WO2017085827A1 - Stator, moteur électrique et conditionneur d'air - Google Patents
Stator, moteur électrique et conditionneur d'air Download PDFInfo
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- WO2017085827A1 WO2017085827A1 PCT/JP2015/082506 JP2015082506W WO2017085827A1 WO 2017085827 A1 WO2017085827 A1 WO 2017085827A1 JP 2015082506 W JP2015082506 W JP 2015082506W WO 2017085827 A1 WO2017085827 A1 WO 2017085827A1
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- WIPO (PCT)
- Prior art keywords
- wiring board
- substrate
- stator
- insertion hole
- lead wire
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K3/00—Details of windings
- H02K3/04—Windings characterised by the conductor shape, form or construction, e.g. with bar conductors
Definitions
- the present invention relates to a stator, an electric motor, and an air conditioner.
- a stator of an electric motor includes a stator core, an insulating portion that covers the teeth of the stator core, and windings of respective phases that are formed of magnet wires wound around the teeth via the insulating portion (for example, see Patent Documents 1 and 2).
- each lead wire power supply lead wire
- each lead wire is routed on the insulating portion and drawn out of the stator core.
- a second arc-shaped substrate having a power line connection pattern (three wiring layers) for applying an independent potential is attached.
- JP 2000-41371 for example, paragraphs 0027 to 0031, FIG. 6
- JP 2014-11899 A for example, paragraphs 0025 to 0034, FIGS. 3 and 4
- the present invention has been made to solve the above-described problems of the prior art, and provides a stator, an electric motor, and an air conditioner that can simplify a structure for supplying electric power to a winding. With the goal.
- a stator includes a stator core having teeth, an insulating portion that covers the teeth, a plurality of phases wound around the teeth with the insulating portion interposed therebetween, and the plurality of phases
- a first wiring board having a plurality of terminals respectively connected to the windings, a first board fixed to the insulating portion, and a first conductive pattern disposed on the first board;
- a second wiring board having a second substrate fixed to the insulating portion and a second conductive pattern disposed on the second substrate; and the first substrate and the second substrate. Is partially overlapped, and each of the plurality of terminals is connected to at least one of the first conductive pattern and the second conductive pattern.
- An electric motor includes the above-described stator, a rotor, and a support portion to which the stator is fixed and rotatably supports the rotor.
- An air conditioner according to another aspect of the present invention is an air conditioner including a blower, and the blower includes the above-described electric motor.
- FIG. 2 is a plan view schematically showing the structure of the stator when the stator is viewed in the + z direction in FIG. 1.
- FIG. 2 is a plan view schematically showing the structure of the stator when the stator is viewed in the ⁇ z direction in FIG. 1.
- FIG. 5A is a perspective view schematically showing a first wiring board shown in FIG. 4, and
- FIG. 5B is a perspective view schematically showing a second wiring board shown in FIG. 4.
- FIG. 7A is a perspective view schematically showing a first wiring board shown in FIG. 6, and FIG. 7B is a perspective view schematically showing a second wiring board shown in FIG. 6. It is a perspective view which shows roughly the power supply connector with which the 1st wiring board shown by FIG. 1 and the 2nd wiring board were equipped.
- 3 is a perspective view schematically showing a structure of a stator (including a board pressing component) according to Embodiment 1.
- FIG. FIG. 10 is a perspective view schematically showing a first wiring board, a second wiring board, and a board pressing component of the stator shown in FIG. 9.
- FIG. 6 is a perspective view schematically showing a process of assembling the first wiring board and the second wiring board to the structure on the stator core side of the stator according to Embodiment 1.
- FIG. FIG. 3 is a perspective view schematically showing a stator (resin molded state) according to Embodiment 1.
- FIG. 6 is a perspective view schematically showing a first wiring board and a second wiring board in a stator according to a modification of the first embodiment.
- FIG. 18 is a side view schematically showing the electric motor shown in FIG. 17.
- 6 is a flowchart showing a manufacturing process of the electric motor according to the second embodiment. It is a figure which shows schematically the structure of the air conditioner which concerns on Embodiment 3 of this invention.
- the z axis is shown as a coordinate axis parallel to the axis AX of the stator 100.
- the y-axis is shown as a coordinate axis parallel (or substantially parallel) to the longitudinal direction of the first wiring board 50.
- the x-axis is shown as a coordinate axis orthogonal to both the y-axis and the z-axis.
- the same reference numerals are given to the same components.
- FIG. 1 is a perspective view schematically showing the structure of the stator 100 according to Embodiment 1 of the present invention.
- FIG. 1 shows a state in which five sensor lead wires 90 and three power supply lead wires 91 are connected to the stator 100.
- the number and shape of the sensor lead wires 90 and the number and shape of the power supply lead wires 91 are not limited to those shown in FIG.
- the sensor lead wire 90 and the power supply lead wire 91 are also simply referred to as lead wires 90 and 91.
- FIG. 2 is a plan view schematically showing the structure of the stator 100 when the stator 100 is viewed in the + z direction (arrow direction indicating the z axis)
- FIG. 3 is a plan view schematically showing the structure of the stator 100 when the stator 100 is viewed in the ⁇ z direction (the direction opposite to the arrow indicating the z axis) in FIG.
- AX is an axis (virtual straight line) passing through the center of a cylindrical stator core 10 that is a main configuration of the stator 100.
- FIG. 4 is a perspective view schematically showing the structure of the first wiring board 50 and the second wiring board 60 shown in FIG. 1 (structure on the stator core 10 side).
- b) is a perspective view schematically showing the first wiring board 50 and the second wiring board 60 shown in FIG. 4.
- FIG. 6 is a perspective view schematically showing the structure of the first wiring board 50 and the second wiring board 60 shown in FIG. 1 (the structure on the opposite side of the stator core 10).
- FIGS. 6A and 6B are perspective views schematically showing the first wiring board 50 and the second wiring board 60 shown in FIG.
- the stator 100 includes a stator core 10 having teeth 11 as a plurality of tooth portions, an insulating portion 20 that covers the teeth 11, and the teeth 11 with the insulating portion 20 interposed therebetween.
- Wiring board 50 and second wiring board 60 are provided.
- the first wiring board 50 and the second wiring board 60 are also collectively referred to as wiring boards 50 and 60.
- the first wiring substrate 50 is disposed on the first substrate 51 fixed to the insulating portion 20 and the first substrate 51.
- the first conductive pattern 52 (52a, 52b) is included. 4 and FIGS. 5A and 5B, the second wiring board 60 is disposed on the second board 61 and the second board 61 fixed to the insulating portion 20.
- the second conductive pattern 62 (62a, 62b) is provided.
- the first substrate 51 and the second substrate 61 are partially overlapped (partially stacked).
- Each of the first terminal 41, the second terminal 42, and the second terminal 43 is connected to at least one of the first conductive pattern 52 and the second conductive pattern 62.
- the first conductive pattern 52 and the second conductive pattern 62 have the same shape. However, the first conductive pattern 52 and the second conductive pattern 62 may have different shapes.
- the first conductive pattern 52 includes the first wiring portion 52a and the second wiring portion 52b
- the second conductive pattern 62 includes the third wiring portion 62a and the fourth wiring portion 52b. Wiring part 62b.
- the first substrate 51 and the second substrate 61 have the same shape. is doing. However, the first substrate 51 and the second substrate 61 may have different shapes. Further, as shown in FIG. 1, in the first embodiment, each of the first substrate 51 and the second substrate 61 has a long shape. However, each of the first substrate 51 and the second substrate 61 is not necessarily long. In the first embodiment, the long side of the first substrate 51 (longitudinal longitudinal direction) and the long side of the second substrate 61 (longitudinal longitudinal direction) form an angle ⁇ . Yes.
- the angle ⁇ is selected according to the structure of the stator 100.
- the angle ⁇ is a predetermined angle.
- the multiple-phase winding 30 includes a first-phase (U-phase) winding, a second-phase (V-phase) winding, and a third-phase (W-phase) winding.
- the first terminal 41 is connected to the first phase winding
- the second terminal 42 is connected to the second phase winding
- the third terminal 43 is connected to the third phase winding.
- the first terminal 41, the second terminal 42, and the third terminal 43 are arranged at intervals of 120 ° on a circle centering on the position of the axis AX of the stator core 10.
- the positions of the first terminal 41, the second terminal 42, and the third terminal 43 are not limited to 120 ° intervals.
- the first wiring board 50 includes a first terminal insertion hole 53a that penetrates the first board 51 and the first wiring part 52a, and a first terminal that penetrates the first board 51 and the second wiring part 52b. 2 terminal insertion holes 53b.
- the second wiring board 60 includes a third terminal insertion hole 63a that penetrates the second board 61 and the third wiring part 62a, and a second terminal that penetrates the second board 61 and the fourth wiring part 62b. 4 terminal insertion holes 63b.
- the positional relationship between the first terminal insertion hole 53a and the second terminal insertion hole 53b is equal to the positional relationship between the third terminal insertion hole 63a and the fourth terminal insertion hole 63b.
- the second terminal insertion hole 53b and the third terminal insertion hole 63a overlap each other.
- the first terminal 41 is inserted into the first terminal insertion hole 53a
- the second terminal 42 is inserted into the second terminal insertion hole 53b and the third terminal insertion hole 63a
- the third terminal 43 is Are inserted into the fourth terminal insertion holes 63b.
- the insulating part 20 has a plurality of insulating part protrusions 21.
- the first substrate 51 has first protrusion insertion holes 54a, 54b, 54c into which the insulating portion protrusion 21 is inserted, and the second substrate 61 has a second protrusion insertion into which the insulating portion protrusion 21 is inserted. It has holes 64a, 64b, 64c. Further, the positional relationship between the first projection insertion holes 54a, 54b, 54c and the positional relationship between the second projection insertion holes 64a, 64b, 64c are equal.
- one projection insertion hole 54c of the first projection insertion holes 54a, 54b, 54c and one projection insertion hole 64a of the second projection insertion holes 64a, 64b, 64c are overlapped with each other. ing.
- the number, position, and shape of the first protrusion insertion holes 54a, 54b, and 54c, and the number, position, and shape of the second protrusion insertion holes 64a, 64b, and 64c are not limited to the illustrated example.
- the stator core 10 is formed by, for example, punching electromagnetic steel sheets into a strip shape, laminating the electromagnetic steel sheets by performing processes such as caulking, welding, and bonding to the punched electromagnetic steel sheets. Is done.
- the belt-shaped laminated electromagnetic steel plates constituting the stator core 10 are provided with teeth 11 composed of nine tooth portions.
- a winding (coil) 30 is formed on the tooth 11 by winding a magnet wire through the insulating portion 20.
- the insulating unit 20 has a function of insulating between the winding 30 and the stator core 10.
- the insulating part 20 is formed by, for example, molding a thermoplastic resin such as PBT (polybutylene terephthalate) so as to cover the surface of the stator core 10 or assembling the molded thermoplastic resin to the stator core 10. Formed by.
- a plurality of insulating portion protrusions 21 protruding in the -z direction are provided on the outer side in the axial direction of the insulating portion 20, a plurality of insulating portion protrusions 21 protruding in the -z direction are provided.
- the insulating portion protrusion 21 is inserted into the protrusion insertion port of the first wiring board 50 or the second wiring board 60 and fixes the first wiring board 50 or the second wiring board 60.
- the insulating part protrusion 21 is a part of the insulating part 20 protruding in the ⁇ z direction.
- the insulating protrusion 21 may be polygonal or cylindrical.
- the clearance (gap) between the protrusion insertion hole into which the insulating protrusion 21 is inserted and the insulating protrusion 21 can be reduced, and the first wiring board 50 can be reduced.
- the positional error (variation) of the second wiring board 60 with respect to the stator core 10 can be reduced.
- Magnet wires constituting the winding 30 wound around the teeth 11 of the stator core 10 are terminals (first terminal 41, second terminal 42) of each phase (for example, U phase, V phase, W phase). , To the third terminal 43), and joined to the first terminal 41, the second terminal 42, and the third terminal 43 by fusing or soldering, respectively.
- the U-phase, V-phase, and W-phase windings 30 are arranged for each phase in the teeth 11 composed of nine teeth. Arranged together. That is, the nine windings 30 are arranged in the order of U phase, U phase, U phase, V phase, V phase, V phase, W phase, W phase, and W phase.
- the stator core 10 in which the teeth 11 are configured by nine teeth is described as an example, but the teeth 11 are not limited to those configured by nine teeth.
- the present invention can be applied to a structure composed of 12 teeth.
- the terminals (the first terminal 41, the second terminal 42, the third terminal 43) of each phase are, for example, the windings 30 of each phase arranged continuously. Installed at each intermediate point.
- the terminals of each phase include the first conductive pattern 52 of the first wiring board 50 and the second wiring board 60 of the second wiring board 60. Electric power is supplied through at least one of the conductive patterns 62.
- the first terminal 41, the second terminal 42, and the third terminal 43 are made of, for example, a metal plate having a thickness of 0.5 mm. After punching the metal plate, the first terminal 41, the second terminal 42, and the third terminal 43 are bent into the punched metal plate.
- the metal plate is, for example, a copper plate, and has a surface plated with a tin-copper alloy.
- the structures and materials of the first terminal 41, the second terminal 42, and the third terminal 43 are not limited to the above example.
- the first wiring board 50 and the second wiring board 60 are fixed to the insulating portion 20 of the stator 100.
- the first wiring board 50 and the second wiring board 60 are formed on the first board 51 and the second board 61 with a conductor such as copper foil and the first conductive pattern 52 and the second wiring board 60. This is a printed circuit board on which the conductive pattern 62 is formed.
- a sensor lead wire 90 and a power supply lead wire 91 are connected to the first wiring board 50.
- the first wiring board 50 and the second wiring board 60 may be formed with a sensor pattern that is a wiring portion between the sensor lead wire 90 and the position detection elements 57a, 57b, and 57c.
- the first wiring board 50 is provided with two terminal insertion holes 53a and 53b
- the second wiring board 60 is provided with two terminal insertion holes 63a and 63b.
- Terminal (first terminal 41, second terminal 42, third terminal 43) is inserted into the terminal insertion hole, so that the terminal of each phase becomes the first wiring board 50 and the second wiring board 60.
- the first wiring board 50 is provided with three protrusion insertion holes 54a, 54b, and 54c, and the second wiring board 60 has three protrusions. Insertion holes 64a, 64b, and 64c are provided. Each wiring board is fixed to the stator 100 by inserting the plurality of insulating part protrusions 21 of the insulating part 20 into the protrusion insertion holes 54 and 64. Further, as shown in FIGS. 5A and 5B and FIGS. 7A and 7B, the first wiring board 50 is a hole into which a connector terminal (not shown) attached to the end of the lead wire is inserted.
- a plurality of connector terminal insertion holes 55a, 55b, 55c are provided, and the second wiring board 60 has a plurality of connector terminal insertion holes 65a, 65b, which are holes through which connector terminals (not shown) attached to the leading ends of the lead wires are inserted. 65c is provided.
- FIG. 8 is a perspective view schematically showing a power connector 97 provided on the first wiring board 50 and the second wiring board 60 shown in FIG.
- the first wiring portion 52 a of the first wiring board 50 electrically connects the first terminal 41 and the power supply lead 91.
- the second wiring portion 52 b of the first wiring board 50 electrically connects the second terminal 42 and the power supply lead wire 91.
- the third wiring part 62 a of the second wiring board 60 electrically connects the second terminal 42 and the power supply lead 91.
- the fourth wiring part 62 b of the second wiring board 60 electrically connects the third terminal 43 and the power supply lead 91.
- the first wiring board 50 and the second wiring board 60 are fixed to the stator 100 in a partially overlapping state.
- the first wiring board 50 partially overlaps in the ⁇ z direction of the second wiring board 60 (opposite to the arrow indicating the z axis) (for example, the two are partially in contact with each other).
- the terminal insertion hole 53b of the first wiring board 50 and the terminal insertion hole 63a of the second wiring board 60 are arranged so as to overlap each other. Therefore, the second terminal 42, which is a common terminal, is inserted into the terminal insertion hole 53 b of the first wiring board 50 and the terminal insertion hole 63 a of the second wiring board 60.
- the first wiring board 50 and the second wiring board 60 have the same outer shape.
- the outer shape of the first and second wiring boards 50 and 60 is a long shape (substantially rectangular).
- the long shape (substantially rectangular shape) means an approximately rectangular shape, and includes, for example, those with rounded corners, those with non-right angles, and those with left-right asymmetric parts.
- position detection elements 57a, 57b, and 57c for detecting the rotational position of the rotor are mounted on one surface of the first wiring board 50. As shown in FIG. The position detection elements 57a, 57b, and 57c are connected to the sensor lead wire 90 by a sensor pattern (not shown).
- sensor lead wires 90 are connected to the other surface of the first wiring board 50 by a board-in connector 96.
- power supply leads 91 (three wires in this embodiment) are connected to the other surfaces of the first wiring board 50 and the second wiring board 60 by a power connector 97. ing.
- the power supply lead 91 supplies power to each winding 30 via the conductive pattern formed on each wiring board and the terminal of each phase.
- the sensor lead wire 90 supplies power to the position detection elements 57a, 57b, and 57c through a sensor pattern (not shown) formed on the first wiring board 50.
- FIG. 9 is a perspective view schematically showing the structure of the stator 100 (including the board pressing component) according to the first embodiment.
- 10 is a perspective view schematically showing the first wiring board 50, the second wiring board 60, and the board pressing component 70 of the stator shown in FIG. 9, and FIG. 11 is shown in FIG. It is a perspective view which shows the board
- 12 is a perspective view schematically showing the power supply lead wire holding portion 95 shown in FIG. 10
- FIG. 13 is a perspective view schematically showing the sensor lead wire holding portion 94 shown in FIG.
- FIG. 14 is a perspective view schematically showing a process of assembling the first wiring board 50 and the second wiring board 60 to the structure on the stator core 10 side of the stator 100 according to the first embodiment.
- FIG. 15 is a perspective view schematically showing stator 100 (resin-molded state) according to the first embodiment.
- the lead wire holding portion 92 includes a lead wire opening portion 93, a power supply lead wire holding portion 95, and a sensor lead wire holding portion 94.
- a lead wire lead-out portion 93 is arranged above the power supply lead wire holding portion 95, and a sensor lead wire holding portion 94 is arranged above the lead wire lead-out portion 93.
- the power supply lead 91 and the sensor lead 90 are held by a lead holding part 92 and are fixed to the stator core 10.
- the power supply lead wires 91 are fixed by disposing the power supply lead wires 91 (three) on the upper surface of the lead wire lead-out portion 93 and sandwiching the power supply lead wire holding portion 95.
- the sensor lead wires 90 are fixed by disposing the sensor lead wires 90 (five pieces) on the lower surface of the lead wire lead-out portion 93 and sandwiching them with the sensor lead wire holding portion 94.
- the lead wire lead-out portion 93 has two locking portions.
- the first locking part has a function of locking the sensor lead wire holding part 94.
- the second locking portion has a function of locking the power supply lead wire holding portion 95.
- the lead wire lead-out portion 93 includes a protrusion 93 c having a flat portion that is substantially perpendicular to the radial direction of the stator 100.
- the power supply lead wire holding portion 95 has three lead wire insertion grooves 95a into which the power supply lead wires 91 are inserted. Further, the power supply lead wire holding portion 95 has a foot portion 95b. Since the foot portion 95b of the power supply lead wire holding portion 95 is locked to the second locking portion of the lead wire lead portion 93, the power lead wire holding portion 95 holds the power lead wire 91 in a state of sandwiching the power lead wire 91. 93.
- the sensor lead wire holding portion 94 has five lead wire insertion grooves 94a into which the sensor lead wire 90 is inserted.
- the sensor lead wire holding portion 94 has a foot portion 94b.
- the foot portion 94b of the sensor lead wire holding portion 94 is locked to the first locking portion of the lead wire lead portion 93, so that the sensor lead wire holding portion 94 holds the sensor lead wire 90 in a state of sandwiching the sensor lead wire 90. 93.
- the first wiring board 50 and the second wiring board 60 are partially overlapped and assembled to the stator 100 with the lead wires attached.
- the first terminal 41 is inserted into the first terminal insertion hole 53 a of the first wiring board 50.
- the third terminal 43 is inserted into the fourth terminal insertion hole 63 b of the second wiring board 60.
- the second terminal 42 is inserted into the second terminal insertion hole 53 b of the first wiring board 50 and the third terminal insertion hole 63 a of the second wiring board 60.
- the insulating portion protrusion 21 is inserted into the protrusion insertion holes 54a, 54b, 54c, 64a, 64b, and 64c of each wiring board, thereby positioning each wiring board in the rotational direction.
- the insulating protrusion 21 can be bonded by, for example, ultrasonic welding.
- the board pressing component 70 can be mounted on each wiring board.
- the substrate pressing component 70 is formed by molding a thermoplastic resin such as PBT, and has a configuration in which the mold contact protrusions 71 are connected by a thin portion 72 as shown in FIG.
- the board holding component 70 is provided with a protrusion insertion hole 73 into which the insulating part protrusion 21 of the insulating part 20 is inserted, and a claw (not shown) that is engaged with each wiring board.
- the substrate pressing component 70 has a minimum necessary structure by connecting the mold contact protrusion 71 with the thin portion 72, and can suppress the material cost.
- the board holding component 70 When the board holding component 70 is assembled to each wiring board, the claws provided on the board holding part 70 are engaged with each wiring board, so that each wiring board and the board holding component 70 can be accurately bonded with an adhesive or the like. Can be assembled without using.
- the board holding component 70 may further include a positioning projection for assembling with high precision to each wiring board. In that case, a positioning projection insertion hole can be provided at a corresponding position of each wiring board.
- Each wiring board on which the board holding component 70 is mounted is fixed to the stator 100, and the entire stator 100 is housed in a mold and resin-molded.
- the mold contact protrusion 71 of the protrusion provided in the substrate pressing component 70 and the claw provided in the substrate pressing component 70 are sandwiched between the molds, so that the substrate pressing component 70 is attached to the mold. It is fixed and prevents each wiring board from being deformed.
- stator 100 electric power is supplied to the terminals 41, 42, and 43 of each phase via the first wiring board 50 and the second wiring board 60. Therefore, the length of the lead wire routed in the stator 100 can be shortened (or the lead wire is not routed), and the structure of the stator 100 can be simplified. Furthermore, the manufacturing cost of the stator 100 can be reduced by simplifying the structure. In addition, by shortening the lead wires that are routed, it is possible to reduce the occurrence of defects such as disconnection of the lead wires during resin molding.
- the terminals 41, 42, and 43 of each phase are energized using a plurality of wiring boards (the first wiring board 50 and the second wiring board 60).
- a plurality of wiring boards the first wiring board 50 and the second wiring board 60.
- each of the plurality of wiring boards can have a simple shape as compared with the case where the terminals of each phase are energized with a single wiring board. For this reason, the number of substrates for a wiring board that can be taken out from one sheet of large-sized substrate material can be increased, and the material cost of the wiring board can be reduced.
- the first wiring board 50 and the second wiring board 60 are partially overlapped (partially stacked). Thereby, each wiring board can be assembled
- a plurality of insulating portion protrusions 21 are formed on the insulating portion 20, and a plurality of first wiring boards 50 on which the position detection elements 57a, 57b, and 57c are mounted are provided on the first wiring board 50.
- a plurality of projection insertion holes 54a, 54b, 54c for inserting the insulating projection 21 are formed. Therefore, the first wiring board 50 on which the position detection elements 57a, 57b, and 57c are mounted is directly coupled to the insulating portion 20 formed on the stator core 10. Thereby, the integration error of the component assembly of the position detection elements 57a, 57b, and 57c with respect to the stator 100 can be reduced, and the variation of products can be reduced.
- the first wiring board 50 and the second wiring board 60 have the same outer shape, and the first terminal insertion hole formed in the first wiring board 50.
- the positional relationship between 53a and the second terminal insertion hole 53b and the positional relationship between the third terminal insertion hole 63a and the fourth terminal insertion hole 63b formed in the second wiring board 60 are equal, and the first wiring board
- the positional relationship between the first projection insertion holes 54 a, 54 b, 54 c formed in 50 and the positional relationship between the second projection insertion holes 64 a, 64 b, 64 c formed in the second wiring substrate 60 are equal.
- the increase in the kind of component can be suppressed, the 1st wiring board 50 and the 2nd wiring board 60 can be made shared, and material cost can be reduced. Further, when the substrate is punched with a punching die, only one type of punch is required, and the space for the production line can be saved. Moreover, since a small board
- the shape of the first conductive pattern 52 included in the first wiring substrate 50 and the shape of the second conductive pattern 62 included in the second wiring substrate 60 are the same. Therefore, the increase in the kind of component can be suppressed and manufacturing cost can be reduced.
- the second terminal insertion hole 53b and the third terminal insertion hole 63a overlap each other.
- the protrusion insertion hole 54c and the protrusion insertion hole 64a overlap each other.
- the first wiring board 50 and the second wiring board 60 can be partially overlapped, and the first wiring board 50 and the second wiring board 60 can be assembled to the stator 100 at the same time. it can.
- the lead wire holding portion 92 includes the sensor lead wire holding portion 94 that holds the sensor lead wire 90, the power supply lead wire holding portion 95 that holds the power supply lead wire 91,
- the sensor lead wire holding portion 94 and the power supply lead wire holding portion 95 are configured by a lead wire lead-out portion 93 located in the center.
- the lead wire lead-out portion 93 includes the protrusion 93c having a plane portion substantially perpendicular to the radial direction of the stator 100.
- the protrusions 93c By providing the protrusions 93c, the projected area in the radial direction of the stator 100 of the lead wire lead-out portion 93 is increased, and the force applied by the molding pressure to the lead wire lead-out portion 93 during resin molding is increased.
- the wiring component is pressed in the radial direction, abuts against the mold, and positioning in the radial direction is possible.
- ⁇ 1-4 Modification of Embodiment 1
- the two wiring boards of the first wiring board 50 and the second wiring board 60 are used, but the number of wiring boards may be three. Good. When three wiring boards are used, the area of each wiring board can be further reduced. In that case, adjacent wiring boards of the three wiring boards may partially overlap each other.
- the stator 100 can also include four or more wiring boards.
- FIG. 16 is a perspective view schematically showing the first wiring board 50 and the second wiring board 60a in the stator according to the modification of the first embodiment.
- the first wiring board 50 and the second wiring board 60 have the same outer shape, but as shown in FIG. 16, they may have different outer shapes.
- FIG. 16 shows a case where the second wiring board 60 a has a shorter side than the first wiring board 50.
- each wiring board is a long shape, but it may be a bent shape or a shape using a curve.
- the arrangement of the lead wires (the power supply lead wire 91 and the sensor lead wire 90) and the position detection elements 57a, 57b, 57c in the above description can be changed.
- the arrangement of the lead wires (the power supply lead wire 91 and the sensor lead wire 90) and the position detection elements 57a, 57b, 57c it is possible to flexibly cope with a change in specifications such as a change in the rotation direction of the motor. .
- a substrate using only one side can be provided without providing the wiring and circuit of the position detection elements 57a, 57b, and 57c.
- FIG. 17 is a perspective view schematically showing an electric motor 200 according to Embodiment 2 of the present invention
- FIG. 18 is a side view schematically showing the electric motor 200 shown in FIG.
- the electric motor 200 according to Embodiment 2 includes a stator 210, a rotor 220, and a stator 230 to which the stator 210 is fixed and supports the rotor 220 in a rotatable manner.
- the support unit 230 includes, for example, a bracket that rotatably supports the rotor 220 and a frame (main body frame).
- FIG. 19 is a flowchart showing a manufacturing process of the electric motor 200 according to the second embodiment.
- the stator core 10 is manufactured (step S11)
- the insulating portion 20 is formed (step S12)
- the winding 30 is wound around the tooth 11 (step S13).
- the power supply lead 91 and the sensor lead 90 are assembled (step S21), and the first and second wiring boards 50 and 60 are manufactured (step S31).
- the power supply lead is connected to the first and second wiring boards 50 and 60.
- 91 and the sensor lead wire 90 are assembled (step S22). The state at this time is the state shown in FIG.
- the board holding component 70 is manufactured (step S32), and the board holding component 70 is assembled to the first and second wiring boards 50 and 60 (step S23).
- the power supply lead 91 and the sensor lead 90 are soldered to the first and second wiring boards 50 and 60 (step S24).
- the power supply lead wire holding portion 95 and the sensor lead wire holding portion 94 are manufactured (Steps S33 and S34), and the power supply lead wire 91 and the sensor lead wire 90 are assembled to the power supply lead wire holding portion 95 and the sensor lead wire holding portion 94 (Step S33). S25).
- step S14 a structure including the first and second wiring boards 50, 60, the power supply lead wire 91, and the sensor lead wire 90 is assembled to the stator in the middle of manufacture, and the insulating protrusion is thermally melted to first and The second wiring boards 50, 60 are fixed, and the terminals 41, 42, 43 and the conductive patterns 52, 62 of the first and second wiring boards 50, 60 are soldered (step S14).
- step S15 the stator 100 (210) is molded (step S15).
- the state at this time is the state shown in FIG.
- the rotor 220 and the bracket are manufactured, and the electric motor 200 is assembled.
- the state at this time is the state shown in FIG.
- the electric motor 200 according to the second embodiment in addition to the effects obtained by the stator 100 described in the first embodiment, it is possible to obtain the effects of simplification of the configuration of the electric motor 200 and reduction of product costs. .
- FIG. 20 is a diagram schematically showing a configuration of an air conditioner 300 according to Embodiment 3 of the present invention.
- the air conditioner 300 includes an outdoor unit 310, an indoor unit 320, and a refrigerant pipe 330 for circulating a refrigerant between the outdoor unit 310 and the indoor unit 320. .
- the outdoor unit 310 includes a compressor 311, a heat exchanger 312, a fan 313, and an electric motor 314 that rotates the fan 313.
- the electric motor 314 and the fan 313 constitute a blower for flowing air to the heat exchanger 312.
- the indoor unit 320 includes a heat exchanger 321, a fan 322, and an electric motor 323 that rotates the fan 322.
- the electric motor 323 and the fan 322 constitute a blower for flowing air to the heat exchanger 321.
- at least one of the electric motor 314 and the electric motor 323 is configured by the electric motor 200 according to the second embodiment.
- the air conditioner 300 according to Embodiment 3 either a cooling operation in which cool air is blown from the indoor unit 320 or a heating operation in which warm air is blown from the indoor unit 320 can be selectively performed.
- the air conditioner 300 according to the third embodiment is the same as a conventional air conditioner except that the electric motor 200 according to the second embodiment is adopted as at least one of the electric motor 314 and the electric motor 323. .
- the air conditioner 300 in addition to the effect obtained by the stator 100 described in the first embodiment and the effect obtained by the electric motor 200 described in the second embodiment, the effects of simplifying the configuration of the air conditioner 300 and reducing the product cost can be obtained.
- the air conditioner to which the present invention is applicable is not limited to an indoor air conditioner as shown in FIG.
- the present invention is applicable to various devices including an electric motor, such as an air conditioner for a refrigeration warehouse and an air conditioner for a refrigerator.
Landscapes
- Engineering & Computer Science (AREA)
- Power Engineering (AREA)
- Insulation, Fastening Of Motor, Generator Windings (AREA)
- Windings For Motors And Generators (AREA)
Abstract
La présente invention concerne un stator (100) qui comprend : un noyau statorique (10) ; une partie isolante (20) ; des enroulements multiphasés (30) enroulés autour de dents (11), la partie isolante (20) étant intercalée entre ces derniers ; une pluralité de bornes (41, 42, 43) raccordées aux enroulements multiphasés respectifs ; un premier substrat de câblage (50) ayant un premier substrat (51) fixé à la partie isolante (20) et un premier motif de conduction (52) disposé sur le premier substrat (51) ; et un second substrat de câblage (60) ayant un second substrat (61) fixé à la partie isolante (20) et un second motif de conduction (62) disposé sur le second substrat (61). Le premier substrat (51) et le second substrat (61) se chevauchent partiellement l'un l'autre. Les bornes (41, 42, 43) sont chacune raccordées au premier motif de conduction (52) et/ou au second motif de conduction (62).
Priority Applications (2)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
PCT/JP2015/082506 WO2017085827A1 (fr) | 2015-11-19 | 2015-11-19 | Stator, moteur électrique et conditionneur d'air |
JP2017551457A JP6381831B2 (ja) | 2015-11-19 | 2015-11-19 | 固定子、電動機、及び空気調和機 |
Applications Claiming Priority (1)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
PCT/JP2015/082506 WO2017085827A1 (fr) | 2015-11-19 | 2015-11-19 | Stator, moteur électrique et conditionneur d'air |
Publications (1)
Publication Number | Publication Date |
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WO2017085827A1 true WO2017085827A1 (fr) | 2017-05-26 |
Family
ID=58718668
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
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PCT/JP2015/082506 WO2017085827A1 (fr) | 2015-11-19 | 2015-11-19 | Stator, moteur électrique et conditionneur d'air |
Country Status (2)
Country | Link |
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JP (1) | JP6381831B2 (fr) |
WO (1) | WO2017085827A1 (fr) |
Cited By (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20190181712A1 (en) * | 2016-08-04 | 2019-06-13 | Mitsubishi Electric Corporation | Motor and air conditioner |
CN110313114A (zh) * | 2017-08-31 | 2019-10-08 | 深圳市大疆创新科技有限公司 | 电机的定子及电机及飞行器 |
CN110391710A (zh) * | 2018-04-19 | 2019-10-29 | 建准电机工业股份有限公司 | 三相马达 |
US11909259B2 (en) | 2018-08-28 | 2024-02-20 | Mitsubishi Electric Corporation | Stator, motor, fan, air conditioner, and method for manufacturing stator |
Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH0622484A (ja) * | 1992-07-01 | 1994-01-28 | Matsushita Electric Ind Co Ltd | モータの固定子 |
JP2002112516A (ja) * | 2000-09-28 | 2002-04-12 | Mitsubishi Electric Corp | ブラシレスモータ |
JP2010273517A (ja) * | 2009-05-25 | 2010-12-02 | Mitsubishi Electric Corp | 電動機の固定子及び電動機及び空気調和機及び電動機の製造方法 |
-
2015
- 2015-11-19 WO PCT/JP2015/082506 patent/WO2017085827A1/fr active Application Filing
- 2015-11-19 JP JP2017551457A patent/JP6381831B2/ja not_active Expired - Fee Related
Patent Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH0622484A (ja) * | 1992-07-01 | 1994-01-28 | Matsushita Electric Ind Co Ltd | モータの固定子 |
JP2002112516A (ja) * | 2000-09-28 | 2002-04-12 | Mitsubishi Electric Corp | ブラシレスモータ |
JP2010273517A (ja) * | 2009-05-25 | 2010-12-02 | Mitsubishi Electric Corp | 電動機の固定子及び電動機及び空気調和機及び電動機の製造方法 |
Cited By (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20190181712A1 (en) * | 2016-08-04 | 2019-06-13 | Mitsubishi Electric Corporation | Motor and air conditioner |
US11843296B2 (en) * | 2016-08-04 | 2023-12-12 | Mitsubishi Electric Corporation | Motor and air conditioner |
CN110313114A (zh) * | 2017-08-31 | 2019-10-08 | 深圳市大疆创新科技有限公司 | 电机的定子及电机及飞行器 |
CN110391710A (zh) * | 2018-04-19 | 2019-10-29 | 建准电机工业股份有限公司 | 三相马达 |
CN110391710B (zh) * | 2018-04-19 | 2021-01-29 | 建准电机工业股份有限公司 | 三相马达 |
US11909259B2 (en) | 2018-08-28 | 2024-02-20 | Mitsubishi Electric Corporation | Stator, motor, fan, air conditioner, and method for manufacturing stator |
Also Published As
Publication number | Publication date |
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JPWO2017085827A1 (ja) | 2018-02-08 |
JP6381831B2 (ja) | 2018-08-29 |
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