Adding device for semi-anisotropic strontium material magnetic powder processing

By designing a feeding device for the processing of semi-otropic strontium magnetic powder, the combination of transmission wheel, subwheel, rotary plate and ply plate is used to solve the problem of magnetic powder agglomeration and poor discharge in traditional magnetic powder feeding methods, efficient stirring and drying is achieved, processing efficiency and quality is improved, and energy is saved.

CN119926262AInactive Publication Date: 2025-05-06新余赣钰科技股份有限公司
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Patent Information

Application Number
CN202510083875.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-01-20
Publication Date
2025-05-06
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

During the process of semi-otropic strontium magnetic powder processing, the traditional magnetic powder feeding method has problems such as inaccurate addition amount, easy accumulation of magnetic powder, and inability to effectively pretreat magnetic powder, which seriously affects the efficiency and quality of magnetic powder processing.

Method used

A dosing device for the processing of semi-otropic strontium magnetic powder is designed, including a cylindrical tank body, an outer ring, a transmission wheel, a sub-wheel, a rotary plate and a clamping plate. The tank body is stably driven through the clamping mechanism of the transmission wheel and a sub-wheel. The combination of the rotary plate and a clamping plate realizes stirring and heat treatment of magnetic powder to prevent the magnetic powder from agglomerating.

Benefits of technology

It realizes efficient stirring and dispersion of magnetic powder, prevents clumping, ensures smooth drying and discharge of magnetic powder, improves processing efficiency and quality, and reduces the use of heating facilities and saves energy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a feeding device for semi-anisotropic strontium material magnetic powder processing, which comprises a tank body, the tank body is cylindrical, two outer rings are arranged on the two sides of the outer body of the tank body, the outer rings are symmetrically arranged, the outer rings are larger than the periphery of the tank body and extend to the periphery, the bottoms of the outer rings are in contact with transmission wheels, and the transmission wheels are in contact with the transmission wheels. The transmission wheel conducts friction transmission by means of contact with the outer ring and the weight of the tank body, the weight of the tank body can directly act on the transmission wheel, friction is increased, transmission energy is increased, the transmission wheel is arranged on the left side of the bottom of the tank body, the auxiliary wheel is arranged on the right side of the bottom of the tank body, and the auxiliary wheel is also in contact with the outer ring, so that the tank body is prevented from rolling over. And the transmission wheel and the auxiliary wheel are used for clamping the tank body.
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Description

Technical Field

[0001] The invention relates to the field of mixing, for example, dissolving, emulsifying or dispersing technology, and in particular to a dosing device for processing semi-isotropic strontium material magnetic powder. Background Art

[0002] In the processing of semi-isotropic strontium magnetic powder, the addition of magnetic powder is a key link. At present, the traditional method of adding magnetic powder has many problems, such as inaccurate addition amount, magnetic powder is easy to agglomerate and bridge, resulting in poor discharge, and inability to effectively pre-treat the magnetic powder. These problems seriously affect the efficiency and quality of magnetic powder processing and cannot meet the needs of large-scale, high-precision production. Through searching, it was found that a magnetic powder dosing device with application number 202310136642.3 is used in combination with a stirring component and a conveying component. The magnetic powder in the box is conveyed from the middle to both sides by the stirring spiral. Under the joint action of the large spiral blade and the box wall, part of the magnetic powder is squeezed and turned up, which plays a role of stirring, breaking and squeezing; part of the magnetic powder enters the tank under the extrusion of the large spiral blade, and the magnetic powder in the tank is stirred and squeezed and then output under the action of two conveying spirals with opposite rotation directions, so as to prevent the magnetic powder from agglomerating and bridging. The opening and closing and speed of the stirring motor and the conveying motor can be controlled, and the magnetic powder is outputted in a timely and quantitative manner, with accurate feeding and labor saving; In the prior art, magnetic powder is processed by breaking it up. However, the agglomeration of magnetic powder is mostly caused by the presence of water molecules in the magnetic powder due to the magnetic properties of the magnetic powder in a humid environment. When the magnetic powder is agglomerated and moist, a heating lamp is used and hot air is added inside the device to heat it. However, this adds an extra work step and is not energy-efficient.

[0003] In view of the above problems, the present invention provides a dosing device for processing semi-anisotropic strontium material magnetic powder. Summary of the invention

[0004] In order to solve the above technical problems, the present invention provides a dosing device for semi-anisotropic strontium material magnetic powder processing to solve the problems described in the above background technology.

[0005] The purpose and effect of the dosing device for semi-isotropic strontium material magnetic powder processing of the present invention are achieved by the following specific technical means: The present invention provides a dosing device for processing magnetic powder of semi-isotropic strontium material, which is characterized by comprising a tank body, which is cylindrical, and outer rings are arranged on both sides of the outer body of the tank body, two outer rings are arranged, and the outer rings are arranged symmetrically, the outer rings are larger than the periphery of the tank body, and extend to all sides, and the bottom of the outer ring is in contact with a transmission wheel, and the transmission wheel relies on the contact with the outer ring and the weight of the tank body to perform friction transmission, and the weight of the tank body itself will directly act on the transmission wheel, and the transmission wheel is arranged on the left side of the bottom of the tank body, and a secondary wheel is arranged on the right side of the bottom of the tank body, and the secondary wheel is also in contact with the outer ring, so as to prevent the tank body from rolling, and the transmission wheel and the secondary wheel clamp the tank body.

[0006] Furthermore, two transmission wheels are provided, and two auxiliary wheels are also provided. The transmission wheels and the auxiliary wheels are symmetrically provided. The transmission wheels are connected and transmitted through a set transmission shaft. The transmission wheel on the right is connected to the driving machine through a chain plate, and then transmitted to the other transmission wheel through the transmission shaft.

[0007] Furthermore, a chain is arranged inside the chain plate, and the kinetic energy is transmitted to the transmission wheel through the transmission gear of the driving machine. Two stabilizing wheels are arranged between the transmission wheel and the auxiliary wheel, and the stabilizing wheels contact the inner side of the outer ring.

[0008] Furthermore, a frame is provided on the right side of the tank body, the frame is fitted to the tank body, a feed hopper is provided in the frame, the feed hopper is inclined as a whole and extends into the tank body.

[0009] Furthermore, the interior of the tank body is hollow, a control panel is provided on the left side of the tank body, a motor is provided on the outside of the control panel, a drive tube is provided on the right side of the control panel, the interior of the drive tube is hollow, and a groove the same width as the first and second splints is provided at the bottom of the right side of the middle section of the drive tube, and extends rightward to the rightmost end of the drive tube.

[0010] Furthermore, the motor drive is connected to a driving shaft, and the driving shaft is meshedly connected to the driven shaft through a driving gear. The driving shaft and the driven shaft have the same length, and the same length as the driving tube.

[0011] Furthermore, a rotary vane is provided inside the tank body and fixed on the inner wall of the tank body. The overall length of the rotary vane is only two-thirds of the tank body. The rotary vane extends from the right side to the left side. The end point on the left side of the rotary vane and the midpoint of the driving tube are on the same vertical plane. The driving tube passes through the center of the rotary vane, and the length of the slot of the driving tube is the same as the length of the rotary vane.

[0012] Furthermore, both the driving shaft and the driven shaft are provided with threads, the thread lengths of the driving shaft and the driven shaft are the same as the lengths of the rotary vanes, and a first clamping plate and a second clamping plate are meshedly provided in the gaps of the threads.

[0013] Furthermore, an engaging block of the same size as the thread gap is provided on the top of the first clamp, and the second clamp is also provided with an engaging block. The first clamp engages with the thread of the driving shaft, and the second clamp engages with the thread of the driven shaft.

[0014] Furthermore, the first clamping plate and the second clamping plate are arranged in parallel, and the first clamping plate and the second clamping plate are arranged on both sides of the rotary blade to clamp the rotary blade in the middle.

[0015] Beneficial effects: 1. The outer ring can effectively drive the tank body, and the transmission wheel can stably drive the tank body to drive, so that the magnetic powder inside the tank body can be better stirred. The stabilizing wheel can limit the left and right displacement of the tank body to prevent the tank body from falling off the transmission wheel.

[0016] 2. Through the provided vane, when the tank body rotates, the vane will also rotate accordingly to stir the magnetic powder inside the tank body. When the magnetic powder agglomerates in the tank body, the vane is rotated to break up the magnetic powder, and then the collision generated by the stirring is used to break up the magnetic powder. The provided clamping plates 1 and 2 increase the frequency of collision to better break up the magnetic powder. In addition, the clamping friction of the vane and the clamping plates 1 and 2 on the vane can generate heat to ensure the temperature inside the tank body. At the same time, the magnetic powder is also a heat conductor. The heat generated by the vane and the clamping plate 1 can also be conducted to the magnetic powder through contact, thereby removing the moisture inside the magnetic powder, preventing the magnetic powder from agglomerating, and ensuring the dryness of the magnetic powder. At the same time, the heating facilities are reduced to save energy. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 It is a schematic diagram of the overall structure of the present invention.

[0018] Figure 2 It is the rear view of the overall structure of the present invention.

[0019] Figure 3 It is a schematic diagram of disassembly of the overall structure of the present invention.

[0020] Figure 4 It is a schematic diagram of the tank disassembly structure of the present invention.

[0021] Figure 5 It is a schematic diagram of the auxiliary wheel structure of the present invention.

[0022] Figure 6 It is a schematic diagram of the rotary vane structure of the present invention.

[0023] Figure 7 It is a schematic diagram of the drive shaft structure of the present invention.

[0024] Figure 8 It is a schematic diagram of the thread structure of the present invention.

[0025] Fig. 9It is a schematic diagram of the structure of the first and second splints of the present invention.

[0026] Fig.10 It is a schematic diagram of the structure of the driving gear and the driven gear of the present invention.

[0027] Figure 1-10 , the correspondence between the component names and the figure numbers is: 1. tank body, 11. outer ring, 12. driving machine, 13. chain plate, 14. transmission shaft, 15. transmission wheel, 16. frame, 17. feed hopper, 18. secondary wheel, 19. stabilizing wheel, 21. control board, 22. driving pipe, 23. motor, 24. rotary vane, 25. driving shaft, 26. thread, 27. splint 1, 28. splint 2, 29. driving gear, 30. driven gear, 31. driven shaft. DETAILED DESCRIPTION

[0028] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.

[0029] As attached Figure 1 To Attachment Fig.10 As shown, in an embodiment of the present invention.

[0030] Embodiment 1: A dosing device for processing semi-heterotropic strontium material magnetic powder, comprising: a tank body 1, the tank body 1 is cylindrical, outer rings 11 are arranged on both sides of the outer body of the tank body 1, two outer rings 11 are arranged, and the outer rings 11 are arranged symmetrically, the outer rings 11 are larger than the outer periphery of the tank body 1, and extend to all sides, the bottom of the outer ring 11 contacts with a transmission wheel 15, the transmission wheel 15 relies on the contact with the outer ring 11 and the weight of the tank body 1 to perform friction transmission, the weight of the tank body 1 itself will directly act on the transmission wheel 15, increasing the friction and the transmission energy, the transmission wheel 15 is arranged on the left side of the bottom of the tank body 1, and a secondary wheel 18 is arranged on the right side of the bottom of the tank body 1, the secondary wheel 18 is also in contact with the outer ring 11, so as to prevent the tank body 1 from rolling, and the transmission wheel 15 and the secondary wheel 18 clamp the tank body 1; There are two transmission wheels 15, and two auxiliary wheels 18 are also provided. The transmission wheels 15 and the auxiliary wheels 18 are symmetrically arranged. The transmission wheels 15 are connected and transmitted through the transmission shaft 14. The transmission wheel 15 on the right side is connected to the driving machine 12 through the chain plate 13, and then transmitted to the other transmission wheel 15 through the transmission shaft 14. In addition, a chain is arranged inside the chain plate 13, and the kinetic energy is transmitted to the transmission wheel 15 through the transmission gear of the driving machine 12. Two stabilizing wheels 19 are arranged between the transmission wheel 15 and the auxiliary wheel 18. The stabilizing wheels 19 contact the inner side of the outer ring, and at the same time limit the left and right shaking of the tank body 1, and limit the movement of the tank body 1 to prevent the tank body 1 from irregular movement, thereby delaying the working progress.

[0031] Furthermore, a frame 16 is provided on the right side of the tank body 1, and the frame 16 is arranged close to the tank body 1. A feed hopper 17 is arranged in the frame 16, and the feed hopper 17 is arranged obliquely as a whole and extends into the tank body 1; The outer ring 11 can effectively drive the tank body 1, and the transmission wheel 15 can stably drive the tank body 1 to drive, so that the magnetic powder inside the tank body 1 can be better stirred. The stabilizing wheel 19 limits the left and right displacement of the tank body 1 to prevent the tank body 1 from falling off the transmission wheel 15. The tank body 1 is hollow inside, a control panel 21 is arranged on the left side of the tank body 1, a motor 23 is arranged on the outside of the control panel 21, a driving tube 22 is arranged on the right side of the control panel 21, the driving tube 22 is hollow inside, and a slot having the width of a clamping plate 1 27 and a clamping plate 2 28 is arranged at the bottom right of the middle section of the driving tube 22, and extends rightward to the rightmost end of the driving tube 22; Furthermore, the motor 23 is drivingly connected to a driving shaft 23, and the driving shaft 23 is meshingly connected to a driven shaft 31 through a driving gear 29, and the driving shaft 23 and the driven shaft 31 have the same length, and also have the same length as the driving tube 22; Furthermore, a rotary blade 24 is provided inside the tank body 1, and the rotary blade 24 is fixed on the inner wall of the tank body 1. The overall length of the rotary blade 24 is only two-thirds of the tank body 1. The rotary blade 24 extends from the right side to the left side, and the end point of the left side of the rotary blade 24 and the midpoint of the driving tube 22 are on the same vertical plane. Furthermore, the driving tube 22 passes through the center of the rotating blade 24, and the length of the slot of the driving tube 22 is the same as the length of the rotating blade 24; Furthermore, the driving shaft 25 and the driven shaft 31 are both provided with threads 26, the length of the threads 26 of the driving shaft 25 and the driven shaft 31 is the same as the length of the rotary vane 24, and a clamping plate 1 27 and a clamping plate 28 are meshedly provided in the gap of the threads 26; The top of the first clamp plate 27 is provided with an engagement block of the size of the gap of the thread 26, and the second clamp plate 28 is also provided with an engagement block. The first clamp plate 27 is engaged with the thread 26 of the driving shaft 25, and the second clamp plate 28 is engaged with the thread 26 of the driven shaft 31; The first clamping plate 27 and the second clamping plate 28 are arranged in parallel, and the closing is realized by the rotation of the driving shaft 25. The driven shaft 31 is engaged with the driving shaft 25. When the driving shaft 25 rotates clockwise, the driven shaft 31 will rotate counterclockwise. When the driving shaft 25 drives the first clamping plate 27 to move forward, the driven shaft 31 will drive the second clamping plate 28 to move backward. Furthermore, the clamping plate 1 27 and the clamping plate 28 are arranged on both sides of the rotary plate 24, clamping the rotary plate 24 in the middle, and then closing is achieved by driving the motor 23; By means of the provided vane 24, when the tank body 1 rotates, the vane 24 will also rotate accordingly to stir the magnetic powder inside the tank body 1. When the magnetic powder agglomerates in the tank body 1, the magnetic powder is broken up by the rotation of the vane 24, and then broken up by the collision generated by the stirring. The provided clamping plates 1 27 and 28 increase the frequency of the collision to better break up the magnetic powder. Moreover, the clamping friction of the vane 24 by the clamping plates 1 27 and 28 can generate heat to ensure the temperature inside the tank body 1. Meanwhile, the magnetic powder is also a heat conductor. The heat generated by the vane 24 and the clamping plates 1 27 can also be conducted to the magnetic powder through contact, thereby removing the moisture inside the magnetic powder, preventing the magnetic powder from agglomerating, ensuring the drying of the magnetic powder, and reducing the heating facilities to save energy.

Claims

1. A dosing device for semi-isotropic strontium material magnetic powder processing, characterized in that: The tank body (1) is cylindrical, and outer rings (11) are arranged on both sides of the outer body of the tank body (1). Two outer rings (11) are arranged and are symmetrically arranged. The outer rings (11) are larger than the outer periphery of the tank body (1) and extend in all directions. The bottom of the outer ring (11) contacts a transmission wheel (15). The transmission wheel (15) relies on the contact with the outer ring (11) and the weight of the tank body (1) to perform friction transmission. The weight of the tank body (1) itself will directly act on the transmission wheel (15). The transmission wheel (15) is arranged on the left side of the bottom of the tank body (1). A secondary wheel (18) is arranged on the right side of the bottom of the tank body (1). The secondary wheel (18) is also in contact with the outer ring (11) to prevent the tank body (1) from rolling. The transmission wheel (15) and the secondary wheel (18) clamp the tank body (1).

2. The dosing device for semi-isotropic strontium material magnetic powder processing according to claim 1 is characterized in that: Two transmission wheels (15) are provided, and two auxiliary wheels (18) are also provided. The transmission wheels (15) and the auxiliary wheels (18) are symmetrically provided. The transmission wheels (15) are connected and transmitted via a transmission shaft (14). The transmission wheel (15) on the right side is connected to the driving machine (12) via a chain plate (13), and then transmitted to the other transmission wheel (15) via the transmission shaft (14).

3. The dosing device for processing semi-isotropic strontium magnetic powder according to claim 2, characterized in that: A chain is arranged inside the chain plate (13), and kinetic energy is transmitted to the transmission wheel (15) through the transmission gear of the driving machine (12). Two stabilizing wheels (19) are arranged between the transmission wheel (15) and the auxiliary wheel (18), and the stabilizing wheels (19) are in contact with the inner side of the outer ring.

4. The dosing device for processing semi-isotropic strontium magnetic powder according to claim 2, characterized in that: A frame (16) is arranged on the right side of the tank body (1), the frame (16) being arranged in close contact with the tank body (1), a feed hopper (17) being arranged in the frame (16), the feed hopper (17) being arranged in an inclined manner as a whole and extending into the tank body (1).

5. The dosing device for processing semi-isotropic strontium magnetic powder according to claim 2, characterized in that: The interior of the tank body (1) is hollow, a control panel (21) is arranged on the left side of the tank body (1), a motor (23) is arranged on the outside of the control panel (21), a drive tube (22) is arranged on the right side of the control panel (21), the interior of the drive tube (22) is hollow, and a slot having the same width as the first clamping plate (27) and the second clamping plate (28) is arranged at the bottom right of the middle section of the drive tube (22), and extends rightward to the rightmost end of the drive tube (22).

6. The dosing device for processing semi-isotropic strontium magnetic powder according to claim 5, characterized in that: The motor (23) is drivingly connected to a driving shaft (23), and the driving shaft (23) is meshingly connected to a driven shaft (31) via a driving gear (29). The driving shaft (23) and the driven shaft (31) have the same length, and also have the same length as the driving tube (22).

7. The dosing device for processing semi-isotropic strontium magnetic powder according to claim 1, characterized in that: A rotary vane (24) is arranged inside the tank body (1). The rotary vane (24) is fixed on the inner wall of the tank body (1). The overall length of the rotary vane (24) is only two-thirds of the tank body (1). The rotary vane (24) is extended from the right side to the left side. The end point of the left side of the rotary vane (24) and the midpoint of the driving tube (22) are located on the same vertical plane. The driving tube (22) passes through the center of the rotary vane (24). The length of the slot of the driving tube (22) is the same as the length of the rotary vane (24).

8. The dosing device for processing semi-isotropic strontium magnetic powder according to claim 1, characterized in that: The driving shaft (25) and the driven shaft (31) are both provided with threads (26), the length of the threads (26) of the driving shaft (25) and the driven shaft (31) being the same as the length of the rotary vane (24), and a first clamping plate (27) and a second clamping plate (28) being meshedly provided in the gap of the threads (26).

9. The dosing device for processing semi-isotropic strontium magnetic powder according to claim 6, characterized in that: The top of the first clamp (27) is provided with an engagement block of the same size as the gap of the thread (26), and the second clamp (28) is also provided with an engagement block. The first clamp (27) is engaged with the thread (26) of the driving shaft (25), and the second clamp (28) is engaged with the thread (26) of the driven shaft (31).

10. The dosing device for processing semi-isotropic strontium magnetic powder according to claim 6, characterized in that: The first clamping plate (27) and the second clamping plate (28) are arranged in parallel. The first clamping plate (27) and the second clamping plate (28) are arranged on both sides of the rotary plate (24) to clamp the rotary plate (24) in the middle.

Citation Information

Patent Citations

  • Magnetic powder feeding device

    CN116212719A