A tooling for inspecting and turning over magnetic components

The magnetic component inspection fixture automates the flipping and inspection process, addressing the labor-intensive and time-consuming issues of manual flipping and inspection, enhancing efficiency.

CN115649837BActive Publication Date: 2025-07-15BAOTOU INST MAGNETIC NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202211400371.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-11-09
Publication Date
2025-07-15
Estimated Expiration
2042-11-09

AI Technical Summary

Technical Problem

During the inspection of magnetic components, manual flips can lead to high labor intensity, long-term consumption and low detection efficiency.

Method used

A tool for checking the flip of magnetic components is designed, including a seat body, a pushing assembly, an adsorption assembly and a flip auxiliary assembly, to realize the automatic flip of the magnetic component through mechanical means, and to achieve the displacement and flip of the magnetic component using pneumatic push cylinders and adsorption monomers.

Benefits of technology

It reduces the working intensity of the inspectors, improves the detection efficiency, and realizes the overall flip of the magnetic component and rapid detection.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application discloses a tooling for inspecting and turning over magnetic components, which includes a base body. Two or more through holes are formed on the carrier plate of the base body. A pushing assembly is provided on the base body, and an adsorption assembly is connected to the power output shaft of the pushing assembly. At least two adsorption monomers arranged on the adsorption assembly correspond to the through holes one by one; a blank plate is detachably connected to the carrier plate, and two or more temporary storage grooves are formed on the blank plate in an array manner. A reserved hole is provided on each temporary storage groove, and the reserved holes correspond to the through holes one by one; the temporary storage grooves on the blank plate are used to correspond to the adsorption grooves on the injection molding plate one by one; the present invention solves the problems of high labor intensity and long time consumption in manually turning over the magnetic components in the injection molding plate during the detection process of the magnetic components in the injection molding plate.
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Description

Technical Field

[0001] The present invention relates to the technical field of magnetic component inspection, and particularly relates to a tooling for turning over magnetic components during inspection. Background Art

[0002] During the actual production process of magnetic components, a certain number of magnetic components need to be placed in an injection molding tray. One reason for using the injection molding tray is to meet customer requirements, and the other reason is to avoid damage to the magnetic components during transportation. At the same time, the injection molding tray can more conveniently collect the magnetic components centrally to avoid the loss of magnetic components (Note: The shape of the magnetic components is not within the protection scope of this application. Therefore, corresponding adjustments need to be made to the parts for placing the magnetic components in this application according to the actual situation). During the use of the injection molding tray, in order to ensure that the magnetic components can be adsorbed by the injection molding tray while being easily removed from the injection molding tray, the existing method is: during the manufacturing process of the injection molding tray, the weight ratio of carbon content in the injection molding tray is maintained at about 25%, ensuring that the injection molding tray can adsorb the magnetic components in the form of weak magnetism. Correspondingly, it is easier to remove the magnetic components from the injection molding tray. Refer to Figure 1 , which shows a three-dimensional structural schematic diagram of the injection molding tray.

[0003] Generally, the work of placing magnetic components in the injection molding tray is mainly completed by the staff in the production workshop. After loading the magnetic components into the injection molding tray, the loaded magnetic components need to be sent to the inspection department for separate inspection (it is necessary to check whether the appearance, size, etc. are qualified).

[0004] However, during the process of detecting the front and back sides of the magnetic components, since the side of the magnetic component that is in contact with the injection molding tray cannot be detected, the problem in the actual detection process is that: it is necessary for the staff to manually pick out multiple magnetic components on the injection molding tray one by one. After the detection is completed, the magnetic components are put back into the injection molding tray again; manual turning over will cause a huge workload for the inspectors, and the labor intensity of the inspectors is relatively large. At the same time, during the detection process, it is necessary to turn over one magnetic component and detect one corresponding to it, which takes a long time and the detection efficiency is relatively low. Summary of the Invention

[0005] In view of this, the purpose of the present invention is to provide a tooling for turning over magnetic components during inspection, so as to solve the problems of high labor intensity and long time consumption in manually turning over the magnetic components in the injection molding tray during the detection of the magnetic components in the injection molding tray.

[0006] The present invention discloses a tooling for inspecting and turning over magnetic components, which includes a base body. Two or more through holes are formed on the carrier plate of the base body. A pushing component is provided on the base body, and an adsorption component is connected to the power output shaft of the pushing component. At least two adsorption monomers arranged on the adsorption component correspond to the through holes one by one; a blank plate is detachably connected to the carrier plate. Two or more temporary storage slots are formed on the blank plate in an array manner. A reserved hole is provided on each temporary storage slot, and the reserved holes correspond to the through holes one by one; the temporary storage slots on the blank plate are used to correspond to the adsorption slots on the injection molding plate one by one.

[0007] As a further optimization of the present application, a placement groove is formed above the carrier plate, a protrusion is formed on the edge of the placement groove, and a concave pit is formed on the blank plate. The concave pit is adapted to and in interference fit with the protrusion.

[0008] As a further limitation on the blank plate and the injection molding plate, a limiting groove is formed on one side of the blank plate where the temporary storage slots are provided; when the injection molding plate is placed in the limiting groove, the temporary storage slots on the blank plate correspond to the adsorption slots on the injection molding plate one by one; an outer edge groove is formed beside the limiting groove.

[0009] As a further preference for the distance between the injection molding plate and the blank plate, when the injection molding plate is assembled with the limiting groove of the blank plate, the distance between the adsorption slot and the corresponding temporary storage slot is between 3 mm and 10 mm.

[0010] As a further limitation of the present application, the present application further includes a turning-over auxiliary component. The turning-over auxiliary component includes a vertical track. A vertical track is provided on the carrier plate, a vertical guiding groove is formed on the vertical track, one side of the vertical guiding groove is not closed and communicates with the outside to form a vertical sliding track; a sphere is rollingly fitted in the vertical guiding groove, a connecting column on the sphere slides through the vertical sliding track, and the other end of the connecting column is fixed to the blank plate.

[0011] As a further optimization of the present application, a pressure regulating gauge is connected to the pneumatic push cylinder, and the pressure regulating gauge is used to adjust the pressure of the pneumatic push cylinder between 0.35 and 0.4 Mpa.

[0012] As a further optimization of the present application, a picking and placing component is provided on one side of the base body. Among them, the picking and placing component includes a conveyor belt. A frame body for placing the injection molding plate is provided on one side of the conveyor belt; a lifting platform is provided on the other side of the conveyor belt. A screw rod is rotatably connected to the lifting platform, the screw rod is in transmission connection with a motor, and the screw rod is threadedly connected to a plate body; the plate body is vertically slidably connected to the lifting platform, and the other end of the plate body is connected to a horizontal sliding rail; a moving body is slidably connected to the horizontal sliding rail, a roller rotatably connected to the moving body is slidably fitted with the horizontal sliding rail, and the roller is in transmission connection with a servo motor; an adsorption plate is fixed on the moving body; the adsorption force of the conveyor belt on the magnetic component is greater than the adsorption force of the adsorption plate on the magnetic component, and the adsorption force of the adsorption plate on the magnetic component is greater than the adsorption force of the injection molding plate on the magnetic component.

[0013] The beneficial effects of the present invention are as follows:

[0014] First, by combining the blank plate corresponding to the injection molding tray, the pushing component, and the adsorption component, the present application ensures that the magnetic component in the injection molding tray can be turned over after being displaced to the blank plate, driving the manual method mechanically, reducing the working intensity of the inspectors. At the same time, through the present application, the magnetic components in the injection molding tray can be turned over as a whole, avoiding the need to turn over and inspect only a single magnetic component manually each time, and improving the work efficiency. Description of the Drawings

[0015] Figure 1 It is a schematic three-dimensional structure diagram of the injection molding tray.

[0016] Figure 2 It is a schematic overall structure diagram of the present application.

[0017] Figure 3 It is a schematic installation structure diagram of the carrier tray.

[0018] Figure 4 It is a schematic assembly structure diagram of the pushing component and the adsorption component.

[0019] Figure 5 It is a schematic assembly structure diagram of the carrier tray and the plate.

[0020] Figure 6 It is a schematic state structure diagram of the injection molding tray placed on the blank plate.

[0021] Figure 7 It is a schematic three-dimensional structure diagram of the blank plate.

[0022] Figure 8 It is a partial schematic diagram after the injection molding tray is assembled on the blank plate.

[0023] Figure 9 It is a schematic assembly structure diagram of the flipping auxiliary component.

[0024] Figure 10 It is a schematic assembly structure diagram of the pressure regulating gauge.

[0025] Figure 11 It is a schematic structure diagram of the picking and placing component.

[0026] Figure 12 It is a partial schematic structure diagram of the picking and placing component.

[0027] In the figure, there are a base body 1, a wall body 101, a carrier plate 102, a through hole 103, a pneumatic push cylinder 2, an adsorption monomer 3, a blank plate 4, a placement groove 5, a protrusion 6, a pit 7, a temporary storage groove 8, a reserved hole 9, an injection molding plate 10, an adsorption groove 11, a limiting groove 12, an outer edge groove 13, a flipping auxiliary assembly 14, a vertical track 1401, a vertical guiding groove 1402, a vertical sliding track 1403, a sphere 1404, a connecting column 1405, a pressure regulating gauge 15, a picking and placing assembly 16, a conveyor belt 1601, a frame body 1602, a lifting platform 1603, a screw rod 1604, a plate body 1605, a horizontal sliding rail 1606, a moving body 1607, and a roller 1608, an adsorption plate 1609. Detailed implementation manners

[0028] To clearly understand the technical solution of the present application, a tool for inspecting and flipping magnetic components provided by the present application will be described in detail below in combination with specific embodiments and the accompanying drawings.

[0029] The terms used in the following embodiments are only for the purpose of describing specific embodiments and are not intended to limit the present application. As used in the specification and claims of the present application, the singular forms "a", "an", "the above", "the", and "this" are also intended to include the expression form such as "one or more", unless there is a clear opposite indication in the context. It should also be understood that in the following embodiments of the present application, "at least one" and "one or more" mean one, two or more than two.

[0030] Referring to "one embodiment" or "some embodiments" described in this specification means that specific features, structures or characteristics described in combination with the embodiment are included in one or more embodiments of the present application. Thus, the statements "one embodiment", "in some embodiments", "in other some embodiments", "in still other embodiments" and the like appearing in different parts of this specification do not necessarily refer to the same embodiment, but mean "one or more but not all embodiments", unless otherwise specifically emphasized in other ways. The terms "comprising", "including", "having" and their variants all mean "including but not limited to", unless otherwise specifically emphasized in other ways.

[0031] Embodiment 1

[0032] This embodiment provides a tool for inspecting and flipping magnetic components. Referring to Figure 2 , which shows the overall structural schematic diagram of the present application, including a base body 1. The base body 1 can be used as a bearing platform. On the top of the base body 1, two wall bodies 101 are respectively formed on the left and right sides above. An installation channel is formed between the two wall bodies 101, and a carrier plate 102 is formed above the two wall bodies 101 or in the gap ( Figure 3The schematic diagram of the installation structure of the carrier plate 102 is shown. Perforations 103 arranged in a rectangle are formed on the carrier plate 102 so that the adsorption monomers 3 of the subsequent adsorption assembly can pass through the perforations 103 and then carry out the next adsorption work; combined with Figure 2 , Figure 4 , in which Figure 4 The schematic diagram of the assembly structure of the pushing assembly and the adsorption assembly is shown. Below the carrier plate 102 and inside the installation channel, a pushing assembly is provided (in this embodiment, the pushing assembly selects the common pneumatic push cylinder 2 on the market, model: SCDSCJ, which will not be elaborated here). The pneumatic push cylinder 2 is connected to the nearest side above the seat body 1 in a bolted manner. The power output shaft of the pneumatic push cylinder 2 is connected to the bottom of the adsorption assembly. A plurality of adsorption monomers 3 (the adsorption monomers 3 are iron parts or magnets, etc.) are formed in a matrix above the adsorption assembly. The adsorption monomers 3 arranged in a matrix correspond one by one to the perforations 103 arranged in a matrix on the carrier plate 102; refer to Figure 5 as shown, Figure 5 The schematic diagram of the assembly structure of the carrier plate 102 and the plate is shown. A blank plate 4 is detachably connected to the carrier plate 102. The specific way to achieve detachable connection is as follows: A placement groove 5 is formed above the carrier plate 102. The blank plate 4 is placed in the placement groove 5. The placement groove 5 mainly limits the horizontal degree of freedom of the carrier plate 102; Protrusions 6 are formed on both sides of the placement groove 5, and pits 7 are formed on both sides of the blank plate 4. The pits 7 are in interference fit with the corresponding protrusions 6. When the blank plate 4 is flipped, it is ensured that the blank plate 4 will not easily fall out of the placement groove 5, and the blank plate 4 is limited in the vertical degree of freedom; A plurality of temporary storage grooves 8 are formed in an array on the upper surface of the blank plate 4. A reserved hole 9 is formed in the center of the bottom of each temporary storage groove 8. Each reserved hole 9 corresponds one by one to each perforation 103 on the carrier plate 102. The temporary storage grooves 8 are arranged in a matrix to ensure that the magnetic components can be arranged neatly. When the inspection personnel detect the magnetic components, the neat arrangement method is more conducive to the staff to carry out work such as counting, and the work efficiency is improved.

[0033] Among them, to ensure that all the magnetic components adsorbed on the injection molding plate 10 can synchronously enter the corresponding temporary storage grooves 8 on the blank plate 4, adsorption grooves 11 are formed in an array on the injection molding plate 10. The temporary storage grooves 8 on the blank plate 4 correspond one by one to the adsorption grooves 11 on the injection molding plate 10. A controller is installed on the base, and the telescopic amount of the pneumatic push cylinder 2 is adjusted through the controller. The controller is an existing product that can be purchased on the market and will not be elaborated here.

[0034] The working principle of turning over the magnetic components on the injection molding plate 10 in this application: First, after the injection molding plate 10 filled with magnetic components is sent to the inspection department in the production workshop, refer to Figure 6 ( Figure 6The figure shows a schematic structural diagram of the injection molding tray 10 placed on the blank plate 4. The inspector places the side with the magnetic component facing down and correspondingly above the blank plate 4, ensuring that the temporary storage grooves 8 on the blank plate 4 correspond one by one with the adsorption grooves 11 on the injection molding tray 10. Then, the pneumatic push cylinder 2 is activated, and the adsorption component is pushed and lifted by the rod body of the pneumatic push cylinder 2. The adsorption monomers 3 on the adsorption component sequentially pass through the through holes 103 of the carrier plate 102 and the reserved holes 9 of the blank plate 4. During the process of the adsorption monomer 3 approaching the magnetic component in the injection molding tray 10, until the magnetism of the adsorption monomer 3 to the magnetic component is greater than the magnetism of the injection molding tray 10 to the magnetic component; the magnetic component in the injection molding tray 10 enters the temporary storage groove 8 of the blank plate 4 under the adsorption action of the adsorption monomer 3. The pneumatic push cylinder 2 is activated again, and the adsorption component is driven by the pneumatic push cylinder 2 to retract, and the injection molding tray 10 is removed to detect the reverse side of the magnetic component in the blank plate 4 (after the single-sided magnetic component inside the injection molding tray 10 falls into the blank plate 4, this side is located outside the temporary storage groove 8). Finally, after the blank plate 4 is removed from the placement groove 5 and turned over, under the action of the self-gravity of the magnetic component, the magnetic component returns to the corresponding adsorption groove 11 on the injection molding tray 10 again (after the detection of the magnetic component is completed, the magnetic component needs to return to the injection molding tray 10 to meet the requirements of transportation, customers, etc.).

[0035] In this application, by combining the blank plate 4 corresponding to the injection molding tray 10, the pushing component, and the adsorption component, it is ensured that the magnetic component in the injection molding tray 10 can be turned over after being displaced to the blank plate 4, replacing the manual method with a mechanical method, reducing the working intensity of the inspector. At the same time, through this application, the magnetic components in the injection molding tray 10 can be turned over as a whole, avoiding the situation that only a single magnetic component can be turned over and detected manually each time, and improving the working efficiency.

[0036] Further, during the process of the injection molding tray 10 being displaced above the blank plate 4, to ensure that the adsorption grooves 11 on the injection molding tray 10 and the temporary storage grooves 8 on the blank plate 4 can accurately correspond one by one; as Figure 7 shown, the figure shows a three-dimensional structural diagram of the blank plate 4. A limiting groove 12 is formed on one side of the blank plate 4 where the temporary storage groove 8 is provided. After the injection molding tray 10 is placed in the limiting groove 12, the temporary storage grooves 8 on the blank plate 4 correspond one by one with the adsorption grooves 11 on the injection molding tray 10. Among them, considering that after the injection molding tray 10 is placed in the blank plate 4, it may be difficult to remove the injection molding tray 10 from the blank plate 4. An arc-shaped outer edge groove 13 extends outward beside the limiting groove 12, which is convenient for the inspector to remove the injection molding tray 10 from the blank plate 4.

[0037] Further, when the magnetic component in the injection molding tray 10 enters the blank plate 4, once the magnetic adsorption of the adsorption component to the magnetic component in the blank plate 4 is cancelled, it is possible that the magnetic component in the blank plate 4 is re-sucked back into the injection molding tray 10 by the injection molding tray 10; based on this, as Figure 8As shown, a partial schematic diagram of the injection molding tray 10 assembled on the blank plate 4 is shown. As shown in the figure, after the injection molding tray 10 is assembled in the limiting groove 12 of the blank plate 4, the distance (s) between the adsorption groove 11 and the corresponding temporary storage groove 8 ranges from 3 mm to 10 mm. It can ensure that after the magnetic component is no longer adsorbed by the adsorption component, due to the reasonable distance between the adsorption groove 11 of the injection molding tray 10 and the temporary storage groove 8 of the blank plate 4, the injection molding tray 10 will not magnetically attract the magnetic component. Among them, through countless practices of on-site personnel and multiple simulation tests of designers, the preferred value of s is 3 mm. By setting the value of s in combination with the injection molding tray 10, the blank plate 4, the pushing component, and the adsorption component in this application, it can not only ensure that the magnetic component in the injection molding tray 10 is successfully shifted to the blank plate 4 and then flipped, but also avoid the influence of the self-magnetism of the injection molding tray 10 on the magnetic component in the blank plate 4. Therefore, the setting of the value of s is crucial for the use of the invention.

[0038] In order to further ensure that the magnetic component in the blank plate 4 can successfully return to the injection molding tray 10, this application further designs a flipping auxiliary component 14, and the specific structure is as follows.

[0039] Reference Figure 9 As shown, a schematic diagram of the assembly structure of the flipping auxiliary component 14 is shown. The flipping auxiliary component 14 includes a vertical track 1401. The vertical track 1401 is fixed on the carrier plate 102. A cylindrical vertical guiding groove 1402 is formed on the track body of the vertical track 1401. One side of the vertical guiding groove 1402 is not closed and communicates with the outside to form a vertical slideway 1403; a sphere 1404 is rollingly fitted in the vertical guiding groove 1402. A connecting column 1405 is formed on the surface of the sphere 1404. The connecting column 1405 passes through the vertical slideway 1403 and is slidably fitted with it. The other end of the connecting column 1405 is fixed to the nearest side of the blank plate 4. The working principle of the flipping auxiliary component 14: First, lift the blank plate 4 and the injection molding tray 10 away from the carrier plate 102; then, continue to lift the blank plate 4 upward. At the same time, the sphere 1404 moves upward in the vertical guiding groove 1402, and the connecting column 1405 moves upward in the vertical slideway 1403. After the blank plate 4 moves to a certain position (that is, the blank plate 4 will not affect the subsequent flipping of the injection molding tray 10), using the rolling property between the vertical guiding groove 1402 and the sphere 1404, the blank plate 4 and the injection molding tray 10 are flipped 180°, which can ensure that the magnetic component in the blank plate 4 successfully falls back into the injection molding tray 10. This application combines the blank plate 4 and the carrier plate 102 in an integrated design. With the assistance of the connection relationship between the blank plate 4 and the carrier plate 102, it is convenient for the inspection personnel to flip the blank plate 4 and the carrier plate 102.

[0040] Further, in order to avoid the pneumatic push cylinder 2 from causing compressive damage to the magnetic component during use, based on this; refer to Figure 10 As shown, it shows the assembly structure schematic diagram of the pressure regulating gauge 15. The pressure regulating gauge 15 can directly select a product that can be purchased on the market (model: AR2000). According to the long-term actual work experience of the inspectors, it is summarized that the air pressure of the pneumatic push cylinder 2 needs to be maintained at 0.35 to 0.4 Mpa. When the adsorption component can adsorb the magnetic component, it can also ensure that the adsorption component will not cause damage to the magnetic component. The pressure regulating gauge 15 is installed on the seat body 1, and the pressure regulating gauge 15 is connected to the pneumatic push cylinder 2.

[0041] Embodiment 2

[0042] After the magnetic component is detected and reinstalled onto the injection molding tray 10, when the magnetic component needs to be used subsequently, the magnetic component needs to be taken out from the injection molding tray 10. The traditional way to pick up the magnetic component is to directly pick it up by hand, but it is time-consuming and laborious, which will increase the labor intensity of the staff; based on this, the present invention further designs a pick-and-place component 16, and the specific structure is as follows.

[0043] Refer to Figure 11 and Figure 12 As shown, Figure 11 It shows the three-dimensional structure schematic diagram of the pick-and-place component 16. Figure 12Shown is a partial structural schematic diagram of the pick-and-place component 16. The pick-and-place component 16 is arranged on one side of the base body 1. Among them, the pick-and-place component 16 includes a conveyor belt 1601. A frame body 1602 is placed on the right side of the conveyor belt 1601. The frame body 1602 is used for placing the injection molding tray 10. A lifting platform 1603 is arranged on the left side of the conveyor belt 1601. A vertically arranged screw rod 1604 is rotatably connected to the lifting platform 1603. One end of the screw rod 1604 is drivingly connected to a motor, and the motor is fixedly installed on the lifting platform 1603; a plate body 1605 is threadedly connected to the screw rod 1604, and the plate body 1605 is slidably connected to the lifting platform 1603 in the vertical direction; a horizontal slide rail 1606 is connected to the end of the plate body 1605. A moving body 1607 is slidably connected to the horizontal slide rail 1606. A roller 1608 rotatably connected to the moving body 1607 is slidably adapted to the horizontal slide rail 1606. A servo motor for rotating the roller 1608 is fixedly connected to the moving body 1607; an adsorption plate 1609 (the material of the adsorption plate 1609 is iron or magnet) is fixed on the moving body 1607. The material of the conveyor belt 1601 is also iron or magnet with an adsorption effect; the adsorption force of the conveyor belt 1601 on the magnetic component is greater than the adsorption force of the adsorption plate 1609 on the magnetic component, and the adsorption force of the adsorption plate 1609 on the magnetic component is greater than the adsorption force of the injection molding tray 10 on the magnetic component. During use, the up-and-down movement of the adsorption plate 1609 is indirectly realized through the lifting platform 1603, the plate body 1605, the screw rod 1604, and the motor. The horizontal movement of the adsorption plate 1609 is realized through the servo motor, the moving body 1607, and the horizontal slide rail 1606, ensuring that the magnetic components on the injection molding tray 10 are batch-placed on the running conveyor belt 1601 (the conveyor belt 1601 will move the magnetic components to a specified position for collection, which will not be elaborated here). The adsorption plate 1609 will pick up multiple magnetic components from the injection molding tray 10. This application utilizes the different adsorption forces of different components on the magnetic component and the magnetism of the magnet itself, and uses a mechanical method to replace the manual method for picking up and placing the magnetic components on the injection molding tray 10, with high working efficiency.

Claims

1. A tool for inspecting and turning over magnetic components, characterized in that: It includes a base body (1). Two or more through holes (103) are formed on the carrier plate (102) of the base body (1). A pushing assembly is provided on the base body (1). An adsorption assembly is connected to the power output shaft of the pushing assembly. At least two adsorption monomers (3) arranged on the adsorption assembly respectively correspond to the through holes (103) one by one. A blank plate (4) is detachably connected to the carrier plate (102). Two or more temporary storage grooves (8) are formed on the blank plate (4) in an array manner. A reserved hole (9) is provided on each temporary storage groove (8). The reserved holes (9) correspond to the through holes (103) one by one. The temporary storage grooves (8) on the blank plate (4) are used to correspond to the adsorption grooves (11) on the injection molding plate (10) one by one. A placement groove (5) is formed above the carrier plate (102). A protrusion (6) is formed on the edge of the placement groove (5). A concave pit (7) is formed on the blank plate (4). The concave pit (7) is adapted to the protrusion (6) and is in interference fit. A limiting groove (12) is formed on one side of the blank plate (4) where the temporary storage groove (8) is provided. When the injection molding plate (10) is placed in the limiting groove (12), the temporary storage grooves (8) on the blank plate (4) correspond to the adsorption grooves (11) on the injection molding plate (10) one by one. An outer edge groove (13) is formed beside the limiting groove (12). When the injection molding plate (10) is assembled with the limiting groove (12) of the blank plate (4), the distance between the adsorption groove (11) and the corresponding temporary storage groove (8) is between 3 mm and 10 mm. It further includes a flipping auxiliary assembly (14). The flipping auxiliary assembly (14) includes a vertical track (1401). A vertical track (1401) is provided on the carrier plate (102). A vertical guiding groove (1402) is formed on the vertical track (1401). One side of the vertical guiding groove (1402) is not closed and communicates with the outside to form a vertical sliding track (1403). A sphere (1404) is rollingly adapted in the vertical guiding groove (1402). A connecting column (1405) on the sphere (1404) slides through the vertical sliding track (1403). The other end of the connecting column (1405) is fixed to the blank plate (4).

2. The tooling for magnetic component inspection and turning over according to claim 1, characterized in that: The pushing assembly is a pneumatic push cylinder (2). A pressure regulating table (15) is connected to the pneumatic push cylinder (2). The pressure regulating table (15) is used to adjust the pressure value of the pneumatic push cylinder (2) to be between 0.35 and 0.4 Mpa.

3. The tooling for magnetic component inspection and flipping according to any one of claims 1 to 2, characterized in that: It further includes a picking and placing component (16), and the picking and placing component (16) is arranged on one side of the base body (1). Among them, the picking and placing component (16) includes a conveyor belt (1601), and a frame body (1602) for placing the injection molding tray (10) is arranged on one side of the conveyor belt (1601); a lifting platform (1603) is arranged on the other side of the conveyor belt (1601), a screw rod (1604) is connected in a rotating manner on the lifting platform (1603), the screw rod (1604) is in transmission connection with a motor, and the screw rod (1604) is in threaded connection with a plate body (1605); the plate body (1605) is vertically slidably connected to the lifting platform (1603), and the other end of the plate body (1605) is connected to a horizontal slide rail (1606); a moving body (1607) is slidably connected to the horizontal slide rail (1606), a roller (1608) connected in a rotating manner on the moving body (1607) is slidably adapted to the horizontal slide rail (1606), and the roller (1608) is in transmission connection with a servo motor; an adsorption plate (1609) is fixed on the moving body (1607); the adsorption force of the conveyor belt (1601) on the magnetic component is greater than the adsorption force of the adsorption plate (1609) on the magnetic component, and the adsorption force of the adsorption plate (1609) on the magnetic component is greater than the adsorption force of the injection molding tray (10) on the magnetic component.

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