A collection system for magnetic powder cores
By controlling the movement of the magnetic powder core through an inclined slide rail and an intermittent collection device, the problem of edge breakage of the magnetic powder core caused by collision during processing is solved, and safe and efficient cooling and collection of the magnetic powder core is achieved.
Patent Information
- Application Number
- CN202410312273.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-03-19
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2044-03-19
AI Technical Summary
During the processing of magnetic powder cores, the high-temperature and fragile magnetic powder cores are easily broken at the edges due to collisions during movement, and the operation is inconvenient, affecting subsequent processing.
Adopting obliquely set slide rails and intermittent collection devices, the intermittent movement of the distribution bin is driven by the driving parts to control the movement direction of the magnetic powder core to avoid collision. The polygonal rotating parts and storage bin are used for cooling and collection of magnetic powder.
It effectively avoids collision and rupture between magnetic powder cores, provides sufficient cooling time, simplifies the operation process, and reduces the risk and cost of operators.
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Figure CN118366774B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of magnetic powder core processing, in particular to a magnetic powder core collection system. Background Art
[0002] Magnetic powder core is a ring-shaped material made by mixing ferromagnetic powder and insulating medium.
[0003] The magnetic powder core is pressed by a press. During the processing, in order to ensure the continuity of the pressed magnetic powder core, a cylinder is usually arranged on the side of the mold of the press. The cylinder pushes the pressed magnetic powder core to move out of the cavity. In order to ensure the stability of the transmission, a slide is also arranged in front of the cavity. The slide guides the magnetic powder core to move to the operator's operating station for subsequent normal processing.
[0004] However, since the surface of the pressed magnetic powder core is hot and the core body is relatively fragile, if the magnetic powder core is not moved to other workstations in time, it is very easy for the front and rear magnetic powder cores to collide with each other, causing the edges of the two magnetic powder cores to break due to the collision. In addition, due to the high temperature of its surface, it is inconvenient for the operator to grab it in the first time, resulting in the operator having to wear additional gloves, and the operation is highly complicated. Summary of the Invention
[0005] Based on this, the purpose of the present invention is to provide a magnetic powder core collection system to solve the technical problems in the background technology that the movement of the magnetic powder core is inconvenient to operate and the edges of the two magnetic powder cores are easily broken due to collision.
[0006] A magnetic powder core collection system according to an embodiment of the present invention includes a machine platform for pressing magnetic powder cores, a telescopic device provided on the machine platform, and an intermittent collection device facing the telescopic device, wherein the telescopic device is used to move the magnetic powder cores to the intermittent collection device for intermittent movement;
[0007] The intermittent collecting device includes a material distribution rack, a driving member, a slide rail obliquely connected to the machine table, and a material distribution box provided on the slide rail, the material distribution rack is rotatably connected to the material distribution box, the external port of the material distribution rack abuts against the inner wall of the material distribution box, so as to form at least two oppositely arranged material distribution bins between the outer wall of the material distribution rack and the inner wall of the material distribution box, and the material distribution bin is used to store one of the magnetic powder cores;
[0008] Two opposite sides of the material distribution box are respectively provided with through holes that match the material distribution bin, one of the through holes faces the upper transmission part of the slide rail, and the other through hole faces the lower transmission part of the slide rail;
[0009] Among them, the output end of the driving member is connected to the distribution box, which is used to drive at least two distribution bins in the distribution box to rotate intermittently relative to the through hole, so that the magnetic powder core located in one of the distribution bins can be intermittently moved to the lower transmission part for transmission.
[0010] Furthermore, the collection system further comprises a carrying and rotating device, and the carrying and rotating device is directly opposite to the lower transmission part;
[0011] Wherein, the bearing rotation device includes a rotating member, and the rotating member is used to drive the magnetic powder core to move circumferentially along the outer periphery of the rotating member.
[0012] Furthermore, the bearing and rotating device includes a support platform, and the support platform includes a fixing member and the rotating member, and the fixing member is opposite to the lower transmission part so that the edge of the lower transmission part overlaps with the fixing member.
[0013] Furthermore, the center of the fixed part coincides with the center of the rotating part, and the fixed part is arranged inside the rotating part to drive the magnetic powder core transmitted from the lower transmission part to move through the fixed part to the rotating part for circumferential motion.
[0014] Furthermore, the load-carrying rotating device further comprises at least one guide member, the guide member being provided at an edge of the lower transmission portion and being curved along the rotation direction of the rotating member;
[0015] Wherein, one end of the guide member away from the lower transmission part is opposite to the radial center portion of the rotating member, and the radial center portion is located between the outer edge and the inner edge of the rotating member.
[0016] Furthermore, the material distribution rack includes a polygonal rotating member and a plurality of supporting members, the polygonal rotating member includes a plurality of side edges, and a supporting member is provided at opposite ends of each side edge to form at least one material distribution bin between two adjacent supporting members;
[0017] Wherein, the polygonal rotating member is connected to the driving member.
[0018] Furthermore, the intermittent collecting device further comprises a storage bin and an elastic component, and the storage bin is in communication with each of the sub-bins;
[0019] The elastic component is used to drive the storage bin and the distribution bin to be connected or closed, so that the magnetic powder on the magnetic powder core enters the storage bin for storage.
[0020] Furthermore, the elastic component includes a support plate and an elastic member, the support plate is connected to the bottom of the distribution bin through the elastic member, and the elastic member is used to make the support plate reciprocate relative to the distribution bin;
[0021] Wherein, the support member is further provided with a transmission channel connected to the sub-bin, and the transmission channel is arranged under the support plate.
[0022] Furthermore, an oblique piece is provided on one side edge of the transmission channel close to the support plate, and the oblique piece is used to guide the magnetic powder.
[0023] Furthermore, the size of the support plate gradually decreases from one end close to the oblique member to the other end.
[0024] Compared with the prior art: In a magnetic powder core collection system proposed in the present invention, the movement direction of the magnetic powder core can be controlled by an obliquely arranged slide rail, and in the process of the magnetic powder core sliding on the slide rail, the intermittent collection device on the slide rail is utilized so that when the magnetic powder core enters the upper transmission part of the slide rail, it will pass through a through hole into the distribution box, and at least two distribution bins formed between the distribution box and the distribution rack are utilized so that the first magnetic powder core can enter a distribution bin, and the intermittent movement of the distribution bin is driven by the driving member so that the distribution bin with the first magnetic powder core intermittently moves to another through hole to move the first magnetic powder core to the lower transmission part for transmission. At this time, the other distribution bin will face the second magnetic powder core to store the second magnetic powder core, and through intermittent rotation, collision between the two magnetic powder cores can be avoided, thereby solving the technical problem that the edges of the two magnetic powder cores are broken due to collision due to the high temperature of the surface of the magnetic powder core. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 A perspective view of a magnetic powder core collection system according to an embodiment of the present invention;
[0026] Figure 2 A perspective view of a magnetic powder core collection system according to an embodiment of the present invention from another perspective;
[0027] Figure 3 An exploded view of an intermittent collection device in one embodiment of the present invention;
[0028] Figure 4 This is a perspective view of an intermittent collection device in one embodiment of the present invention. Description of the drawings:
[0030] 100. Machine; 200. Telescopic device; 300. Intermittent collecting device; 310. Material distribution rack; 311. Polygonal rotating member; 312. Support member; 320. Driving member; 330. Slide rail; 331. Upper transmission part; 332. Lower transmission part; 340. Material distribution box; 350. Material distribution bin; 360. Through hole; 370. Material storage bin; 380. Elastic component; 381. Support plate; 382. Elastic member; 390. Transmission channel; 3100. Oblique member; 400. Magnetic powder core; 500. Load-bearing rotating device; 510. Rotating member; 520. Fixing member; 530. Guide member.
[0031] The following specific embodiments will further illustrate the present invention in conjunction with the above-mentioned drawings. DETAILED DESCRIPTION
[0032] To facilitate understanding of the present invention, the present invention will be described more fully below with reference to the accompanying drawings. The drawings illustrate several embodiments of the present invention. However, the present invention may be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and comprehensive understanding of the present invention.
[0033] It should be noted that when an element is referred to as being "fixed to" another element, it may be directly on the other element or there may be an intermediate element. When an element is referred to as being "connected to" another element, it may be directly connected to the other element or there may be an intermediate element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only.
[0034] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those skilled in the art to which this invention pertains. The terms used in this specification of the present invention are for the purpose of describing specific embodiments only and are not intended to limit the present invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.
[0035] See also Figure 1-Figure 4 , shown is a magnetic powder core collection system in the first embodiment of the present invention, including a machine 100 for pressing the magnetic powder core 400, a telescopic device 200 provided on the machine 100, and an intermittent collection device 300 facing the telescopic device 200, the telescopic device 200 is used to move the magnetic powder core 400 into the intermittent collection device 300 for intermittent movement.
[0036] It should be noted that the machine 100 in this embodiment may include a forming mold therein, through which the magnetic powder core 400 is pressed, and during the process of pressing the magnetic powder core 400, a feeding conduit is provided facing the forming mold for feeding processing. Since feeding and forming belong to conventional existing technologies in this field, they are not specifically explained here.
[0037] Furthermore, in order to ensure the batch pressing of the magnetic powder cores 400, in this embodiment, the machine 100 is provided with a telescopic device 200, and the telescopic device 200 can be specifically a telescopic cylinder, which pushes the formed magnetic powder core 400 to move outside the mold cavity. In some preferred embodiments, in order to realize the coordinated use of the machine 100 and the telescopic device 200, a controller can be arranged on the machine 100, and the controller can adopt a PLC controller, that is, after the magnetic powder core 400 is formed, the telescopic device 200 pushes the magnetic powder core 400 to move. At this time, the mold is in a standby state. When the movement is completed, the mold presses the next magnetic powder core 400.
[0038] Since, in the prior art, the surface of the magnetic powder core 400 that has just been pressed and formed has a high temperature, in order to facilitate the operator to perform related operations, in this embodiment, an intermittent collecting device 300 is provided so that the magnetic powder core 400 can be intermittently moved. Specifically, the intermittent collecting device 300 includes a distribution rack 310, a driving member 320, a slide rail 330 obliquely connected to the machine table 100, and a distribution box 340 provided on the slide rail 330. The distribution rack 310 is rotatably connected to the distribution box 340, and the external port of the distribution rack 310 is in conflict with the inner wall of the distribution box 340 to form at least two oppositely arranged distribution bins 350 between the outer wall of the distribution rack 310 and the inner wall of the distribution box 340. The distribution bin 350 is used to store a magnetic powder core 400.
[0039] Two opposite sides of the material distribution box 340 are respectively provided with through holes 360 that match the material distribution bin 350. One through hole 360 faces the upper transmission part 331 of the slide rail 330, and the other through hole 360 faces the lower transmission part 332 of the slide rail 330.
[0040] Among them, the output end of the driving member 320 is connected to the distribution box 340, which is used to drive at least two distribution bins 350 in the distribution box 340 to rotate intermittently relative to the through hole 360, so that a magnetic powder core 400 located in a distribution bin 350 is intermittently moved to the lower transmission part 332 for transmission.
[0041] That is to say, in actual conditions, the movement direction of the magnetic powder core 400 can be controlled by the obliquely arranged slide rail 330. Specifically, the slide rail 330 can be connected to the machine 100 obliquely downward, that is, the gravity of the magnetic powder core 400 allows the magnetic powder core 400 to slide on the slide rail 330. Furthermore, the upper transmission part 331 of the slide rail 330 is connected to the machine 100. When the magnetic powder core 400 enters the upper transmission part 331, it will pass through a through hole 360 into the distribution box 340, and at least two distribution bins 350 formed between the distribution box 340 and the distribution rack 310 are used to make the first magnetic powder core 400 slide on the slide rail 330. The core 400 can enter a sub-bin 350, and the intermittent movement of the sub-bin 350 is driven by the driving member 320, so that the sub-bin 350 with the first magnetic powder core 400 intermittently moves to another through hole 360 to move the first magnetic powder core 400 to the lower transmission part 332 for transmission. At this time, the other sub-bin 350 will face the second magnetic powder core 400 to store the second magnetic powder core 400. Through intermittent rotation, collision between the two magnetic powder cores 400 is avoided, which solves the technical problem that the edges of the two magnetic powder cores 400 are broken due to collision due to the high temperature of the surface of the magnetic powder core 400.
[0042] The examples are not limiting. To facilitate understanding of this case, they are now named as the first through hole, the second through hole, the first distribution bin and the first distribution bin. The first through hole is opposite to the upper transmission part 331, and the second through hole is opposite to the lower transmission part 332. When in working state, the first distribution bin and the first through hole are opposite, and the first distribution bin and the second through hole are opposite. After the first magnetic powder core 400 passes through the first through hole and enters the first distribution bin, the distribution rack 310 is driven to rotate by the driving member 320. At this time, the first distribution bin will rotate to the second through hole, and the first magnetic powder core 400 in the first distribution bin will be affected by gravity and will be transmitted to the lower transmission part 332. The first distribution bin will rotate to the first through hole, and the second magnetic powder core 400 will be stored. It should be noted that the driving member 320 in this embodiment can adopt a servo motor to drive the distribution rack 310 to rotate intermittently.
[0043] Furthermore, since the surface of the newly formed magnetic powder core 400 is at a high temperature, in order to facilitate subsequent operations by the operator, in some preferred embodiments, the material distribution rack 310 includes a polygonal rotating member 311 and a plurality of supporting members 312. The polygonal rotating member 311 includes a plurality of side edges, and a supporting member 312 is provided at opposite ends of each side edge, so as to form at least one material distribution bin 350 between two adjacent supporting members 312.
[0044] The polygonal rotating member 311 is connected to the driving member 320 .
[0045] Specifically, the polygonal rotating part 311 can adopt a hexagonal, octagonal or nonagonal structure with a hollow center. The hexagonal, octagonal or nonagonal structure in this embodiment does not limit the number of side edges in the polygonal rotating part 311. It can also be other numbers, which is not specifically limited here.
[0046] That is, through the polygonal rotating part 311 and multiple supporting parts 312, multiple distribution bins 350 are formed in the distribution box 340, specifically, there can be more than two distribution bins 350, that is, through the setting of multiple distribution bins 350, when the distribution rack 310 is rotating, it can perform multiple intermittent movements and then be transferred to the lower transmission part 332. Compared with two distribution bins 350, the setting of multiple distribution bins 350 allows the newly formed magnetic powder core 400 to have sufficient cooling time for cooling, avoiding the problem of inability to operate due to high surface temperature, and at the same time avoiding the situation where the operator needs to wear gloves due to high temperature, further saving operating costs.
[0047] In some other preferred embodiments, multiple ventilation holes can be opened on the outer surface of the distribution box 340. It should be noted that the ventilation holes are not shown in the drawings, and they can be adjusted accordingly according to actual conditions to increase the cooling rate of the magnetic powder core 400.
[0048] In addition, it should be noted that since the magnetic powder core 400 is formed by pressing with a mold, there is residual magnetic powder on its surface. In this embodiment, the intermittent collection device 300 further includes a storage bin 370 and an elastic component 380. The storage bin 370 is interconnected with each sub-bin 350.
[0049] The elastic component 380 is used to drive the storage bin 370 and the distribution bin 350 to connect or close, so that the magnetic powder on the magnetic powder core 400 enters the storage bin 370 for storage;
[0050] Specifically, the elastic assembly 380 includes a support plate 381 and an elastic member 382. The support plate 381 is connected to the bottom of the distribution bin 350 via the elastic member 382. The elastic member 382 is used to make the support plate 381 reciprocate relative to the distribution bin 350. It should be noted that the elastic member 382 can be a spring with elastic function in the prior art.
[0051] The support member 312 is further provided with a transmission channel 390 connected to the sub-bin 350 , and the transmission channel 390 is provided under the support plate 381 .
[0052] When the magnetic powder core 400 enters the distribution bin 350, the magnetic powder core 400 will fall to the surface of the support plate 381, and the support plate 381 will move downward. That is, due to the influence of gravity, the magnetic powder on the surface of the magnetic powder core 400 will vibrate and fall to the surface of the support plate 381. After the support plate 381 is affected by the gravity of the magnetic powder core 400, it will move to the position of the transmission channel 390, and use the transmission channel 390 to transmit the magnetic powder so that it is collected in the storage bin 370, thereby completing the collection. It should be noted that since the storage bin 370 and multiple distribution bins 350 are connected, after each distribution bin 350 collects a magnetic powder core 400, its magnetic powder will be collected in the storage bin 370 to complete the collection.
[0053] Specifically, since the slide rail 330 is inclined, that is, the storage bin 370 is also inclined, the inclined surface can be used to allow the magnetic powder to accumulate at the bottom end of the storage bin 370. Specifically, a box body with a pulling function can be set on the storage bin 370.
[0054] Furthermore, in order to facilitate the precise conduction of the magnetic powder into the storage bin 370, in this embodiment, an oblique piece 3100 is provided on one side edge of the transmission channel 390 close to the support plate 381. The oblique piece 3100 is used to guide the magnetic powder, that is, when the magnetic powder core 400 is placed on the surface of the support plate 381, the support plate 381 will move downward, and when it moves to a certain distance, the interaction between the support plate 381 and the oblique piece 3100 makes the support plate 381 exactly located at the port of the transmission channel 390.
[0055] In some preferred embodiments, the size of the support plate 381 gradually decreases from one end close to the oblique member 3100 to the other end, that is, the support plate 381 has an arched structure, and the support plate 381 has a high top and a low bottom, which is more conducive to the magnetic powder falling into the transmission channel 390 for transmission.
[0056] In some other preferred embodiments, the collection system further includes a carrying and rotating device 500 , and the carrying and rotating device 500 is directly facing the lower transmission part 332 ;
[0057] The bearing rotation device 500 includes a rotating member 510 , and the rotating member 510 is used to drive the magnetic powder core 400 to perform circumferential motion along the outer periphery of the rotating member 510 .
[0058] Specifically, the supporting rotating device 500 includes a support platform, which includes a fixed part 520 and a rotating part 510. The fixed part 520 is opposite to the lower transmission part 332 so that the edge of the lower transmission part 332 overlaps the fixed part 520, and the center of the fixed part 520 coincides with the center of the rotating part 510. The fixed part 520 is arranged inside the rotating part 510 to drive a magnetic powder core 400 transmitted from the lower transmission part 332 to pass through the fixed part 520 to move to the rotating part 510 for circumferential motion.
[0059] It should be noted that, in order to realize the rotation of the rotating member 510, it can be driven by a servo motor. It should be noted that, in this embodiment, the servo motor does not limit the power source, and it can also use other power sources, which is not particularly limited here.
[0060] Furthermore, the carrying and rotating device 500 further includes at least one guide member 530 , which is disposed at an edge of the lower transmission portion 332 and is curved along the rotation direction of the rotating member 510 ;
[0061] One end of the guide member 530 away from the lower transmission portion 332 is opposite to the radial center of the rotating member 510 , and the radial center is located between the outer edge and the inner edge of the rotating member 510 .
[0062] The guide member 530 can buffer the movement of the magnetic powder core 400. At the same time, it should be noted that the circumferential movement of the rotating member 510 further extends the cooling time of the magnetic powder core 400, ensuring that the operator has enough time to wait for the magnetic powder core 400 to cool.
[0063] In summary, the present embodiment provides a collection system for magnetic powder cores 400. The movement direction of the magnetic powder cores 400 can be controlled by an obliquely arranged slide rail 330. In addition, when the magnetic powder cores 400 slide on the slide rail 330, the intermittent collecting device 300 on the slide rail 330 is used to make the magnetic powder cores 400 pass through a through hole 360 and enter the distribution box 340 after entering the upper transmission part 331 of the slide rail 330. At least two distribution bins 350 formed between the distribution box 340 and the distribution rack 310 are used to make the first magnetic powder core 400 enter a distribution bin 350. 0, the intermittent movement of the distribution bin 350 is driven by the driving member 320, so that the distribution bin 350 with the first magnetic powder core 400 intermittently moves to another through hole 360, so as to move the first magnetic powder core 400 to the lower transmission part 332 for transmission. At this time, the other distribution bin 350 will face the second magnetic powder core 400 to store the second magnetic powder core 400. Through intermittent rotation, collision between the two magnetic powder cores 400 is avoided, and the technical problem of the edge cracking of the two magnetic powder cores 400 due to collision caused by the high temperature of the surface of the magnetic powder core 400 is solved.
[0064] Throughout this specification, reference to terms such as "one embodiment," "some embodiments," "examples," "specific examples," or "some examples" means that a specific feature, structure, material, or characteristic described in conjunction with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, schematic representations of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
[0065] The above embodiments merely illustrate several implementations of the present invention, and while their descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the present invention. It should be noted that a person skilled in the art would be able to make numerous modifications and improvements without departing from the spirit of the present invention, all of which fall within the scope of protection of the present invention. Therefore, the scope of protection of the present invention shall be determined by the appended claims.
Claims
1. A magnetic powder core collection system, characterized in that: The invention comprises a machine platform for pressing magnetic powder cores, a telescopic device provided on the machine platform, and an intermittent collecting device facing the telescopic device, wherein the telescopic device is used to move the magnetic powder cores to the intermittent collecting device for intermittent movement; The intermittent collecting device includes a material distribution rack, a driving member, a slide rail obliquely connected to the machine table, and a material distribution box provided on the slide rail, the material distribution rack is rotatably connected to the material distribution box, the external port of the material distribution rack abuts against the inner wall of the material distribution box, so as to form at least two oppositely arranged material distribution bins between the outer wall of the material distribution rack and the inner wall of the material distribution box, and the material distribution bin is used to store one of the magnetic powder cores; Two opposite sides of the material distribution box are respectively provided with through holes that match the material distribution bin, one of the through holes faces the upper transmission part of the slide rail, and the other through hole faces the lower transmission part of the slide rail; Among them, the output end of the driving member is connected to the distribution box, which is used to drive at least two distribution bins in the distribution box to rotate intermittently relative to the through hole, so that the magnetic powder core located in one of the distribution bins can be intermittently moved to the lower transmission part for transmission.
2. The magnetic powder core collection system according to claim 1, characterized in that: The collection system further includes a load-bearing rotating device, the load-bearing rotating device facing the lower transmission part; Wherein, the bearing rotation device includes a rotating member, and the rotating member is used to drive the magnetic powder core to move circumferentially along the outer periphery of the rotating member.
3. The magnetic powder core collection system according to claim 2, characterized in that: The load-bearing rotating device includes a fixing member and the rotating member, wherein the fixing member is directly opposite to the lower transmission part so that the edge of the lower transmission part overlaps the fixing member.
4. The magnetic powder core collection system according to claim 3, characterized in that: The center of the fixed part coincides with the center of the rotating part, and the fixed part is arranged inside the rotating part to drive the magnetic powder core transmitted from the lower transmission part to move through the fixed part to the rotating part for circumferential motion.
5. The magnetic powder core collection system according to claim 4, characterized in that: The load-carrying rotating device further includes at least one guide member, the guide member being provided at an edge of the lower transmission portion and being curved along a rotation direction of the rotating member; Wherein, one end of the guide member away from the lower transmission part is opposite to the radial center portion of the rotating member, and the radial center portion is located between the outer edge and the inner edge of the rotating member.
6. The magnetic powder core collection system according to claim 1, characterized in that: The material distribution rack includes a polygonal rotating member and a plurality of supporting members. The polygonal rotating member includes a plurality of side edges. Two opposite ends of each side edge are provided with a supporting member to form at least one material distribution bin between two adjacent supporting members. Wherein, the polygonal rotating member is connected to the driving member.
7. The magnetic powder core collection system according to claim 6, characterized in that: The intermittent collecting device further comprises a storage bin and an elastic component, wherein the storage bin is in communication with each of the sub-bins; The elastic component is used to drive the storage bin and the distribution bin to be connected or closed, so that the magnetic powder on the magnetic powder core enters the storage bin for storage.
8. The magnetic powder core collection system according to claim 7, characterized in that: The elastic component includes a support plate and an elastic member, the support plate is connected to the bottom of the distribution bin through the elastic member, and the elastic member is used to make the support plate reciprocate relative to the distribution bin; Wherein, the support member is further provided with a transmission channel connected to the sub-bin, and the transmission channel is arranged under the support plate.
9. The magnetic powder core collection system according to claim 8, characterized in that: An oblique piece is provided on one side edge of the transmission channel close to the support plate, and the oblique piece is used to guide the magnetic powder.
10. The magnetic powder core collection system according to claim 9, characterized in that: The size of the support plate gradually decreases from one end close to the oblique member to the other end.