The present invention is related to a connecting molding for automatic winding of three phase motor, more particularly, to a connecting molding for automatic winding of three phase motor comprising: a fixed coil unit coupled and fixed inside of a main unit; a coil unit installed inside of the fixed coil unit; a center shaft passing through the coil unit and fixed to the main unit; and a connector unit coupled to an upper end portion of the coil unit to connect a coil of the coil unit, the connector unit is coupled by the center shaft passing therethrough.
Various motors are basically identical in structure with a stator and a rotor. However, motors are classified according to a rotating principle of the rotator by mutual interaction between the stator and the rotor. Further, motors are classified according to kinds of power supplied to the stator coil, a phase or a method of winding the stator coil.
First, a conventional motor will be described referring to
As illustrated in
Moreover, a rotator (unshown) being connected to a rotating shaft (unshown) is disposed inside the stator 1, and a printed circuit board (PCB) 60 is fixed at an upper portion of the stator 1. That is, a fixed protrusion 22 formed at an upper portion of the stator 1 is inserted to a hole 61 formed in the PCB 60 to fix the PCB 60.
The stator 1, the rotor and the PCB 60 are accommodated inside a bracket 70. Meanwhile, the rotating shaft and the rotator to be rotated are supported by bearings (unshown) fixed at the bracket 70.
There are nine teeth 3 formed in
First, a stator coil of u phase 7 is wound at teeth No. 1 in clockwise direction (arrow direction). A direction of winding does not have to be a clockwise direction. However, in any case, the stator coils of each phase only have to be wound in identical direction.
After completing the winding, a connection line 12 of the stator coil of u phase 7 is escaped outside of the insulator through a groove 10 formed in the insulator 4. One end of the connection line is fixed at a protrusion 11 that determines a position of the connection line and is extended along an outer circumferential surface of the insulator. The extended connection line 12 is inserted again inside the insulator through a groove 10 formed in the insulator and wound again at teeth No. 4 in clockwise direction. In the same way, the connection line 12 is positioned to be wound again at teeth 7 in clockwise direction and a terminal end of the stator coil forms a neutral point (N).
Here, the stator coil of u phase 7 has two connection lines 12. The two connection lines 12 are positioned to be at different heights from each other. An adjustment of such positions are accomplished by the protrusion 11 formed at various heights.
A stator coil of v phase 8 is wound at teeth No. 2, teeth No. 5 and teeth No. 8. A stator coil of w phase 9 is wound at teeth No. 3, teeth No. 6 and teeth No. 9. Here, the stator coil of v phase 8 has two connection lines 13 and the stator coil of w phase 9 has two connection lines 14. These connection lines are positioned at heights different from each other.
Here, starting ends of the stator coils of u, v, and w phases are connected to their corresponding power supplies and the terminal ends of each stator coils are connected to each other to form the neutral point (N).
Meanwhile, as shown in
Moreover, since such connection lines are positioned only at the upper insulator 4, the heights where the protrusions 11 are formed have to be formed variously to afford a difference in heights among such connection lines. This resulted in a problem of increasing a height of the insulator. Further, since the protrusions of various heights have to be formed as shown in
Additionally, even for one phase connection lines, positioning at different heights increases a probability of winding faults and has a problem that a sufficient distance between the connection lines are not secured.
Conventionally, when PCB 60 is positioned at the upper portion of the stator, the starting ends of the stator coils 7′, 8′ and 9′ are directly soldered to the PCB 60, manufacturing process becomes complicated and causes mis-connection.
Therefore, the starting ends of the stator coils 7′, 8′ and 9′ are positioned inside between the stator 1 and the bracket 70 to induce a concern that insulation may not be maintained. Generally, the stator core 2 is pressed and inserted to be fixed inside the bracket 70, and this forms a gap between the inside wall of the bracket and the insulator 4 of the stator very narrow.
Since an insulating tube (unshown) and a structure related to the insulating tube have to be used to fix the neutral point formed by the terminal ends of the stator coils, its manufacturing process is complicated. Further, since such neutral point is fixed on an outside surface of the insulator 4, there is a concern that a fault in insulation between the neutral point and the bracket.
In order to solve above problem, the object of the present invention is to provide a connecting molding for automatic winding of three phase motor that couples a connector unit connected with a ground coil of a coil unit and respective coils of 3 phases to an upper portion of the coil unit and automatically forms connections between the respective electrodes of the connector unit by a separate cable.
The present invention to solve above problem is related to a connecting molding for automatic winding of three phase motor comprising: a fixed coil unit coupled and fixed inside of a main unit; a coil unit installed inside of the fixed coil unit; a center shaft passing through the coil unit and fixed to the main unit; a connector unit coupled to an upper end portion of the coil unit to connect a coil of the coil unit, the connector unit is coupled by the center shaft passing therethrough.
the present invention couples a connector unit connected with a ground coil of a coil unit and respective coils of 3 phases to an upper portion of the coil unit and automatically connects the coils. Thus, a manufacturing time is reduced and a cost for manufacture is reduced due to an automatic process without manual labor.
The present invention of a connecting molding for automatic winding of three phase motor as illustrated in
The connector unit 110 as illustrated in
A coupling unit 121 is formed at an upper portion of the coil unit 120. The coupling unit 121 is inserted and coupled into the connector unit 110. A protrusion 122 is formed on an outer circumferential surface of the coupling unit 121. The coupling unit 121 is inserted into a hole formed at a center portion of the connector unit 110. A groove is formed on an inner circumference surface of the hole. The coupler unit 121 is fixed to the connector unit 110 by inserting the protrusion 122 into the groove.
Details of the present invention are described below.
As illustrated in
As illustrated in
The coils of each phase and the ground coil are connected to the respective coil electrodes 112 and the ground electrode 111 of the connector unit 110 by a method of welding, winding or connecting and so forth using an automatic apparatus.
The ground electrode 111 of the connector unit 110 is formed with the three terminals to be connected to the three phase coil electrodes 112 respectively disposed horizontal with the three terminals of the ground electrode 111 by any one method among welding, winding or connecting with cable through an automatic apparatus.
As illustrated in
Further, as illustrated in
| Number | Date | Country | Kind |
|---|---|---|---|
| 10-2009-0012523 | Feb 2009 | KR | national |
| Filing Document | Filing Date | Country | Kind | 371c Date |
|---|---|---|---|---|
| PCT/KR2010/000896 | 2/12/2010 | WO | 00 | 8/10/2011 |
| Publishing Document | Publishing Date | Country | Kind |
|---|---|---|---|
| WO2010/093192 | 8/19/2010 | WO | A |
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| Number | Date | Country |
|---|---|---|
| 2004194367 | Jul 2004 | JP |
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| Entry |
|---|
| Ishigami et al., JP2004194367 Machine Translation, Jul. 2004. |
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| English Language Abstract of KR 10-2008-0078949 A. |
| Number | Date | Country | |
|---|---|---|---|
| 20110309700 A1 | Dec 2011 | US |