Motor
A motor with a current limiting unit, like a PTC thermistor, addresses the issue of adverse current effects by limiting current flow between the motor and external circuits, enhancing motor performance and noise suppression.
Patent Information
- Application Number
- JP2021174305
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-10-26
- Publication Date
- 2025-09-11
- Estimated Expiration
- 2041-10-26
AI Technical Summary
Current flowing from the ground terminal of an external circuit to the ground terminal of a motor control circuit can adversely affect the motor.
A motor with a current limiting unit, such as a PTC thermistor, is disposed in the path connecting the ground terminal of the motor control circuit and an external ground terminal to limit current flow and suppress adverse effects.
The current limiting unit effectively suppresses adverse effects caused by electrical connection with an external circuit, preventing overcurrent and noise radiation.
Smart Images

Figure 0007737866000001 
Figure 0007737866000002 
Figure 0007737866000003
Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a motor. [Background technology]
[0002] BACKGROUND ART Conventionally, it is known that a motor is provided with a motor control circuit having a ground terminal (see, for example, Patent Document 1). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 2019-50319 Summary of the Invention [Problem to be solved by the invention]
[0004] Here, when the ground terminal of the motor control circuit is electrically connected to the ground terminal of an external circuit provided outside the motor, current flowing from the ground terminal of the external circuit to the ground terminal of the motor control circuit may have an adverse effect on the motor.
[0005] In view of the above circumstances, an object of the present disclosure is to provide a motor that can suppress adverse effects caused by electrical connection with an external circuit. [Means for solving the problem]
[0006] An exemplary motor of the present disclosure includes a motor control circuit having a ground terminal, and a current limiting unit disposed in a path electrically connecting the ground terminal and an external ground terminal included in an external circuit disposed outside the motor. [Effects of the Invention]
[0007] According to the exemplary motor of the present disclosure, adverse effects caused by electrical connection with an external circuit can be suppressed. [Brief explanation of the drawings]
[0008] [Figure 1] FIG. 1 is a partial vertical cross-sectional view of the motor. [Figure 2] FIG. 2 is a block diagram showing an electrical connection configuration between the motor and an external circuit. [Figure 3] FIG. 3 is a schematic diagram showing an example of the temperature-resistance characteristic of a PTC thermistor. [Figure 4] FIG. 4 is a schematic diagram showing an example of the environmental temperature-minimum limit current characteristic of a PTC thermistor. [Figure 5] FIG. 5 is a block diagram including the configuration of a motor according to a first modified example. [Figure 6] FIG. 6 is a block diagram including the configuration of a motor according to a second modified example. DETAILED DESCRIPTION OF THE INVENTION
[0009] Hereinafter, exemplary embodiments of the present disclosure will be described with reference to the drawings. In this specification, the direction in which the central axis J of the motor 10 extends is referred to as the "axial direction," and in the drawings, one side in the axial direction is indicated as Z1 and the other side in the axial direction is indicated as Z2. Furthermore, the radial direction centered on the central axis J will simply be referred to as the "radial direction."
[0010] <1. Motor> FIG. 1 is a partial longitudinal cross-sectional view of a motor 10. FIG. 1 is a cross-sectional view taken along a plane including a central axis J. As shown in FIG. 1, the motor 10 has a stator 1, a rotor 2, a substrate 3, an on-board contact 4, a first bearing 5, and a second bearing 6. The motor 10 is a brushless DC motor.
[0011] The stator 1 includes a stator core 11, an insulator 12, a bearing holder 13, and a sheet metal housing 14. The stator 1 also includes a coil (not shown).
[0012] The stator core 11 is formed by laminating electromagnetic steel sheets in the axial direction, and has a core back 111 and teeth 112. The core back 111 has an annular shape centered on a central axis J. The teeth 112 protrude radially outward from the radial outer peripheral surface of the core back 111. A plurality of teeth 112 are arranged in the circumferential direction.
[0013] The insulators 12 are made of an insulating material and are attached to the teeth 112 from both one axial side and the other axial side. The coils are formed by winding a conductive wire around the insulators 12.
[0014] The bearing holder 13 has a cylindrical shape that extends in the vertical direction around a central axis J. The radial inner peripheral surface of the core back 111 is fixed to the radial outer peripheral surface of the bearing holder 13. The bearing holder 13 has a first housing portion 131 on one axial side and a second housing portion 132 on the other axial side.
[0015] The sheet metal housing 14 is a metal housing formed around the central axis J. The sheet metal housing 14 has a bottom portion 141 disposed on the other axial side, and a cylindrical portion 142 protruding from a radially inner end portion of the bottom portion 141 to one axial side. The radially inner peripheral surface of the cylindrical portion 142 is fixed to the radially outer peripheral surface of the other axial end portion of the bearing holder 13.
[0016] The substrate 3 is a rigid printed circuit board. A motor control circuit 31 (described later) and the like are provided on the substrate 3. The substrate 3 is fixed to the other axial end of the insulator 12.
[0017] The on-board contacts 4 are elastic metal members that are disposed between the board 3 and the sheet metal housing 14. The on-board contacts 4 are pressed against the other axial side surface of the board 3 and the bottom 141, thereby establishing an electrical connection between the board 3 and the on-board contacts 4.
[0018] The sheet metal housing 14 covers, from the other axial side, the stator core 11, insulator 12, and coil (not shown), which are parts of the stator 1, the substrate 3, the on-board contact 4, and a rotor housing 23 and magnet 24, which are parts of the rotor 2 described below. The sheet metal housing 14 suppresses noise generated by current flowing through the coil from being emitted to the outside, and also suppresses noise from entering from the outside.
[0019] The first bearing portion 5 and the second bearing portion 6 are ball bearings. The first bearing portion 5 is housed in a first housing portion 131. The second bearing portion 6 is housed in a second housing portion 132.
[0020] The rotor 2 includes a shaft 21 , a connecting portion 22 , a rotor housing 23 , and a magnet 24 .
[0021] The shaft 21 has a columnar shape extending in the axial direction, and is supported by the first bearing portion 5 and the second bearing portion 6 so as to be rotatable about the central axis J. The connecting portion 22 is fixed to one axial end of the shaft 21, and radially connects the shaft 21 to the rotor housing 23. The rotor housing 23 is formed around the central axis J. The magnet 24 has an annular shape centered on the central axis J, and is fixed to the radial inner circumferential surface of the rotor housing 23. The magnet 24 faces the teeth 112 radially outward from the teeth 112.
[0022] When a current flows through a coil (not shown) of the stator 1 under the control of a motor control circuit 31 (described later), the rotor 2 is driven to rotate around the central axis J by the interaction between the magnetism generated in the coil and the magnet 24.
[0023] By attaching an impeller (not shown) to the rotor housing 23, it is possible to configure, for example, a blower fan for use in a vehicle.
[0024] <2. Measures for electrical connections with external circuits> As will be described later, the motor 10 according to the present embodiment described above may be electrically connected to an external circuit 25 disposed outside the motor 10, and measures to take such a case into consideration will be described below. As an example, the motor 10 is assumed to be mounted on a vehicle.
[0025] 2 is a block diagram showing the electrical connection configuration between the motor 10 and an external circuit 25. As shown in FIG. 2, in the motor 10, a motor control circuit 31, chip beads 32, and a PTC thermistor (Positive Temperature Coefficient Thermistor) 33 are provided on a substrate 3.
[0026] The motor control circuit 31 outputs a drive signal to the coil in the stator 1 to pass a current through the coil and control the rotation of the rotor 2. The motor control circuit 31 has a first ground terminal 31A and a second ground terminal 31B. The first ground terminal 31A and the second ground terminal 31B are electrically connected by a wiring pattern 31C on the substrate 3.
[0027] The first ground terminal 31A is electrically connected, for example by a lead wire, to a terminal to which a ground potential for the battery 30 mounted on the vehicle is applied. The second ground terminal 31B is electrically connected to a first end of the chip bead 32. A second end of the chip bead 32 is electrically connected to a first end of the PTC thermistor 33. A second end of the PTC thermistor 33 is electrically connected to the sheet metal housing 14 via the on-board contact 4. The chip bead 32 and the PTC thermistor 33 will be described in detail later.
[0028] As described above with reference to FIG. 1 , the stator core 11 and the sheet metal housing 14 are fixed to the bearing holder 13. Because the bearing holder 13 is made of metal, the stator core 11 and the sheet metal housing 14 are electrically connected via the bearing holder 13. Therefore, noise generated by a current flowing through the coil in the stator 1 is transmitted to the sheet metal housing 14 via the bearing holder 13. In this embodiment, in order to suppress noise radiation from the sheet metal housing 14, the sheet metal housing 14 is electrically connected to the second ground terminal 31B via the on-board contact 4. As a result, noise transmitted to the sheet metal housing 14 is transmitted from the first ground terminal 31A to the ground side via the on-board contact 4 and the second ground terminal 31B, thereby suppressing noise radiation from the sheet metal housing 14.
[0029] Since the sheet metal housing 14 and the second ground terminal 31B are electrically connected in this manner, high-frequency noise caused by switching in the motor control circuit 31 is transmitted from the second ground terminal 31B to the sheet metal housing 14 via the on-board contact 4, and there is a risk that high-frequency noise will be emitted from the sheet metal housing 14. Therefore, in this embodiment, a chip bead 32 is provided between the second ground terminal 31B and the on-board contact 4.
[0030] The chip beads 32 are formed by chipping so-called ferrite beads. Ferrite beads are made of ferrite, a material with high loss in the high frequency range. Therefore, in the high frequency range, the current energy is lost as a loss in the ferrite, thereby suppressing high frequency noise. In this embodiment, the provision of the chip beads 32 suppresses high frequency noise output from the second ground terminal 31B to the on-board contact 4 side.
[0031] The sheet metal housing 14 is electrically connected to a metal member 20 disposed outside the motor 10. The metal member 20 is electrically connected to the sheet metal housing 14 by, for example, screwing. The external circuit 25 is disposed outside the motor 10.
[0032] For example, if the blower fan formed by the motor 10 is a fan that blows cool air to a seat mounted in a vehicle, the metal member 20 is a seat frame, and the external circuit 25 is a circuit for a seat heater.
[0033] The external circuit 25 has an external ground terminal 25A. The external ground terminal 25A is electrically connected to the metal member 20 by, for example, a lead wire. The metal member 20 is connected to an application terminal of a ground potential for the battery 30 by, for example, a lead wire. This allows the external circuit 25 to be grounded via the metal member 20.
[0034] With this configuration, the ground terminal 31B of the motor control circuit 31 and the external ground terminal 25A of the external circuit 25 are electrically connected by a path L.
[0035] Here, current may flow from the external ground terminal 25A of the external circuit 25 to the second ground terminal 31B side via the metal member 20, the sheet metal housing 14, and the on-board contact 4. In this case, if the PTC thermistor 33 is not provided, an overcurrent may occur in the current, which may adversely affect the chip beads 32. Therefore, in this embodiment, the PTC thermistor 33 is provided.
[0036] 3 is a schematic diagram showing an example of the relationship between the temperature T of a PTC thermistor and the resistance R of the PTC thermistor. As shown in FIG. 3, a PTC thermistor has a characteristic in which the resistance R increases rapidly when the temperature T exceeds the Curie point Tc. In this embodiment, by utilizing this characteristic, when an overcurrent occurs in the current flowing from the external ground terminal 25A to the second ground terminal 31B, the PTC thermistor 33 self-heats, causing the temperature of the PTC thermistor 33 to rise, and the resistance of the PTC thermistor 33 increases, thereby suppressing the overcurrent flowing through the chip beads 32.
[0037] As described above, motor 10 according to this embodiment includes motor control circuit 31 having ground terminal 31B, and current limiting unit (PTC thermistor 33) disposed in path L electrically connecting ground terminal 31B and external ground terminal 25A included in external circuit 25 disposed outside motor 10. As a result, the current limiting unit suppresses the current flowing from external ground terminal 25A to ground terminal 31B, thereby suppressing adverse effects of this current on motor 10.
[0038] The motor 10 also includes a stator 1 and a rotor 2 that faces the stator 1 in the radial direction. The stator 1 includes a metal housing 14 that covers a portion of the stator 1. The metal housing 14 is disposed on the path L. As described above, the metal housing 14 suppresses noise radiation from the inside to the outside and noise intrusion from the outside to the inside. The current limiting unit can suppress the current that flows through the metal housing 14 to the ground terminal 31B.
[0039] As described above, the stator core 11 is electrically connected to the sheet metal housing 14 by the metal bearing holder 13. That is, a portion of the stator 1 is electrically connected to the metal housing 14. The motor 10 has a ferrite bead (chip bead 32) arranged in the path between the metal housing 14 and the ground terminal 31B.
[0040] Noise generated by a coil included in part of the stator 1 is transmitted to the ground terminal 31B via the metal housing 14, thereby suppressing noise radiation from the metal sheet housing 14. Furthermore, high-frequency noise generated by the motor control circuit 31 and transmitted from the ground terminal 31B to the metal housing 14 is suppressed by the ferrite beads, thereby suppressing high-frequency noise radiation from the metal sheet housing 14. By suppressing the current flowing from the external ground terminal 25A to the ground terminal 31B using a current limiting unit, the adverse effects of this current on the ferrite beads can be suppressed.
[0041] Furthermore, the housing 14 can be electrically connected to a metal member 20 disposed outside the motor 10. The metal member 20 can be electrically connected to an external ground terminal 25A and an end to which a ground potential is applied. This allows the external circuit 25 to be grounded via the metal member 20. The current limiting unit can suppress the current flowing from the external ground terminal 25A to the ground terminal 31B side via the metal member 20 and the housing 14.
[0042] In this embodiment, the current limiting unit is a PTC thermistor 33. As a result, the PTC thermistor 33 generates heat due to the current flowing from the external ground terminal 25A to the ground terminal 31B, causing the resistance value to increase and suppressing the current. The current limiting unit can be realized with a small number of elements.
[0043] The current limiting unit is a PTC thermistor 33, the stator 1 has a coil, and the motor 10 has a substrate 3 on which the motor control circuit 31 and the current limiting unit are provided. The PTC thermistor 33 is preferably disposed on the other axial side surface of the substrate 3. In other words, the current limiting unit is preferably disposed on the surface of the substrate 3 opposite the coil side.
[0044] 4 is a schematic diagram showing an example of the relationship between the ambient temperature AT of the PTC thermistor 33 and the minimum current value I at which the current flowing through the PTC thermistor 33 is limited. As such, the higher the ambient temperature AT, the smaller the minimum current value I because the current is limited with less self-heating of the PTC thermistor 33. Therefore, by arranging the current limiting unit (PTC thermistor 33) on the surface of the substrate 3 opposite the coil side, it is possible to prevent the ambient temperature of the current limiting unit from increasing due to heat generation by the coil and to prevent interference with noise transmission from the housing 14 to the ground terminal 31B due to current limiting.
[0045] It is not necessary to provide the chip beads 32. Even if the chip beads 32 are not provided, the current flowing from the external ground terminal 25A to the second ground terminal 31B can be limited by the PTC thermistor 33, thereby suppressing adverse effects on the motor control circuit 31.
[0046] <3. First Modified Example> 5 is a block diagram including the configuration of the motor 10 according to the first modified example. The differences from the previously described embodiment (FIG. 2) are that a switch element 35 is used as a current limiting unit and that a stop command determination circuit 34 is provided on the substrate 3.
[0047] The stop command determination circuit 34 determines whether or not there is a command to stop the rotation of the rotor 2, based on a speed control signal (PWM signal) generated in the motor control circuit 31. The switch element 35 is disposed between the on-board contact 4 and the chip bead 32, and is configured by, for example, a MOSFET (metal-oxide-semiconductor field-effect transistor).
[0048] The switch element 35 is controlled to be turned on or off in accordance with the determination result by the stop command determination circuit 34. Specifically, if the stop command determination circuit 34 determines that there is no command to stop the rotation of the rotor 2, the switch element 35 is controlled to be turned on, and if the stop command determination circuit 34 determines that there is a command to stop the rotation of the rotor 2, the switch element 35 is controlled to be turned off. In other words, the motor 10 according to the first modified example has a stop command determination circuit 34 that determines whether there is a command to stop the rotation of the rotor 2, and a switch element 35 that serves as a current limiting unit whose on or off is controlled by the stop command determination circuit 34.
[0049] In this modification, the external circuit 25 is controlled to stop when the motor 10 is operating, and to operate when the motor 10 is stopped. For example, the above-described control is effective when the motor 10 is used for a vehicle seat fan and the external circuit 25 is used for a seat heater.
[0050] If there is no command to stop rotation of the rotor 2 while the motor 10 is operating, the switch element 35 is turned on. This allows noise generated by the coils while the motor 10 is operating to be transmitted to the second ground terminal 31B via the sheet metal housing 14 and the switch element 35, thereby suppressing noise radiation from the sheet metal housing 14. At this time, the external circuit 25 does not operate, so even if the switch element 35 is turned on, no current flows from the external ground terminal 25A to the second ground terminal 31B.
[0051] On the other hand, if a command to stop rotation of the rotor 2 is received while the motor 10 is operating, the switch element 35 is turned off. Because the motor 10 is stopped, no noise is generated from the coil, and the switch element 35 may be turned off. At this time, even if the external circuit 25 operates, the switch element 35 is off, so that current is prevented from flowing from the external ground terminal 25A to the second ground terminal 31B. In other words, the switch element 35 functions as a current limiter.
[0052] <4. Second Modification> Figure 6 is a block diagram including the configuration of a motor 10 according to a second modified example. The difference from the previously described embodiment (Figure 2) is that an overcurrent protection unit 36 is provided on the substrate 3. The overcurrent protection unit 36 has a switch element 36A, an overcurrent detection unit 36B, and a switch control unit 36C. In other words, the motor 10 has the switch element 36A, the overcurrent detection unit 36B, and the switch control unit 36C.
[0053] The switch element 36A serving as a current limiter is disposed between the chip bead 32 and the on-board contact 4, and is configured, for example, by a MOSFET. The overcurrent detection unit 36B detects an overcurrent flowing through the switch element 36A. The switch control unit 36C controls the on / off of the switch element 36A according to the detection result of the overcurrent detection unit 36B. When an overcurrent is detected by the overcurrent detection unit 36B, the switch control unit 36C turns off the switch element 36A.
[0054] During normal operation, switch element 36A is kept on by switch control unit 36C. This allows noise generated by the coil to be transmitted to second ground terminal 31B via sheet metal housing 14 and switch element 36A. When an overcurrent flows from external ground terminal 25A of external circuit 25 through switch element 36A, the overcurrent is detected by overcurrent detection unit 36B, causing switch control unit 36C to turn off switch element 36A. This causes switch element 36A to function as a current limiter, preventing overcurrent from flowing from external ground terminal 25A to second ground terminal 31B.
[0055] <5.Other> The embodiments of the present disclosure have been described above. Note that the scope of the present disclosure is not limited to the above-described embodiments. The present disclosure can be implemented by adding various modifications to the above-described embodiments without departing from the spirit of the invention. Furthermore, the matters described in the above-described embodiments can be combined in any appropriate manner as long as no contradiction occurs. [Industrial Applicability]
[0056] The technology of the present disclosure can be used, for example, in motors for vehicles. [Explanation of symbols]
[0057] 1 stator 2 rotors 3. Circuit Board 4 Onboard Contacts 5 1st bearing part 6 Second bearing part 10 Motor 11 Stator core 12 Insulator 13 Bearing holder 14 Sheet metal housing 20 Metallic parts 21 Shaft 22 Connecting part 23 rotor housing 24 Magnet 25 External circuit 25A external ground terminal 30 Battery 31 Motor control circuit 31A First ground terminal 31B Second ground terminal 31C Wiring pattern 32 Chip beads 33 PTC thermistor 34 Stop command judgment circuit 35 Switching element 36 Overcurrent protection section 36A switch element 36B Overcurrent detection section 36C Switch control section 111 Coreback 112 Teeth 131 First Storage Unit 132 Second storage section 141 Bottom 142 Cylindrical part L route
Claims
1. a motor control circuit having a ground terminal; a current limiting unit disposed in a path electrically connecting the ground terminal and an external ground terminal included in an external circuit disposed outside the motor; a stator; a rotor that faces the stator in the radial direction, The stator has a metal housing that covers a portion of the stator, The motor, wherein the metal housing is disposed in the path and is electrically connected to an end to which a ground potential is applied.
2. a portion of the stator electrically connected to the metal housing; The motor includes a ferrite bead disposed in a path between the metal housing and the ground terminal. The motor of claim 1 further comprising:
3. the housing is electrically connectable to a metal member disposed outside the motor; 3. The motor according to claim 1, wherein the metal member is electrically connectable to the external ground terminal and the end to which the ground potential is applied.
4. The motor according to claim 1 , wherein the current limiting portion is a PTC thermistor.
5. the current limiting unit is a PTC thermistor, the stator has a coil; the motor further includes a substrate on which the motor control circuit and the current limiting unit are provided, The motor according to claim 2 , wherein the current limiting portion is disposed on a surface of the substrate opposite to the coil side.
6. a stop command determination circuit that determines whether or not a command to stop rotation of the rotor is present; a switch element serving as the current limiting unit, the on / off of which is controlled by the stop command determination circuit; The motor of claim 2 , wherein
7. a switch element as the current limiting unit; an overcurrent detection unit that detects an overcurrent flowing through the switch element; a switch control unit that turns off the switch element when the overcurrent detection unit detects the overcurrent; 7. The motor according to claim 1, further comprising:
Citation Information
Patent Citations
Brushless motor drive
JP2002354870A
Motor drive circuit
JP2009136077A
DC motor and ventilation fan
JP2018161021A
Circuit board, motor unit and fan
JP2019050319A
Motor
JP2020022323A