Dynamic electromagnetic balance intelligent energy-saving adjusting equipment

By designing dynamic electromagnetic balance intelligent energy-saving adjustment equipment, using conversion components, cleaning components and stabilizing components, the problems of high energy consumption and increased load during the working process are solved, and energy-saving effects and load reduction are achieved.

CN120033916AInactive Publication Date: 2025-05-23BEIJING ZHONGKE ENERGY SAVING EQUIP CO LTD
View PDF 1 Cites 0 Cited by

Patent Information

Application Number
CN202510233879.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-28
Publication Date
2025-05-23
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the working process, existing motors require continuous supply of external current, resulting in large energy consumption, and the motor shaft is prone to adhere to dust or oil stains, increasing the load; the motor shakes, which will also increase the bias force, resulting in an increase in the load of the electromagnetic balance adjustment device.

Method used

A dynamic electromagnetic balance intelligent energy-saving adjustment device is designed, including a motor, a controller and an electromagnetic balance adjustment device. The mechanical energy is converted into electrical energy by converting the components, stored in the battery, and assisting in power supply; the cleaning components remove dust and grease from the motor shaft through the annular scraper; the stabilization components stabilize the motor through the clamping plate and spring structure to reduce high-frequency vibration.

Benefits of technology

It effectively reduces the external current supply of the motor and reduces energy consumption; the cleaning component reduces the biasing force of the motor shaft and reduces the load of the electromagnetic balance adjustment device; the stabilizing component reduces the high-frequency vibration of the motor and reduces the energy consumption of the electromagnetic balance adjustment device.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN120033916A_ABST
    Figure CN120033916A_ABST
Patent Text Reader

Abstract

The invention relates to the field of electromagnetic balance adjustment, in particular to dynamic electromagnetic balance intelligent energy-saving adjusting equipment which comprises a motor, a controller and an electromagnetic balance adjusting device, the bottom end of the motor is fixedly connected with a supporting seat, the controller is fixedly installed at the top end of the motor, and a cleaning assembly is fixedly installed at the top end of the controller; a stabilizing assembly is rotationally installed on the output end face of the motor. By arranging the conversion assembly, the conductor is used for cutting an electromagnetic field, so that the conductor generates current, the current generated by the conductor in the magnetic field cutting process cuts magnetic induction lines in the electromagnetic balance adjusting device through the first conductive ring, the second conductive ring, the first wire and the second wire, and the generated current is guided into the storage battery; and after the battery works for a long time, the current stored in the storage battery can be input into a motor circuit for auxiliary power supply, external current supply is reduced, and the electromagnetic balance adjusting device is effectively utilized.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of electromagnetic balance regulation, and in particular to a dynamic electromagnetic balance intelligent energy-saving regulation device. Background Art

[0002] The electromagnetic balancing power-saving device is a device that can effectively reduce electricity consumption. Its operating principle is mainly to use the action of the electromagnetic field to enable electrical equipment to reach an electromagnetic balance state, thereby reducing power consumption. The electromagnetic balancing power-saving device is an energy-saving device. Its principle is to use the action of the electromagnetic field to enable electrical equipment to reach an electromagnetic balance state, thereby reducing energy loss and avoiding the occurrence of adverse phenomena such as meter tripping. During the operation of the existing motor, the motor shaft will generate a deflection force. It is necessary to use the electromagnetic effect generated by the electromagnetic balancing power-saving device to balance the deflection force generated during the rotation of the motor shaft, so as to reduce bearing loss and achieve energy-saving effects.

[0003] For example, a dynamically adjustable electromagnetic balancing device proposed in announcement number CN118017761A includes a motor, an electromagnetic coil and a permanent magnet, wherein the motor is connected to an output spindle in the middle of the rotation, the output end of the output spindle is connected to the eccentric shaft, the outer surface of the eccentric shaft is connected to the bearing seat through a bearing, the upper surface of the bearing seat is connected to the eccentric connecting disk, and the permanent magnet is evenly installed on the side surface of the eccentric connecting disk; the electromagnetic coil is arranged on the outer side of the eccentric connecting disk, a pressure sensor is installed on the eccentric connecting disk, and a Hall sensor is installed in the gap of the electromagnetic coil; the signal output end of the pressure sensor and the Hall sensor is connected to the signal input end of the single-chip microcomputer, and the control end of the single-chip microcomputer is connected to the electromagnetic coil, which is used to control the current direction and size of the electromagnetic coil. The present invention overcomes the shortcomings of the prior art, and makes the force on the output spindle zero by making the combined force of the centrifugal force applied to the shaft by the eccentric connecting disk and the electromagnetic force applied by the electromagnetic coil zero, thereby greatly reducing the wear of the bearing and extending the service life.

[0004] At present, during the operation of the motor, an external current needs to be continuously supplied to maintain the operation of the motor. However, the prior art lacks a device that converts mechanical energy into electrical energy during the operation of the motor. When used for a long time, it is impossible to effectively reduce the energy consumption and it is difficult to save energy. In addition, since the motor shaft is affected by the working environment during the operation, dust or grease will inevitably adhere to its exterior after long-term use. The generation of dust and grease will increase, which will increase the workload of the motor shaft and increase the rotational deflection force of the motor shaft, requiring the electromagnetic balance adjustment device to have a larger electromagnetic force to balance the increased deflection force, increasing the load on the electromagnetic balance adjustment device and the motor, which has limitations. Moreover, during the operation of the motor, the motor may shake for some reasons. The frequent shaking of the motor will increase the deflection force of the motor shaft, thereby requiring the electromagnetic balance adjustment device to have a larger electromagnetic force to balance the increased deflection force, increasing the required load.

[0005] In view of the above problems, a dynamic electromagnetic balance intelligent energy-saving adjustment device is proposed. Summary of the invention

[0006] The purpose of the present invention is to provide a dynamic electromagnetic balance intelligent energy-saving adjustment device, which adopts this device to work, thereby solving the problem that when the existing motors in the above background are working, most of them are powered by external current, and the energy consumption is large. In addition, foreign matter such as oil and dirt will inevitably adhere to the motor shaft, increasing the load of the electromagnetic balance adjustment device; and when the motor vibrates, the deflection force of the motor shaft will increase, resulting in an increase in the load of the electromagnetic balance adjustment device.

[0007] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: a dynamic electromagnetic balance intelligent energy-saving adjustment device, comprising a motor, a controller and an electromagnetic balance adjustment device, wherein the bottom end of the motor is fixedly connected to a support seat, the controller is fixedly installed on the top of the motor, the output end face of the motor is fixedly connected to a plurality of positioning rods, each of the positioning rods is fixedly connected to the side wall of the electromagnetic balance adjustment device, the output end of the motor is fixedly connected to a motor shaft, a conversion component is fixedly installed on the side wall of the motor shaft, a cleaning component is fixedly installed on the top of the controller, and a stabilizing component is rotatably installed on the output end face of the motor.

[0008] Furthermore, the conversion assembly includes a fixing ring, which is fixedly connected to the side wall of the motor shaft, the side wall of the controller is fixedly mounted with a battery, the side wall of the electromagnetic balance adjustment device is symmetrically fixedly connected with a mounting plate, each side wall of the mounting plate is fixedly connected with a first fixing rod, and the two first fixing rods are commonly fixedly connected with a first conductive ring.

[0009] Furthermore, each side wall of the mounting plate is fixedly connected to a second fixing rod, two of the second fixing rods are commonly fixedly connected to a second conductive ring, and the first conductive ring and the second conductive ring are both sleeved on the outside of the motor shaft.

[0010] Furthermore, a first conductive wire is fixedly connected to the side wall of the first conductive circle, and a second conductive wire is fixedly connected to the side wall of the second conductive circle. One end of the first conductive wire and one end of the second conductive wire are both electrically connected to the battery.

[0011] Furthermore, the cleaning component includes two slide rails, each of which is fixedly connected to the side wall of the controller, the side wall of the controller is fixedly connected to a current booster, the current booster is electrically connected to the electromagnetic balance adjustment device, the top of the controller is symmetrically fixedly connected to support blocks, the two support blocks are commonly fixedly connected to an iron core, the outer wall of the iron core is wound with a coil, and both ends of the coil are electrically connected to the current booster.

[0012] Furthermore, the two slide rails are slidably connected to a movable plate, a side wall of one side of the movable plate is fixedly connected to a connecting plate, the connecting plate is an inverted L-shaped structure, one end of the connecting plate is fixedly connected to an annular scraper, and the annular scraper is sleeved on the outer wall of the motor shaft.

[0013] Furthermore, the stabilizing component includes a mounting tube, which is fixedly connected to the output end face of the motor, and the top of the support seat is symmetrically provided with sliding grooves, and the inner wall of each sliding groove is slidably connected with a slider, and two adjacent sliders are commonly fixedly connected with a clamping plate, and each clamping plate is an arc-shaped structure, and the side wall of each clamping plate is fixedly connected with a mounting rod, and the inner wall of each sliding groove is provided with a second groove body, and the inner bottom wall of each second groove body is fixedly connected with a second spring.

[0014] Furthermore, one end of the second spring is fixedly connected to a third inclined block, the side wall of the mounting tube is rotatably connected to a rotating sleeve, the side wall of the rotating sleeve is fixedly connected to a plurality of fan blades at equal angles, and one side of each fan blade is fixedly connected to a second permanent magnet.

[0015] Furthermore, the side wall of the rotating sleeve is fixedly connected with a second inclined block, the side wall of the output end surface of the motor is symmetrically provided with a first slot body, the inner wall of each first slot body is fixedly connected with a first spring, and one end of the first spring is fixedly connected with a first inclined block.

[0016] Furthermore, the wedge surfaces of the first inclined block and the second inclined block are in contact with each other, the side wall of the rotating sleeve is symmetrically rotatably connected with connecting rods, and one end of each connecting rod is rotatably connected to the side wall of the mounting rod.

[0017] Compared with the prior art, the present invention has the following beneficial effects:

[0018] By setting a conversion component, utilizing the electromagnetic field inside the electromagnetic balance adjustment device, wherein the electromagnetic balance adjustment device is a circular ring structure, and the direction of the electromagnetic force is directed to the motor shaft, the fixed ring and the conductor are driven to rotate synchronously during the rotation of the motor shaft, so that the conductor cuts the electromagnetic field, and the conductor generates current. The current generated by the conductor in the process of cutting the magnetic field is passed through the first conductive circle, the second conductive circle, the first wire and the second wire to cut the magnetic flux lines inside the electromagnetic balance adjustment device, and the generated current is introduced into the battery for current storage. After the battery has been working for a long time, the current stored in the battery can be passed into the motor circuit for auxiliary power supply, reducing external current supply, effectively utilizing the electromagnetic balance adjustment device, performing electric energy conversion, and assisting the motor in power supply, which plays an energy-saving role compared to the motor being always powered by the external power supply.

[0019] By setting up a cleaning component, when dust and oil stains adhere to the surface of the motor shaft, the deflection force of the motor shaft will increase when it rotates, so that the electromagnetic balance adjustment device needs a larger electromagnetic force to balance the increased deflection force, thereby increasing the current flow. Since the current booster is connected in parallel with the electromagnetic balance adjustment device, the current passing through the current booster will also increase. At this time, the coil is energized, so that the internal iron core generates magnetism, which will push the first permanent magnet to move, so that the first permanent magnet drives the moving plate and the annular scraper to move synchronously, so that the annular scraper moves along the surface of the motor shaft, thereby scraping off the oil and dust on the surface. At this time, the surface load of the motor shaft is reduced, the deflection force of the motor shaft is reduced, and the electromagnetic force required to balance the deflection force in the corresponding electromagnetic balance adjustment device is correspondingly reduced, and the required current is also reduced, thereby reducing the load on the motor and the electromagnetic balance adjustment device; through the stabilizing component, when the motor is in high When the frequency vibrates, the deflection force of the motor shaft will increase during rotation, so that the electromagnetic balance adjustment device requires a larger electromagnetic force to balance the increased deflection force. At this time, the electromagnetic force inside the electromagnetic balance adjustment device increases, pushing the multiple groups of second permanent magnets to rotate. In this process, due to the increase in electromagnetic force, the first bevel block will be pushed into the first slot body, releasing the limit on the rotating sleeve and the fan blades. Under the repulsive action of the electromagnetic force and the second permanent magnet, the fan blades rotate, and the two clamping plates are brought close to each other through the cooperation of the two connecting rods. During the approach process, the clamping plates will press the third bevel block into the second slot body. When the two clamping plates are in contact with the side walls of the motor for firm clamping to avoid high-frequency vibration, under the elastic action of the second spring, the third bevel block pops out to limit the slider, avoiding the need for sufficient force to maintain the stability of the motor. Subsequently, the staff can promptly check the cause of the motor vibration, thereby achieving energy-saving effect. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0021] Figure 2 It is a structural schematic diagram of the motor and the electromagnetic balance adjustment device in the present invention;

[0022] Figure 3 It is a schematic diagram of the structure of the motor and the conversion component in the present invention;

[0023] Figure 4 It is a schematic diagram of the structure of the conversion component in the present invention;

[0024] Figure 5 It is a cross-sectional view of the protective wall of the conductor in the present invention;

[0025] Figure 6 It is a schematic diagram of the structure of the motor and the cleaning component in the present invention;

[0026] Figure 7 It is a schematic diagram of the structure of the cleaning component in the present invention;

[0027] Figure 8 is a side view of the cleaning component of the present invention;

[0028] Fig. 9 It is a schematic diagram of the structure of the moving plate and the annular scraper in the present invention;

[0029] Fig.10 It is a schematic diagram of the structure of the motor and the stabilizing component in the present invention;

[0030] Fig.11 It is a schematic diagram of the structure of the stabilizing component in the present invention;

[0031] Fig.12 is a cross-sectional view of the motor and the stabilizing assembly of the present invention;

[0032] Fig.13 for Fig.12 A partial enlarged schematic diagram of part A;

[0033] Fig.14 It is a cross-sectional view of the motor and the support base in the present invention;

[0034] Fig.15 for Fig.14 Schematic diagram of the structure of part B.

[0035] In the figure: 1, motor; 11, support seat; 12, slide; 2, motor shaft; 3, controller; 4, electromagnetic balance adjustment device; 41, positioning rod; 5, conversion assembly; 51, fixing ring; 52, conductor; 53, mounting plate; 54, first fixing rod; 55, first conductive ring; 56, second fixing rod; 57, second conductive ring; 58, first wire; 59, second wire; 510, battery; 6, cleaning assembly; 61, slide rail; 62, moving plate; 63, connecting plate; 64, annular scraper; 65. Current booster; 66. Support block; 67. Iron core; 68. Coil; 69. First permanent magnet; 7. Stabilizing assembly; 71. Mounting cylinder; 72. Rotating sleeve; 73. Fan blade; 74. Second permanent magnet; 76. Connecting rod; 77. Mounting rod; 78. Clamping plate; 79. Slider; 710. First slot; 711. First spring; 712. First inclined block; 713. Second inclined block; 714. Second slot; 715. Second spring; 716. Third inclined block; 717. Vibration sensor. DETAILED DESCRIPTION

[0036] 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.

[0037] In order to solve the problem that during the operation of the motor, an external current needs to be continuously supplied to maintain the operation of the motor, but in the prior art, there is a lack of a device for converting mechanical energy into electrical energy during the operation of the motor. When used for a long time, it is difficult to effectively reduce the energy consumption and achieve energy saving. Figure 1 - Figure 5 As shown, the following preferred technical solutions are provided:

[0038] A dynamic electromagnetic balance intelligent energy-saving adjustment device comprises a motor 1, a controller 3 and an electromagnetic balance adjustment device 4. The bottom end of the motor 1 is fixedly connected to a support seat 11, the controller 3 is fixedly installed on the top of the motor 1, and the output end face of the motor 1 is fixedly connected to a plurality of positioning rods 41, each positioning rod 41 is fixedly connected to the side wall of the electromagnetic balance adjustment device 4, the electromagnetic direction of the electromagnetic balance adjustment device 4 is all pointing to the motor shaft 2, and the electromagnetic action is used to balance the deflection force generated during the rotation of the motor shaft 2 to reduce bearing loss and achieve energy saving effect. The output end of the motor 1 is fixedly connected to the motor shaft 2, and the output end face of the motor 1 will not rotate, and only the motor shaft 2 rotates.

[0039] A conversion component 5 is fixedly installed on the side wall of the motor shaft 2. By setting the conversion component 5, the electromagnetic field inside the electromagnetic balance adjustment device 4 is utilized. The electromagnetic balance adjustment device 4 is of an annular structure, and the directions of the electromagnetic forces all point to the motor shaft 2. During the rotation of the motor shaft 2, the fixed ring 51 and the conductor 52 are driven to rotate synchronously, so that the conductor 52 cuts the electromagnetic field, causing the conductor 52 to generate current. The current generated by the conductor 52 during the process of cutting the magnetic field is introduced into the storage battery 510 through the first conductive ring 55, the second conductive ring 57, the first wire 58 and the second wire 59, for current storage. After the battery has been working for a long time, the current stored in the storage battery 510 can be introduced into the circuit of the motor 1 for auxiliary power supply, reducing the external current supply, effectively utilizing the electromagnetic balance adjustment device 4 for electric energy conversion, and assisting in power supply for the motor 1. Compared with the motor 1 being continuously powered by external power, it plays an energy-saving role.

[0040] A cleaning component 6 is fixedly installed at the top of the controller 3. By setting the cleaning component 6, when dust and oil stains adhere to the surface of the motor shaft 2, the deflection force during the rotation of the motor shaft 2 will increase, causing the electromagnetic balance adjustment device 4 to correspondingly require a greater electromagnetic force to balance the increased deflection force, thus requiring an increase in the current flow. Since the current booster 65 is connected in parallel with the electromagnetic balance adjustment device 4, the current passing through the current booster 65 will also increase. At this time, the coil 68 is energized, so that the iron core 67 inside it generates magnetism, which will push the first permanent magnet 69 to move, causing the first permanent magnet 69 to drive the moving plate 62 and the annular scraper 64 to move synchronously, making the annular scraper 64 move along the surface of the motor shaft 2, thus scraping off the oil stains and dust on its surface. At this time, the surface load of the motor shaft 2 decreases, the deflection force of the motor shaft 2 decreases, and the electromagnetic force required to balance the deflection force inside the corresponding electromagnetic balance adjustment device 4 decreases accordingly, and the required current also decreases, thereby reducing the load on the motor 1 and the electromagnetic balance adjustment device 4. Although the current increases for a period of time during this process, increasing a certain amount of energy consumption, compared with continuing to use for a long time after dust and oil stains adhere to the surface of the motor shaft 2, the required energy consumption is reduced, thus playing an energy-saving role. The coil 68 is externally connected to a current diverter, so that the direction of the current can be changed, and the magnetic pole direction at the iron core 67 can be changed after the coil 68 is energized, so as to be applicable to different working environments. For example, when the motor 1 works in the vertical or horizontal direction, the direction of the current can be changed, so as to move the first permanent magnet 69 and make it drive the annular scraper 64 to perform a cleaning function.

[0041] The output end surface of the motor 1 is rotatably installed with a stabilizing component 7. Through the stabilizing component 7, when the motor 1 has high-frequency jitter, the deflection force of the motor shaft 2 during rotation is increased, so that the electromagnetic balance adjustment device 4 correspondingly requires a larger electromagnetic force to balance the increased deflection force. At this time, the electromagnetic force inside the electromagnetic balance adjustment device 4 increases, pushing the multiple groups of second permanent magnets 74 to rotate. In this process, due to the increase in electromagnetic force, the first inclined block 712 is pushed into the first slot 710, releasing the limit on the rotating sleeve 72 and the fan blade 73. Under the repulsive effect of the electromagnetic force and the second permanent magnet 74, the fan blade 73 is rotated, and the two clamping plates 78 are brought close to each other through the cooperation of the two connecting rods 76. During the approaching process, the clamping plate 78 will move the third inclined block 712 into the first slot 710. Block 716 is pressed into the second groove body 714. When the two clamping plates 78 are in contact with the side wall of the motor 1 for firm clamping to avoid its high-frequency vibration, the third inclined block 716 pops out to limit the slider 79 under the elastic action of the second spring 715, avoiding the need for sufficient force to always maintain the stability of the motor 1. The staff can then check the cause of the vibration of the motor 1 in time, which has an energy-saving effect. After stabilizing the motor 1, the vibration of the motor 1 can be effectively reduced, thereby reducing the deflection force of the motor shaft 2 and correspondingly reducing the energy consumption required by the electromagnetic balance adjustment device 4, which has an energy-saving effect. By setting the vibration sensor 717, it can be effectively distinguished whether the energy consumption is increased by oil pollution or by motor vibration, so as to facilitate maintenance by the staff.

[0042] The conversion assembly 5 includes a fixed ring 51, which is fixedly connected to the side wall of the motor shaft 2. A battery 510 is fixedly installed on the side wall of the controller 3. The side wall of the electromagnetic balance adjustment device 4 is symmetrically fixedly connected to a mounting plate 53. Each side wall of the mounting plate 53 is fixedly connected to a first fixing rod 54, and the two first fixing rods 54 are commonly fixedly connected to a first conductive ring 55.

[0043] A second fixing rod 56 is fixedly connected to the side wall of each mounting plate 53, and a second conductive ring 57 is fixedly connected to the two second fixing rods 56. The first conductive ring 55 and the second conductive ring 57 are both sleeved on the outside of the motor shaft 2 but not in contact.

[0044] A first conductive wire 58 is fixedly connected to the side wall of the first conductive ring 55 , and a second conductive wire 59 is fixedly connected to the side wall of the second conductive ring 57 . One end of the first conductive wire 58 and the second conductive wire 59 are both electrically connected to the battery 510 .

[0045] In this solution: The electromagnetic field inside the electromagnetic balance adjustment device 4 is utilized. The electromagnetic balance adjustment device 4 has an annular structure, and the directions of the electromagnetic forces all point to the motor shaft 2. During the rotation of the motor shaft 2, the fixed ring 51 and the conductor 52 are driven to rotate synchronously, so that the conductor 52 cuts the electromagnetic field, causing the conductor 52 to generate an electric current. The electric current generated by the conductor 52 during the process of cutting the magnetic field is conducted into the storage battery 510 through the first conductive loop 55, the second conductive loop 57, the first wire 58, and the second wire 59 to store the current. After the battery has been working for a long time, the stored current in the storage battery 510 can be passed into the circuit of the motor 1 for auxiliary power supply, reducing the external current supply. The electromagnetic balance adjustment device 4 is effectively utilized for electric energy conversion and auxiliary power supply to the motor 1, which plays an energy-saving role compared with the motor 1 being continuously powered by external electricity.

[0046] To solve the technical problem that during the operation of the motor shaft, affected by the working environment, dust or oil dirt is inevitably adhered to its exterior after long-term use. The generation of dust and oil dirt will increase, which will increase the working load of the motor shaft, resulting in an increase in the rotational deflection force of the motor shaft, causing the electromagnetic balance adjustment device to require a greater electromagnetic force to balance the increased deflection force, increasing the load of the electromagnetic balance adjustment device and the motor, as Figure 6 - Fig. 9 shown in the figure, the following preferred technical solutions are provided:

[0047] The cleaning assembly 6 includes two slide rails 61, each slide rail 61 is fixedly connected to the side wall of the controller 3. A current booster 65 is fixedly connected to the side wall of the controller 3, and the current booster 65 is electrically connected to the electromagnetic balance adjustment device 4. Two support blocks 66 are symmetrically and fixedly connected to the top of the controller 3, and an iron core 67 is fixedly connected by the two support blocks 66. A coil 68 is wound around the outer wall of the iron core 67, and both ends of the coil 68 are electrically connected to the current booster 65.

[0048] A moving plate 62 is slidably connected by the two slide rails 61. A connecting plate 63 is fixedly connected to one side wall of the moving plate 62. The connecting plate 63 has an inverted L-shaped structure, and one end of the connecting plate 63 is fixedly connected with an annular scraping plate 64, and the annular scraping plate 64 is sleeved on the outer wall of the motor shaft 2.

[0049] In this solution: when dust and oil stains adhere to the surface of the motor shaft 2, the deflection force of the motor shaft 2 will increase when it rotates, so that the electromagnetic balance adjustment device 4 needs a larger electromagnetic force to balance the increased deflection force, thereby increasing the current flow. Since the current booster 65 is connected in parallel with the electromagnetic balance adjustment device 4, the current passing through the current booster 65 will also increase. At this time, the coil 68 is energized, so that the internal iron core 67 generates magnetism, which will push the first permanent magnet 69 to move, so that the first permanent magnet 69 drives the moving plate 62 and the annular scraper 64 to move synchronously, so that the annular scraper 64 moves along the surface of the motor shaft 2, thereby scraping off the oil and dust on its surface. At this time, the surface load of the motor shaft 2 is reduced, and the deflection force of the motor shaft 2 is reduced. The electromagnetic force required to balance the deflection force inside the corresponding electromagnetic balance adjustment device 4 is reduced, and the required current will also be reduced, thereby reducing the load on the motor 1 and the electromagnetic balance adjustment device 4. Although the current is increased for a period of time in this process, which increases a certain amount of energy consumption, compared with the motor shaft 2 that continues to be used for a long time after dust and oil adhere to the surface of the motor shaft 2, the required energy consumption is reduced, thereby playing an energy-saving role. The coil 68 is externally connected to a current diverter, so that the direction of the current can be changed, so that the direction of the magnetic pole at the iron core 67 can be changed after the coil 68 is energized, so that it is suitable for different working environments. For example, when the motor 1 works in the vertical direction or horizontal direction, the first permanent magnet 69 can be moved by changing the direction of the current flow, so that it drives the annular scraper 64 to perform a cleaning effect.

[0050] In order to solve the problem that the motor may shake due to some reasons during the operation of the motor, the frequent shaking of the motor will increase the deflection force of the motor shaft, thereby causing the electromagnetic balance adjustment device to require a larger electromagnetic force to balance the increased deflection force, increasing the technical problem of the required load, such as Fig.10 - Fig.15 As shown, the following preferred technical solutions are provided:

[0051] The top of the support seat 11 is symmetrically provided with sliding grooves 12, and the inner wall of each sliding groove 12 is slidably connected with a slider 79, and two adjacent sliders 79 are commonly fixedly connected with a clamping plate 78, and each clamping plate 78 is an arc-shaped structure, and the side wall of each clamping plate 78 is fixedly connected with a mounting rod 77, and the inner wall of each sliding groove 12 is provided with a second groove body 714, and the inner bottom wall of each second groove body 714 is fixedly connected with a second spring 715, and the elastic force of the second spring 715 is less than the gravity of the slider 79 and the clamping plate 78.

[0052] One end of the second spring 715 is fixedly connected to the third inclined block 716, the side wall of the mounting cylinder 71 is rotatably connected to the rotating sleeve 72, and the side wall of the rotating sleeve 72 is fixedly connected to multiple blades 73 at equal angles, each of the blades 73 is a magnetically isolated structure, and one side of each blade 73 is fixedly connected to a second permanent magnet 74.

[0053] A second inclined block 713 is fixedly connected to the side wall of the rotating sleeve 72. First grooves 710 are symmetrically formed in the side wall of the output end face of the motor 1. A first spring 711 is fixedly connected to the inner wall of each first groove 710, and one end of the first spring 711 is fixedly connected to a first inclined block 712.

[0054] The wedge-shaped surfaces of the first inclined block 712 and the second inclined block 713 are in abutting contact. When the electromagnetic balance adjustment device 4 is working normally, the elastic force of the first spring 711 is greater than the electromagnetic force generated by the electromagnetic balance adjustment device 4. The side wall of the rotating sleeve 72 is symmetrically and rotatably connected with connecting rods 76, and one end of each connecting rod 76 is rotatably connected to the side wall of the mounting rod 77.

[0055] In this solution: through the stabilizing assembly 7, when the motor 1 has high-frequency jitter, the deviation force during the rotation of the motor shaft 2 will be increased, so that the electromagnetic balance adjustment device 4 correspondingly needs a greater electromagnetic force to balance the increased deviation force. At this time, the electromagnetic force inside the electromagnetic balance adjustment device 4 increases, pushing a plurality of groups of second permanent magnets 74 to rotate. During this process, due to the increase in the electromagnetic force, the first inclined block 712 will be pushed into the first groove 710, releasing the limit on the rotating sleeve 72 and the fan blade 73. Under the repulsive action of the electromagnetic force and the second permanent magnet 74, the fan blade 73 rotates. Through the cooperation of the two connecting rods 76, the two clamping plates 78 approach each other. During the approaching process, the clamping plate 78 will press the third inclined block 716 into the second groove 714. When the two clamping plates 78 abut against the side wall of the motor 1 for stable clamping, to prevent its high-frequency vibration, under the elastic action of the second spring 715, the third inclined block 716 pops out to limit the slider 79, avoiding the need for sufficient force to maintain the stability of the motor 1 all the time. Subsequently, the staff can timely check the reason for the vibration of the motor 1, achieving an energy-saving effect. After the motor 1 is stabilized, the vibration of the motor 1 can be effectively reduced, thereby slowing down the deviation force of the motor shaft 2, and correspondingly reducing the energy consumption required by the electromagnetic balance adjustment device 4, playing an energy-saving role. By setting the vibration sensor 717, it is possible to effectively distinguish whether the increased energy consumption is due to increased oil contamination or increased motor vibration, facilitating the staff to carry out repairs.

[0056] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprising", "including" or any other variant thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or elements inherent to such process, method, article or device.

[0057] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A dynamic electromagnetic balance intelligent energy-saving adjustment device, comprising a motor (1), a controller (3) and an electromagnetic balance adjustment device (4), characterized in that: The bottom end of the motor (1) is fixedly connected to a support base (11), the controller (3) is fixedly mounted on the top end of the motor (1), the output end face of the motor (1) is fixedly connected to a plurality of positioning rods (41), each of the positioning rods (41) is fixedly connected to a side wall of an electromagnetic balance adjustment device (4), the output end of the motor (1) is fixedly connected to a motor shaft (2), a conversion component (5) is fixedly mounted on the side wall of the motor shaft (2), a cleaning component (6) is fixedly mounted on the top end of the controller (3), and a stabilizing component (7) is rotatably mounted on the output end face of the motor (1).

2. According to claim 1, a dynamic electromagnetic balance intelligent energy-saving adjustment device is characterized in that: The conversion assembly (5) comprises a fixing ring (51), the fixing ring (51) being fixedly connected to the side wall of the motor shaft (2), a storage battery (510) being fixedly mounted on the side wall of the controller (3), a mounting plate (53) being symmetrically fixedly connected to the side wall of the electromagnetic balance adjustment device (4), each side wall of the mounting plate (53) being fixedly connected to a first fixing rod (54), and the two first fixing rods (54) being fixedly connected to a first conductive ring (55) in common.

3. The dynamic electromagnetic balance intelligent energy-saving adjustment device according to claim 2 is characterized in that: The side wall of each mounting plate (53) is fixedly connected to a second fixing rod (56), two of the second fixing rods (56) are commonly fixedly connected to a second conductive ring (57), and the first conductive ring (55) and the second conductive ring (57) are both sleeved on the outside of the motor shaft (2).

4. The dynamic electromagnetic balance intelligent energy-saving adjustment device according to claim 3 is characterized in that: A first conductive wire (58) is fixedly connected to the side wall of the first conductive ring (55), and a second conductive wire (59) is fixedly connected to the side wall of the second conductive ring (57); one end of each of the first conductive wire (58) and the second conductive wire (59) is electrically connected to the battery (510).

5. The dynamic electromagnetic balance intelligent energy-saving adjustment device according to claim 1 is characterized in that: The cleaning component (6) comprises two slide rails (61), each of which is fixedly connected to the side wall of the controller (3), the side wall of the controller (3) is fixedly connected to a current booster (65), the current booster (65) is electrically connected to the electromagnetic balance adjustment device (4), the top of the controller (3) is symmetrically fixedly connected to a support block (66), the two support blocks (66) are commonly fixedly connected to an iron core (67), the outer wall of the iron core (67) is wound with a coil (68), and both ends of the coil (68) are electrically connected to the current booster (65).

6. The dynamic electromagnetic balance intelligent energy-saving adjustment device according to claim 5 is characterized in that: The two slide rails (61) are slidably connected to a movable plate (62) in common, a side wall of one side of the movable plate (62) is fixedly connected to a connecting plate (63), the connecting plate (63) is an inverted L-shaped structure, one end of the connecting plate (63) is fixedly connected to an annular scraper (64), and the annular scraper (64) is sleeved on the outer wall of the motor shaft (2).

7. The dynamic electromagnetic balance intelligent energy-saving adjustment device according to claim 1 is characterized in that: The stabilizing component (7) comprises a mounting tube (71), wherein the mounting tube (71) is fixedly connected to the output end face of the motor (1), and a slide groove (12) is symmetrically provided at the top of the support seat (11), and each inner wall of the slide groove (12) is slidably connected to a slider (79), and two adjacent sliders (79) are commonly fixedly connected to a clamping plate (78), and each clamping plate (78) is an arc-shaped structure, and the side wall of each clamping plate (78) is fixedly connected to a mounting rod (77), and the inner wall of each slide groove (12) is provided with a second groove body (714), and the inner bottom wall of each second groove body (714) is fixedly connected to a second spring (715).

8. The dynamic electromagnetic balance intelligent energy-saving adjustment device according to claim 7 is characterized in that: One end of the second spring (715) is fixedly connected to a third inclined block (716); the side wall of the mounting cylinder (71) is rotatably connected to a rotating sleeve (72); a plurality of fan blades (73) are fixedly connected to the side wall of the rotating sleeve (72) at equal angles; and one side of each fan blade (73) is fixedly connected to a second permanent magnet (74).

9. The dynamic electromagnetic balance intelligent energy-saving adjustment device according to claim 8, characterized in that: The side wall of the rotating sleeve (72) is fixedly connected to a second inclined block (713); the side wall of the output end surface of the motor (1) is symmetrically provided with a first slot body (710); the inner wall of each first slot body (710) is fixedly connected to a first spring (711); and one end of the first spring (711) is fixedly connected to a first inclined block (712).

10. The dynamic electromagnetic balance intelligent energy-saving adjustment device according to claim 9, characterized in that: The wedge-shaped surfaces of the first inclined block (712) and the second inclined block (713) are in contact with each other, and the side wall of the rotating sleeve (72) is symmetrically rotatably connected with a connecting rod (76), and one end of each connecting rod (76) is rotatably connected to the side wall of the mounting rod (77).

Citation Information

Patent Citations

  • Dynamically adjustable electromagnetic balancing device

    CN118017761A