High-efficiency nested motor stator and rotor structure

By introducing a detection mechanism and adjustment device into the motor stator structure, the deviation problem caused by the bearing wear or displacement of the motor stator is solved, and the stability of the motor performance and the long-term and reliable operation of the alarm system are achieved.

CN120016765AActive Publication Date: 2025-05-16CHANGSHA WEIAN METAL PRODUCTS CO LTD
View PDF 10 Cites 0 Cited by

Patent Information

Application Number
CN202510178412.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-18
Publication Date
2025-05-16
Estimated Expiration
2045-02-18

AI Technical Summary

Technical Problem

During use, the rotor is offset due to bearing wear or displacement, which affects the performance of the motor and may accelerate the motor damage.

Method used

A high-efficiency nested motor stator structure is designed, including a fixing ring, a stator assembly, a rotor assembly and a detection mechanism. The detection mechanism detects wear or displacement of the rotor assembly through positioning components, adjustment devices, arc springs and alarms, and reminds the user to perform maintenance through alarms.

Benefits of technology

It effectively avoids uneven air gaps and distortion of magnetic field distribution caused by rotor offset, prevents motor torque fluctuations from affecting output performance, and extends the sensitivity and reliability of the alarm system through the hydraulic system of the adjustment device.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120016765A_ABST
    Figure CN120016765A_ABST
Patent Text Reader

Abstract

The invention relates to the technical field of motor stator and rotor structures, and discloses a high-efficiency nested motor stator and rotor structure, which comprises a fixed ring, a rotor assembly, a stator assembly, a stator and rotor assembly, a stator and rotor assembly, a stator and rotor assembly, a stator and rotor assembly, a stator and rotor assembly, and a rotor and rotor assembly are fixedly connected to the inner wall of the fixed ring. The detection mechanism is arranged on one side of the fixing ring, the detection mechanism is fixedly connected with the fixing ring through a connecting frame, and the detection mechanism is used for detecting whether the rotor assembly generates abrasion displacement or not; the detection mechanism comprises a positioning assembly and an adjusting device, the positioning assembly is provided with an annular structure, the adjusting device is arranged in the positioning assembly, and the adjusting device is fixedly connected with the inner wall of the positioning assembly. According to the high-efficiency nested motor stator and rotor structure, a user is reminded to maintain an abrasion or displacement assembly through the alarm, and the situation that the magnetic field distribution of the motor is distorted due to uneven air gaps caused by rotor deviation is avoided.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The invention relates to the technical field of motor stator and rotor structures, and in particular to a high-efficiency nested motor stator and rotor structure. Background Art

[0002] Simply put, the stator and rotor of the motor are the fixed part of the motor, on which pairs of static main magnetic poles with DC excitation are installed, and the rotating part, the rotor, is called the armature, on which it is installed. When energized, it generates a rotating magnetic field. Then it generates electromagnetic torque for energy conversion, which is distinguished by the shape and embedding method of the stator winding. The stator winding can be divided into centralized and distributed types according to the shape of the coil winding and the embedding wiring method. The centralized winding is used for salient pole stators, usually wound into rectangular coils, wrapped with warp tape to shape, and then embedded in the iron core of the convex magnetic pole after varnish dipping and drying. The motor stator with distributed winding has no convex pole palms. Each magnetic pole is composed of one or several coils embedded and wired according to a certain rule to form a coil group. After power is applied, magnetic poles of different polarities are formed, so it is also called hidden pole type.

[0003] At present, the stator and rotor of the motor are offset due to bearing wear or displacement during use, which changes the size and uniformity of the air gap, affects the performance of the motor, and long-term eccentric use will accelerate the damage of the motor. Summary of the invention

[0004] To achieve the above objectives, the present invention is implemented through the following technical solutions: a high-efficiency nested motor stator and rotor structure, including a fixing ring, the inner wall of which is fixedly connected to a stator assembly, and further comprising: A rotor assembly, the rotor assembly being disposed inside the stator assembly; A detection mechanism, which is arranged on one side of the fixed ring and is fixedly connected to the fixed ring through a connecting frame, and is used to detect whether the rotor assembly has wear displacement; The detection mechanism includes: A positioning assembly having an annular structure and an adjusting device disposed inside the positioning assembly, wherein the adjusting device is fixedly connected to an inner wall of the positioning assembly; A fixed plate, which is arranged inside the positioning assembly, one side of the fixed plate is fixedly connected to the adjusting device, a side of the fixed plate away from the adjusting device is fixedly connected to an arc spring, and an end of the arc spring away from the fixed plate is fixedly connected to an extrusion head; A squeeze switch, which is arranged on a fixed plate, the squeeze switch is arranged directly opposite to the squeeze head, and the squeeze switch is fixedly connected to the fixed plate; An alarm is arranged on the positioning component, the alarm is electrically connected to the extrusion switch, and the alarm is fixedly connected to the positioning component to avoid the situation where the rotor offset causes uneven air gap and causes distortion of the magnetic field distribution of the motor, thereby avoiding the torque fluctuation of the motor affecting the output performance of the motor.

[0005] Preferably, one side of the positioning component is fixedly connected to the fixing ring via a connecting frame, and the alarm is fixed on a side of the positioning component away from the fixing ring.

[0006] Preferably, the fixing plates are provided in multiple groups and are distributed in a ring shape on the adjusting device, and the side of the extrusion head away from the extrusion switch is fixedly connected to the extrusion plate.

[0007] Preferably, the adjusting device comprises an annular hydraulic pipe, one side of the annular hydraulic pipe is connected with a thick pipe, the end of the thick pipe away from the annular hydraulic pipe is connected with a thin pipe, the inner wall of the thin tube is threadedly connected with an extrusion piston, the inner side surface of the annular hydraulic pipe is connected with a piston tube, the inner wall of the piston tube is slidably connected with an adjusting piston, one end of the adjusting piston extends to the outside of the piston tube, the end of the adjusting piston located outside the piston tube is sleeved and fixedly connected with a ring, both sides of the ring are fixedly connected with tensioning springs, and the gap caused by wear is filled by the movement of the extrusion plate, so as to avoid the situation where the alarm system becomes insensitive due to wear of the extrusion plate after long-term use, so that the alarm system can operate reliably for a long time.

[0008] Preferably, the annular hydraulic pipe is arranged inside the positioning assembly and fixedly connected to the inner wall of the positioning assembly, and one end of the tension spring away from the collar is fixedly connected to the side surface of the annular hydraulic pipe.

[0009] Preferably, the piston tubes are provided in multiple groups and correspond one to one with the fixing plates, and one end of the regulating piston located outside the piston tube is fixedly connected to the side surface of the fixing plate.

[0010] Preferably, the rotor assembly includes a rotor coil, a rotating shaft is passed through and fixedly connected at the center of the rotor coil, a heat dissipation groove is opened on the side of the short-circuit ring of the rotor coil, and a heat dissipation fan blade corresponding to the heat dissipation groove is fixedly connected to the short-circuit ring of the rotor coil, and an extrusion ring is sleeved and fixedly connected at one end of the rotating shaft, and the contact area with the air is increased through the heat dissipation groove, so as to facilitate improving the heat dissipation efficiency, and the heat dissipation fan blades are arranged in an arc shape, and the airflow can be guided into the interior of the heat dissipation groove through the arc-shaped heat dissipation fan blades, so that the heat dissipation effect is better.

[0011] Preferably, the heat dissipation slots and heat dissipation blades are provided in multiple groups and correspond one to one, and the heat dissipation blades are arranged in an arc shape.

[0012] Preferably, the rotating shaft passes through the detection mechanism, and the extrusion ring is arranged at the center of the detection mechanism.

[0013] The present invention provides a high-efficiency nested motor stator and rotor structure, which has the following beneficial effects: 1. The high-efficiency nested motor stator and rotor structure, when the rotor assembly rotates, the internal rotating shaft rotates inside the stator assembly and the detection mechanism. When the position of the rotor assembly changes due to bearing wear or displacement, the rotor assembly will vibrate eccentrically during rotation. The vibration of the rotating shaft will compress the extrusion plate, the extrusion plate compresses the extrusion head, the extrusion head compresses the arc spring and squeezes it onto the extrusion switch, thereby controlling the alarm through the extrusion switch to sound an alarm, and the alarm is used to remind the user to maintain the worn or displaced components, so as to avoid the situation where the rotor offset causes uneven air gap and distorts the magnetic field distribution of the motor, thereby preventing the torque fluctuation of the motor from affecting the output performance of the motor.

[0014] 2. The high-efficiency nested motor stator and rotor structure has a positioning component arranged in a ring shape, and a plurality of fixing plates are arranged and distributed in a ring shape on the adjusting device, so that the eccentric vibration of the rotating shaft of the rotor assembly in any direction can squeeze the corresponding fixing plate, thereby causing the alarm to sound, and the eccentric vibration can be accurately identified, with better use effect.

[0015] 3. The high-efficiency nested motor stator and rotor structure is provided with an adjustment device. When the motor is used for a long time and the extrusion plate is worn, the extrusion piston can be rotated. The extrusion piston moves toward the inside of the capillary tube under the push of the thread, squeezing the hydraulic oil inside the capillary tube. The pressure inside the capillary tube increases, and the pressure is transmitted to the inside of the annular hydraulic tube through the thick tube. The pressure inside the annular hydraulic tube acts on the inside of the piston tube, pushing the adjustment piston inside the piston tube outward. When the adjustment piston moves outward, it drives the extrusion plate to move toward the rotating shaft of the rotor assembly, thereby filling the gap caused by wear through the movement of the extrusion plate, avoiding the situation where the alarm system becomes insensitive due to wear of the extrusion plate after long-term use, so that the alarm system can operate reliably for a long time.

[0016] 4. The high-efficiency nested motor stator and rotor structure is provided with a rotor assembly. When in use, the rotating shaft drives the rotor coil to rotate. During the rotation of the rotor coil, the heat dissipation fan blades thereon are driven to rotate. The rotation of the heat dissipation fan blades drives air circulation to dissipate heat from the internal components of the motor. A heat dissipation groove is provided on the rotor coil, and the contact area with the air can be increased through the heat dissipation groove, which facilitates the improvement of the heat dissipation efficiency. The heat dissipation fan blades are arranged in an arc shape, and the airflow can be guided into the interior of the heat dissipation groove through the arc-shaped heat dissipation fan blades, so that the heat dissipation effect is better. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 This is a schematic diagram of the stator and rotor structure of a high-efficiency nested motor of the present invention; Figure 2It is a schematic diagram of the connection structure of the detection mechanism of the present invention; Figure 3 It is a schematic diagram of the structure of the detection mechanism of the present invention; Figure 4 It is a schematic diagram of the structure of the regulating device of the present invention; Figure 5 It is a schematic diagram of the internal structure of the regulating device of the present invention; Figure 6 It is a schematic diagram of the position structure of the rotor assembly of the present invention; Figure 7 It is a schematic diagram of the structure of the rotor assembly of the present invention.

[0018] In the figure: 1. fixing ring; 2. stator assembly; 3. rotor assembly; 31. rotor coil; 32. rotating shaft; 33. heat dissipation groove; 34. heat dissipation fan blade; 35. extrusion ring; 4. detection mechanism; 41. positioning assembly; 42. adjusting device; 421. annular hydraulic pipe; 422. thick pipe; 423. thin pipe; 424. extrusion piston; 425. piston tube; 426. adjusting piston; 427. sleeve ring; 428. tension spring; 43. fixing plate; 44. arc spring; 45. extrusion head; 46. extrusion switch; 47. alarm; 48. extrusion plate. DETAILED DESCRIPTION

[0019] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0020] See also Figure 1-Figure 5 The present invention provides a technical solution: a high-efficiency nested motor stator and rotor structure, comprising a fixing ring 1, the inner wall of which is fixedly connected with a stator assembly 2, and further comprising: A rotor assembly 3, wherein the rotor assembly 3 is arranged inside the stator assembly 2; A detection mechanism 4, which is arranged on one side of the fixing ring 1, and is fixedly connected to the fixing ring 1 through a connecting frame, and is used to detect whether the rotor assembly 3 has wear displacement; The testing mechanism 4 includes: A positioning assembly 41, the positioning assembly 41 having an annular structure, and an adjusting device 42 disposed inside the positioning assembly 41, the adjusting device 42 being fixedly connected to the inner wall of the positioning assembly 41; A fixing plate 43, which is disposed inside the positioning assembly 41, one side of the fixing plate 43 is fixedly connected to the adjusting device 42, a side of the fixing plate 43 away from the adjusting device 42 is fixedly connected to an arc spring 44, and one end of the arc spring 44 away from the fixing plate 43 is fixedly connected to an extrusion head 45; A squeeze switch 46, which is disposed on the fixed plate 43, and is disposed opposite to the squeeze head 45, and is fixedly connected to the fixed plate 43; An alarm 47, which is disposed on the positioning assembly 41, the alarm 47 is electrically connected to the squeeze switch 46, and the alarm 47 is fixedly connected to the positioning assembly 41; One side of the positioning component 41 is fixedly connected to the fixing ring 1 through a connecting frame, and the alarm 47 is fixed on a side of the positioning component 41 away from the fixing ring 1; The fixing plates 43 are provided in multiple groups and are distributed in a ring shape on the adjusting device 42. The side of the extrusion head 45 away from the extrusion switch 46 is fixedly connected to the extrusion plate 48. When the rotor assembly 3 rotates, the rotating shaft inside it rotates inside the stator assembly 2 and the detection mechanism 4. When the position of the rotor assembly 3 changes due to bearing wear or displacement, the rotor assembly 3 will vibrate eccentrically during rotation. The vibration of the rotating shaft will compress the extrusion plate 48, and the extrusion plate 48 will compress the extrusion head 45. The extrusion head 45 compresses the arc spring 44 and squeezes it onto the extrusion switch 46, so that the alarm 47 is controlled by the extrusion switch 46 to sound an alarm. The alarm 47 reminds the user to maintain the worn or displaced components to avoid the situation where the air gap is uneven due to rotor offset, which causes the magnetic field distribution of the motor to be distorted, thereby preventing the torque fluctuation of the motor from affecting the output performance of the motor; The positioning assembly 41 is provided in a ring shape, and the fixing plates 43 are provided in a plurality of groups and are distributed in a ring shape on the adjusting device 42, so that the eccentric vibration of the rotating shaft of the rotor assembly 3 in any direction can squeeze the corresponding fixing plate 43, so that the alarm 47 can sound an alarm, and the eccentric vibration can be accurately identified, and the use effect is better; The adjusting device 42 includes an annular hydraulic pipe 421, one side of the annular hydraulic pipe 421 is connected with a thick pipe 422, and one end of the thick pipe 422 away from the annular hydraulic pipe 421 is connected with a thin pipe 423, and the inner wall of the thin pipe 423 is threadedly connected with an extrusion piston 424, and the inner side of the annular hydraulic pipe 421 is connected with a piston pipe 425, and the inner wall of the piston pipe 425 is slidably connected with an adjusting piston 426, and one end of the adjusting piston 426 extends to the outside of the piston pipe 425, and the end of the adjusting piston 426 located outside the piston pipe 425 is sleeved and fixedly connected with a collar 427, and both sides of the collar 427 are fixedly connected with tension springs 428, the annular hydraulic pipe 421 is arranged inside the positioning assembly 41 and fixedly connected to the inner wall of the positioning assembly 41, and the end of the tension spring 428 away from the collar 427 is fixedly connected to the side of the annular hydraulic pipe 421, and the piston pipe 425 is provided with multiple groups and corresponds to the fixed plate 43 one by one, and the end of the adjusting piston 426 located outside the piston pipe 425 is fixedly connected to the side of the fixed plate 43; An adjusting device 42 is provided. When the motor is used for a long time and the extrusion plate 48 is worn, the extrusion piston 424 can be rotated. The extrusion piston 424 moves toward the inside of the capillary tube 423 under the push of the thread, squeezing the hydraulic oil inside the capillary tube 423. The pressure inside the capillary tube 423 increases, and the pressure is transmitted to the inside of the annular hydraulic tube 421 through the thick tube 422. The pressure inside the annular hydraulic tube 421 acts on the inside of the piston tube 425, pushing the adjusting piston 426 inside the piston tube 425 outward. When the adjusting piston 426 moves outward, it drives the extrusion plate 48 to move toward the rotating axis of the rotor assembly 3, so that the gap caused by wear is filled by the movement of the extrusion plate 48, so as to avoid the situation where the alarm system becomes insensitive due to wear of the extrusion plate 48 after long-term use, so that the alarm system can operate reliably for a long time.

[0021] See also Figure 1-Figure 7 The present invention provides a technical solution: the rotor assembly 3 includes a rotor coil 31, a rotating shaft 32 is passed through and fixedly connected at the center of the rotor coil 31, a heat dissipation groove 33 is opened on the side of the short-circuit ring of the rotor coil 31, and a heat dissipation fan blade 34 corresponding to the heat dissipation groove 33 is fixedly connected to the short-circuit ring of the rotor coil 31, and an extrusion ring 35 is sleeved and fixedly connected at one end of the rotating shaft 32, and the heat dissipation groove 33 and the heat dissipation fan blade 34 are provided in multiple groups and correspond to each other, and the heat dissipation fan blade 34 is arranged in an arc shape, the rotating shaft 32 passes through the detection mechanism 4, and the extrusion ring 35 is arranged at the center of the detection mechanism 4; A rotor assembly 3 is provided. When in use, the rotating shaft 32 drives the rotor coil 31 to rotate. During the rotation of the rotor coil 31, the heat dissipation fan blades 34 thereon are driven to rotate. The rotation of the heat dissipation fan blades 34 drives air circulation, thereby dissipating the heat of the internal components of the motor. A heat dissipation groove 33 is provided on the rotor coil 31. The heat dissipation groove 33 can increase the contact area with the air, thereby facilitating the improvement of the heat dissipation efficiency. The heat dissipation fan blades 34 are arranged in an arc shape, and the airflow can be guided into the interior of the heat dissipation groove 33 through the arc-shaped heat dissipation fan blades 34, so that the heat dissipation effect is better.

[0022] Obviously, the described embodiments are only some embodiments of the present invention, not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field and related fields without creative work should fall within the scope of protection of the present invention. The structures, devices and operating methods not specifically described and explained in the present invention are implemented according to the conventional means in the field unless otherwise specified and limited.

Claims

1. A high-efficiency nested motor stator and rotor structure, comprising a fixing ring (1), the inner wall of the fixing ring (1) being fixedly connected to a stator assembly (2), characterized in that: Also includes: A rotor assembly (3), the rotor assembly (3) being arranged inside the stator assembly (2); A detection mechanism (4), the detection mechanism (4) being arranged on one side of the fixing ring (1), the detection mechanism (4) being fixedly connected to the fixing ring (1) via a connecting frame, the detection mechanism (4) being used to detect whether the rotor assembly (3) has wear displacement; The detection mechanism (4) comprises: A positioning assembly (41), the positioning assembly (41) having an annular structure, and an adjusting device (42) arranged inside the positioning assembly (41), the adjusting device (42) being fixedly connected to an inner wall of the positioning assembly (41); A fixing plate (43), the fixing plate (43) being arranged inside the positioning assembly (41), one side of the fixing plate (43) being fixedly connected to the adjusting device (42), a side of the fixing plate (43) away from the adjusting device (42) being fixedly connected to an arc spring (44), and an end of the arc spring (44) away from the fixing plate (43) being fixedly connected to an extrusion head (45); A squeeze switch (46), the squeeze switch (46) being arranged on the fixed plate (43), the squeeze switch (46) being arranged directly opposite to the squeeze head (45), and the squeeze switch (46) being fixedly connected to the fixed plate (43); An alarm (47), the alarm (47) being arranged on the positioning component (41), the alarm (47) being electrically connected to the squeeze switch (46), and the alarm (47) being fixedly connected to the positioning component (41).

2. A high-efficiency nested motor stator and rotor structure according to claim 1, characterized in that: One side of the positioning component (41) is fixedly connected to the fixing ring (1) via a connecting frame, and the alarm (47) is fixed on a side of the positioning component (41) away from the fixing ring (1).

3. The high-efficiency nested motor stator and rotor structure according to claim 1, characterized in that: The fixing plates (43) are provided in multiple groups and are distributed in a ring shape on the adjusting device (42); the side of the extrusion head (45) away from the extrusion switch (46) is fixedly connected to the extrusion plate (48).

4. The high-efficiency nested motor stator and rotor structure according to claim 1, characterized in that: The regulating device (42) comprises an annular hydraulic tube (421), one side of the annular hydraulic tube (421) is connected to a thick tube (422), one end of the thick tube (422) away from the annular hydraulic tube (421) is connected to a thin tube (423), the inner wall of the thin tube (423) is threadedly connected to an extrusion piston (424), the inner side surface of the annular hydraulic tube (421) is connected to a piston tube (425), the inner wall of the piston tube (425) is slidably connected to an regulating piston (426), one end of the regulating piston (426) extends to the outside of the piston tube (425), one end of the regulating piston (426) located outside the piston tube (425) is sleeved and fixedly connected to a collar (427), and both sides of the collar (427) are fixedly connected to tension springs (428).

5. A high-efficiency nested motor stator and rotor structure according to claim 4, characterized in that: The annular hydraulic pipe (421) is arranged inside the positioning assembly (41) and fixedly connected to the inner wall of the positioning assembly (41); one end of the tension spring (428) away from the collar (427) is fixedly connected to the side of the annular hydraulic pipe (421).

6. A high-efficiency nested motor stator and rotor structure according to claim 4, characterized in that: The piston tubes (425) are provided in multiple groups and correspond one to one with the fixed plates (43); one end of the regulating piston (426) located outside the piston tube (425) is fixedly connected to the side of the fixed plate (43).

7. The high-efficiency nested motor stator and rotor structure according to claim 1, characterized in that: The rotor assembly (3) comprises a rotor coil (31), a rotating shaft (32) passing through the center of the rotor coil (31) and fixedly connected thereto, a heat dissipation groove (33) being provided on the side of a short-circuit ring of the rotor coil (31), a heat dissipation fan blade (34) corresponding to the heat dissipation groove (33) being fixedly connected to the short-circuit ring of the rotor coil (31), and an extrusion ring (35) being sleeved on and fixedly connected to one end of the rotating shaft (32).

8. The high-efficiency nested motor stator and rotor structure according to claim 7, characterized in that: The heat dissipation slots (33) and the heat dissipation blades (34) are both provided in multiple groups and correspond one to one, and the heat dissipation blades (34) are arranged in an arc shape.

9. The high-efficiency nested motor stator and rotor structure according to claim 7, characterized in that: The rotating shaft (32) passes through the detection mechanism (4), and the extrusion ring (35) is arranged at the center of the detection mechanism (4).

Citation Information

Patent Citations

  • Combined electric and hydraulic motor

    CN105637745A

  • Device and method for detecting bearing wear in canned motor pump

    CN111879517A

  • Magnetic field adjusting device of permanent magnet motor, and permanent magnet motor

    CN113708575A

  • Data security anti-intrusion alarm device

    CN115035666A

  • Axial monitoring device of magnetic suspension generator and magnetic suspension equipment

    CN116014986A