This U.S. National stage application claims priority under 35 U.S.C. § 119(a) to Japanese Patent Application No. 2015-084405, filed in Japan on Apr. 16, 2015, the entire contents of which are hereby incorporated herein by reference.
The present invention relates to a stator as well as a motor and a compressor having the stator.
A motor has a stator and a rotor arranged in an inner cavity of this stator. The stator includes a stator core and an insulator placed on an end surface thereof. A plurality of teeth for winding coil windings is formed in the stator core. Outgoing lines extending from both ends of each of the coil windings extend for a long distance, and finally reach mutual connection points or power terminals. These long outgoing lines extend around and in the vicinity of a plurality of coils as disclosed in JP-B-3824001, for example.
In order to prevent the motor from being affected by vibration and the like, the extending outgoing lines are tied and secured relative to the insulator with a yarn. Since this tying operation is a complicated process, it may be manually performed. One example of a specific sequence of the tying operation is performed as described below. Initially, an operator leads the yarn using a dedicated needle so that the yarn will pass between the outgoing lines and the coil windings. Next, the operator uses the needle to pass the yarn through a hole disposed in the insulator or engages the yarn in a hook-shaped portion disposed in the insulator. Lastly, the operator ties the yarn. During this operation, the operator may accidentally puncture the outgoing lines or the coil windings with the needle, thereby causing a fracture of an insulation covering or an insulation coating disposed thereon. Therefore, the tying operation of outgoing lines needs effort, time, and attention.
An object of the present invention is to facilitate a tying operation of outgoing lines in order to reduce the occurrence of a defective product during the manufacture of a motor to enhance a production efficiency.
A stator according to a first aspect of the present invention has a central axis. The stator comprises a core, an insulator, a plurality of coil windings, outgoing, lines, and a yarn. The core has a plurality of teeth radially inwardly extending toward the central axis. The insulator is placed on an end surface of the core. The coil windings are each wound around one of the teeth. The outgoing lines extend from both ends of each of the coil windings. The yarn secures the outgoing lines to the insulator. The insulator has an outer wall, a plurality of teeth cover portions, and a plurality of inner walls. The outer wall surrounds the central axis and is erected in such a way as to upwardly extend from the end surface. The teeth cover portions radially inwardly extend from the outer wall toward the central axis. The inner walls are each erected at an end portion of each of the teeth cover portions. The coil windings are placed between the outer wall and the corresponding inner walls. A passage portion radially extending is formed in at least one of the teeth cover portions. The passage portion passes the yarn.
With this configuration, the passage portion is formed in at least one of the teeth cover portions. The yarn for securing the outgoing lines is passed through this passage portion by a dedicated needle. During this operation, the contact between the needle and the coil windings or the outgoing lines is reduced. Therefore, insulation failure due to damage to the outgoing lines and/or the coil windings is able to be reduced, which is able to facilitate a tying operation of the outgoing lines.
A stator according to a second aspect of the present invention is the stator according to the first aspect, in which at least one of the inner walls has yarn constraint means for constraining the yarn.
With this configuration, the yarn constraint means disposed in at least one of the inner walls reduces the contact between the yarn and a rotor. Therefore, the hindrance to the rotation of the rotor by the yarn is able to be reduced.
A stator according to a third aspect of the present invention is the stator according to the second aspect, in which the passage portion is formed in each of two or more of the teeth cover portions. Two or more of the inner walls each have the yarn constraint means.
With this configuration, the outgoing lines are tied at two or more locations. Therefore, the outgoing lines are further secured.
A stator according to a fourth aspect of the present invention is the stator according to the second or third aspect, in which the yarn constraint means includes a groove for housing the yarn.
With this configuration, the yarn constraint means disposed in the corresponding inner wall includes the groove for housing the yarn. Therefore, the yarn is housed in the groove and thus is not exposed at a surface of the inner wall, which is able to further reduce the hindrance to the rotation of the rotor by the yarn.
A stator according to a fifth aspect of the present invention is the stator according to any one of the second to fourth aspects, in which the yarn constraint means includes a notch for engaging with the yarn.
With this configuration, the yarn constraint means disposed in the corresponding inner wall includes the notch for engaging with the yarn. Therefore, the movement of the yarn in the inner wall is further reduced.
A stator according to a sixth aspect of the present invention is the stator according to any one of the first to fifth aspects, in which a notch for engaging with the yarn is disposed at a location above the passage portion in the outer wall.
With this configuration, the notch accepting the yarn is formed in the outer wall. Therefore, the misalignment of the yarn is able to be reduced.
A stator according to a seventh aspect of the present invention is the stator according to any one of the first to sixth aspects, in which the passage portion has a circular, an elliptical, or a triangular sectional shape.
With this configuration, specific shapes of the passage portion are determined.
A motor according to an eighth aspect of the present invention comprises the stator and a rotor. The stator is the stator according to any one of the first to seventh aspects. The rotor magnetically interacts with the stator.
With this configuration, the motor has the stator according to the present invention. Therefore, the assembly of the motor is facilitated, which prevents fractures of parts during manufacture.
A compressor according to a ninth aspect of the present invention comprises the motor, a shaft, a fluid compression mechanism, and a pressure vessel. The motor is the motor according to the eighth aspect. The shaft is allowed to rotate by the motor. The fluid compression mechanism compresses fluid with the rotation of the shaft. The pressure vessel houses the motor, the shaft, and the fluid compression mechanism.
With this configuration, the compressor has the motor according to the present invention. Therefore, the assembly of the compressor is facilitated, which is able to reduce fractures of parts.
The stator according to the first aspect of the present invention is able to reduce the insulation failure due to damage to the outgoing lines and/or the coil windings.
The stator according to the second or fourth aspect of the present invention is able to reduce the hindrance to the rotation of the rotor by the yarn.
The stator according to the third aspect of the present invention allows the outgoing lines to be further secured.
The stator according to the fifth or sixth aspect of the present invention is able to reduce the movement of the yarn.
The stator according to the seventh aspect of the present invention is provided with the insulator of which specific designs are presented.
The motor according to the eighth aspect of the present invention is readily assembled.
The compressor according to the ninth aspect of the present invention is readily assembled.
(1) Overall Configuration
(2) Detailed Configuration
(2-1) Stator 50
As shown in
(2-1-1) Stator Core 10
(2-1-2) Upper Insulator 20
The upper insulator 20 as shown in
Furthermore, the insulator 20 has a plurality of passage portions 24 which extend through the outer wall 21, the corresponding teeth cover portions 23, and the corresponding inner walls 22. The passage portions 24 pass the later-described yarn S. In the present embodiment, the passage portions 24 are formed as holes.
Each of the passage portions 24 is disposed at the center of the corresponding inner wall 22. A groove 25 is disposed from the center to the upper end of each of the inner walls 22. A notch 26 is disposed at the upper end of each inner wall 22.
Furthermore, a notch 27 is disposed at a location at the upper end of the outer wall 21 corresponding to a base of each teeth cover portion 23.
(2-1-3) Lower Insulator 20′
The lower insulator 20′ as shown in
(2-1-4) Coil Winding 30
As shown in
As shown in
The coil windings 30 may have a portion covered with an insulation covering or a portion on which an insulation coating is applied.
(2-1-5) Outgoing Line 40
As shown in
(2-1-6) Yarn S
As shown in
(2-2) Rotor 60
As shown in
The rotor core 61 is composed of a laminated steel sheet, for example.
The permanent magnets 62 form poles and are housed in through holes disposed in the rotor core 61.
The two end plates 63 cover the upper surface and the lower surface of the rotor core 61 to prevent the permanent magnets 62 from being detached from the through holes of the rotor core 61.
(3) Assembly of the Stator 50
The stator 50 is assembled in the sequence as described below.
Initially, the upper insulator 20 and the lower insulator 20′ are, respectively, placed on the upper end surface 13 and the lower end surface 14 of the stator core 10.
Next, a conductor wire is wound around each of the teeth 11 and its associated teeth cover portion 23 so that the coil windings 30 will be made.
Next, the outgoing lines 40 extending from both ends of each of the coil windings 30 are led by an operator and rested on the coil windings 30.
Next, as shown in
Lastly, as shown in
(4) Characteristics
(4-1)
Each passage portion 24 is formed in the corresponding teeth cover portion 23. The yarn S for securing the outgoing lines 40 is passed through the passage portion 24 by the needle N. During this operation, the needle N does not come into contact with the coil windings 30 or the outgoing lines 40. Therefore, insulation failure due to damage to the outgoing lines 40 and/or the coil windings 30 is able to be reduced, which is able to facilitate a tying operation of the outgoing lines 40.
(4-2)
The groove 25 and the notch 26 disposed in each inner wall 22 constrain the yarn S to reduce the contact between the yarn S and the rotor 60. Therefore, the hindrance to the rotation of the rotor 60 by the yarn S is able to be reduced.
(4-3)
Two or more passage portions 24, two or more grooves 25, and two or more notches 26, and two or more notches 27 are present. Therefore, the outgoing lines 40 are tied at two or more locations, and the outgoing lines 40 are thus further secured.
(4-4)
The yarn S is housed in the groove 25 disposed on the corresponding inner wall 22. Therefore, the yarn S is not exposed at a surface of the inner wall 22, which is able to further reduce the hindrance to the rotation of the rotor 60 by the yarn S.
(4-5)
The yarn S engages with the notch 26 disposed in the corresponding inner wall 22. Therefore, the movement of the yarn S on the inner wall 22 is further reduced.
(4-6)
The notch 27 accepting the yarn S is formed in the outer wall 21. Therefore, the misalignment of the yarn S is able to be reduced.
(4-7)
The motor 100 has the above-mentioned stator 50. Therefore, the assembly of the motor 100 is facilitated, which is able to reduce fractures of the coil windings 30, the outgoing lines 40, and other parts.
(5) Modification
(5-1) Shape of Passage Portion 24
In the above-mentioned first embodiment, as shown in
(5-2) Lower Insulator
In the above-mentioned first embodiment, as shown in
(5-3) The Number of Passage Portions 24
In the above-mentioned first embodiment, as shown in
(5-4) The Numbers of Teeth 11 and Coil Windings 30
In the above-mentioned first embodiment, both of the number of the teeth 11 and the number of the coil windings 30 are nine. Instead of this, the number of the teeth 11 and the number of the coil windings 30 may be six, twelve, or, other numbers.
(5-5) Configuration of Phase
In the above-mentioned first embodiment, the coil windings 30 constituting each phase are connected in parallel as shown in
In the present embodiment, the passage portions 24 are formed as recess portions open at the lower surface of the insulator 20A. With this configuration, the manufacture of the insulator 20A can be facilitated.
The modifications of the first embodiment may be applied to the present embodiment.
(1) Overall Configuration
The compressor 300 is provided with the motor 100, the shaft 110, a pressure vessel 210, a fluid compression mechanism 220, a suction pipe 230, a discharge pipe 240, and a lubrication oil reservoir portion 250.
(2) Detailed Configuration
(2-1) Pressure Vessel 210
The pressure vessel 210 is able to withstand high pressure and houses other components of the compressor 300.
(2-2) Motor 100
The motor 100 is the motor 100 according to the first embodiment, the motor 100 according to the second embodiment, or motors according to their modifications. The pressure vessel 210 doubles as the casing 90 of the motor 100 (
(2-3) Shaft 110
The shaft 110 transmits power of the motor 100 to the fluid compression mechanism 220 and has an eccentric portion 111.
(2-4) Fluid Compression Mechanism 220
The fluid compression mechanism 220 compresses fluid with the power of the motor 100 and has a cylinder 221 and a piston 222. The cylinder 221 and the piston 222 define a compression chamber 223. The piston 222 is disposed at the eccentric portion 111 of the shaft 110. When the shaft 110 rotates, the piston 222 moves to vary a volume of the compression chamber 223. Thus, the fluid is compressed.
(2-5) Suction Pipe 230
The suction pipe 230 guides the fluid before compression to the fluid compression mechanism 220.
(2-6) Discharge Pipe 240
The discharge pipe 240 guides the fluid after compression to the outside of the pressure vessel 210.
(2-7) Lubrication Oil Reservoir Portion 250
The lubrication oil reservoir portion 250 stores lubrication oil for lubricating the fluid compression mechanism 220 and other mechanisms.
(3) Characteristics
The compressor 300 has the stator 50 or the stator 50A as mentioned above. Therefore, the assembly of the compressor 300 is facilitated, which is able to reduce fractures of the coil windings 30, the outgoing lines 40, and other parts.
The present invention is widely applicable to motors used in all technical fields. Furthermore, the present invention is also applicable to compressors mounted in air conditioning apparatuses.
Number | Date | Country | Kind |
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2015-084405 | Apr 2015 | JP | national |
Filing Document | Filing Date | Country | Kind |
---|---|---|---|
PCT/JP2016/062104 | 4/15/2016 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2016/167344 | 10/20/2016 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
20090102307 | Amano | Apr 2009 | A1 |
Number | Date | Country |
---|---|---|
3-30759 | Mar 1991 | JP |
03030759 | Mar 1991 | JP |
10-174337 | Jun 1998 | JP |
10174337 | Jun 1998 | JP |
2003-97439 | Apr 2003 | JP |
2003097439 | Apr 2003 | JP |
3824001 | Jul 2006 | JP |
Entry |
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Machine translation of JP 2003097439 A (Apr. 2003). |
Machine translation of JP 10174337 A (Jun. 1998). |
Machine translation of JP 03030759 U (Mar. 1991). |
International Preliminary Report of corresponding PCT Application No. PCT/JP2016/062104 dated Oct. 26, 2017. |
Notification of Reasons for Refusal of corresponding JP Application No. 2016-079943 dated Jul. 19, 2016. |
International Search Report of corresponding PCT Application No. PCT/JP2016/062104 dated Jul. 19, 2016. |
European Search Report of corresponding EP Application No. 16 78 0135.6 dated May 18, 2018. |
Number | Date | Country | |
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20180091014 A1 | Mar 2018 | US |