Automatic magnetizer
By setting a height difference between the feed port and the discharge port in the magnetizer, combined with roller and material sensor control, the material can fall under its own weight, simplifying the material transportation process, solving the problems of low production efficiency and high investment cost of existing magnetizers, improving production efficiency and reducing costs.
Patent Information
- Application Number
- CN202422582219.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-24
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2034-10-24
AI Technical Summary
Existing magnetizing machines have low production efficiency, high investment costs, slow material movement speed, and numerous components.
An automatic magnetizing machine is designed. By setting the height difference between the feed port and the discharge port, the material falls by its own gravity, and the roller is used to unload the material in combination with its own weight, reducing the complex unloading mechanism, adding magnetizing channels and unloading components, and using material sensors to control the rotation of the roller to optimize the loading path.
The moving speed of materials on the magnetizer is increased, the material transportation process is simplified, the investment cost is reduced, and the production efficiency is improved.
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Figure CN223362916U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of magnetizers, and in particular to an automatic magnetizer. Background Art
[0002] A magnetizer is a device that magnetizes magnetic materials or increases the magnetism of magnets with insufficient magnetism.
[0003] For example, in the Chinese patent document with the announcement number CN207250268U, an automatic magnetizing machine is disclosed, which includes a vibrating plate, a vibrator, a discharge track, a magnetizing track, and an ejection mechanism. The vibrating plate is connected to the discharge track, which is connected to the magnetizing track. The ejection mechanism is arranged at the front end of the magnetizing track and acts at the intersection of the discharge track and the magnetizing track. The ejection mechanism pushes the material into the magnetizing track, and the material passes through the magnetizing seat under the action of the cylinder and is connected to the next process. With this arrangement, not only is the material moving speed on the magnetizing machine slow, the production efficiency of the magnetizing machine is low, but the magnetizing machine also has many components and high investment costs. Utility Model Content
[0004] The present application provides an automatic magnetizing machine, which aims to at least improve one of the technical problems of low production efficiency and high investment cost in the prior art.
[0005] In accordance with the above objectives, the present application provides an automatic magnetizing machine, which includes:
[0006] A workbench, wherein a magnetizing component and a blanking component are provided on the workbench;
[0007] The magnetizing assembly includes a feed port and a discharge port, and the level of the feed port is higher than the level of the discharge port;
[0008] The material discharge assembly includes a roller located at the discharge port, and the rotation of the roller drives the material at the discharge port to be discharged.
[0009] The present application can complete the magnetization of materials by setting up a magnetization component. By setting up a feed port and a discharge port, and the horizontal plane of the feed port is higher than the horizontal plane of the discharge port, the material can enter the magnetization component through the feed port at a higher position, and fall to the discharge port at a lower position by its own gravity, so that the movement speed of the material is not limited by the working speed of the material transporting mechanism. Through the roller of the discharge assembly, the roller is located at the discharge port, and the material slides to the discharge port by its own weight. The rotation of the roller can drive the material at the discharge port to complete the discharge of the material, thereby reducing the complex unloading mechanism in the prior art. Compared with the prior art, the present application completes the magnetization and discharge of materials by setting up a feed port, a discharge port and rollers to cooperate with each other, thereby increasing the movement speed of the material on the magnetizer, thereby improving production efficiency, and eliminating the complex mechanism for transferring and unloading materials, reducing investment costs.
[0010] In some embodiments, the roller covers a portion of the discharge port, and the roller is in contact with the material at the discharge port;
[0011] When the roller rotates, the roller and the discharge port squeeze the material, driving the material to be discharged from the uncovered discharge port.
[0012] By setting the roller to cover part of the discharge port, when the roller is stationary, the material cannot be discharged through the partially covered discharge port because the roller covers part of the discharge port; when the roller rolls, the material is at the discharge port due to its own gravity, and the roller can rely on the friction with the material to drive the material to discharge from the uncovered discharge port, completing the material discharge action, providing the possibility for material discharge. The structure is simple, avoids the setting of complex discharge components, reduces investment costs, and the rotation speed of the roller can be set higher, thereby increasing the material discharge speed and further improving production efficiency.
[0013] In some embodiments, the magnetization assembly includes a magnetization channel and a magnetizer, and the magnetization channel runs through the magnetizer;
[0014] The magnetization channel includes a first end and a second end, the first end is the feed port, and the second end is the discharge port, and the material can move from the first end to the second end in the magnetization channel.
[0015] By providing a magnetizing channel, and allowing the material to move from the first end to the second end in the magnetizing channel, it is possible for the material to move in the magnetizing channel.
[0016] In some embodiments, a through hole is formed in the peripheral wall of the magnetization channel to accommodate part of the roller, so that the roller covers part of the discharge port and the roller can contact the material in the magnetization channel;
[0017] When the roller rotates, the roller and the magnetizing channel squeeze the material, driving the material to be discharged from the uncovered discharge port.
[0018] A through hole is opened through the peripheral wall of the magnetizing channel, and the through hole penetrates the peripheral wall of the magnetizing channel to accommodate part of the roller, so that the roller enters the magnetizing channel and covers part of the discharge port, and the roller can contact the material in the magnetizing channel, so that the material can be squeezed by the inner wall of the magnetizing channel and the roller, thereby generating greater friction between the roller and the material, making the material movement more stable, reducing the idling of the roller, and improving production efficiency.
[0019] In some embodiments, the roller includes a blocking member capable of covering at least a portion of the discharge port to prevent the material from being discharged from the discharge port;
[0020] When the roller rolls, the blocking member intermittently covers at least a portion of the discharge port. When the blocking member does not cover the discharge port, the material can be discharged by gravity, so that the rotation of the roller can drive the material to be discharged from the discharge port.
[0021] By providing a roller including a blocking member, the blocking member can cover at least a portion of the discharge port to prevent the material from falling out of the magnetization assembly by gravity. As the roller rotates, the blocking member intermittently covers at least a portion of the discharge port. When the blocking member does not cover the discharge port, the material can fall by gravity, making it possible for the roller rotation to drive the material out of the discharge port. This simple structure avoids the need for complex discharge components, reducing investment costs. The roller can also be set to a higher speed to increase the material discharge speed, further improving production efficiency.
[0022] In some embodiments, the automatic magnetizing machine further includes: a material sensor located at the feed inlet for detecting whether there is material at the feed inlet.
[0023] By setting a material sensor at the feed inlet to detect whether there is material at the feed inlet, the magnetizer can stop the roller when there is no material and start the roller when there is material. This avoids the equipment from working for a long time and reduces production costs.
[0024] In some embodiments, the automatic magnetizing machine further includes: a material receiving box, which is located below the discharge port and is used to receive the discharged material.
[0025] By setting up a receiving box, which is located below the discharge port to receive the discharged materials, the magnetized materials can be collected for the next process.
[0026] In some embodiments, a loading assembly is further provided on the workbench, which includes a loading belt, and the tail end of the loading belt is connected to the feed port to transport the material to the feed port.
[0027] By setting a feeding belt, the tail end of the feeding belt is connected to the feeding port to convey the material to the feeding port, making it possible for the material to be fed to the magnetizing component.
[0028] In some embodiments, the feeding belt feeds the material horizontally, and the feed port and the discharge port are located on the same vertical line.
[0029] The material is conveyed horizontally by the feeding belt, and the feed and discharge ports are located on the same vertical line, optimizing the material's movement trajectory. The feeding belt conveys the material horizontally, facilitating the material's vertical entry into the magnetizing assembly through the feed port. The feed and discharge ports being located on the same vertical line facilitate the material's movement within the magnetizing assembly and minimize the material's travel within the magnetizer, further improving production efficiency.
[0030] In some embodiments, at least two groups of the magnetizing components and the blanking components are provided on the workbench.
[0031] By providing at least two groups of magnetizing components and unloading components, the amount of materials that can be magnetized and unloaded per unit time is increased, thereby improving production efficiency.
[0032] In order to better understand and implement the present invention, the present invention is described in detail below with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0033] Figure 1 is a schematic structural diagram of an automatic magnetizing machine provided in an exemplary embodiment;
[0034] Figure 2 is a cross-sectional schematic diagram of a magnetizing assembly and a blanking assembly provided in an exemplary embodiment;
[0035] Figure 3 is a schematic diagram of a magnetization channel provided in an exemplary embodiment;
[0036] Figure 4 is a schematic structural diagram of a roller provided in an exemplary embodiment;
[0037] Figure 5 is a schematic structural diagram of a roller provided in another exemplary embodiment;
[0038] Figure 6 Schematic diagram of the structure of the feeding assembly provided in the exemplary embodiment.
[0039] Description of reference numerals:
[0040] 1 workbench; 2 loading assembly, 21 loading belt; 3 magnetizing assembly, 31 feed port, 32 discharge port, 33 magnetizing channel, 331 first end, 332 second end, 333 through hole, 34 magnetizer; 4 unloading assembly, 41 roller, 411 blocking member, 42 motor, 43 transmission assembly; 5 material sensor; 6 receiving box. DETAILED DESCRIPTION
[0041] In order to better illustrate the present invention, the present invention is further described in detail below with reference to the accompanying drawings.
[0042] It should be clear that the embodiments described are only part of the embodiments of the present application, not all of the embodiments. Based on the embodiments of the present application, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the embodiments of the present application.
[0043] The terms used in the embodiments of the present application are for the purpose of describing specific embodiments only and are not intended to limit the embodiments of the present application. The singular forms "a," "the," and "the" used in the embodiments of the present application and the appended claims are also intended to include plural forms unless the context clearly indicates otherwise. It should also be understood that the term "and / or" used herein refers to and includes any or all possible combinations of one or more associated listed items.
[0044] When the following description refers to the accompanying drawings, unless otherwise indicated, the same numbers in different drawings represent the same or similar elements. The embodiments described in the following exemplary embodiments do not represent all embodiments consistent with the present application. On the contrary, they are merely examples of devices and methods consistent with some aspects of the present application as detailed in the appended claims. In the description of the present application, it should be understood that the terms "first", "second", "third", etc. are only used to distinguish similar objects, and are not necessarily used to describe a specific order or sequence, nor can they be understood as indicating or implying relative importance. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to the specific circumstances.
[0045] In addition, in this application, unless otherwise specified, "plurality" refers to two or more. "And / or" describes the relationship between associated objects, indicating that three possible relationships exist. For example, "A and / or B" can mean: A exists alone, A and B exist simultaneously, or B exists alone. The character " / " generally indicates that the associated objects are in an "or" relationship.
[0046] A magnetizer is a device that magnetizes magnetic materials or increases the magnetism of magnets with insufficient magnetism. For example, a magnetizer magnetizes the transmitter of a mobile phone wireless charger to make the transmitter magnetic.
[0047] In the prior art, the magnetizer includes a vibration plate, a vibrator, a discharge track, a magnetizing track, and an ejection mechanism. However, the vibration plate is connected to the discharge track, the discharge track is connected to the magnetizing track, and the ejection mechanism is arranged at the front end of the magnetizing track and acts at the intersection of the discharge track and the magnetizing track. The ejection mechanism pushes the material into the magnetizing track, and the material passes through the magnetizing seat under the action of the cylinder and is connected to the next process. With this arrangement, the material needs to be pushed into the magnetizing track by the ejection mechanism, and then the material passes through the magnetizing seat under the action of the cylinder for magnetization. After the magnetization is completed, the magnetizing seat needs to be removed by the cylinder, and finally the material is unloaded by the cylinder or other unloading components. The magnetizer needs to frequently hand over the magnetic ring from the previous material transfer mechanism to the next material transfer mechanism so that the magnetic ring can continue to move on the magnetizer and enter the next process, resulting in slow material movement speed and ultimately low production efficiency. In addition, the magnetizer has many components and high investment costs.
[0048] In order to solve this problem, the present application provides an automatic magnetizing machine, which can effectively improve the above problem.
[0049] like Figure 1 As shown, an automatic magnetizing machine of an exemplary embodiment of the present application includes a workbench 1, a loading component 2, a magnetizing component 3, a unloading component 4, a material sensor 5, and a material receiving box 6.
[0050] The workbench 1 is used to place the loading assembly 2, the magnetizing assembly 3, the unloading assembly 4, and the receiving box 6. Specifically, in this embodiment, the workbench 1 is composed of a desktop and a support frame.
[0051] The loading assembly 2 is used to load the material to the magnetizing assembly 3. For example, the loading assembly 2 can use belt loading, vibration plate loading, robot loading, slide rail loading, etc.
[0052] like Figure 2 As shown, the magnetizing assembly 3 is used to magnetize the internal magnetic ring. Specifically, in this embodiment, the magnetizing assembly 3 includes an inlet 31 and an outlet 32, so that the magnetic ring enters the magnetizing assembly 3 through the inlet 31. After magnetization, the magnetic ring is discharged through the outlet 32. The horizontal plane of the inlet 31 is higher than the horizontal plane of the outlet 32. For example, the magnetizing assembly 3 is a rectangular body, the inlet 31 is located on the upper surface, and the outlet 32 is located on the lower surface. The material can move downward along the vertical line formed by the inlet 31 and the outlet 32 by its own gravity. It should be understood that the inlet 31 and the outlet 32 can also be located on diagonals, respectively, so that the magnetic ring material moves linearly along the inclined horizontal plane. The loading assembly 2 loads the magnetic ring into the inlet 31, and the magnetic ring can move to the magnetization position within the magnetizing assembly 3 by its own gravity. When the magnetization of the magnetic ring is completed, the magnetic ring can also move to the discharge port 32 by its own gravity, and then the discharge assembly 4 discharges the magnetic ring located at the discharge port 32, and finally the magnetic ring material falls into the receiving box 6.
[0053] The unloading component 4 is used to unload the material from the magnetized component 3. Specifically, the unloading component 4 includes a roller 41, which is located at the discharge port 32. The roller 41 rotates to drive the material unloading from the discharge port 32. For example, the roller 41 can be partially installed inside the discharge port 32, and partially installed outside the discharge port 32; the roller 41 can also be directly installed near the discharge port 32 and contact the discharge port 32 for unloading. The roller 41 can press the friction magnetic ring to unload the magnetic ring material from the discharge port 32; the roller 41 can also intermittently cover the discharge port 32 so that the material can be unloaded intermittently by gravity. It should be understood that other methods of rotating the roller 41 to drive the material unloading from the discharge port 32 are also allowed, such as the material rolling on the roller 41 to unload.
[0054] In this embodiment, the feeding mechanism 2 takes out the magnetic ring material from the material storage place and transmits it to the feed port 31 of the magnetizing component 3 through the feeding mechanism 2. The magnetic ring material moves in the magnetizing component 3 by gravity until it reaches the discharge port 32. The roller 41 rotates to drive the material out of the discharge port 32.
[0055] Compared with the existing technology, this embodiment sets a feed port and a discharge port so that the material can fall to the discharge port at a lower position by its own gravity. The material is discharged through the roller of the discharge assembly in combination with the weight of the material, reducing the complex material moving and unloading mechanisms in the existing technology, so that the material movement speed is not limited by the material transport mechanism, thereby improving production efficiency and reducing investment costs.
[0056] like Figure 3 As shown, in this embodiment, the magnetizing component 3 includes a magnetizing channel 33 and a magnetizer 34, and the magnetizing channel 33 runs through the magnetizer 34. Specifically, the magnetizing channel 33 is used as a track for material movement, and the magnetic ring material can move in the magnetizing channel 33. The magnetizer 34 can magnetize the magnetic ring. The magnetizing channel 33 runs through the magnetizer 34, so that the entrance and exit are located outside the magnetizer 34, and the magnetizing channel 33 can be extended to facilitate the loading and unloading of the magnetic ring material. For example, the magnetizing channel 33 is linear, with an entrance and an exit at both ends, so that the material can enter and exit the magnetizing channel 33. The entrance is connected to the internal guide rail of the magnetizing channel 33. When the magnetic ring enters from the entrance, the magnetic ring can move along the internal guide rail until it reaches the other exit. Specifically, the magnetization channel 33 includes a first end 331 and a second end 332 . The first end 331 is a feed port 31 , and the second end 332 is a discharge port 32 . Materials can move from the first end 331 to the second end 332 in the magnetization channel 31 .
[0057] like Figure 4As shown, in this embodiment, a through hole 333 is formed in the peripheral wall of the magnetizing channel 33. The through hole 333 penetrates the peripheral wall of the magnetizing channel 3 to accommodate a portion of the roller 41, so that the roller 41 covers a portion of the discharge port 32 and can contact the material in the magnetizing channel 33. When the roller 41 is stationary, the material cannot be discharged. When the roller 41 rotates, the roller 41 and the magnetizing channel 33 squeeze the material, causing the material to be discharged from the uncovered discharge port 32. Specifically, the magnetizing channel 33 is provided with a through hole 333 on the peripheral wall of the discharge port 32. In this embodiment, the through hole 333 is rectangular and its outline is not closed. It should be understood that the through hole 333 can also be circular and have a closed outline. The through hole 333 penetrates the peripheral wall of the magnetizing channel 3, so that the roller 41 outside the magnetizing channel 3 can be partially installed in the through hole 333. Roller 41 has a rough surface and enters magnetization channel 33 through through-hole 333, partially covering discharge opening 32. When the magnetic ring material moves to second end 332 due to gravity, the roller 41 partially covers discharge opening 32, preventing the magnetic ring from moving further downward. As roller 41 rotates, the rough surface of roller 41 creates friction with the material, causing it to discharge through the uncovered discharge opening 32.
[0058] It should be understood that in other embodiments, the magnetization channel 33 does not have the through-hole 333. Specifically, the roller 41 is positioned outside the magnetization channel 33, directly covering a portion of the discharge port 32. This allows the roller 41 to squeeze the material at the edge of the second end 332. When the roller 41 is stationary, the material cannot be discharged. When the roller 41 rotates, the roller 41 rubs against the material, squeezing the material and causing the material at the edge of the second end 332 to be discharged from the uncovered second end 332.
[0059] Of course, the magnetizing assembly 3 may also not be provided with the magnetizing channel 33 , and the roller 41 directly covers part of the discharge port 32 of the magnetizer 34 to drive the discharge of the magnetic ring material.
[0060] like Figure 5As shown, it should be understood that in some embodiments, the roller 41 can also discharge materials by intermittently covering the discharge port 32. Specifically, the roller 41 includes a blocking member 411, which can cover at least a portion of the discharge port 32 to prevent the material from being discharged from the discharge port 32. When the roller 41 rolls, the blocking member 411 intermittently covers at least a portion of the discharge port 32. When the blocking member 41 does not cover the discharge port 32, the material can be discharged by gravity, so that the rotation of the roller 41 can drive the discharge of the material from the discharge port 32. For example, the roller 41 is a hexagonal roller, and the hexagonal roller covers half of the discharge port 32. The motor 41 is connected to the roller 41 through the motor shaft, providing power to the roller 41 so that the roller 41 rotates. When the hexagonal teeth of roller 41 rotate toward discharge port 32, they restrict the opening of discharge port 32, preventing the magnetic ring from falling through. When the hexagonal teeth of roller 41 rotate away from discharge port 32, the opening of discharge port 32 opens, allowing the magnetic ring to fall through discharge port 32 under its own weight, completing the unloading process. It should be understood that roller 41 can also have other shapes, such as a quadrilateral or pentagonal shape, and roller 41 can also have grooves between its teeth. It should be understood that roller 41 can also cover the entire discharge port 32.
[0061] In this embodiment, the blanking assembly 4 also includes a motor 42 and a transmission assembly 43. Specifically, the motor 42 transmits rotational power to the transmission assembly 43, which in turn drives the roller 41. In this embodiment, the transmission assembly 43 transmits power via a belt. The motor 42 is mounted away from the magnetizing assembly 3 to prevent interference. In some other embodiments, the roller 41 is directly connected to the motor 42.
[0062] like Figure 6 As shown, the material sensor 5 is located at the feed inlet 31 and is used to detect the presence of material. Specifically, in this embodiment, the material sensor 5 is a fiber optic sensor that faces the first end 331 of the magnetization channel 33 and detects the presence of material at the feed inlet 31 of the magnetization assembly 3 based on changes in light. When a magnetic ring is present at the feed inlet 31, the fiber optic sensor emits an electrical signal to control the motor 42 to operate and the roller 41 to rotate. When the light changes, that is, when the magnetic ring is no longer present at the feed inlet 32, the fiber optic sensor again emits an electrical signal to control the motor 42 to stop operating and the roller 41 to stop rotating.
[0063] In this embodiment, the workbench 1 is further provided with a feeding assembly 2, which includes a feeding belt 21. The tail end of the feeding belt 21 is connected to the feed port 31, and is used to transport and feed the material to the feed port 31. Specifically, the feeding belt 21 is driven by a belt motor, and the head end of the feeding belt 21 is connected to the vibration plate, and the tail end is connected to the first end 331 of the magnetization channel 33. As the vibration plate vibrates, the magnetic ring material is fed from the vibration plate to the feeding belt 21. The feeding belt 21 transports the magnetic ring material to the first end 331, and the material falls from the first end 331 into the magnetization channel 33, completing the loading process. The material is then magnetized by the magnetizer 34 and unloaded.
[0064] In this embodiment, the feeding belt 21 conveys materials horizontally, and the feed port 31 and the discharge port 32 are located on the same vertical line. Specifically, the feeding belt 21 is placed horizontally, and the magnetization channel 33 is placed vertically, so that the feeding belt 21 conveys materials horizontally, and the feed port 31 and the discharge port 32 are located on the same vertical line. After being conveyed horizontally, the magnetic ring enters the magnetization channel 33 and moves vertically downward to the second end 332 of the magnetization channel 33. It should be understood that in other embodiments, the conveying direction of the feeding belt 21 can also be at an angle to the horizontal direction, so that the feeding belt 21 is placed on a slope; of course, the movement direction of the magnetic ring in the magnetization channel can also be at an angle to the vertical direction.
[0065] In this embodiment, the number of magnetizing components 3 and blanking components 4 is two to improve production efficiency. It should be understood that in other embodiments, the number of magnetizing components 3 and blanking components 4 is multiple to further improve production efficiency.
[0066] The material receiving box 6 is used to receive the unloaded materials and is located below the discharge port 32. Specifically, the material receiving box 6 is located below the tabletop of the workbench 1, which can fully utilize the space of the workbench 1. A through hole is opened on the tabletop of the workbench 1 below the discharge port 32, allowing the unloaded magnetic ring to fall directly into the material receiving box 6 below the tabletop, which is convenient and quick.
[0067] Based on the disclosure and teachings of the above description, those skilled in the art may also make changes and modifications to the above embodiments. Therefore, the present invention is not limited to the specific embodiments disclosed and described above, and any modifications and variations of the present invention should also fall within the scope of protection of the claims of the present invention. In addition, although certain specific terms are used in this description, these terms are for convenience of description only and do not constitute any limitation to the present invention.
Claims
1. An automatic magnetizing machine, characterized in that: include: A workbench, wherein a magnetizing component and a blanking component are provided on the workbench; The magnetizing assembly includes a feed port and a discharge port, and the level of the feed port is higher than the level of the discharge port; The material discharge assembly includes a roller located at the discharge port, and the rotation of the roller drives the material at the discharge port to be discharged.
2. The automatic magnetizing machine according to claim 1, characterized in that: The roller covers a portion of the discharge port, and the roller is in contact with the material at the discharge port; When the roller rotates, the roller and the discharge port squeeze the material, driving the material to be discharged from the uncovered discharge port.
3. The automatic magnetizing machine according to claim 1, characterized in that: The magnetizing assembly includes a magnetizing channel and a magnetizer, and the magnetizing channel runs through the magnetizer; The magnetization channel includes a first end and a second end, the first end is the feed port, and the second end is the discharge port, and the material can move from the first end to the second end in the magnetization channel.
4. The automatic magnetizing machine according to claim 3, characterized in that: A through hole is formed on the peripheral wall of the magnetizing channel to accommodate part of the roller, so that the roller covers part of the discharge port and the roller can contact the material in the magnetizing channel; When the roller rotates, the roller and the magnetizing channel squeeze the material, driving the material to be discharged from the uncovered discharge port.
5. The automatic magnetizing machine according to claim 1, characterized in that: The roller includes a blocking member capable of covering at least a portion of the discharge port to prevent the material from being discharged from the discharge port; When the roller rolls, the blocking member intermittently covers at least a portion of the discharge port. When the blocking member does not cover the discharge port, the material can be discharged by gravity, so that the rotation of the roller can drive the material to be discharged from the discharge port.
6. The automatic magnetizing machine according to claim 1, characterized in that: The automatic magnetizing machine also includes: The material sensor is located at the feed inlet and is used to detect whether there is material at the feed inlet.
7. The automatic magnetizing machine according to claim 1, characterized in that: The automatic magnetizing machine also includes: The material receiving box is located below the discharge port and is used to receive the discharged materials.
8. The automatic magnetizing machine according to claim 1, characterized in that: The workbench is also provided with a feeding assembly, which includes a feeding belt. The tail end of the feeding belt is connected to the feed port for conveying and feeding the material to the feed port.
9. The automatic magnetizing machine according to claim 8, characterized in that: The feeding belt conveys materials horizontally, and the feeding port and the discharging port are located on the same vertical line.
10. The automatic magnetizing machine according to any one of claims 1 to 9, characterized in that: At least two groups of the magnetizing components and the blanking components are arranged on the workbench.
Citation Information
Patent Citations
Automatic magnetizing apparatus
CN207250268U