to claim 5, which is characterized in that the groove (30) along the rotor body (10) The depth capacity of radial direction be H, wherein 0.5 δ≤2 δ of H <, wherein δ be the rotor body (10) and stator core it Between width of air gap.
8. rotor structure according to claim 5, which is characterized in that offer axis hole in the middle part of the rotor body (10) (40), the center of circle of the groove (30) formed along the both ends of q axis direction extension to line between the hole heart of the axis hole (40) Angle is α, wherein 20 °≤α≤45 °.
9. rotor structure according to claim 3, which is characterized in that formed between the holding tank (11) of adjacent two First magnetic flux path (12), is formed between magnetic barrier slit slot (13) corresponding with this two holding tank (11) Second magnetic flux path (14) form the magnetic circuit of connection, and the width of first magnetic flux path (12) is D1, described the The minimum widith of two magnetic flux paths (14) is D2, wherein D1 >=D2.
10. rotor structure according to claim 2, which is characterized in that shape between the holding tank (11) of adjacent two At cross q axis first magnetic flux path (12) width be D3, wherein D3 > K, wherein K be stator core stator tooth Width.
11. rotor structure according to claim 10, which is characterized in that offer axis in the middle part of the rotor body (10) Hole (40) and magnetic barrier slit slot (13), the hole wall of the axis hole (40) hinder the minimum range of the cell wall of slit slot (13) to the magnetic For D4, wherein 0.5 × D3≤D4.
12. rotor structure according to claim 3, which is characterized in that
The minimum range of outer peripheral surface of the cell wall of the holding tank (11) to the rotor body (10) is L1, wherein 0.5 δ≤ L1 < δ, and/or
The minimum widith every bridge (20) is L2, wherein 0.5 δ≤L2 < δ, δ is the rotor body (10) and stator core Between width of air gap.
13. rotor structure according to claim 5, which is characterized in that offer axis in the middle part of the rotor body (10) Hole (40), the width of multiple magnetic barriers slit slot (13) and be m, the hole wall of the axis hole (40) to the groove (30) The minimum range of cell wall is m6, wherein m/m6=Q, 0.3≤Q≤0.5.
14. rotor structure according to claim 5, which is characterized in that
The bottom of the groove (30) is in the cambered surface or the groove (30) towards the geometric center recess of rotor body (10) Bottom include that at least one is faced directly.
15. rotor structure according to claim 2, which is characterized in that the holding tank (11) is not led for accommodating conduction The material of magnetic.
16. rotor structure according to claim 2, which is characterized in that the holding tank (11) along q axis direction extend Opposite two side walls are parallel with q axis.
17. a kind of rotor structure characterized by comprising
Rotor body (10) offers holding tank (11) on the rotor body (10), the holding tank (11) be it is multiple, it is multiple The holding tank (11) extends along the arranged circumferentially spaced of the rotor body (10), the holding tank (11) along q axis direction, It is formed the first magnetic flux path (12) between the two neighboring holding tank (11), the flow direction of first magnetic flux path (12) It is parallel with q axis direction, and the flow direction of first magnetic flux path (12) and d axis are perpendicular.
18. rotor structure according to claim 17, which is characterized in that it is narrow that the rotor body (10) is additionally provided with magnetic barrier The extension of q axis direction is prolonged at slot (13), the both ends of magnetic barrier slit slot (13), the first end of magnetic barrier slit slot (13) and more A holding tank (11) in a holding tank (11) is corresponding, the second end of described magnetic barrier slit slot (13) and more Another described holding tank (11) in a holding tank (11) is corresponding, the holding tank (11) corresponding thereto described It is formed between magnetic barrier slit slot (13) every bridge (20).
19. rotor structure according to claim 18, which is characterized in that magnetic barrier slit slot (13) be it is multiple, it is multiple Magnetic barrier slit slot (13) is positioned apart from along d axis direction, forms second between two neighboring magnetic barrier slit slot (13) Magnetic flux path (14), each described magnetic barrier slit slot (13) are corresponding with two holding tank (11).
20. rotor structure according to claim 19, which is characterized in that
Multiple magnetic barriers slit slot (13) are symmetrically arranged about at least one of q axis and d axis, and/or
Multiple holding tanks (11) are symmetrically arranged about at least one of q axis and d axis.
21. rotor structure according to claim 19, which is characterized in that also set on the outer peripheral surface of the rotor body (10) It is equipped with groove (30), the groove (30) is located on the outer surface of the d axis direction of the rotor body (10).
22. rotor structure according to claim 21, which is characterized in that the groove (30) is two, and two described recessed Slot (30) is arranged in the rotor body (10) about on the axisymmetric outer peripheral surface of q.
23. rotor structure according to claim 21, which is characterized in that the groove (30) along the rotor body (10) depth capacity of radial direction is H, wherein 0.5 δ≤H < δ, wherein δ is the rotor body (10) and stator iron Width of air gap between core.
24. rotor structure according to claim 21, which is characterized in that offer axis in the middle part of the rotor body (10) Hole (40), the circle of the groove (30) formed along the both ends of q axis direction extension to line between the hole heart of the axis hole (40) Heart angle is α, wherein 20 °≤α≤45 °.
25. rotor structure according to claim 19, which is characterized in that shape between the holding tank (11) of adjacent two At first magnetic flux path (12), shape between magnetic barrier slit slot (13) corresponding with this two holding tank (11) At second magnetic flux path (14) formed connection magnetic circuit, and the width of first magnetic flux path (12) be D1, it is described The minimum widith of second magnetic flux path (14) is D2, wherein D1 >=D2.
26. rotor structure according to claim 17, which is characterized in that shape between the holding tank (11) of adjacent two At cross q axis first magnetic flux path (12) width be D3, wherein D3 > K, wherein K be stator core stator tooth Width.
27. rotor structure according to claim 26, which is characterized in that offer axis in the middle part of the rotor body (10) Hole (40) and magnetic barrier slit slot (13), the hole wall of the axis hole (40) hinder the minimum range of the cell wall of slit slot (13) to the magnetic For D4, wherein 0.5 × D3≤D4.
28. rotor structure according to claim 18, which is characterized in that
The minimum range of outer peripheral surface of the cell wall of the holding tank (11) to the rotor body (10) is L1, wherein 0.5 δ≤ L1 < δ, and/or
The minimum widith every bridge (20) is L2, wherein 0.5 δ≤L2 < δ, δ is the rotor body (10) and stator core Between width of air gap.
29. rotor structure according to claim 21, which is characterized in that offer axis in the middle part of the rotor body (10) Hole (40), the width of multiple magnetic barriers slit slot (13) and be m, the hole wall of the axis hole (40) to the groove (30) The minimum range of cell wall is m6, wherein m/m6=Q, 0.3≤Q≤0.5.
30. rotor structure according to claim 21, which is characterized in that
The bottom of the groove (30) is in the cambered surface or the groove (30) towards the geometric center recess of rotor body (10) Bottom include that at least one is faced directly.
31. rotor structure according to claim 17, which is characterized in that the holding tank (11) is not led for accommodating conduction The material of magnetic.
32. rotor structure according to claim 17, which is characterized in that the holding tank (11) extends along q axis direction Opposite two side walls it is parallel with q axis.
33. a kind of asynchronous starting synchronous magnetic resistance motor, including rotor structure, which is characterized in that the rotor structure is wanted for right Rotor structure described in asking any one of 1 to 32.
34. a kind of compressor, including rotor structure, which is characterized in that the rotor structure is any one of claims 1 to 32 The rotor structure.
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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112968551A (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
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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
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CN112713741A (en) * 2020-12-21 2021-04-27 中车永济电机有限公司 Self-starting three-phase synchronous reluctance motor
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Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2001258220A (en) * 2000-03-10 2001-09-21 Mitsubishi Electric Corp Reluctance motor
JP2004282869A (en) * 2003-03-14 2004-10-07 Mitsubishi Electric Corp Method of manufacturing rotor of synchronous induction motor, and mold for rotor of synchronous induction motor, and compressor
JP2005006416A (en) * 2003-06-12 2005-01-06 Mitsubishi Electric Corp Self-starting reluctance motor
JP2005245052A (en) * 2004-02-24 2005-09-08 Mitsubishi Electric Corp Rotor of synchronous induction motor and compressor
CN101629570A (en) * 2008-07-16 2010-01-20 Lg电子株式会社 Motor, compressor and air conditioning system having the same
CN1726629B (en) * 2002-12-12 2010-11-03 Lg电子株式会社 Rotor for line-start reluctance motor
CN102017366A (en) * 2007-03-09 2011-04-13 Lg电子株式会社 Motor and the compressor including the same
CN102545422A (en) * 2010-10-12 2012-07-04 Abb有限公司 Rotor of synchronous reluctance machine and method for manufacturing rotor of synchronous reluctance machine
CN103208894A (en) * 2012-01-11 2013-07-17 珠海格力节能环保制冷技术研究中心有限公司 Self-starting synchronous reluctance motor and rotor thereof
CN207638427U (en) * 2017-11-30 2018-07-20 珠海格力节能环保制冷技术研究中心有限公司 Rotor structure, asynchronous starting synchronous magnetic resistance motor and compressor

Family Cites Families (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH07274460A (en) * 1994-03-30 1995-10-20 Kinshiro Naito Synchronous apparatus
JP4098939B2 (en) * 1999-12-22 2008-06-11 三菱電機株式会社 Reluctance motor
JP4763320B2 (en) * 2005-03-09 2011-08-31 三菱電機株式会社 Synchronous induction motor rotor and compressor
KR100876173B1 (en) * 2006-12-28 2008-12-31 주식회사 포스코 Rotor manufacturing method for reluctance motor using magnetic anisotropy of oriented electrical steel sheet
WO2014118321A2 (en) * 2013-02-01 2014-08-07 Ksb Aktiengesellschaft Rotor, reluctance machine and production method for a rotor
CN204794628U (en) * 2015-07-23 2015-11-18 珠海格力节能环保制冷技术研究中心有限公司 Synchronous reluctance machine and compressor
CN105356804B (en) * 2015-11-01 2017-11-24 河北工业大学 Improve synchronous magnetic resistance motor salient pole than method

Patent Citations (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2001258220A (en) * 2000-03-10 2001-09-21 Mitsubishi Electric Corp Reluctance motor
CN1726629B (en) * 2002-12-12 2010-11-03 Lg电子株式会社 Rotor for line-start reluctance motor
JP2004282869A (en) * 2003-03-14 2004-10-07 Mitsubishi Electric Corp Method of manufacturing rotor of synchronous induction motor, and mold for rotor of synchronous induction motor, and compressor
JP2005006416A (en) * 2003-06-12 2005-01-06 Mitsubishi Electric Corp Self-starting reluctance motor
JP2005245052A (en) * 2004-02-24 2005-09-08 Mitsubishi Electric Corp Rotor of synchronous induction motor and compressor
CN102017366A (en) * 2007-03-09 2011-04-13 Lg电子株式会社 Motor and the compressor including the same
CN101629570A (en) * 2008-07-16 2010-01-20 Lg电子株式会社 Motor, compressor and air conditioning system having the same
CN102545422A (en) * 2010-10-12 2012-07-04 Abb有限公司 Rotor of synchronous reluctance machine and method for manufacturing rotor of synchronous reluctance machine
CN103208894A (en) * 2012-01-11 2013-07-17 珠海格力节能环保制冷技术研究中心有限公司 Self-starting synchronous reluctance motor and rotor thereof
CN207638427U (en) * 2017-11-30 2018-07-20 珠海格力节能环保制冷技术研究中心有限公司 Rotor structure, asynchronous starting synchronous magnetic resistance motor and compressor

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN112968551A (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
CN112968555A (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
CN112968555B (en) * 2021-01-26 2023-02-28 珠海格力电器股份有限公司 Rotor assembly and self-starting permanent magnet synchronous reluctance motor

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CN109510345A (en) 2019-03-22
CN109309414A (en) 2019-02-05
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CN109309414B (en) 2021-06-29
CN109309415B (en) 2020-11-10

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