Material demagnetizing device
By introducing an airflow heat dissipation design of a support component and a guide structure into the material demagnetization device, combined with improved sealing of inclined inserts and rotating structures, the heat dissipation and sealing problems of the device are solved, achieving efficient heat dissipation and improved sealing effects.
Patent Information
- Application Number
- CN202422198506.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-09
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2034-09-09
AI Technical Summary
The existing material demagnetization device generates high temperature during the demagnetization process, which affects its service life. In addition, the sealing effect of the feeding port is poor and is easily reduced due to vibration.
A support assembly is designed, which includes a magnetic tube and a guide structure. The airflow is used to guide the heat dissipation, and the sealing effect of the sealing cover is improved by the inclined insert and the rotating structure. The heat dissipation and sealing performance are enhanced by combining with a fan.
It effectively improves the heat dissipation efficiency and sealing effect of the demagnetization device, prolongs its service life, and avoids the degradation of airtightness under the influence of vibration.
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Figure CN223407260U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of demagnetization, in particular to a material demagnetization device. Background Art
[0002] Nano powder material demagnetization equipment is a device specially used to remove magnetic impurities in nano powder materials. This equipment is designed to process metastable intermediate substances with extremely small particle sizes (1 to 100 nm), such as metals, semiconductors, polymers, ceramic ultrafine powders, etc. These materials are difficult to produce by traditional mechanical methods, and usually adopt physical or chemical preparation methods. Nano powder materials are widely used in the material deironing of many high-tech, cutting-edge and precision products, especially for the deironing of alumina diaphragm slurry and lithium battery slurry. The working principle of the equipment includes using electromagnets to generate magnetism and adsorb magnetic foreign matter in the material, thereby removing magnetic impurities in the material. However, the common material demagnetization devices on the market will emit higher temperatures in the process of continuous demagnetization, affecting the service life, and the sealing plate of the feeding port is prone to slight displacement after encountering the vibration of the vibration motor, resulting in a decrease in the sealing effect and affecting the sealing performance. Utility Model Content
[0003] The disclosed embodiment relates to a material demagnetization device, wherein when its supporting assembly is in operation, if there is wind circulation, the wind passes through a guide, and the guide controls the collection of the circulating wind, so that the wind is guided and circulated inside the inner groove, taking away the heat emitted by the magnetic tube. Even when there is no wind, the heat of the magnetic tube itself enters the interior of the inner groove and is then discharged through the guide, thereby effectively improving the heat dissipation efficiency and heat dissipation life.
[0004] According to a first aspect of the present disclosure, a material demagnetization device is provided, which specifically includes: a support assembly; a magnetic tube is provided at the top of the support assembly, and inner grooves arranged evenly are provided inside the magnetic tube, and the inner grooves are annular structures; two guides are fixed on both sides of the magnetic tube, and the two guides on the same side are symmetrically arranged, and the outer sides of the guides are inclined structures, and the guides of the tubular structure are connected to the interior of the inner grooves; a sealing cover structure; the sealing cover structure is at the top of the support assembly, and an insertion structure of a flexible rubber material is fixed to the bottom of the sealing cover structure, and a force-bearing groove is provided inside the insertion structure, and the bottom edge position of the force-bearing groove is an inclined structure, and a jacking structure is inserted into the force-bearing groove, and the side of the jacking structure is an inclined structure.
[0005] In at least some embodiments, an electrical box is fixed to the front end of the support assembly, a feeding port is fixed to the top end of the magnetic tube, a sealing cover structure is installed at the top end of the feeding port, an insertion structure and a jacking structure are inserted into the interior of the feeding port, and the magnetic tube is connected to the electrical box through a line; a forked bucket assembly is fixed to the bottom of the support assembly, a flip plate that can control the discharge position is provided inside the forked bucket assembly, the interior of the forked bucket assembly is connected to the interior of the magnetic tube, a top plate assembly is fixed to the outside of the feeding port of the magnetic tube, and the bottom of the top plate assembly is in contact with the top of the magnetic tube through a spring; a vibration motor is fixed to both sides of the top of the top plate assembly by bolts, and an arc-shaped positioning groove is provided on both sides of the feeding port of the magnetic tube.
[0006] In at least some embodiments, a pulling member structure is fixed to the top of the sealing cover structure, the middle position of the pulling member structure is a circular ring structure, a positioning plate structure is fixed on both sides of the bottom of the sealing cover structure, and the arc-shaped positioning plate structure is inserted into the interior of the positioning groove; two outer grooves are provided on the outer side of the insertion structure, the outer grooves with an arc-shaped cross-section are circular structures, and a threaded hole is provided in the middle position of the sealing cover structure; the top of the jacking structure is connected to the rotating structure through a rotating shaft, and the rotating structure with threads on the outside is inserted into the inside of the threaded hole and rotates freely, the rotating structure is inserted in the middle position of the pulling member structure, and a control member is fixed on both sides of the top of the rotating structure.
[0007] The utility model provides a material demagnetization device, which has the following beneficial effects:
[0008] When the support assembly is in operation, if there is wind circulation, the wind passes through the guide, and the guide controls the collection of the circulating wind, so that the wind is guided and circulated inside the inner groove, taking away the heat emitted by the magnetic tube. Even when there is no wind, the heat of the magnetic tube itself enters the inner groove and is then discharged through the guide, effectively improving the heat dissipation efficiency and heat dissipation life.
[0009] When sealing the feeding port, the insertion structure can be controlled to be inserted into the inside of the feeding port, and the sealing cover structure is closed above the feeding port. Then, the rotating structure is controlled to rotate by the operating member. When the rotating structure rotates inside the threaded hole, the pushing structure is pulled up together, so that the pushing structure can be displaced inside the force groove. Since the contact surface is an inclined structure, the pushing structure pushes the insertion structure made of flexible rubber material to expand under force, thereby improving the sealing effect of the insertion structure and avoiding affecting the sealing effect of the feeding port after the vibration motor is running. BRIEF DESCRIPTION OF THE DRAWINGS
[0010] In order to more clearly illustrate the technical solutions of the embodiments of the present utility model, the drawings of the embodiments will be briefly introduced below.
[0011] The drawings described below only relate to some embodiments of the present invention, but are not intended to limit the present invention.
[0012] In the attached figure:
[0013] Figure 1 Shows a schematic diagram of the three-dimensional structure of the present application;
[0014] Figure 2 Shows a bottom-up structural schematic diagram of the present application;
[0015] Figure 3 Shows a schematic diagram of the exploded three-dimensional structure of the present application;
[0016] Figure 4 Shows a schematic diagram of the three-dimensional structure of the support assembly of the present application;
[0017] Figure 5 The figure shows a schematic diagram of the exploded three-dimensional structure of the sealing cover structure of the present application;
[0018] Figure 6 A schematic diagram of the exploded bottom view of the sealing cover structure of the present application is shown;
[0019] Reference Signs List
[0020] 1. Support assembly; 101. Electric box; 102. Magnetic cylinder; 103. Inner tank; 104. Guide; 105. Forked bucket assembly; 106. Top plate assembly; 107. Vibration motor; 108. Positioning slot;
[0021] 2. Sealing cover structure; 201. Pulling member structure; 202. Positioning plate structure; 203. Insertion structure; 204. Outer groove; 205. Force groove; 206. Pushing structure; 207. Rotating structure; 208. Control member. DETAILED DESCRIPTION
[0022] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions of the embodiments of the present invention will be clearly and completely described below in conjunction with the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of them. Based on the described 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.
[0023] Example 1: Please refer to Figures 1 to 6 :
[0024] The utility model proposes a material demagnetization device, comprising: a support component 1; a magnetic tube 102 is provided at the top of the support component 1, and inner grooves 103 arranged evenly are opened inside the magnetic tube 102. The inner grooves 103 are annular structures and penetrate the interior of the magnetic tube 102 so that the heat emitted by the magnetic tube 102 can be quickly discharged. At the same time, the heat emitted by the magnetic tube 102 can also be taken away by wind. Two guides 104 are fixed on both sides of the magnetic tube 102. The two guides 104 on the same side are symmetrically arranged. The outer side of the guide 104 is an inclined structure. The guide 104 with a tubular structure is connected to the interior of the inner groove 103. When the wind flows, it is controlled by the guide 104 to converge and flow, so that the wind enters the inner groove 103. The internal circulation is fast, thereby improving the heat dissipation effect; the sealing cover structure 2; the sealing cover structure 2 is at the top of the supporting component 1, and an insertion structure 203 made of flexible rubber is fixed to the bottom of the sealing cover structure 2. A force groove 205 is opened through the interior of the insertion structure 203, and the bottom edge position of the force groove 205 is an inclined structure. A jacking structure 206 is inserted into the interior of the force groove 205, and the side of the jacking structure 206 is an inclined structure. After the insertion structure 203 is inserted into the interior of the feeding port, the jacking structure 206 is controlled to rise by the rotating structure 207, so that the jacking structure 206 is in the internal displacement of the force groove 205, and the insertion structure 203 is pushed and expanded to improve the sealing effect.
[0025] In the embodiment of the present disclosure, Figure 3 and Figure 4 As shown, an electric box 101 is fixed to the front end of the support assembly 1, a feeding port is fixed to the top end of the magnetic tube 102, a sealing cover structure 2 is installed on the top end of the feeding port to seal the feeding port, an insertion structure 203 and a jacking structure 206 are inserted into the inside of the feeding port, and the magnetic tube 102 is connected to the electric box 101 through a line; a forked bucket assembly 105 is fixed to the bottom of the support assembly 1, and a flip plate for controlling the discharge position is provided inside the forked bucket assembly 105, and the inside of the forked bucket assembly 105 is connected to the magnetic tube 102. The interior is connected, and the materials and the removed magnetic substances can be discharged separately. A top plate assembly 106 is fixed to the outside of the feeding port of the magnetic tube 102, and the bottom of the top plate assembly 106 is in contact with the top of the magnetic tube 102 through a spring; a vibration motor 107 is fixed to both sides of the top of the top plate assembly 106 by bolts to generate vibration force, and an arc-shaped positioning groove 108 is provided on both sides of the feeding port of the magnetic tube 102 for inserting the positioning plate structure 202 to position and install the sealing cover structure 2 for use.
[0026] In the embodiment of the present disclosure, Figure 5 and Figure 6As shown, a pulling structure 201 is fixed to the top of the sealing cover structure 2, and the middle position of the pulling structure 201 is a circular ring structure, which is convenient for pulling the sealing cover structure 2 to rise and take it out. A positioning plate structure 202 is fixed on both sides of the bottom of the sealing cover structure 2, and the arc-shaped positioning plate structure 202 is inserted into the interior of the positioning groove 108 to improve the positioning connection effect; two outer grooves 204 are provided on the outside of the insertion structure 203, and the outer grooves 204 with an arc-shaped cross-section are circular structures, which can be separated and sealed, and a threaded hole is provided in the middle position of the sealing cover structure 2; the top of the pushing structure 206 is connected to the rotating structure 207 through a rotating shaft, and the rotating structure 207 with a thread on the outside is inserted into the inside of the threaded hole and rotates freely. After the rotating structure 207 rotates, the pushing structure 206 is pulled up, and the rotating structure 207 is inserted in the middle position of the pulling structure 201. A control member 208 is fixed on both sides of the top of the rotating structure 207, which is convenient for controlling the rotation of the rotating structure 207.
[0027] In the second embodiment, based on the first embodiment, a fan may be installed at the front end of the support assembly 1 so that the wind generated by the fan directly enters the interior of the guide 104 , thereby improving the heat dissipation effect on the magnetic cylinder 102 .
[0028] The working principle of this embodiment is as follows: first, the support assembly 1 is controlled to be in an appropriate position for use, then the sealing cover structure 2 is opened, and the nano-powder material that needs to be demagnetized is added to the inside of the feeding port, and then the sealing cover structure 2 is controlled to be installed above the feeding port so that the insertion structure 203 is inserted into the inside of the feeding port, and the rotating structure 207 is controlled to rotate by the operating member 208. The rotating structure 207 rotates and rises inside the threaded hole, pulling the pushing structure 206 to move upward together, and the pushing structure 206 moves inside the force-bearing groove 205. Since the contact surface between the force-bearing groove 205 and the pushing structure 206 is an inclined structure, after the pushing structure 206 is displaced, the pushing insertion structure 203 expands, thereby improving the fit effect with the inside of the feeding port and preventing the vibration force of the vibration motor 107 from affecting the sealing effect. Then, the overall operation is controlled to demagnetize the nano-powder material inside the support assembly 1. During the demagnetization, the wind passes through the inside of the guide 104 and enters the inside of the inner groove 103 for circulation, and then drives the heat emitted by the magnetic tube 102 to be quickly discharged, thereby improving the heat dissipation efficiency.
[0029] In this article, there are several points to note:
[0030] 1. The drawings of the embodiments of the present disclosure only relate to the structures related to the embodiments of the present disclosure. Other structures may refer to conventional designs.
[0031] 2. In the absence of conflict, the embodiments of the present disclosure and the features therein may be combined with each other to form new embodiments.
[0032] The above are only specific embodiments of the present disclosure, but the scope of protection of the present disclosure is not limited thereto. Any changes or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in this disclosure should be included in the scope of protection of the present disclosure. Therefore, the scope of protection of the present disclosure should be based on the scope of protection of the claims.
Claims
1. A material demagnetization device, characterized in that: include: A support assembly (1); a magnetic tube (102) is provided at the top of the support assembly (1); the interior of the magnetic tube (102) is provided with evenly arranged inner grooves (103); the inner grooves (103) are of an annular structure; two guides (104) are fixed on both sides of the magnetic tube (102); the two guides (104) on the same side are symmetrically arranged; the outer sides of the guides (104) are of an inclined structure; the guides (104) of the tubular structure are connected to the interior of the inner groove (103); The sealing cover structure (2) is located at the top of the supporting assembly (1); an insert structure (203) made of a flexible rubber material is fixed to the bottom of the sealing cover structure (2); a force-bearing groove (205) is provided through the interior of the insert structure (203); the bottom edge of the force-bearing groove (205) is an inclined structure; a jacking structure (206) is inserted into the interior of the force-bearing groove (205); and the side of the jacking structure (206) is an inclined structure.
2. A material demagnetization device according to claim 1, characterized in that: An electrical box (101) is fixed to the front end of the support assembly (1), a feeding port is fixed to the top end of the magnetic tube (102), a sealing cover structure (2) is installed at the top end of the feeding port, an insertion structure (203) and a push-up structure (206) are inserted into the feeding port, and the magnetic tube (102) is connected to the electrical box (101) via a line.
3. A material demagnetization device according to claim 2, characterized in that: A forked bucket assembly (105) is fixed to the bottom of the support assembly (1), a flip plate capable of controlling the discharge position is provided inside the forked bucket assembly (105), the interior of the forked bucket assembly (105) is communicated with the interior of the magnetic cylinder (102), a top plate assembly (106) is fixed to the outside of the feeding port of the magnetic cylinder (102), and the bottom of the top plate assembly (106) is in contact with the top of the magnetic cylinder (102) via a spring.
4. A material demagnetization device according to claim 3, characterized in that: A vibration motor (107) is fixed to both sides of the top of the top plate assembly (106) by bolts, and an arc-shaped positioning groove (108) is provided on both sides of the feeding port of the magnetic system cylinder (102).
5. A material demagnetization device according to claim 4, characterized in that: A pull member structure (201) is fixed to the top of the sealing cover structure (2), the middle position of the pull member structure (201) is a circular ring structure, and a positioning plate structure (202) is fixed to both sides of the bottom of the sealing cover structure (2), and the arc-shaped positioning plate structure (202) is inserted into the interior of the positioning groove (108).
6. A material demagnetization device according to claim 5, characterized in that: Two outer grooves (204) are provided on the outer side of the insertion structure (203), and the outer grooves (204) with an arc-shaped cross section are circular in structure. A threaded hole is provided in the middle of the sealing cover structure (2).
7. A material demagnetization device according to claim 6, characterized in that: The top end of the pushing structure (206) is connected to the rotating structure (207) via a rotating shaft. The rotating structure (207) with a threaded exterior is inserted into the threaded hole and rotates freely. The rotating structure (207) is inserted into the middle position of the pulling structure (201). A control member (208) is fixed on both sides of the top end of the rotating structure (207).