Servo motor cooling structure and robot
The cooling structure for servo motors efficiently separates heat dissipation paths by using heat transfer members on the stator surfaces, ensuring effective cooling of the encoder and stator while optimizing space and temperature differences.
Patent Information
- Application Number
- JP2023576308
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-01-26
- Publication Date
- 2025-08-13
- Estimated Expiration
- 2042-01-26
AI Technical Summary
Servo motors have an upper temperature limit for performance and lifespan, with the stator and rotor having a higher limit than the encoder, and existing cooling structures can hinder heat dissipation from the encoder due to heat emitted by the stator.
A cooling structure that uses heat transfer members in contact with the stator's side surfaces but not the encoder, transferring heat to a robot structure with high thermal conductivity, separating the heat dissipation paths and allowing efficient cooling of the encoder.
Effectively cools the stator while maintaining the encoder at an appropriate temperature by reducing heat transfer to it, optimizing temperature differences and reducing space requirements, with a simple mounting method.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present disclosure relates to a cooling structure for a servo motor and a robot. [Background technology]
[0002] Conventionally, a robot is known in which a cooling structure is arranged between a servo motor and a motor housing that houses the servo motor in an internal space in order to cool the servo motor that generates heat during operation (see, for example, Patent Document 1). The cooling structure is a heat conductor made of a metal such as aluminum, which forms a heat conduction path for transferring heat from the servo motor to the motor housing. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2014-46398 Summary of the Invention [Problem to be solved by the invention]
[0004] Servo motors have an upper limit on the operating temperature to maintain performance and lifespan. The upper limit is not uniform throughout the servo motor; it is higher in the stator and rotor and often lower in the electronic circuits, such as the encoder.
[0005] When the stator and encoder of a servo motor are connected to the motor housing by the same cooling structure, the cooling structure may be heated by the heat emitted from the stator, which may prevent the heat from the encoder from being dissipated to the cooling structure. Therefore, it is desirable to efficiently dissipate heat from the encoder, which has a low upper limit of operating temperature, without being hindered by the heat emitted from the rotor and stator. [Means for solving the problem]
[0006] One aspect of the present disclosure is a cooling structure for a servo motor that cools a servo motor fixed to a robot structure, the servo motor comprising a drive unit having a rotor and a stator, and an encoder that detects rotation of the rotor, and a heat transfer member that is fixed in contact with the outer surface of the stator and the surface of the robot structure and transfers heat from the stator to the robot structure, the heat transfer member not in contact with the outer surface of the encoder. [Brief explanation of the drawings]
[0007] [Figure 1] FIG. 1 is a partial longitudinal cross-sectional view showing a robot according to an embodiment of the present disclosure. [Figure 2] 2 is an exploded perspective view illustrating a cooling structure for a servo motor according to an embodiment of the present disclosure, which is provided in the robot of FIG. 1. FIG. [Figure 3] 3 is a perspective view showing a state in which the cooling structure for the servo motor in FIG. 2 is assembled. FIG. [Figure 4] 3 is a partial vertical cross-sectional view illustrating the flow of heat in the cooling structure of the servo motor of FIG. 2. FIG. DETAILED DESCRIPTION OF THE INVENTION
[0008] A cooling structure 1 for a servo motor 10 and a robot 100 according to an embodiment of the present disclosure will be described below with reference to the drawings. The robot 100 according to this embodiment is a vertical articulated robot that is installed on a floor F, for example.
[0009] The cooling structure 1 for the servo motor 10 according to this embodiment is a structure for cooling the servo motor 10 of the drive mechanism 130 that rotates the rotating body 120 around a vertical axis relative to a base 110 fixed to a floor surface F, for example. 1, the drive mechanism 130 includes a base 110, a rotary table (robot structure) 132 supported above the base 110 so as to be rotatable about a vertical axis, a reducer 133 disposed between the base 110 and the rotary table 132, and a servo motor 10 fixed to the upper surface of the rotary table 132. A rotating body 120 is fixed to the rotary table 132.
[0010] The servo motor 10 includes a shaft 11, a drive unit 12 that drives the shaft 11 to rotate, and an encoder 13 that detects the rotation of the shaft 11. As shown in Fig. 2, the drive unit 12 includes a rectangular cylindrical stator 14 and a rotor (not shown) that is supported inside the stator 14 so as to be rotatable around the central axis of the stator 14, and the rotor is fixed to the shaft 11. The shaft 11 protrudes from a mounting surface 10a provided on one end face of the stator 14 in the central axis direction.
[0011] The encoder 13 includes a box-shaped casing 15 fixed to the end face opposite the mounting surface 10a across the stator 14. The encoder 13 includes a rotation detection mechanism (not shown) and an electronic circuit (not shown) housed within the casing 15. The casing 15 may be made of any material.
[0012] The servo motor 10 has a shaft 11 that passes through a through-hole 132a that penetrates the rotary table 132 in the vertical direction, and a gear 16 fixed to the tip of the shaft 11 is engaged with an input gear 134 of a reducer 133. The servo motor 10 is fixed to the rotary table 132 by bolts 17, with the mounting surface 10a in close contact with a seat surface 135 that is machined on the upper surface of the rotary table 132.
[0013] 2, the cooling structure 1 of the servo motor 10 according to this embodiment includes four flat heat transfer members (flat members) 2 that are brought into close contact with the four side surfaces of the stator 14. Each heat transfer member 2 includes a motor contact portion 3 that covers the side surface (outer surface) of the stator 14 and is brought into close contact with the side surface, and a fixing portion 4 for fixing the heat transfer member 2 to a seat surface (surface) 135 on the upper surface of the rotary table 132.
[0014] The heat transfer member 2 is made of a material with high thermal conductivity, for example, a metal such as an aluminum alloy. Any material may be used for the heat transfer member 2. The fixed portion 4 is curved at a right angle to the motor contact portion 3, and has a plurality of through holes 4a that penetrate through the plate thickness direction. The heat transfer member 2 is fixed in close contact with the turntable 132 by fastening bolts 136 that are inserted into the through holes 4a of the fixed portion 4 to screw holes 137 that are provided in a seat 135 of the turntable 132.
[0015] As shown in Figure 3, the heat transfer member 2 has the motor contact portion 3 in close contact with each side of the stator 14 and the fixed portion 4 in close contact with the seat surface 135 of the rotating table 132, thereby forming a heat transfer path for dissipating heat generated by the stator 14 to the rotating table 132. In this embodiment, the motor contact portion 3 of each heat transfer member 2 is placed in a position that is in close contact with only the side surface of the stator 14 and does not contact the outer surface of the casing 15 of the encoder 13. The heat transfer member 2 attached to the side surface where the connector is provided has a motor contact portion 3 that is shorter in length than the heat transfer members 2 attached to the other side surfaces in order to avoid contact with the connector.
[0016] The operation of the cooling structure 1 for the servo motor 10 according to this embodiment configured as described above will be described below. According to the cooling structure 1 of the servo motor 10 of this embodiment, as shown in FIG. 4, when the drive unit 12 equipped with the rotor and stator 14 generates heat due to the operation of the servo motor 10, a portion of the heat from the drive unit 12 is transferred to the rotary table 132 via the mounting surface 10a, which is in close contact with the seat surface 135.
[0017] Furthermore, because the motor contact portions 3 of the heat transfer member 2 are in close contact with the four side surfaces of the stator 14, another portion of the heat from the drive unit 12 is transferred to the motor contact portions 3. The heat transferred to the flat motor contact portion 3 is conducted downward through the motor contact portion 3 and transferred to the turntable 132 via the fixed portion 4 that is in close contact with the seat surface 135 of the turntable 132.
[0018] Because the turntable 132 has a large heat capacity and the stator 14 and the heat transfer member 2 have high thermal conductivity, most of the heat generated in the drive unit 12 is smoothly transferred to the turntable 132. As a result, the stator 14 is effectively cooled, and the heat flowing from the stator 14 to the encoder 13 fixed to the stator 14 is sufficiently reduced.
[0019] Because the encoder 13 is in contact only with the stator 14, when the stator 14 is hotter than the encoder 13, the heat from the encoder 13 is mainly dissipated by heat transfer to the surrounding air. In other words, because the encoder 13 is not in contact with the heat transfer member 2 that dissipates heat from the stator 14, the heat dissipation path from the encoder 13 is separated from the heat dissipation path from the stator 14. Therefore, even if the temperature of the heat transfer member 2 rises due to the heat dissipation from the stator 14, the heat dissipation from the encoder 13 is not hindered.
[0020] Furthermore, since the stator 14 is effectively cooled by the heat transfer member 2, the amount of heat input from the stator 14 to the encoder 13 is reduced, and the encoder 13 can be sufficiently cooled only by heat dissipation into the surrounding air. The upper limit of the operating temperature of the encoder 13 is lower than that of the stator 14, but since the exhaust heat from the stator 14 is prevented from flowing into the encoder 13 via the heat transfer member 2, the encoder 13 is maintained at an appropriate operating temperature.
[0021] Furthermore, if the stator 14 is cooled efficiently and the encoder 13 is hotter than the stator 14, part of the heat generated in the encoder 13 is discharged to the rotary table 132 via the cooled stator 14. This also allows the encoder 13 to be cooled efficiently.
[0022] Furthermore, as described above, according to this embodiment, the heat of the stator 14 flows downward via the heat transfer member 2 and is discharged to the rotary table 132 located below the stator 14. Therefore, the amount of heat dissipated from the stator 14 to the surrounding air is reduced.
[0023] Because the encoder 13 is located above the stator 14, heat from the stator 14 is discharged downward, suppressing a rise in the temperature of the air around the encoder 13. This has the advantage of maintaining the temperature difference between the encoder 13 and the surrounding air, allowing for effective heat dissipation from the encoder 13 to the surrounding air.
[0024] Furthermore, according to the cooling structure 1 for the servo motor 10 of this embodiment, the flat heat transfer member 2 is fitted closely to the side surface of the servo motor 10, which has the advantage of saving space and eliminating the need for a large installation space around the servo motor 10. Furthermore, the cooling structure 1 can be attached externally by a simple mounting method in which the flat heat transfer member 2 is fitted closely to the side surface from the outside of the servo motor 10 and fixed to the seat surface 135 of the rotary table 132 with bolts 136. This allows the cooling structure 1 to be designed after the main mechanism has been designed, which is advantageous for development and design.
[0025] An upright articulated robot has been exemplified as the robot 100 equipped with the cooling structure 1 for the servo motor 10 according to this embodiment. The structure of the robot 100 illustrated in the description of this embodiment is merely an example, and the present invention is not limited to this. Although the rotary table 132 has been exemplified as the robot structure, the present invention may be applied to cases where the servo motor 10 is attached to any other part with a large heat capacity.
[0026] Furthermore, although an L-shaped curved flat plate member has been exemplified as the heat transfer member 2, the shape of the heat transfer member 2 can be any shape that matches the seat surface 135 of the rotary table 132, which is the robot structure to which it is fixed. Furthermore, although the heat transfer member 2 is in close contact with all four side surfaces of the stator 14 of the servo motor 10, it may be in close contact with one or more side surfaces.
[0027] Furthermore, in order to increase the degree of contact between the heat transfer member 2 and the outer surface of the stator 14 and the seating surface 135 of the turntable 132, a filler such as a heat-conducting gel or a heat-conducting sheet may be interposed between the heat transfer member 2 and the stator 14 and / or the turntable 132. This reduces the contact thermal resistance in heat transfer from the outer surface of the stator 14 to the heat transfer member 2 and from the heat transfer member 2 to the turntable 132, allowing for smoother heat dissipation.
[0028] Furthermore, in this embodiment, the heat of the stator 14 is transferred in a direction away from the encoder 13 by the heat transfer member 2. When the heat transfer member 2 becomes hot, the amount of heat dissipated from the heat transfer member 2 to the surrounding air increases during heat conduction via the heat transfer member 2.
[0029] Therefore, the outer surface of the heat transfer member 2 may be covered with a heat insulating material such as a heat insulating sheet or heat insulating paint that reduces the heat released from the heat transfer member 2 to the surrounding air. This reduces the heat released from the heat transfer member 2 to the atmosphere, and reduces the temperature rise of the air around the encoder 13.
[0030] Although the servo motor 10 has been illustrated with the encoder 13 located above the drive unit 12, the servo motor 10 may be installed in any other position. Meanwhile, the cooling mechanism 1 of the present disclosure is particularly advantageous when the servo motor 10 is in the illustrated position for the following reason. That is, without the cooling mechanism 1, the temperature of the air surrounding the encoder 13 located above would rise due to air expansion after heat dissipation from the stator 14 to the surrounding air. However, by providing the cooling mechanism 1 of the present disclosure, heat dissipation from the stator 14 to the surrounding air is suppressed, making it possible to maintain the temperature difference between the encoder 13 and the surrounding air.
[0031] Furthermore, since heat is released from the encoder 13 mainly by dissipating heat into the surrounding air, means for promoting heat dissipation may be provided, such as providing fins on the casing 15 of the encoder 13 or using a fan to circulate cooling air around the encoder 13. Also, a heat transfer member for cooling the encoder 13 may be provided separately from the heat transfer member 2 for cooling the stator 14. Furthermore, the space in which the encoder 13 is located may be separated from the space in which the stator 14 is located by a cover or the like. [Explanation of symbols]
[0032] 1 Cooling structure 2 Heat transfer material (flat material) 10 Servo motor 12 Drive unit 13 Encoder 14 Stator 100 robots 132 Rotary table (robot structure) 135 Seat (surface)
Claims
1. A servo motor cooling structure for cooling a servo motor fixed to a robot structure, comprising: the servo motor includes a drive unit including a rotor and a stator, and an encoder that detects rotation of the rotor; a heat transfer member fixed in contact with an outer surface of the stator and a surface of the robot structure, for transferring heat from the stator to the robot structure; a heat insulating material that limits heat dissipation from the heat transfer member to the surrounding air, the heat transfer member is not in contact with an outer surface of the encoder; A cooling structure for a servo motor, wherein the servo motor is fixed to the robot structure in a position where the encoder is disposed above the stator.
2. 2. The cooling structure for a servo motor according to claim 1, wherein the heat transfer member is disposed at a position that covers the outer surface of the stator but does not cover the outer surface of the encoder.
3. 3. The cooling structure for a servo motor according to claim 1, wherein the heat transfer member comprises a flat plate member that is brought into close contact with the outer surface of the stator and the surface of the robot structure.
4. 4. The cooling structure for a servo motor according to claim 3, wherein the heat transfer member includes a filler that promotes adhesion between the flat plate member and the outer surface of the stator.
5. 5. The cooling structure for a servo motor according to claim 1, wherein the heat transfer member is in close contact with each of two or more outer surfaces of the stator.
6. A robot comprising the cooling structure for a servo motor according to any one of claims 1 to 5.
Citation Information
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