Inductor magnetic core glazing paint production line

Through the automated processing of the inductive magnetic core glazing paint production line, the problems of insufficient inductive magnetic core strength and solder cracks are solved, and high-strength and high-bound inductive magnetic core production is achieved, which improves production efficiency and quality.

CN223113384UActive Publication Date: 2025-07-18DONGGUAN HUAMEI ELECTRONICS CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Application Number
CN202422159314.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-03
Publication Date
2025-07-18
Estimated Expiration
2034-09-03

AI Technical Summary

Technical Problem

In the prior art, the strength of the inductive magnetic core is insufficient, making it difficult to form a high bonding force with the electrodes of the electronic product, and cracks are prone to occur during the soldering process.

Method used

A production line of inductive magnetic core glazing paint is designed, including a chassis, conveying device, feeding device, glaze dipping device, baking device and unloading device, to realize the automatic loading of inductive magnetic core and automatic glaze paint adhesion, and to increase the strength of the magnetic core through baking of glaze paint and enhance the bonding force with the electrode.

Benefits of technology

The high strength and high bonding force of the inductive core are achieved, which prevents solder cracks and improves production efficiency and quality.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223113384U_ABST
    Figure CN223113384U_ABST
Patent Text Reader

Abstract

The utility model belongs to the technical field of inductance magnetic core processing, and particularly relates to an inductance magnetic core glazing paint production line which comprises a machine box, a conveying device, a feeding device, a glaze staining device, a baking device and a discharging device, the conveying device is installed on the machine box, the feeding device is arranged close to the machine box and used for conveying inductance magnetic cores to the conveying device, and the glaze staining device is installed on the baking device. The glaze sticking device is installed at the end, close to the feeding device, of the machine box and used for sticking glaze paint to the inductance magnetic cores of the conveying device, and the baking device is arranged above the conveying device and used for baking the inductance magnetic cores which are conveyed by the conveying device and subjected to glaze paint sticking. The discharging device is installed at the other end of the machine box and used for discharging the baked inductance magnetic cores. According to the inductance magnetic core glazing process, automatic operation is achieved, production efficiency is high, production quality is high, the strength of the finally produced inductance magnetic core is higher, high binding force can be formed between the inductance magnetic core and an electrode of an electronic product, and cracks can be prevented from occurring when soldering tin is conducted on the inductance magnetic core.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The utility model belongs to the technical field of inductance magnetic core processing, and particularly relates to a glaze painting production line for inductance magnetic cores. Background Art

[0002] Inductance magnetic cores are important electronic components used in electronic products. Electronic products that require the use of inductance magnetic cores include telephones, refrigerators, radios, televisions, loudspeakers, headphones, wireless charging devices, etc. The reason for using inductance magnetic cores in these electronic products is that inductance magnetic cores have directivity and ferromagnetism, can generate a magnetic field around them, and magnetize some magnetic materials. These characteristics of inductance magnetic cores play an important role in electronic products. Therefore, the main research directions in this industry are how to make the inductance magnetic cores have higher strength, how to increase the bonding force between the inductance magnetic cores and the electrodes of electronic products, and how to prevent solder cracks from occurring during the welding process of inductance magnetic cores. Summary of the Utility Model

[0003] The purpose of the utility model is to provide a glaze painting production line for inductance magnetic cores, aiming to provide a device for automatically processing and attaching glaze paint to inductance magnetic cores, so that the inductance magnetic cores have the properties of high strength, high bonding force with electrodes, and the ability to prevent solder cracks.

[0004] To achieve the above purpose, an embodiment of the utility model provides a glaze painting production line for inductance magnetic cores, which includes a chassis, a conveying device, a feeding device, a glazing device, a baking device, and a discharging device. The conveying device is installed on the chassis. The feeding device is arranged close to the chassis and is used for conveying inductance magnetic cores to the conveying device. The glazing device is installed at one end of the chassis close to the feeding device and is used for attaching glaze paint to the inductance magnetic cores on the conveying device. The baking device is arranged above the conveying device and is used for baking the inductance magnetic cores that are conveyed by the conveying device and have been attached with glaze paint. The discharging device is installed at the other end of the chassis and is used for discharging the baked inductance magnetic cores.

[0005] Optionally, the feeding device includes a feeding rack, a feeding vibrating disk, a linear vibrating mechanism, and a grasping mechanism. The feeding vibrating disk, the linear vibrating mechanism, and the grasping mechanism are all installed on the feeding rack. The linear vibrating mechanism is connected to the output end of the feeding vibrating disk and drives the inductance magnetic cores to move along the linear vibrating mechanism through vibration. The grasping mechanism is close to the end of the linear vibrating mechanism and is used for grasping the inductance magnetic cores conveyed by the linear vibrating mechanism and transporting them to the conveying device.

[0006] Optionally, the linear vibration mechanism includes a linear vibration motor, a conveying material track, a positioning material track, and a separating cylinder. The linear vibration motor is installed on the feeding rack. The conveying material track is installed on the top of the linear vibration motor and is connected to the output end of the feeding vibrating disk. The positioning material track is arranged at the end of the conveying material track, and positioning material vacuum holes for adsorbing the inductance magnetic core are arranged on the positioning material track. The separating cylinder is connected to the positioning material track and is used to drive the positioning material track to approach or move away from the end of the conveying material track.

[0007] Optionally, the linear vibration mechanism further includes a blocking material track. The blocking material track is arranged between the conveying material track and the positioning material track, and blocking material vacuum holes for adsorbing the inductance magnetic core are arranged on the blocking material track. The separating cylinder drives the positioning material track to approach or move away from the end of the blocking material track.

[0008] Optionally, the feeding device further includes an X-axis feeding moving module and a Y-axis feeding moving module. The Y-axis feeding moving module is installed on the feeding rack. The X-axis feeding moving module is arranged on the Y-axis feeding moving module and is connected to the output end of the Y-axis feeding moving module. The feeding vibrating disk is arranged on the X-axis feeding moving module and is connected to the output end of the X-axis feeding moving module. The output end of the feeding vibrating disk is controlled to be connected to the linear vibration mechanism through the combined drive of the X-axis feeding moving module and the Y-axis feeding moving module.

[0009] Optionally, the glazing device includes a glazing paint tray for containing glazing paint, a glazing rack, a glazing flexible part, a Y-axis glazing moving module, and a Z-axis glazing moving module. The glazing paint tray and the glazing rack are both installed on the chassis. The Y-axis glazing moving module is installed on the glazing rack. The Z-axis glazing moving module is connected to the output end of the Y-axis glazing moving module and can move back and forth between the glazing paint tray and the conveying device under the drive of the Y-axis glazing moving module. The glazing flexible part is connected to the output end of the Z-axis glazing moving module and can attach the glazing paint in the glazing paint tray to the inductance magnetic core on the conveying device through the combined drive of the Y-axis glazing moving module and the Z-axis glazing moving module.

[0010] Optionally, the glazing device further includes a Z-axis leveling moving module and a leveling sponge. The Z-axis leveling moving module is connected to the output end of the Y-axis glazing moving module. The leveling sponge is connected to the output end of the Z-axis leveling moving module and can level the glazing paint attached to the inductance magnetic core on the conveying device through the combined drive of the Y-axis glazing moving module and the Z-axis leveling moving module.

[0011] Optionally, the unloading device includes an unloading support, a magnetic adsorption contact member, a magnetic member, a magnetic adsorption cylinder, a Y-axis unloading moving module, and a Z-axis unloading moving module. The unloading support is installed on the chassis. The Y-axis unloading moving module is installed on the unloading support frame. The Z-axis unloading moving module is connected to the output end of the Y-axis unloading moving module and can move above the conveying device under the drive of the Y-axis unloading moving module. The magnetic adsorption contact member is connected to the output end of the Z-axis unloading moving module and can contact the inductive magnetic core located on the conveying device under the combined drive of the Y-axis unloading moving module and the Z-axis unloading moving module. The magnetic member is arranged above the magnetic adsorption contact member. The magnetic adsorption cylinder is connected to the magnetic member and is used to drive the magnetic member to contact or separate from the magnetic contact member.

[0012] Optionally, the unloading device further includes a side support, a moving frame, and a connecting column. The side support is connected to the output end of the Y-axis unloading moving module. The Z-axis unloading moving module is installed at the bottom of the side support with its output end facing upward. The moving frame is installed on the side support and can move up and down relative to the side support. The Z-axis unloading moving module is installed on the side support and is connected to the moving frame to drive the moving frame to move up and down. The magnetic adsorption contact member is connected to the bottom of the moving frame through the connecting column. The magnetic adsorption cylinder is installed on the moving frame with its piston rod facing downward and is connected to the magnetic member.

[0013] Optionally, the moving frame includes an upper support plate, a lower support plate, and a guide shaft. A bushing is installed on the side support. The guide shaft passes through the bushing, and the upper end of the guide shaft is connected to the upper support plate, and the lower end is connected to the lower support plate. The upper support plate is connected to the output end of the Z-axis unloading moving module. The magnetic adsorption contact member is connected to the bottom of the lower support plate through the connecting column. The magnetic adsorption cylinder is installed on the lower support plate, and its piston rod passes through the lower support plate downward and is connected to the magnetic member.

[0014] One or more of the above technical solutions in the glaze painting production line of the inductance magnetic core provided by the embodiment of the present utility model have at least one of the following technical effects: The present utility model realizes the automatic feeding of the inductance magnetic core and the automatic adhesion of the glaze paint through the glaze painting production line of the inductance magnetic core. Specifically, the feeding device feeds the inductance magnetic core onto the conveying device arranged on the chassis, and then the glazing device adheres the configured glaze paint onto the inductance magnetic core on the conveying device. The inductance magnetic core after the glaze paint adhesion continues to be conveyed by the conveying device to the baking device for baking. The baked inductance magnetic core continues to be conveyed forward by the conveying device until the discharging device discharges the inductance magnetic core. The glazing process of the inductance magnetic core realizes automated operation, with high production efficiency and high production quality. Finally, the produced inductance magnetic core has higher strength, can form a high bonding force with the electrodes of electronic products, and can prevent cracks from occurring during the soldering of the inductance magnetic core. Description of the Drawings

[0015] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model, the following will briefly introduce the drawings required for use in the embodiments or the description of the prior art. Obviously, the following described drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on these drawings.

[0016] Figure 1 It is a schematic structural diagram of the glaze painting production line of the inductance magnetic core provided by the embodiment of the present utility model.

[0017] Figure 2 It is a schematic structural diagram of another perspective of the glaze painting production line of the inductance magnetic core provided by the embodiment of the present utility model.

[0018] Figure 3 It is a schematic structural diagram of the feeding device of the glaze painting production line of the inductance magnetic core provided by the embodiment of the present utility model after hiding the grasping mechanism.

[0019] Figure 4 It is a top view of the feeding device of the glaze painting production line of the inductance magnetic core provided by the embodiment of the present utility model after hiding the grasping mechanism.

[0020] Figure 5 It is a schematic structural diagram of the linear vibrating mechanism of the glaze painting production line of the inductance magnetic core provided by the embodiment of the present utility model.

[0021] Figure 6 It is an exploded schematic structural diagram of the linear vibrating mechanism of the glaze painting production line of the inductance magnetic core provided by the embodiment of the present utility model.

[0022] Figure 7 It is a schematic structural diagram of the grasping mechanism of the glaze painting production line of the inductance magnetic core provided by the embodiment of the present utility model.

[0023] Figure 8 This is a schematic structural diagram of the glazing device of the inductor core glazing paint production line provided by the embodiment of the present invention.

[0024] Figure 9 This is a schematic structural diagram of the unloading device of the inductor core glazing paint production line provided by the embodiment of the present invention.

[0025] Among them, the reference numerals in the figure are as follows:

[0026] 10 - chassis, 20 - conveying device, 30 - loading device

[0027] 31 - loading rack, 32 - loading vibrating plate, 33 - linear vibrating mechanism

[0028] 34 - grasping mechanism, 35 - X-axis loading moving module, 36 - Y-axis loading moving module

[0029] 40 - glazing device, 41 - glaze paint tray, 42 - glazing rack

[0030] 43 - glazing flexible part, 44 - Y-axis glazing moving module, 45 - Z-axis glazing moving module

[0031] 46 - Z-axis leveling moving module, 47 - leveling sponge, 50 - baking device

[0032] 60 - unloading device, 61 - unloading support, 62 - magnetic contact part

[0033] 63 - magnetic part, 64 - magnetic suction cylinder, 65 - Y-axis unloading moving module

[0034] 66 - Z-axis unloading moving module, 67 - side support, 68 - moving frame

[0035] 69 - connecting column, 331 - linear vibrating motor, 332 - conveying material track

[0036] 333 - positioning material track, 334 - separating cylinder, 335 - blocking material track

[0037] 336 - anti-collision material track, 341 - grasping support, 342 - vacuum adsorption block

[0038] 343 - X-axis grasping moving module, 344 - Z-axis grasping moving module, 671 - bushing

[0039] 681 - upper support plate, 682 - lower support plate, 683 - guide shaft

[0040] 3331 - positioning material vacuum hole, 3351 - blocking material vacuum hole. Detailed implementation manners

[0041] Embodiments of the present utility model will be described in detail below. Examples of the embodiments are shown in the accompanying drawings, where the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The following is by reference to the attached Figures 1 - 9 The described embodiments are exemplary and are intended to explain the embodiments of the present utility model, and should not be construed as a limitation to the present utility model.

[0042] In the description of the embodiments of the present utility model, it should be understood that the orientation or positional relationship indicated by the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing the embodiments of the present utility model and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to the present utility model.

[0043] In addition, the terms "first" and "second" are only used for descriptive purposes and should not be construed as indicating or implying relative importance or implicitly specifying the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. In the description of the embodiments of the present utility model, "a plurality" means two or more, unless otherwise specifically defined.

[0044] In the embodiments of the present utility model, unless otherwise clearly specified and limited, the terms "mounted", "connected", "connected to", "fixed" and other terms should be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or integrated; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the communication inside two elements or the interaction relationship between two elements. For those of ordinary skill in the art, the specific meanings of the above terms in the embodiments of the present utility model can be understood according to specific circumstances.

[0045] Such as Figures 1 - 2As shown in the figure, this embodiment also provides an inductor core glazing production line, which includes a chassis 10, a conveying device 20, a feeding device 30, a glazing device 40, a baking device 50, and a discharging device 60. The conveying device 20 is installed on the chassis 10. The feeding device 30 is arranged close to the chassis 10 and is used to convey the inductor core onto the conveying device 20. The glazing device 40 is installed at one end of the chassis 10 close to the feeding device 30 and is used to attach the glaze to the inductor core on the conveying device 20. The baking device 50 is arranged above the conveying device 20 and is used to bake the inductor core that has been conveyed by the conveying device 20 and has been attached with glaze. The discharging device 60 is installed at the other end of the chassis 10 and is used to discharge the baked inductor core. In this embodiment, the automatic feeding of the inductor core and the automatic glazing process are realized through the inductor core glazing production line. Specifically, the feeding device 30 feeds the inductor core onto the conveying device 20 arranged on the chassis 10, and then the glazing device 40 attaches the configured glaze to the inductor core on the conveying device 20. The inductor core after glaze attachment continues to be conveyed by the conveying device 20 to the baking device 50 for baking. The baked inductor core continues to be conveyed forward by the conveying device 20 until the discharging device 60 discharges the inductor core. The glazing process of the inductor core realizes automatic operation, with high production efficiency and high production quality. Finally, the produced inductor core has higher strength, can form a high bonding force with the electrodes of electronic products, and can prevent cracks from occurring during soldering of the inductor core.

[0046] Among them, the glaze can be a glaze of conventional technology or an improved glaze.

[0047] Further, the conveying device 20 is composed of a belt and belt pulleys to form a conveying device 20 for each other. The belt has a relatively large width and can carry the inductor core on it, or a carrier plate can be additionally arranged on it to carry the inductor core. The power can be a motor.

[0048] Furthermore, the baking device 50 belongs to the prior art, and its detailed structure is not specifically described in this embodiment. It belongs to the technology that those skilled in the art can understand and make a conventional selection. In this embodiment, the glaze attached to the inductor core after baking by the baking device 50 can effectively make the inductor core have higher strength, form a stronger bonding force with the electrodes, and can also prevent the occurrence of soldering cracks.

[0049] In an implementation manner of this embodiment, as Figures 2 - 4As shown, the feeding device 30 includes a feeding frame 31, a feeding vibrating disk 32, a linear vibrating mechanism 33 and a grasping mechanism 34. The feeding vibrating disk 32, the linear vibrating mechanism 33 and the grasping mechanism 34 are all installed on the feeding frame 31. The linear vibrating mechanism 33 is connected to the output end of the feeding vibrating disk 32 and drives the inductance magnetic core to move along the linear vibrating mechanism 33 through vibration. The grasping mechanism 34 is close to the end of the linear vibrating mechanism 33 and is used to grasp the inductance magnetic core conveyed through the linear vibrating mechanism 33 and place it on the conveying device 20. Specifically, a large number of inductance magnetic cores are loaded in the feeding vibrating disk 32, and the inductance magnetic cores are conveyed one by one to the linear vibrating mechanism 33 through the vibration of the feeding vibrating disk 32. The linear vibrating mechanism 33 conveys the inductance magnetic cores in sequence and directionally. When the inductance magnetic core is conveyed to the set position, the grasping mechanism 34 grasps the inductance magnetic core and places it in the conveying device 20 to wait for the next process to be performed on the inductance magnetic core. Preferably, the linear vibrating mechanism 33 has multiple track grooves, so that multiple inductance magnetic cores can be conveyed at one time, and the inductance magnetic cores are conveyed in columns, improving the single processing efficiency.

[0050] In an embodiment of this embodiment, as Figures 3 - 6As shown, the linear vibration mechanism 33 includes a linear vibration motor 331, a conveying material track 332, a positioning material track 333, and a separating cylinder 334. The linear vibration motor 331 is installed on the feeding frame 31. The conveying material track 332 is installed on the top of the linear vibration motor 331 and is connected to the output end of the feeding vibrating disk 32. The positioning material track 333 is arranged at the end of the conveying material track 332, and a positioning material vacuum hole 3331 for adsorbing the inductance magnetic core is arranged on the positioning material track 333. The separating cylinder 334 is connected to the positioning material track 333 and is used to drive the positioning material track 333 to approach or move away from the end of the conveying material track 332. Specifically, after the linear vibration motor 331 is powered on, the conveying material track 332 vibrates, and the inductance magnetic cores in the groove of the conveying material track 332 are directionally conveyed. Among them, preferably, there are multiple grooves in the conveying material track 332, so that multiple inductance magnetic cores can be conveyed simultaneously. When the inductance magnetic cores are conveyed from the conveying material track 332 to the positioning material track 333, the positioning material vacuum hole 3331 arranged in the positioning material track 333 is externally connected to a vacuum generator to vacuum-adsorb the inductance magnetic cores at this position. The separating cylinder 334 drives the positioning material track 333 to separate, that is, a gap is formed between the positioning material track 333 and the conveying material track 332. At this time, it is convenient for the grasping mechanism 34 to grasp the inductance magnetic cores in the positioning material track 333 and transfer them to the conveying device 20. In this embodiment, by setting the positioning material track 333 to vacuum-adsorb the inductance magnetic cores and driving it to be separated from the conveying material track 332 by the separating cylinder 334, it is ensured that when the grasping mechanism 34 grasps the inductance magnetic cores in the positioning material track 333, it will not be affected by the inductance magnetic cores in the conveying material track 332, improving the stability and reliability of grasping the inductance magnetic cores. The structure design is ingenious and the practicability is strong.

[0051] In an implementation manner of this embodiment, as Figures 3 - 6As shown, the direct vibration mechanism 33 also includes a blocking material track 335, which is arranged between the conveying material track 332 and the positioning material track 333, and a blocking material vacuum hole 3351 for adsorbing the inductor core is arranged on the blocking material track 335, and the separation cylinder 334 drives the positioning material track 333 to approach or move away from the end of the blocking material track 335. Specifically, in this embodiment, a blocking material track 335 is added and arranged between the conveying material track 332 and the positioning material track 333, so that when the groove in the blocking material track 335 has an inductor core, the vacuum generator connected to the blocking material vacuum hole 3351 is sequentially used to evacuate the inductor core, so that the inductor core at this position can block the inductor core continuously conveyed by the conveying material track 332, so that it can be ensured that the inductor core in the positioning material track 333 can be normally grasped by the grasping mechanism 34 without being affected by the continuously conveyed inductor core. The separation cylinder 334 drives the positioning material track 333 to separate and contact with the newly added blocking material track 335.

[0052] Furthermore, if Figure 6 As shown, each slot in the blocking material track 335 can accommodate two inductor cores, and there are two blocking material vacuum holes 3351 to realize vacuum suction of the two inductor cores, thereby forming sufficient blocking force to prevent the inductor cores from being continuously transported in the conveying material track 332, ensuring that the inductor cores in the positioning material track 333 can be normally grasped by the grasping mechanism 34.

[0053] Furthermore, the bottom of the positioning material track 333 is directly or indirectly connected to a slide rail (not shown). When the positioning material track 333 is driven by the separation cylinder 334, the positioning material track 333 can move guided by the slide rail to achieve the control of the separation and contact between the positioning material track 333 and the conveying material track 332 or the blocking material track 335.

[0054] In one implementation of this embodiment, Figures 3 - 6 As shown, the direct vibration mechanism 33 also includes an anti-collision material track 336, which is made of stainless steel and is arranged at the head end of the conveying material track 332 to receive the inductor core conveyed by the feeding vibration plate 32. Specifically, the anti-collision material track 336 made of stainless steel has high strength performance, so when it contacts the output end of the feeding vibration plate 32, it is not easy to be damaged by the long-term vibration or impact of the output end of the feeding vibration plate 32.

[0055] In one implementation of this embodiment, Figure 2 , 7As shown, the grasping mechanism 34 includes a grasping bracket 341, a vacuum adsorption block 342, an X-axis grasping movement module 343, and a Z-axis grasping movement module 344. The grasping bracket 341 is installed on the feeding rack 31. The X-axis grasping movement module 343 is installed on the grasping bracket 341. The Z-axis grasping movement module 344 is connected to the output end of the X-axis grasping movement module 343 and can move back and forth between the linear vibrating mechanism 33 and the conveying device 20 under the drive of the X-axis grasping movement module 343. The vacuum adsorption block 342 is connected to the output end of the Z-axis grasping movement module 344 and can adsorb the inductance magnetic core located on the linear vibrating mechanism 33 onto the conveying device 20 under the combined drive of the X-axis grasping movement module 343 and the Z-axis grasping movement module 344. Specifically, the X-axis grasping movement module 343 realizes the reciprocating operation of driving the Z-axis grasping movement module 344 connected thereto along the X-axis direction, that is, realizes the back-and-forth operation between the linear vibrating mechanism 33 and the conveying device 20. Then when the Z-axis grasping movement module 344 runs to the linear vibrating mechanism 33, the Z-axis grasping movement module 344 controls the vacuum adsorption block 342 connected thereto to move downwards to adsorb the inductance magnetic core located on the linear vibrating mechanism 33, that is, the inductance magnetic core on the positioning material track 333, and then rises. Continuing to be driven by the X-axis grasping movement module 343, it is brought above the conveying device 20, and then the Z-axis grasping movement module 344 controls the vacuum adsorption block 342 to move downwards again to place the adsorbed inductance magnetic core on the conveying device 20. Among them, the vacuum adsorption block 342 is also externally connected to a vacuum generator, and the vacuum generator can realize vacuum pumping to adsorb the inductance magnetic core.

[0056] In an implementation manner of this embodiment, as Figures 2 - 3As shown, the feeding device 30 further includes an X-axis feeding movement module 35 and a Y-axis feeding movement module 36. The Y-axis feeding movement module 36 is installed on the feeding rack 31. The X-axis feeding movement module 35 is disposed on the Y-axis feeding movement module 36 and connected to the output end of the Y-axis feeding movement module 36. The feeding vibrating disk 32 is disposed on the X-axis feeding movement module 35 and connected to the output end of the X-axis feeding movement module 35. Through the combined drive of the X-axis feeding movement module 35 and the Y-axis feeding movement module 36, it is realized to control the output end of the feeding vibrating disk 32 to connect to the linear vibrating mechanism 33. Specifically, the X-axis feeding movement module 35 and the Y-axis feeding movement module 36 respectively realize reciprocating movements in the X-axis and Y-axis directions. Under the combined action of the X-axis feeding movement module 35 and the Y-axis feeding movement module 36, the feeding vibrating disk 32 can be driven to move within the X-axis and Y-axis ranges. In this way, it can be ensured that the output end of the feeding vibrating disk 32 can be connected to the inlet of each slot of the conveying material track 332 or the anti-collision material track 336 in the linear vibrating mechanism 33 one by one. In this way, the inductance magnetic cores in the feeding vibrating disk 32 are input into each slot of the conveying material track 332 or the anti-collision material track 336 one by one for continuous directional conveying, automatically conveying the inductance magnetic cores with high production efficiency.

[0057] Further, as Figures 2 - 3 shown, preferably two feeding vibrating disks 32 are adopted in this embodiment, which can further improve the feeding efficiency. Especially when the linear vibrating mechanism 33 has multiple inductance magnetic core conveying slots, then through the combined control of the two feeding vibrating disks 32 by the X-axis feeding movement module 35 and the Y-axis feeding movement module 36, the inductance magnetic cores are continuously conveyed to the multiple inductance magnetic core conveying slots with high production efficiency.

[0058] In an implementation manner of this embodiment, as Figure 2 、 8As shown, the glazing device 40 includes a glaze pan 41 for containing glaze paint, a glazing rack 42, a glazing flexible member 43, a Y-axis glazing movement module 44, and a Z-axis glazing movement module 45. The glaze pan 41 and the glazing rack 42 are both installed on the chassis 10. The Y-axis glazing movement module 44 is installed on the glazing rack 42. The Z-axis glazing movement module 45 is connected to the output end of the Y-axis glazing movement module 44 and can move back and forth between the glaze pan 41 and the conveying device 20 under the drive of the Y-axis glazing movement module 44. The glazing flexible member 43 is connected to the output end of the Z-axis glazing movement module 45 and can attach the glaze paint in the glaze pan 41 to the inductance magnetic core on the conveying device 20 under the combined drive of the Y-axis glazing movement module 44 and the Z-axis glazing movement module 45. Specifically, the Y-axis glazing movement module 44 controls the Z-axis glazing movement module 45 to move along the Y-axis, that is, to move back and forth above the conveying device 20 and above the glaze pan 41. When the Z-axis glazing movement module 45 is controlled to move above the glaze pan 41, the Z-axis glazing movement module 45 then controls the glazing flexible member 43 connected to it to move downward until the glazing flexible member 43 adheres to the glaze paint in the glaze pan 41. Then, the Z-axis glazing movement module 45 drives the glazing flexible member 43 to move upward, and continues to drive the Z-axis glazing movement module 45 to move along the Y-axis to above the conveying device 20 through the Y-axis glazing movement module 44. Finally, the Z-axis glazing movement module 45 controls the glazing flexible member 43 to move downward to contact the inductance magnetic core on the conveying device 20, and the glazing flexible member 43 adheres the paint on it to the inductance magnetic core, completing a single process. Subsequently, the conveying device 20 continues to convey the inductance magnetic core with attached glaze paint to the baking device 50 to execute the baking program. In this embodiment, the automatic glazing work is realized, with high production efficiency and good production quality.

[0059] Among them, the glazing flexible member 43 is preferably a sponge.

[0060] In an implementation manner of this embodiment, as Figure 2 、 8As shown, the glaze dipping device 40 further includes a Z-axis leveling movement module 46 and a leveling sponge 47. The Z-axis leveling movement module 46 is connected to the output end of the Y-axis glaze dipping movement module 44, and the leveling sponge 47 is connected to the output end of the Z-axis leveling movement module 46 and can level the glaze adhered to the inductance core on the conveying device 20 through the combined drive of the Y-axis glaze dipping movement module 44 and the Z-axis leveling movement module 46. Specifically, when the glaze dipping flexible member 43 dips the glaze on the inductance core on the conveying device 20, then through the combined control of the Z-axis leveling movement module 46 and the Y-axis glaze dipping movement module 44, the leveling sponge 47 moves downward to contact the inductance core, so that the glaze adhered to the inductance core can be leveled, and the excess glaze is adhered to the leveling sponge 47, making the glaze adhered to the inductance core smoother when sufficient, and avoiding unevenness at local positions.

[0061] In an implementation manner of this embodiment, as Figure 2 、 9As shown, the unloading device 60 includes an unloading support 61, a magnetic adsorption contact member 62, a magnetic member 63, a magnetic adsorption cylinder 64, a Y-axis unloading movement module 65, and a Z-axis unloading movement module 66. The unloading support 61 is installed on the chassis 10. The Y-axis unloading movement module 65 is installed on the unloading support frame. The Z-axis unloading movement module 66 is connected to the output end of the Y-axis unloading movement module 65 and can move above the conveying device 20 under the drive of the Y-axis unloading movement module 65. The magnetic adsorption contact member 62 is connected to the output end of the Z-axis unloading movement module 66 and can contact the inductance magnetic core located on the conveying device 20 under the combined drive of the Y-axis unloading movement module 65 and the Z-axis unloading movement module 66. The magnetic member 63 is arranged above the magnetic adsorption contact member 62. The magnetic adsorption cylinder 64 is connected to the magnetic member 63 and is used to drive the magnetic member 63 to contact or separate from the magnetic contact member. Specifically, the Y-axis unloading movement module 65 controls the Z-axis unloading movement module 66 to move above the conveying device 20. Then, the Z-axis unloading movement module 66 drives the magnetic adsorption contact member 62 connected thereto to move downward until it contacts the inductance magnetic core on the conveying device 20. Then, the magnetic adsorption cylinder 64 drives the magnetic member 63 to move downward to contact the top of the magnetic contact member. In this way, the inductance magnetic core is adsorbed with the magnetic contact member in between. Then, the Z-axis unloading movement module 66 drives the magnetic contact member to move upward, thereby driving the inductance magnetic core to move upward. Then, the Y-axis unloading movement module 65 drives the entire Z-axis unloading movement module 66 away from the conveying device 20. Finally, after the Z-axis unloading movement module 66 controls the magnetic adsorption contact member 62 to move downward to a set position, the magnetic adsorption cylinder 64 drives the magnetic member 63 to move upward away from the magnetic contact member until the inductance magnetic core adsorbed at the bottom of the magnetic contact member drops to the collection position, completing the automatic unloading of the inductance magnetic core and enabling efficient production.

[0062] In an implementation manner of this embodiment, as Figure 2 、 9As shown, the unloading device 60 further includes a side bracket 67, a moving frame 68 and a connecting column 69. The side bracket 67 is connected to the output end of the Y-axis unloading moving module 65. The Z-axis unloading moving module 66 is installed at the bottom of the side bracket 67 and its output end is arranged upward. The moving frame 68 is installed on the side bracket 67 and can move up and down relative to the side bracket 67. The Z-axis unloading moving module 66 is installed on the side bracket 67 and is connected to the moving frame 68 to drive the moving frame 68 to move up and down. The magnetic contact member 62 is connected to the bottom of the moving frame 68 through the connecting column 69. The magnetic suction cylinder 64 is installed on the moving frame 68 and its piston rod is arranged downward and is connected to the magnetic member 63. Specifically, the moving frame 68 moves up and down under the drive of the Z-axis unloading moving module 66, thereby driving the magnetic contact member 62 connected thereto through the connecting column 69 to move up and down, so that the magnetic contact member 62 can contact the inductive magnetic core on the conveying device 20. Moreover, the setting of the moving frame 68 also provides a support for the installation of the magnetic suction cylinder 64. In this way, the magnetic suction cylinder 64 can drive the magnetic member 63 to contact the top of the magnetic contact member or disengage from the bottom of the magnetic contact member.

[0063] Further, in this embodiment, the moving frame 68 includes an upper support plate 681, a lower support plate 682, and a guide shaft 683. A bushing 671 is installed on the side bracket 67. The guide shaft 683 passes through the bushing 671, and the upper end of the guide shaft 683 is connected to the upper support plate 681, and the lower end is connected to the lower support plate 682. The upper support plate 681 is connected to the output end of the Z-axis unloading moving module 66. The magnetic attraction contact member 62 is connected to the bottom of the lower support plate 682 through a connecting column 69. The magnetic attraction cylinder 64 is installed on the lower support plate 682, and its piston rod passes downward through the lower support plate 682 and is connected to the magnetic member 63. In this way, a certain distance is formed between the lower support plate 682 and the magnetic attraction contact member 62 through the setting of the connecting column 69. The setting of this distance can be used to provide up and down movement control for the magnetic member 63. In this way, the magnetic attraction cylinder 64 installed on the lower support plate 682 can drive the magnetic member 63 to move up and down in the above-mentioned distance. For example, it can contact the top of the magnetic contact member or change from the contact state to the separated state. The upper support plate 681 and the lower support plate 682 are connected together by the guide shaft 683 passing through the bushing 671. The number of guide shafts 683 can be four, which are distributed at the four corners between the upper support plate 681 and the lower support plate 682. In this way, the upper support plate 681 and the lower support plate 682 form a fixed frame structure to achieve linkage. In this way, when the Z-axis unloading moving module 66 drives the upper support plate 681 to move up and down, it realizes driving the lower support plate 682 to move up and down, and finally realizes controlling the up and down movement of the magnetic attraction contact member 62. And during the movement process, there is the guidance of the bushing 671, which ensures the stability and reliability of the Z-axis movement. The setting of the side bracket 67 facilitates the installation of the entire Z-axis unloading moving module 66 on the side of the output end of the Y-axis unloading moving module 65, and facilitates driving the entire Z-axis unloading moving module 66 to move along the Y-axis.

[0064] It should be noted that the X-axis grasping moving module 343, Z-axis grasping moving module 344, X-axis feeding moving module 35, Y-axis feeding moving module 36, Y-axis glazing moving module 44, Z-axis glazing moving module 45, Z-axis leveling moving module 46, Y-axis unloading moving module 65, and Z-axis unloading moving module 66 mentioned in the embodiments of the present invention can respectively adopt cylinders, electric cylinders, or motor modules, that is, they can be selected and implemented in the prior art, and belong to the technologies that can be understood and implemented by those skilled in the art.

[0065] The above are only the preferred embodiments of the present invention, and are not intended to limit the present invention. Any modifications, equivalent replacements, and improvements made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. An inductor magnetic core glazing paint production line, characterized in that, It includes a chassis, a conveying device, a feeding device, a glazing device, a baking device and a discharging device. The conveying device is installed on the chassis. The feeding device is arranged close to the chassis and is used to convey inductive magnetic cores to the conveying device. The glazing device is installed at one end of the chassis close to the feeding device and is used to attach glaze paint to the inductive magnetic cores on the conveying device. The baking device is arranged above the conveying device and is used to bake the inductive magnetic cores that are conveyed by the conveying device and have been attached with glaze paint. The discharging device is installed at the other end of the chassis and is used to discharge the baked inductive magnetic cores.

2. The glaze painting production line for the inductance magnetic core according to claim 1, characterized in that The feeding device includes a feeding rack, a feeding vibrating disk, a linear vibrating mechanism and a grasping mechanism. The feeding vibrating disk, the linear vibrating mechanism and the grasping mechanism are all installed on the feeding rack. The linear vibrating mechanism is connected to the output end of the feeding vibrating disk and drives the inductive magnetic cores to move along the linear vibrating mechanism through vibration. The grasping mechanism is close to the end of the linear vibrating mechanism and is used to grasp the inductive magnetic cores conveyed by the linear vibrating mechanism and transfer them to the conveying device.

3. The inductor core glazing paint production line according to claim 2, characterized in that, The linear vibrating mechanism includes a linear vibrating motor, a conveying material track, a positioning material track and a separating cylinder. The linear vibrating motor is installed on the feeding rack. The conveying material track is installed on the top of the linear vibrating motor and is connected to the output end of the feeding vibrating disk. The positioning material track is arranged at the end of the conveying material track, and positioning material vacuum holes for adsorbing inductive magnetic cores are provided on the positioning material track. The separating cylinder is connected to the positioning material track and is used to drive the positioning material track to approach or move away from the end of the conveying material track.

4. The glaze painting production line for an inductance magnetic core according to claim 3, characterized in that, The linear vibrating mechanism further includes a blocking material track. The blocking material track is arranged between the conveying material track and the positioning material track, and blocking material vacuum holes for adsorbing inductive magnetic cores are provided on the blocking material track. The separating cylinder drives the positioning material track to approach or move away from the end of the blocking material track.

5. The glaze painting production line for an inductance magnetic core according to claim 2, wherein The feeding device further includes an X-axis feeding moving module and a Y-axis feeding moving module. The Y-axis feeding moving module is installed on the feeding rack. The X-axis feeding moving module is arranged on the Y-axis feeding moving module and is connected to the output end of the Y-axis feeding moving module. The feeding vibrating disk is arranged on the X-axis feeding moving module and is connected to the output end of the X-axis feeding moving module. Through the combined drive of the X-axis feeding moving module and the Y-axis feeding moving module, the output end of the feeding vibrating disk is controlled to be connected to the linear vibrating mechanism.

6. The glaze painting production line for inductive magnetic cores according to claim 1, characterized in that The glazing device includes a glaze pan for containing glaze paint, a glazing rack, a glazing flexible member, a Y-axis glazing movement module, and a Z-axis glazing movement module. The glaze pan and the glazing rack are both installed on the chassis. The Y-axis glazing movement module is installed on the glazing rack. The Z-axis glazing movement module is connected to the output end of the Y-axis glazing movement module and can move back and forth between the glaze pan and the conveying device under the drive of the Y-axis glazing movement module. The glazing flexible member is connected to the output end of the Z-axis glazing movement module and can attach the glaze paint in the glaze pan to the inductive magnetic core on the conveying device under the combined drive of the Y-axis glazing movement module and the Z-axis glazing movement module.

7. The glaze paint production line for an inductive magnetic core according to claim 6, characterized in that, The glazing device further includes a Z-axis leveling movement module and a leveling sponge. The Z-axis leveling movement module is connected to the output end of the Y-axis glazing movement module. The leveling sponge is connected to the output end of the Z-axis leveling movement module and can level the glaze paint adhered to the inductive magnetic core on the conveying device under the combined drive of the Y-axis glazing movement module and the Z-axis leveling movement module.

8. The glaze painting production line for an inductance magnetic core according to claim 1, characterized in that, The unloading device includes an unloading support, a magnetic attraction contact member, a magnetic member, a magnetic attraction cylinder, a Y-axis unloading movement module, and a Z-axis unloading movement module. The unloading support is installed on the chassis. The Y-axis unloading movement module is installed on the unloading support. The Z-axis unloading movement module is connected to the output end of the Y-axis unloading movement module and can move above the conveying device under the drive of the Y-axis unloading movement module. The magnetic attraction contact member is connected to the output end of the Z-axis unloading movement module and can contact the inductive magnetic core located on the conveying device under the combined drive of the Y-axis unloading movement module and the Z-axis unloading movement module. The magnetic member is arranged above the magnetic attraction contact member. The magnetic attraction cylinder is connected to the magnetic member and is used to drive the magnetic member to contact or separate from the magnetic attraction contact member.

9. The glazed paint production line for an inductive magnetic core according to claim 8, wherein The unloading device further includes a side support, a moving frame, and a connecting column. The side support is connected to the output end of the Y-axis unloading movement module. The Z-axis unloading movement module is installed at the bottom of the side support and its output end is arranged upward. The moving frame is installed on the side support and can move up and down relative to the side support. The Z-axis unloading movement module is installed on the side support and is connected to the moving frame to drive the moving frame to move up and down. The magnetic attraction contact member is connected to the bottom of the moving frame through the connecting column. The magnetic attraction cylinder is installed on the moving frame and its piston rod is arranged downward and is connected to the magnetic member.

10. The glaze painting production line for the inductance magnetic core according to claim 9, wherein, The moving frame includes an upper support plate, a lower support plate, and a guide shaft. A bushing is installed on the side support. The guide shaft passes through the bushing, and the upper end of the guide shaft is connected to the upper support plate and the lower end is connected to the lower support plate. The upper support plate is connected to the output end of the Z-axis unloading movement module. The magnetic attraction contact member is connected to the bottom of the lower support plate through the connecting column. The magnetic attraction cylinder is installed on the lower support plate and its piston rod passes through the lower support plate downward and is connected to the magnetic member.