Convection type rotor inner-cooling electric spindle

By setting the airway and impeller structure in the electric spindle, forced convection cooling of the motor rotor is achieved, the problem of unsatisfactory heat dissipation of the motor rotor is solved, and the power of the electric spindle is increased.

CN223210498UActive Publication Date: 2025-08-12CHANGZHOU HANQI SPINDLE MOTOR CO LTD
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Patent Information

Application Number
CN202422492055.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-15
Publication Date
2025-08-12
Estimated Expiration
2034-10-15

AI Technical Summary

Technical Problem

The heat dissipation effect of the motor rotor in the existing electric spindle is not ideal, which affects the increase in the power of the electric spindle.

Method used

A convection rotor internal cooling spindle is designed. By setting an air duct extending axially on the motor rotor, and installing an inlet and exhaust impellers on the rotor shaft, the impeller is driven to rotate by using the high-speed rotation of the rotor shaft to force air in and outflow air ducts to achieve convection cooling.

Benefits of technology

The heat dissipation efficiency of the motor rotor is improved, the heat dissipation effect of the motor rotor is improved, and thus the power of the electric spindle is increased.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a convection type rotor inner-cooling motorized spindle. The convection type rotor inner-cooling motorized spindle comprises a shell, a rotor shaft, a motor stator, a motor rotor and an air inlet impeller, wherein the rotor shaft is connected in the shell in a rotating mode, the motor stator and the motor rotor are both installed between the shell and the rotor shaft, the motor stator is connected to the inner wall of the shell, the motor rotor is connected to the rotor shaft and located on the inner side of the motor stator, and the motor stator is connected to the rotor shaft and located on the inner side of the motor rotor. At least one air channel extending in the axial direction is formed in the motor rotor, the air inlet impeller is connected to the rotor shaft and located on one side of the motor rotor, and when the rotor shaft rotates, the air inlet impeller is driven to rotate, so that air is driven to flow into the air channel through the air inlet impeller. According to the utility model, the cooling heat dissipation efficiency of the motor rotor can be improved, the heat dissipation effect of the motor rotor is improved, and the power of the motorized spindle can be improved.
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Description

Technical Field

[0001] The utility model relates to a convection type rotor inner cooling electric spindle. Background Art

[0002] Currently, electric spindles are a new technology that integrates a machine tool spindle and a spindle motor. They are widely used in high-end CNC machine tools. For example, Chinese Patent Publication No. CN208408557U discloses a permanent magnet high-speed electric spindle for drilling and tapping centers. The electric spindle is driven by a spindle motor, which consists of a stator connected to a housing and a rotor connected to a rotor shaft. While heat dissipation from the stator is relatively easy to achieve, heat dissipation from the rotor is much more difficult. Currently, heat dissipation from the rotor is primarily achieved through two methods: one transfers heat to the stator through the air gap between the stator and rotor, where it is then dissipated by conduction by the motor electronics; the other transfers heat through the rotor shaft to its ends for dissipation. However, neither of these methods is ideal, resulting in poor heat dissipation from the rotor, which in turn severely restricts the increase in electric spindle power. Utility Model Content

[0003] The technical problem to be solved by the utility model is to overcome the defects of the prior art and provide a convection-type rotor internal cooling electric spindle, which can improve the cooling and heat dissipation efficiency of the motor rotor, improve the heat dissipation effect of the motor rotor, and thus help to increase the power of the electric spindle.

[0004] In order to solve the above technical problems, the technical solution of the utility model is: a convection type rotor inner cooling electric spindle, comprising a housing, a rotor shaft, a motor stator, a motor rotor and an air inlet impeller;

[0005] The rotor shaft is rotatably connected in the housing;

[0006] The motor stator and the motor rotor are both installed between the housing and the rotor shaft, the motor stator is connected to the inner wall of the housing, and the motor rotor is connected to the rotor shaft and is located on the inner side of the motor stator;

[0007] At least one air passage extending in the axial direction is provided in the motor rotor;

[0008] The air inlet impeller is connected to the rotor shaft and is located on one side of the motor rotor. When the rotor shaft rotates, the air inlet impeller is driven to rotate, and then the air is driven into the air duct through the air inlet impeller.

[0009] Furthermore, the convection-type rotor inner cooling electric spindle further includes an exhaust impeller;

[0010] The exhaust impeller is connected to the rotor shaft, and the motor rotor is located between the air inlet impeller and the exhaust impeller. When the rotor shaft rotates, the exhaust impeller is driven to rotate, and the air flowing out of the air duct is discharged through the exhaust impeller.

[0011] Furthermore, an air intake cavity and an air exhaust cavity are provided between the housing and the rotor shaft;

[0012] The air inlet cavity is provided on one side of the air inlet impeller, and the air inlet impeller is located between the air inlet cavity and the air duct, and the air inlet impeller is used to rotate with the rotor shaft and thereby pump the air in the air inlet cavity into the air duct;

[0013] The exhaust chamber is provided on one side of the exhaust impeller, and the exhaust impeller is located between the exhaust chamber and the air duct. The exhaust impeller is used to rotate with the rotor shaft and thereby pump the air flowing out of the air duct into the exhaust chamber.

[0014] Furthermore, the shell is provided with an air inlet hole communicating with the air inlet cavity, and the shell is provided with an exhaust hole communicating with the exhaust cavity.

[0015] Furthermore, a plurality of the air inlet holes and the air exhaust holes are sequentially distributed along the circumference of the shell.

[0016] Furthermore, the motor stator includes a stator core connected to the inner wall of the shell and a stator winding connected to the stator core, the air inlet impeller is located on the inner side of one end of the stator winding, and the air exhaust impeller is located on the inner side of the other end of the stator winding.

[0017] Furthermore, the motor rotor includes a rotor core and a pressure plate;

[0018] The rotor core and the pressure plate are both connected to the rotor shaft and located between the air inlet impeller and the air outlet impeller;

[0019] There are two pressure plates, the rotor core is located between the two pressure plates, and the air duct runs through the two pressure plates and the rotor core.

[0020] Furthermore, the rotor core includes a plurality of stacked silicon steel sheets.

[0021] Furthermore, the air inlet impeller and the air exhaust impeller respectively include a mounting ring portion for connecting to the rotor shaft and a plurality of blade portions connected to the mounting ring portion and arranged in sequence along the circumference of the mounting ring portion.

[0022] Furthermore, a plurality of air ducts are sequentially distributed along the circumference of the motor rotor.

[0023] After adopting the above technical solution, the motor rotor can drive the rotor shaft to rotate at high speed, and the rotor shaft can drive the air intake impeller to rotate at high speed. When the air intake impeller rotates at high speed, it will draw air and drive the air to flow into the air duct. In the process of flowing through the air duct, the air can forcibly take away the heat of the motor rotor, and then perform forced convection cooling on the motor rotor, thereby achieving high-efficiency heat dissipation of the motor rotor, improving the heat dissipation efficiency of the motor rotor, and improving the heat dissipation effect of the motor rotor, which is beneficial to increasing the power of the electric spindle. BRIEF DESCRIPTION OF THE DRAWINGS

[0024] Figure 1 This is a schematic structural diagram of a convection-type rotor internal cooling electric spindle of the present invention;

[0025] Figure 2 for Figure 1 Detailed drawings of the parts;

[0026] Figure 3 This is a schematic structural diagram of the air inlet impeller and the air exhaust impeller of the present invention. DETAILED DESCRIPTION

[0027] In order to make the contents of the present invention more clearly understood, the present invention is further described in detail below based on specific embodiments in conjunction with the accompanying drawings.

[0028] like Figures 1 to 3 As shown, a convection-type rotor inner cooling electric spindle includes a housing 1, a rotor shaft 2, a motor stator 3, a motor rotor 4 and an air inlet impeller 5;

[0029] The rotor shaft 2 is rotatably connected to the housing 1;

[0030] The motor stator 3 and the motor rotor 4 are both installed between the housing 1 and the rotor shaft 2. The motor stator 3 is connected to the inner wall of the housing 1, and the motor rotor 4 is connected to the rotor shaft 2 and is located on the inner side of the motor stator 3.

[0031] The motor rotor 4 is provided with at least one air passage 6 extending in the axial direction;

[0032] The air intake impeller 5 is connected to the rotor shaft 2 and is located on one side of the motor rotor 4. When the rotor shaft 2 rotates, it drives the air intake impeller 5 to rotate, and then drives air into the air duct 6 through the air intake impeller 5. Specifically, the motor rotor 4 can drive the rotor shaft 2 to rotate at high speed, and the rotor shaft 2 can drive the air intake impeller 5 to rotate at high speed. When the air intake impeller 5 rotates at high speed, it pumps air and drives air into the air duct 6. In the process of flowing through the air duct 6, the air can forcibly take away the heat of the motor rotor 4, thereby performing forced convection cooling on the motor rotor 4, achieving high-efficiency heat dissipation of the motor rotor 4, improving the heat dissipation efficiency of the motor rotor 4, and improving the heat dissipation effect of the motor rotor 4, which is conducive to increasing the power of the electric spindle.

[0033] like Figures 1 to 3 As shown, the convection-type rotor inner cooling electric spindle may further include an exhaust impeller 7;

[0034] The exhaust impeller 7 is connected to the rotor shaft 2, and the motor rotor 4 is located between the air inlet impeller 5 and the exhaust impeller 7. When the rotor shaft 2 rotates, it drives the exhaust impeller 7 to rotate and then discharges the air flowing out of the air duct 6 through the exhaust impeller 7.

[0035] like Figure 1 、 2 As shown, an air intake cavity 8 and an air exhaust cavity 9 may be further provided between the housing 1 and the rotor shaft 2;

[0036] The air inlet cavity 8 is provided on one side of the air inlet impeller 5. The air inlet impeller 5 is located between the air inlet cavity 8 and the air duct 6. The air inlet impeller 5 is used to rotate with the rotor shaft 2 and thereby pump the air in the air inlet cavity 8 into the air duct 6.

[0037] The exhaust chamber 9 is provided on one side of the exhaust impeller 7 , and the exhaust impeller 7 is located between the exhaust chamber 9 and the air duct 6 . The exhaust impeller 7 is used to rotate with the rotor shaft 2 and thereby pump the air flowing out of the air duct 6 into the exhaust chamber 9 .

[0038] like Figure 1 、 2As shown, the housing 1 is provided with an air inlet 10 communicating with the air inlet cavity 8, and an air outlet 11 communicating with the air outlet cavity 9. A plurality of air inlet 10 and air outlet 11 are distributed sequentially along the circumference of the housing 1. Specifically, the rotor shaft 2 can rotate at a speed of up to 24,000 rpm, thereby driving the air inlet impeller 5 and the air outlet impeller 7 to rotate at high speeds to generate forced convection air. Under the pumping action of the air inlet impeller 5 and the air outlet impeller 7, air flows sequentially through the air inlet 10, the air inlet cavity 8, the air inlet impeller 5, the air duct 6, the air outlet impeller 7, the air outlet cavity 9, and the air outlet 11. As the air flows through the air duct 6, it cools and dissipates heat from the motor rotor 4, thereby achieving a good heat dissipation effect. In this embodiment, the air inlet impeller 5 and the air outlet impeller 7 are both manufactured by integral precision casting.

[0039] like Figure 1 、 2 As shown, the motor stator 3 may include a stator core 12 connected to the inner wall of the housing 1 and a stator winding 13 connected to the stator core 12, the air inlet impeller 5 is located on the inner side of one end of the stator winding 13, and the air exhaust impeller 7 is located on the inner side of the other end of the stator winding 13.

[0040] like Figure 1 、 2 As shown, the motor rotor 4 may include a rotor core 14 and a pressure plate 15;

[0041] The rotor core 14 and the pressure plate 15 are both connected to the rotor shaft 2 and located between the air inlet impeller 5 and the air outlet impeller 7;

[0042] There are two pressure plates 15 , the rotor core 14 is located between the two pressure plates 15 , and the air passage 6 passes through the two pressure plates 15 and the rotor core 14 .

[0043] In this embodiment, the rotor core 14 includes a plurality of stacked silicon steel sheets; specifically, the silicon steel sheets are made of a highly magnetically permeable material, and the cross-sectional area of the silicon steel sheets can redundantly accommodate the opening of the air channel 6, so that the magnetic permeability requirements can still be met after the air channel 6 is opened.

[0044] like Figure 3 As shown, the air inlet impeller 5 and the air exhaust impeller 7 may respectively include a mounting ring portion 16 for connecting to the rotor shaft 2 and a plurality of blade portions 17 connected to the mounting ring portion 16 and arranged in sequence along the circumference of the mounting ring portion 16 .

[0045] Specifically, there are multiple air channels 6 distributed in sequence along the circumference of the motor rotor 4; in this embodiment, there are 12 air channels 6 in total, and it is more appropriate to make the total cross-sectional area of the air channels 6 account for 15% to 20% of the total magnetic conductive area of the motor rotor 4.

[0046] In this embodiment, the air inlet impeller 5 and the air exhaust impeller 7 are both arranged on the inner side of the shell 1, utilizing the space inside the shell 1 without increasing the volume, and the overall structure is simple, easy to install and rotate, and highly reliable.

[0047] Specifically, the end of the rotor shaft 2 is provided with a mounting hole for installing the tool handle 18, and the inner side of the rotor shaft 2 is provided with a tool rod 19. One end of the tool rod 19 is connected to a tapered pulling claw 20 for grasping the tool handle 18 in the mounting hole, and the other end of the tool rod 19 is connected to a tool changing cylinder 21. The tool changing cylinder 21 is connected to one end of the housing 1 and is used to drive the tool rod 19 to move.

[0048] More specifically, the convection-type rotor internal cooling electric spindle of the embodiment of the present application can be used in high-end CNC grinding machines. The motor stator 3 can use mature external heat dissipation, and the motor rotor 4 dissipates heat through the air duct, thereby increasing the power of the electric spindle by about 40%.

[0049] To sum up, the motor rotor 4 can drive the rotor shaft 2 to rotate at high speed, and the rotor shaft 2 can drive the air intake impeller 5 to rotate at high speed. When the air intake impeller 5 rotates at high speed, it will pump air and drive the air to flow into the air duct 6. In the process of flowing through the air duct 6, the air can forcibly take away the heat of the motor rotor 4, and then perform forced convection cooling on the motor rotor 4, thereby achieving high-efficiency heat dissipation of the motor rotor 4, improving the heat dissipation efficiency of the motor rotor 4, and improving the heat dissipation effect of the motor rotor 4, which is beneficial to increasing the power of the electric spindle.

[0050] The specific embodiments described above further illustrate the technical problems, technical solutions and beneficial effects solved by the present invention. It should be understood that the above are only specific embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. A convection-type rotor inner cooling electric spindle, characterized in that: It comprises a housing (1), a rotor shaft (2), a motor stator (3), a motor rotor (4) and an air inlet impeller (5); The rotor shaft (2) is rotatably connected in the housing (1); The motor stator (3) and the motor rotor (4) are both installed between the housing (1) and the rotor shaft (2), the motor stator (3) is connected to the inner wall of the housing (1), and the motor rotor (4) is connected to the rotor shaft (2) and is located on the inner side of the motor stator (3); The motor rotor (4) is provided with at least one air passage (6) extending in the axial direction; The air inlet impeller (5) is connected to the rotor shaft (2) and is located on one side of the motor rotor (4). When the rotor shaft (2) rotates, the air inlet impeller (5) is driven to rotate, and the air is driven into the air duct (6) through the air inlet impeller (5).

2. The convection-type rotor inner cooling electric spindle according to claim 1, characterized in that: Also includes an exhaust impeller (7); The exhaust impeller (7) is connected to the rotor shaft (2), and the motor rotor (4) is located between the air inlet impeller (5) and the exhaust impeller (7). When the rotor shaft (2) rotates, the exhaust impeller (7) is driven to rotate, and the air flowing out of the air duct (6) is discharged through the exhaust impeller (7).

3. The convection-type rotor inner cooling electric spindle according to claim 2, characterized in that: An air intake cavity (8) and an air exhaust cavity (9) are further provided between the housing (1) and the rotor shaft (2); The air inlet cavity (8) is provided on one side of the air inlet impeller (5), and the air inlet impeller (5) is located between the air inlet cavity (8) and the air duct (6). The air inlet impeller (5) is used to rotate along with the rotor shaft (2) and thereby pump air in the air inlet cavity (8) into the air duct (6); The exhaust chamber (9) is provided on one side of the exhaust impeller (7), and the exhaust impeller (7) is located between the exhaust chamber (9) and the air duct (6). The exhaust impeller (7) is used to rotate with the rotor shaft (2) and thereby pump the air flowing out of the air duct (6) into the exhaust chamber (9).

4. The convection-type rotor inner cooling electric spindle according to claim 3, characterized in that: The shell (1) is provided with an air inlet hole (10) communicating with the air inlet cavity (8), and the shell (1) is provided with an air exhaust hole (11) communicating with the air exhaust cavity (9).

5. The convection-type rotor inner cooling electric spindle according to claim 4, characterized in that: A plurality of the air inlet holes (10) and the air outlet holes (11) are respectively distributed in sequence along the circumference of the shell (1).

6. The convection-type rotor inner cooling electric spindle according to claim 2, characterized in that: The motor stator (3) comprises a stator core (12) connected to the inner wall of the housing (1) and a stator winding (13) connected to the stator core (12); the air inlet impeller (5) is located on the inner side of one end of the stator winding (13); and the air outlet impeller (7) is located on the inner side of the other end of the stator winding (13).

7. The convection-type rotor inner cooling electric spindle according to claim 2, characterized in that: The motor rotor (4) comprises a rotor core (14) and a pressure plate (15); The rotor core (14) and the pressure plate (15) are both connected to the rotor shaft (2) and located between the air inlet impeller (5) and the air outlet impeller (7); There are two pressure plates (15), the rotor core (14) is located between the two pressure plates (15), and the air passage (6) runs through the two pressure plates (15) and the rotor core (14).

8. The convection-type rotor inner cooling electric spindle according to claim 7, characterized in that: The rotor core (14) comprises a plurality of stacked silicon steel sheets.

9. The convection-type rotor inner cooling electric spindle according to claim 2, characterized in that: The air inlet impeller (5) and the air exhaust impeller (7) respectively include a mounting ring portion (16) for connecting to the rotor shaft (2) and a plurality of blade portions (17) connected to the mounting ring portion (16) and arranged in sequence along the circumference of the mounting ring portion (16).

10. The convection-type rotor inner cooling electric spindle according to claim 1, characterized in that: A plurality of air passages (6) are sequentially distributed along the circumference of the motor rotor (4).

Citation Information

Patent Citations

  • A high -speed electric main shaft of permanent magnetism for boring attack center

    CN208408557U