Pressing processing system

By introducing a material pressing system consisting of a cold pressing device, a hot pressing device, a detection mechanism, and a conveying mechanism into the inductor production process, the problem of unstable finished product yield caused by insufficient mold precision was solved, and the finished product yield was significantly improved.

CN114420438BActive Publication Date: 2025-09-05HERUI ELECTRONIC ZHONGSHANCO LTD
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Patent Information

Application Number
CN202210148491.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-02-17
Publication Date
2025-09-05
Estimated Expiration
2042-02-17

AI Technical Summary

Technical Problem

The existing molds have limited precision, resulting in unstable finished product yields during the inductor production process.

Method used

A pressing processing system including a cold pressing device, a hot pressing device, a testing mechanism and a conveying mechanism is used to improve the yield rate of finished products through multiple pressing and testing.

Benefits of technology

Through multiple pressing and testing, the yield rate of the finished product is significantly improved, making it more stable.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a pressing processing system, which includes: a cold pressing device, a hot pressing device, a demoulding device, a detection mechanism and a conveying mechanism. After the material passes through the cold pressing device and the hot pressing device, it is driven by the conveying mechanism to the demoulding device for demoulding. The detection mechanism is arranged between the second pressing machine and the demoulding device and can detect the state of the material; the conveying mechanism can drive the material to move between the first discharge position and the second feed position, and between the second discharge position and the third feed position. The detection mechanism can detect the state of the material after the pressing operation is completed, so that unqualified materials can be effectively screened out. By pressing the material multiple times by the first pressing machine and the second pressing machine, and using the detection mechanism to detect and screen the material after the pressing is completed, the purpose of improving the yield rate of the finished product obtained after the pressing operation is effectively achieved.
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Description

Technical Field

[0001] The present invention relates to the field of electronic component production, and in particular to a pressing processing system. Background Art

[0002] As we all know, the existing inductor production process requires filling the core with magnetic powder and compacting it. Currently, this compaction process typically involves placing the powder and material directly onto a tray, transporting the tray to a compacting station, and then using a mold to compact the material. However, the limited precision of existing molds results in inconsistent yield rates for the resulting material. Summary of the Invention

[0003] The present invention aims to solve at least one of the technical problems existing in the prior art. To this end, the present invention provides a pressing processing system that can improve the yield rate of finished products.

[0004] According to the first aspect of the present invention, the pressing processing system includes: a cold pressing device, a hot pressing device, a demoulding device, a detection mechanism and a conveying mechanism, the cold pressing device includes a first material transport track, a first feeding mechanism and a first press, the first material transport track is provided with a first feeding position and a first discharging position, the first feeding mechanism is located between the first feeding position and the first discharging position and can drive the material to move closer to or away from the first press; the hot pressing device includes a second material transport track, a second feeding mechanism and a second press, the second material transport track is provided with a second feeding position and a second discharging position, the second feeding mechanism is located between the second feeding position and the first discharging position and can drive the material to move closer to or away from the first press; The first and second discharge positions can drive the material to move closer to or away from the second press, and the second press can heat and push the material; the demoulding device includes a conveying mechanism and a demoulding mold, and the conveying mechanism includes a third feed position and a tray recovery position. The conveying mechanism can drive the material to move close to the demoulding mold, and the conveying mechanism can drive the tray after demoulding to move close to the tray recovery position; the detection mechanism is arranged between the second press and the demoulding device and can detect the state of the material; the handling mechanism can drive the material to move between the first discharge position and the second feed position, and between the second discharge position and the third feed position.

[0005] The pressing processing system according to an embodiment of the present invention has at least the following beneficial effects: After the loaded material tray is transported to the first feed position, it will move on the first transport track. During this process, the first feed mechanism will drive the material to the first press, and the first press will perform preliminary pre-compaction operations on the material. Subsequently, the first feed mechanism will drive the material back to the first transport track, and the material will move on the first track to the first discharge position. Subsequently, the conveying mechanism will transport the material to the second feed position, and the second transport track will continue to drive the material. During this process, the second feed mechanism will drive the material to the second press for hot pressing. After the hot pressing is completed, the material will be transported to the second discharge position and the conveying mechanism will drive it to the third feed position. Finally, the conveying mechanism will drive the material to the demolding mold for demolding, and the empty tray after demolding is transported to the tray recovery position for reuse.

[0006] The detection mechanism can detect the state of the material after the pressing operation is completed, so that unqualified materials can be effectively screened out. By pressing the material multiple times by the first and second pressing machines and using the detection mechanism to detect and screen the material after the pressing is completed, the purpose of effectively improving the yield rate of the finished product obtained after the pressing operation is completed can be achieved, and the yield rate of the finished product can be made more stable.

[0007] According to some embodiments of the present invention, a first loading seat and a first transfer position are provided on the first material transport track, a clamp for fixing the material is provided on the first loading seat, and the first loading seat can reciprocate between the first feeding position, the first transfer position and the first discharging position; the first feeding mechanism includes a first material transport piece, which reciprocates between the first pressing machine and the first transfer position and can drive the material on the first loading seat to move.

[0008] According to some embodiments of the present invention, a dust cleaning mechanism is provided between the first feeding position and the first transfer position, and the dust cleaning mechanism is capable of removing excess dust on the first loading seat.

[0009] According to some embodiments of the present invention, the cleaning mechanism includes a cleaning roller, a mounting frame is provided on the first material transport track, and the cleaning roller is rotatably mounted on the mounting frame; the outer periphery of the cleaning roller has a sticky layer, and the cleaning roller can roll the material on the first loading seat.

[0010] According to some embodiments of the present invention, a second loading seat and a second transfer position are provided on the second material transport track, a clamp for fixing the material is provided on the second loading seat, and the second loading seat can reciprocate between the second feeding position, the second transfer position and the second discharging position; the second feeding mechanism includes a second material transport piece, and the second material transport piece reciprocates between the second press and the second transfer position and can drive the material on the second loading seat to move.

[0011] According to some embodiments of the present invention, the detection mechanism includes a camera, a support frame is provided above the second material transport track, a lifting cylinder is provided on the support frame, and the lifting cylinder is connected to the camera and can drive it to move closer to or away from the second material transport track.

[0012] According to some embodiments of the present invention, the demoulding device further includes a cooling mechanism, and the conveying mechanism can drive the material to move from the third feeding position to approach the cooling mechanism and the demoulding mold in sequence.

[0013] According to some embodiments of the present invention, the conveying mechanism includes a flipping assembly, which can drive the material to flip so that both sides of the material can obtain the cooling effect brought by the cooling mechanism.

[0014] According to some embodiments of the present invention, the demoulding device further includes a cleaning mechanism, which is located between the demoulding mold and the tray recovery position and is capable of clearing residual material on the tray.

[0015] According to some embodiments of the present invention, the cleaning mechanism includes a negative pressure vacuum cleaner, and the conveying mechanism can drive the material tray to move from the stripping mold to the negative pressure vacuum cleaner and the material tray recovery position in sequence.

[0016] Additional aspects and advantages of the present invention will be set forth in part in the description which follows and, in part, will be obvious from the description which follows, or may be learned by practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the following description of the embodiments with reference to the accompanying drawings, in which:

[0018] Figure 1 Schematic diagram of a material pressing processing system according to an embodiment of the present invention;

[0019] Figure 2 for Figure 1 A schematic diagram of a cold pressing device of a pressing processing system is shown;

[0020] Figure 3 for Figure 1A schematic diagram of a first material transport track of a pressing processing system is shown;

[0021] Figure 4 for Figure 1 A schematic diagram of a dust cleaning mechanism of a pressing material processing system is shown;

[0022] Figure 5 for Figure 1 A schematic diagram of a hot pressing device of a pressing processing system is shown;

[0023] Figure 6 for Figure 1 A schematic diagram of a detection mechanism of a pressing processing system is shown;

[0024] Figure 7 for Figure 1 A schematic diagram of a second feeding mechanism of a pressing processing system is shown;

[0025] Figure 8 for Figure 1 A schematic diagram of a demoulding device of a pressing processing system is shown;

[0026] Figure 9 for Figure 1 A schematic diagram of a conveying mechanism of a pressing processing system is shown;

[0027] Figure 10 for Figure 1 A schematic diagram of the cleaning mechanism of the press processing system is shown.

[0028] Reference numerals: 100 is a cold pressing device, 101 is a first feeding position, 102 is a first discharging position, 110 is a first transport track, 115 is a first loading seat, 120 is a first feeding mechanism, 121 is a first feeding rack, 122 is a first feeding cylinder, 123 is a first feeding seat, 125 is a first transport member, 130 is a first pressing machine, 135 is an operation screen, 150 is a cleaning mechanism, 151 is a cleaning motor, 152 is a transmission belt, 153 is a mounting bracket, 155 is a cleaning drum, 159 is a negative pressure suction head, 170 is a first transfer position, and 190 is a clamp;

[0029] 200 is a hot pressing device, 201 is a second feeding position, 202 is a second discharging position, 210 is a second transport track, 215 is a second loading seat, 220 is a second feeding mechanism, 221 is a second feeding rack, 222 is a second feeding cylinder, 223 is a second feeding seat, 225 is a second transport piece, 230 is a second pressing machine, 250 is a detection mechanism, 251 is a support frame, 252 is a lifting cylinder, 255 is a camera, and 270 is a second transfer position;

[0030] 300 is a demoulding device, 301 is a third feeding position, 302 is a tray recovery position, 310 is a conveying mechanism, 311 is a pushing member, 312 is a pushing cylinder, 313 is a clamping member, 314 is a clamping cylinder, 315 is a conveying member, 316 is a conveying cylinder, 317 is a conveying frame, 318 is a telescopic cylinder, 319 is a conveying seat, 320 is a stripping mold, 340 is a cooling mechanism, 350 is a turning assembly, 351 is a turning cylinder, 352 is a rack and pinion pair, 355 is a material transport rack, 360 is a cleaning mechanism, 361 is a negative pressure vacuum cleaner, and 362 is a material transport channel;

[0031] 400 is a transport mechanism. DETAILED DESCRIPTION

[0032] The following describes embodiments of the present invention in detail. Examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended only to explain the present invention and are not to be construed as limiting the present invention.

[0033] In the description of the present invention, it should be understood that descriptions involving orientations, such as up, down, front, back, left, right, etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, they cannot be understood as limitations on the present invention.

[0034] In the description of the present invention, "several" means one or more, "many" means more than two, "greater than," "less than," and "exceed" are understood to exclude the number itself, while "above," "below," and "within" are understood to include the number itself. The use of "first" and "second" in the description is solely for the purpose of distinguishing technical features and should not be construed as indicating or implying relative importance, implicitly specifying the number of the indicated technical features, or implicitly specifying the order of the indicated technical features.

[0035] In the description of the present invention, unless otherwise clearly defined, terms such as setting, installing, and connecting should be understood in a broad sense, and technicians in the relevant technical field can reasonably determine the specific meanings of the above terms in the present invention based on the specific content of the technical solution.

[0036] Reference Figure 1, a pressing processing system, comprising: a cold pressing device 100, a hot pressing device 200, a demoulding device 300, a detection mechanism 250 and a conveying mechanism 400, the cold pressing device 100 comprises a first material transport track 110, a first feeding mechanism 120 and a first pressing machine 130, the first material transport track 110 is provided with a first material feed position 101 and a first material discharge position 102, the first feeding mechanism 120 is located between the first material feed position 101 and the first material discharge position 102 and can drive the material to move closer to or away from the first pressing machine 130; the hot pressing device 200 comprises a second material transport track 210, a second feeding mechanism 220 and a second pressing machine 230, the second material transport track 210 is provided with a second material feed position 201 and a second material discharge position 202, the second feeding mechanism 220 is located between the second material feed position 2 01 and the second material discharge position 202 and can drive the material to move closer to or away from the second pressing machine 230, which can heat and push the material; the demoulding device 300 includes a conveying mechanism 310 and a demoulding mold 320, and the conveying mechanism 310 includes a third material feeding position 301 and a material tray recovery position 302. The conveying mechanism 310 can drive the material to move closer to the demoulding mold 320, and the conveying mechanism 310 can drive the material to move closer to the material tray recovery position 302 after the material is removed; the detection mechanism 250 is set between the second material press 230 and the demoulding device 300 and can detect the state of the material; the conveying mechanism 400 can drive the material to move between the first material discharge position 102 and the second material feeding position 201, and between the second material discharge position 202 and the third material feeding position 301. After the material tray loaded with material is transported to the first material feeding position 101, it will move on the first material transport track 110. During this process, the first feed mechanism 120 transports the material to the first press 130, where it undergoes preliminary pre-compaction. The first feed mechanism 120 then returns the material to the first transport track 110, where it moves along the first track to the first discharge position 102. The transport mechanism 400 then transports the material to the second feed position 201, where the second transport track 210 continues to move the material. During this process, the second feed mechanism 220 transports the material to the second press 230 for hot pressing. After hot pressing, the material is transported to the second discharge position 202 and then transported by the transport mechanism 400 to the third feed position 301. Finally, the conveying mechanism 310 transports the material to the demolding die 320 for demolding. The empty tray is then transported to the tray recovery position 302 for reuse. The detection mechanism 250 can detect the state of the material after the material pressing operation is completed, so that the material that fails the pressing can be effectively screened out.By pressing the material multiple times by the first presser 130 and the second presser 230 and detecting and screening the material after pressing by the detection mechanism 250, the purpose of improving the yield rate of the finished product obtained after the pressing operation can be effectively achieved, and the yield rate of the finished product can be made more stable.

[0037] Specifically, the second pressing machine 230 includes a lower die base and an upper die base, which can be relatively close to each other and perform mold closing. A heater is provided on the lower die base to heat the material, thereby achieving a hot pressing effect.

[0038] Specifically, an operation screen 135 is further provided beside the first pressing machine 130 and the second pressing machine 230 to facilitate the user to operate them.

[0039] It is conceivable that the detection mechanism 250 can detect the material after the cold pressing operation or the material after the hot pressing operation. The specific implementation method can be adjusted accordingly according to actual needs and is not limited here.

[0040] In certain embodiments, reference Figure 3 The first material transport track 110 is provided with a first loading base 115 and a first transfer position 170. The first loading base 115 is provided with a clamp 190 for securing the material. The first loading base 115 is capable of reciprocating between the first feed position 101, the first transfer position 170, and the first discharge position 102. The first feeding mechanism 120 includes a first material transport member 125, which reciprocates between the first press 130 and the first transfer position 170 and is capable of driving the material on the first loading base 115. The first loading base 115 moves to the first feed position 101 and can receive the material there. Subsequently, the first loading base 115 drives the material to the first transfer position 170. At this time, the first material transporting member 125 can move closer to the first transfer position 170 and take the material on the first transfer position 170, thereby moving the material from the first transfer position 170 to the first compactor 130 for compaction. After the compaction operation is completed, the first material transporting member 125 drives the material back to the first transfer position 170, and the first material loading base 115 drives the compacted material on the first transfer position 170 to the first material discharge position 102 for subsequent operations.

[0041] Specifically, a first driving motor is provided on the first material transport track 110 , and the driving motor is connected to the first material loading base 115 through a screw-nut pair and can drive the first material loading base 115 to move.

[0042] Specifically, the first feeding mechanism 120 includes a first feeding rack 121, a first feeding cylinder 122 is provided on the first feeding rack 121, the first feeding cylinder 122 is connected to the first feeding seat 123, and the first material transporting member 125 is provided on the first feeding seat 123 and can be driven thereby.

[0043] It is conceivable that clamps 190 can be set at the first feed position 101, the second feed position 201, the third feed position 301, the first discharge position 102, the second discharge position 202 and the tray recovery position 302 to facilitate fixing of the materials.

[0044] In certain embodiments, reference Figure 2 A dust cleaning mechanism 150 is provided between the first material feeding position 101 and the first transfer position 170. The dust cleaning mechanism 150 is capable of removing excess dust from the first material loading base 115. The dust cleaning mechanism 150 cleans the dust from the first material loading base 115, effectively removing the dust from the first material loading base 115, thereby preventing the dust from accompanying the material to the first pressing machine 130 and causing damage to the material during the pressing process, thereby ensuring that the material pressing operation can proceed smoothly and improving the yield rate of the finished product.

[0045] In certain embodiments, reference Figure 4 The cleaning mechanism 150 includes a cleaning drum 155. A mounting bracket 153 is provided on the first material transport track 110, and the cleaning drum 155 is rotatably mounted on the mounting bracket 153. The cleaning drum 155 has a sticky layer on its outer periphery, allowing it to roll over the material on the first material loading base 115. When the first material loading base 115 drives the material to the cleaning drum 155, the material comes into contact with the cleaning drum 155. As the cleaning drum 155 rotates, its sticky layer sticks to and absorbs dust on the first material loading base 115, transferring the dust from the first material loading base 115 to the surface of the cleaning drum 155. This prevents the dust from continuing to move with the first material loading base 115, thereby preventing it from affecting the material during processing.

[0046] Specifically, a dust cleaning motor 151 is provided on the mounting frame 153 , and the dust cleaning motor 151 is connected to the dust cleaning drum 155 through a transmission belt 152 and can drive the drum 155 to rotate.

[0047] Specifically, the dust cleaning mechanism 150 also includes a negative pressure suction device connected to a negative pressure suction head 159. The negative pressure suction head 159 is capable of negatively suctioning the first material loading base 115 before it moves to the first transfer position 170. After the first material transport track 110 drives the material to move near the negative pressure suction head 159, the negative pressure suction device is activated, and the negative pressure suction head 159 is able to negatively suction the dust on the first material loading base 115 that moves to the vicinity thereof, thereby directly and effectively achieving a dust removal effect on the surface of the first material loading base 115.

[0048] It is conceivable that the dust cleaning mechanism 150 may also be composed of other components, such as a broom (not shown) movably disposed above the first material transport track 110. The specific implementation method can be adjusted accordingly according to actual conditions and is not limited here.

[0049] It is conceivable that the surface of the cleaning drum 155 can also adsorb dust in other ways, such as being provided with an electrostatic surface, etc. The specific implementation method can be adjusted accordingly according to actual needs and is not limited here.

[0050] In certain embodiments, reference Figure 5 and Figure 7 The second material transport track 210 is provided with a second loading seat 215 and a second transfer position 270, and the second loading seat 215 is provided with a clamp 190 for fixing the material. The second loading seat 215 can reciprocate between the second feeding position 201, the second transfer position 270 and the second discharging position 202; the second feeding mechanism 220 includes a second material transport member 225, and the second material transport member 225 reciprocates between the second pressing machine 230 and the second transfer position 270 and can drive the material on the second loading seat 215 to move.

[0051] Specifically, a second driving motor is provided on the second material transport track 210 , and the second driving motor is connected to the second material loading base 215 through a screw nut pair and can drive the second material loading base 215 to move.

[0052] Specifically, the second feeding mechanism 220 includes a second feeding rack 221, a second feeding cylinder 222 is provided on the second feeding rack 221, the second feeding cylinder 222 is connected to the second feeding seat 223, and the second material transporting member 225 is provided on the second feeding seat 223 and can be driven thereby.

[0053] In certain embodiments, reference Figure 6The detection mechanism 250 includes a camera 255. A support frame 251 is provided above the second material transport track 210. A lifting cylinder 252 is provided on the support frame 251. The lifting cylinder 252 is connected to the camera 255 and can drive it to move toward or away from the second material transport track 210. When the material moves on the second material transport track 210, it will move below the support frame 251. At this time, the lifting cylinder 252 can drive the camera 255 to lower and take a photo of the material. The material status can be screened by identifying the photo, which facilitates the elimination of materials with errors or abnormal shapes during the pressing process.

[0054] In certain embodiments, reference Figure 8 The demolding device 300 also includes a cooling mechanism 340. The conveying mechanism 310 is capable of driving the material from the third feed position 301 to move toward the cooling mechanism 340 and the demolding die 320 in sequence. When the material is processed on the tray, the temperature between the two will increase due to the effects of ambient temperature and force. The cooling mechanism 340 can cool the material and the tray before the material is removed, thereby reducing the temperature of both. This reduces the risk of thermal deformation of the material and the tray during the demolding process.

[0055] Specifically, the cooling mechanism 340 includes a cooling fan disposed above the second material transport track 210, and the cooling fan is located between the third material feed position 301 and the stripping die 320. Of course, the cooling mechanism 340 can also be composed of other components, such as a heat dissipation copper tube (not shown) that directly contacts the material tray during transportation, and cold water flows through the heat dissipation copper tube. Therefore, the specific implementation of the cooling mechanism 340 is not unique, and can be adjusted accordingly according to actual needs, and is not limited here.

[0056] In certain embodiments, reference Figure 9 The conveying mechanism 310 includes a turning assembly 350 that can cause the material to turn over so that both sides of the material can benefit from the cooling effect provided by the cooling mechanism 340. The turning effect of the turning assembly 350 on the material allows both sides of the material to benefit from the cooling effect provided by the cooling mechanism 340, thereby quickly dissipating heat from both sides of the material, thereby effectively ensuring that the temperature of the material does not become too high during processing and preventing problems such as thermal deformation of the material and the tray.

[0057] Specifically, the flip assembly 350 includes a flip cylinder 351, a gear rack pair 352, and a material transport rack 355. The flip cylinder 351 is connected to the material transport rack 355 via the gear rack pair 352 and can drive the same to rotate. The conveying mechanism 310 includes a pusher 311 and a clamping member 313. The pusher 311 is connected to a pusher cylinder 312 that can drive it toward or away from the material transport rack 355. The pusher cylinder 312 can push materials into the material transport rack 355 through the pusher 311. The clamping member 313 is connected to a clamping cylinder 314 that can drive it toward or away from the material transport rack 355. The clamping cylinder 314 can remove materials from the material transport rack 355 through the clamping member 313.

[0058] In certain embodiments, reference Figure 10 The demoulding device 300 also includes a cleaning mechanism 360, which is located between the demoulding die 320 and the tray recovery position 302 and is capable of removing residual material from the tray. By providing the cleaning mechanism 360 and the conveying mechanism 310, and utilizing the conveying mechanism 310 to automatically transport the tray from the demoulding die 320 to the tray recovery position 302 via the cleaning machine, the tray can be automatically processed after demoulding, and the tray at the tray recovery position 302 can be directly reused, thereby facilitating the reuse of the tray.

[0059] Specifically, the conveying mechanism 310 also includes a conveying cylinder 316 disposed between the stripping die 320 and the cleaning mechanism 360. A conveying seat 319 is connected to the conveying cylinder 316, which can drive the conveying seat 319 to reciprocate between the stripping die 320 and the cleaning mechanism 360. A telescopic cylinder 318 is disposed on the conveying seat 319, which is connected to a conveying member 315. The telescopic cylinder 318 can drive the conveying member 315 to extend into the stripping die 320 and remove the material tray, thereby moving the material tray to the cleaning mechanism 360.

[0060] In certain embodiments, reference Figure 10 The cleaning mechanism 360 includes a negative pressure vacuum cleaner 361. The conveying mechanism 310 can drive the material tray from the stripping mold 320 to the negative pressure vacuum cleaner 361 and the material tray recovery position 302 in sequence. After the conveying mechanism 310 transports the material tray to the negative pressure vacuum cleaner 361, the negative pressure vacuum cleaner 361 will apply negative pressure to the material tray, thereby directly and effectively removing residual materials or impurities attached to the material tray, thereby allowing the material tray to be directly reused.

[0061] Specifically, a material transport channel 362 is provided within the negative pressure vacuum cleaner 361, with both ends of the material transport channel 362 communicating with the exterior of the negative pressure vacuum cleaner 361. The conveying member 315 can drive the material tray to move from one end of the material transport channel 362 into the material transport channel 362, and push the material tray within the material transport channel 362 out of the other end of the material transport channel 362. The material transport channel 362 transports the material trays in an orderly manner, effectively ensuring that each tray is cleaned by the negative pressure vacuum cleaner 361 within the material transport channel 362. Therefore, the trays that have passed through the material transport channel 362 can be directly used for the next operation after being taken away by the conveying mechanism 310, thereby facilitating the reuse of the trays.

[0062] Furthermore, the conveying mechanism 310 also includes a conveying frame 317, which reciprocates between the end of the material transport channel 362 and the material tray recovery position 302 and can drive the material tray to move.

[0063] It is contemplated that the cleaning mechanism 360 may also be comprised of other components, such as magnets (not shown), which magnetically attract the material tray to remove any residual material or impurities. Therefore, the specific configuration of the cleaning mechanism 360 is not unique and can be adjusted accordingly based on actual circumstances, and is not intended to be limiting herein.

[0064] In certain embodiments, reference Figure 1 The transport mechanism 400 includes a robot arm, and the clamping end of the robot arm can move between various workstations.

[0065] The technical features of the above embodiments can be combined arbitrarily. To make the description concise, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0066] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by ordinary technicians in the technical field without departing from the spirit of the present invention.

Claims

1. A pressing processing system, characterized in that: include: A cold pressing device (100) comprises a first material transport track (110), a first feeding mechanism (120) and a first pressing machine (130), wherein a first material feed position (101) and a first material discharge position (102) are provided on the first material transport track (110), and the first feeding mechanism (120) is located between the first material feed position (101) and the first material discharge position (102) and can drive the material to move toward or away from the first pressing machine (130); The hot pressing device (200) comprises a second material transport track (210), a second feeding mechanism (220) and a second pressing machine (230), wherein the second material transport track (210) is provided with a second feeding position (201) and a second discharging position (202), the second feeding mechanism (220) is located between the second feeding position (201) and the second discharging position (202) and is capable of driving the material to move toward or away from the second pressing machine (230), and the second pressing machine (230) is capable of heating and pressing the material; The demoulding device (300) comprises a conveying mechanism (310) and a demoulding die (320), wherein the conveying mechanism (310) comprises a third material feeding position (301) and a material tray recovery position (302), wherein the conveying mechanism (310) is capable of driving the material to move close to the demoulding die (320), and wherein the conveying mechanism (310) is capable of driving the material tray after demoulding to move close to the material tray recovery position (302); A detection mechanism (250) is provided between the second pressing machine (230) and the demoulding device (300) and is capable of detecting the state of the material; A transport mechanism (400) capable of driving the material to move between the first discharge position (102) and the second feed position (201), and between the second discharge position (202) and the third feed position (301); The demoulding device (300) further includes a cooling mechanism (340), and the conveying mechanism (310) is capable of driving the material from the third feeding position (301) to move toward the cooling mechanism (340) and the demoulding mold (320) in sequence; The conveying mechanism (310) includes a turning assembly (350), and the turning assembly (350) can drive the material to turn over so that both sides of the material can obtain the cooling effect brought by the cooling mechanism (340); The demoulding device (300) further comprises a cleaning mechanism (360), which is located between the demoulding mold (320) and the material tray recovery position (302) and is capable of clearing residual material on the material tray.

2. The pressing processing system according to claim 1, wherein: The first material transport track (110) is provided with a first material loading seat (115) and a first transfer position (170); the first material loading seat (115) is provided with a clamp (190) for fixing materials; the first material loading seat (115) is capable of reciprocating between the first material feeding position (101), the first transfer position (170) and the first material discharging position (102); The first feeding mechanism (120) includes a first material transporting member (125), which reciprocates between the first pressing machine (130) and the first transfer position (170) and can drive the material on the first loading seat (115) to move.

3. The pressing processing system according to claim 2, wherein: A dust cleaning mechanism (150) is provided between the first feeding position (101) and the first transfer position (170), and the dust cleaning mechanism (150) is capable of removing excess dust on the first loading seat (115).

4. The pressing processing system according to claim 3, wherein: The cleaning mechanism (150) includes a cleaning roller (155); a mounting frame (153) is provided on the first material transport track (110); the cleaning roller (155) is rotatably mounted on the mounting frame (153); the outer periphery of the cleaning roller (155) has a sticky layer, and the cleaning roller (155) is capable of rolling the material on the first material loading seat (115).

5. The pressing processing system according to claim 1, wherein: The second material transport track (210) is provided with a second material loading seat (215) and a second transfer position (270); the second material loading seat (215) is provided with a clamp (190) for fixing materials; the second material loading seat (215) is capable of reciprocating between the second material feeding position (201), the second transfer position (270) and the second material discharging position (202); The second feeding mechanism (220) includes a second material transporting member (225), which reciprocates between the second pressing machine (230) and the second transfer position (270) and can drive the material on the second loading base (215) to move.

6. The pressing processing system according to claim 5, characterized in that: The detection mechanism (250) includes a camera (255), a support frame (251) is provided above the second material transport track (210), a lifting cylinder (252) is provided on the support frame (251), and the lifting cylinder (252) is connected to the camera (255) and can drive the camera (255) to move closer to or away from the second material transport track (210).

7. The pressing processing system according to claim 1, wherein: The cleaning mechanism (360) includes a negative pressure vacuum cleaner (361), and the conveying mechanism (310) can drive the material tray to move from the stripping mold (320) to the negative pressure vacuum cleaner (361) and the material tray recovery position (302) in sequence.

Citation Information

Patent Citations

  • Pressing processing system

    CN217008920U