Copper foil assembly line detection mechanism
By designing an inspection frame and carrier plate structure on the copper foil production line, and utilizing the cooperation of drive components and pressing rollers, automated inspection is achieved, solving the problem of missed stains in copper foil production and improving inspection results and efficiency.
Patent Information
- Application Number
- CN202511272362.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-08
- Publication Date
- 2025-11-18
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In existing technologies, copper foil is prone to stains during the production process, which are easily missed when inspected manually, resulting in poor detection results and affecting the quality of finished products.
The system employs a detection frame and carrier plate structure. The carrier plate is driven to move closer to or further away from the copper foil via a drive assembly, adjusting the distance between the detector and the copper foil. Combined with the design of the pressing roller and elastic element, it achieves automated detection, ensuring the stability of the copper foil and the detection effect.
This improves the detection effect of copper foil, prevents omissions, increases detection efficiency, and ensures that copper foil is not affected by undetected stains and flows into the next process during the production process.
Smart Images

Figure CN120971441A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of copper foil detection mechanism, and particularly to a copper foil assembly line detection mechanism. BACKGROUND
[0002] Copper foil is made of copper and a certain proportion of other metals, and generally has 90 foil and 88 foil, that is, the copper content is 90% and 88%, and the size of the copper foil is 16*16 cm. Copper foil is the most widely used decorative material. Copper foil has low surface oxygen characteristics, can be attached to various different substrates such as metal, insulating material, etc., and has a wide temperature range.
[0003] The winding mechanism winds the copper foil. During the production process of the copper foil, stains may be attached to the copper foil. The staff usually uses a lampshade to visually check the copper foil. When stains are found on the copper foil, the machine is manually turned off, and then the copper foil is investigated. According to the above related technology, the manual checking method may miss some stains, resulting in poor detection of the copper foil, so that the copper foil with stains is transported to other processing links, finally reducing the quality of the finished product, and needs to be improved. SUMMARY
[0004] The purpose of the present application is to provide a copper foil assembly line detection mechanism to improve the detection effect of the copper foil.
[0005] The copper foil assembly line detection mechanism provided by the present application adopts the following technical scheme: a detection frame is provided, two carrier plates are slidably connected to the detection frame, detectors are connected to the opposite sides of the two carrier plates, a driving assembly is connected to the detection frame, the driving assembly is used to drive the two carrier plates to slide towards each other or away from each other, at least two sliding plates are slidably connected to the detection frame, and pressing rollers are connected to the sliding plates. Each carrier plate is connected to a linkage assembly, and the carrier plate drives the pressing roller to move towards the copper foil through the linkage assembly.
[0006] Through the above technical scheme, the copper foil passes between the two carrier plates, the driving assembly drives the two carrier plates to slide towards each other, and the distance between the detector and the copper foil is adjusted to facilitate the detection of the detector. The detector is used to detect the copper foil, which improves the detection effect of the copper foil and prevents the occurrence of missed detection. When the carrier plate moves towards the copper foil, the pressing roller clamps the copper foil, which improves the stability of the copper foil and improves the detection effect of the detector. When the copper foil at this position is detected, the driving assembly drives the two carrier plates to slide away from each other, the pressing roller releases the copper foil, the winding mechanism drives the copper foil to move, the detected copper foil moves to the next process, the undetected copper foil corresponds to the detector, and the above steps are repeated to continue detecting the copper foil. The copper foil is detected automatically, which improves the detection efficiency of the copper foil.
[0007] Optionally, a plurality of elastic members are connected between the sliding plate and the pressing roller, one end of the elastic member is connected with the sliding plate, and the other end is connected with the pressing roller.
[0008] By adopting the above technical scheme, when the pressing roller presses the copper foil, the elastic member is elastically deformed under pressure and tends to elastically reset, the elastic member absorbs the impact, reduces the force of the pressing roller pressing the copper foil, and protects the copper foil.
[0009] Optionally, at least two pressing rollers are connected to the sliding plate, and the distance between each pressing roller and the copper foil is equal.
[0010] By adopting the above technical scheme, multiple pressing rollers press the copper foil, improving the stability of the copper foil.
[0011] Optionally, the sliding plate has four, one of the carrier plates corresponds to two of the sliding plates, the sliding plates are inclined relative to the carrier plates, and the carrier plate drives two corresponding sliding plates to slide towards each other or away from each other through the linkage assembly.
[0012] By adopting the above technical scheme, when the carrier plate moves towards the copper foil, the carrier plate drives the sliding plate to slide towards the copper foil through the linkage assembly, and also drives the corresponding two sliding plates to slide away from each other. During the sliding process of the sliding plate, each elastic member is bent, and the elastic member causes the pressing roller to have a force away from the detector, i.e. the two ends of the copper foil move away from each other, so that the copper foil is in a tension state, improving the effect of the detector detecting the copper foil.
[0013] Optionally, the detection frame is connected with a protrusion, and the protrusion is provided with a sliding groove for sliding cooperation with the sliding plate.
[0014] By adopting the above technical scheme, when the sliding plate slides, the sliding cooperation of the sliding plate and the sliding groove plays a guiding and limiting role in the sliding of the sliding plate, improving the stability of the sliding plate.
[0015] Optionally, the linkage assembly includes a driving rack connected to the carrier plate, a connecting gear rotatably connected to the detection frame, and a driven rack connected to the sliding plate, and the driving rack and the driven rack are engaged with the connecting gear.
[0016] Through adoption of the technical scheme, the carrier plate moves in the process of sliding, the driving rack moves along with the carrier plate, the driving rack drives the connecting gear to rotate in the process of moving, the connecting gear drives the driven rack to move, thereby realizing the sliding of the sliding plate.
[0017] Optionally, the carrier plate is connected with a supporting rod, one end of the supporting rod away from the carrier plate is connected with a positioning ball, and the sliding plate is provided with a positioning groove for clamping the positioning ball.
[0018] Through adoption of the technical scheme, when the two carrier plates move towards each other, the positioning ball slides towards the positioning groove, the positioning ball is clamped into the positioning groove, the outer surface of the positioning ball abuts against the inner wall of the positioning groove, the positioning ball limits the movement of the sliding plate, thereby improving the stability of the sliding plate, that is, improving the effect of the pressing roller pressing the copper foil.
[0019] Optionally, the sliding plate is provided with a guide surface for abutting against the positioning ball, and the guide surface is located at the opening of the positioning groove.
[0020] Through adoption of the technical scheme, the guide surface guides the movement of the positioning ball, and the positioning ball is clamped into the positioning groove.
[0021] Optionally, the driving assembly comprises a bidirectional screw rod rotatably connected to the detection frame and a driving piece for driving the bidirectional screw rod to rotate, the driving piece is connected to the detection frame, and the two carrier plates are threadedly connected with the bidirectional screw rod.
[0022] Through adoption of the technical scheme, the driving piece drives the bidirectional screw rod to rotate, and since the two carrier plates are threadedly connected with the bidirectional screw rod, the two carrier plates move towards each other or away from each other.
[0023] Optionally, the opposite sides of the two carrier plates are both connected with illuminating lamps.
[0024] Through adoption of the technical scheme, the illuminating lamps illuminate the copper foil, thereby improving the effect of the detector detecting the copper foil.
[0025] In summary, the present application has at least one of the following beneficial technical effects: 1. The copper foil passes between the two carrier plates, the driving assembly drives the two carrier plates to slide towards each other, the distance between the detector and the copper foil is adjusted, and the detector detects the copper foil conveniently.
[0026] 2, the carrier plate in the process of sliding, the driving rack moves with the movement of the carrier plate, the driving rack in the process of moving, the driving rack drives the connecting gear to rotate, the connecting gear drives the driven rack to move, so as to realize the sliding of the sliding plate. The sliding of the sliding plate is connected through the driving assembly, the carrier plate, the driving rack, the connecting gear and the driven rack, the driving is reduced, and the correlation degree of the overall structure is increased. BRIEF DESCRIPTION OF DRAWINGS
[0027] Figure 1 It is the schematic diagram of the overall structure and copper foil of the embodiment of the application.
[0028] Figure 2 It is the schematic diagram of the overall structure of the embodiment of the application.
[0029] Figure 3 It is the enlarged view of the A area of Figure 2
[0030] Figure 4 It is the sectional view of the embodiment of the application.
[0031] Figure 5 It is the enlarged view of the B area of Figure 4
[0032] Reference signs: 1, detection frame; 11, guide rod; 12, vertical rod; 13, convex strip; 2, carrier plate; 21, detector; 22, illuminating lamp; 23, supporting rod; 24, positioning ball; 3, driving assembly; 31, bidirectional screw rod; 32, driving piece; 4, sliding plate; 41, positioning groove; 42, guide surface; 43, pressing roller; 44, elastic piece; 5, linkage assembly; 51, driving rack; 52, connecting gear; 53, driven rack. DETAILED DESCRIPTION
[0033] The following will be combined with the drawings Figure 1 - the drawings Figure 5 The application will be further described in detail.
[0034] The embodiment of the application discloses a copper foil pipeline detection mechanism.
[0035] As Figure 1 As shown, it comprises a detection frame 1, the upper surface of the detection frame 1 is relatively fixedly connected with two guide rods 11, the upper surface of the detection frame 1 is relatively slidably connected with two carrier plates 2, each carrier plate 2 is fixedly connected with a guide block, and the guide rod 11 is provided with a guide groove for sliding cooperation with the guide block. The detection frame 1 is connected with a driving assembly 3, the driving assembly 3 is used for driving the two carrier plates 2 to slide towards each other or away from each other, the driving assembly 3 comprises a bidirectional screw rod 31 rotatably connected to the detection frame 1 and a driving piece 32 for driving the bidirectional screw rod 31 to rotate, the driving piece 32 is fixedly connected to the detection frame 1, the driving piece 32 is a motor, the driving piece 32 is connected with a controller (not shown in the figure), the signal output end of the controller is connected with the signal input end of the driving piece 32, and the two carrier plates 2 are threadedly connected with the bidirectional screw rod 31.
[0036] In combination Figure 2 And Figure 3 As shown, the side of the two carrier plates 2 facing each other is fixedly connected with a detector 21 and a lighting lamp 22, and the lighting lamp 22 surrounds the detector 21. The upper surface of the detection frame 1 is fixedly connected with four vertical rods 12, each vertical rod 12 is fixedly connected with two convex strips 13, each convex strip 13 is arranged obliquely, and the oblique directions of the two convex strips 13 on the same vertical rod 12 are opposite. The detection frame 1 is slidably connected with four sliding plates 4, and the convex strip 13 is provided with a sliding groove for sliding cooperation with the sliding plate 4. Two sliding plates 4 correspond to one carrier plate 2, and the carrier plate 2 is located between the two sliding plates 4. Each carrier plate 2 is connected with four linkage assemblies 5, the carrier plate 2 drives the sliding plate 4 to slide through the linkage assembly 5, and the linkage assembly 5 comprises a driving rack 51 fixedly connected to the carrier plate 2, a connecting gear 52 rotatably connected to the vertical rod 12 and a driven rack 53 fixedly connected to the sliding plate 4, and the driving rack 51 and the driven rack 53 are engaged with the connecting gear 52.
[0037] In combination Figure 4 And Figure 5 As shown, the side of the carrier plate 2 away from each other is fixedly connected with a support rod 23, and the end of each support rod 23 away from the carrier plate 2 is fixedly connected with a positioning ball 24. The positioning ball 24 is made of elastic material, the positioning ball 24 can be elastically deformed, and the sliding plate 4 is provided with a positioning groove 41 for clamping the positioning ball 24. The sliding plate 4 is provided with a guide surface 42 for abutting against the positioning ball 24, and the guide surface 42 is located at the opening of the positioning groove 41.
[0038] In combination Figure 4 And Figure 5 As shown, each sliding plate 4 is connected with two pressing rollers 43 close to the copper foil, and the distance between each pressing roller 43 and the copper foil is equal. A plurality of elastic members 44 are connected between the pressing roller 43 and the sliding plate 4, the elastic member 44 is a spring, one end of the elastic member 44 is fixedly connected with the sliding plate 4, and the other end is fixedly connected with the pressing roller 43.
[0039] The implementation principle of a copper foil production line inspection mechanism according to an embodiment of the present invention is as follows: The driving component 32 drives the bidirectional lead screw 31 to rotate, and the bidirectional lead screw 31 drives two carrier plates 2 to slide towards each other. During the sliding process of the carrier plates 2, the active rack 51 moves along with the carrier plates 2. During the movement of the active rack 51, the active rack 51 drives the connecting gear 52 to rotate, and the connecting gear 52 drives the driven rack 53 to move. The two corresponding sliding plates 4 slide both away from each other and towards the copper foil. Each elastic element 44 bends, causing the pressing roller 43 to exert a force away from the detector 21, that is, the two ends of the copper foil being inspected move away from each other, keeping the copper foil in a taut state and improving the detection effect of the detector 21. After the copper foil is inspected, the drive unit 32 drives the bidirectional lead screw 31 to rotate in opposite directions, the two carrier plates 2 slide away from each other, the pressure roller 43 releases the copper foil, the winding mechanism drives the copper foil to move, and the inspected copper foil moves to the next process. The uninspected copper foil corresponds to the detector 21, and the above steps are repeated to continue to inspect the copper foil. The automated inspection of copper foil improves the efficiency of copper foil inspection.
[0040] The above are all preferred embodiments of the present invention and are not intended to limit the scope of protection of the present invention. Therefore, all equivalent changes made in accordance with the structure, shape and principle of the present invention should be covered within the scope of protection of the present invention.
Claims
1. A copper foil production line inspection mechanism, characterized in that: The device includes a testing frame (1), which is slidably connected to two carrier plates (2). Each of the two carrier plates (2) is connected to a detector (21) on one side facing each other. The testing frame (1) is connected to a driving assembly (3), which is used to drive the two carrier plates (2) to slide towards each other or away from each other. The testing frame (1) is slidably connected to at least two sliding plates (4), which are connected to a pressing roller (43). Each carrier plate (2) is connected to a linkage assembly (5), which drives the pressing roller (43) to move towards the copper foil through the linkage assembly (5).
2. The copper foil production line inspection mechanism according to claim 1, characterized in that: A plurality of elastic elements (44) are connected between the sliding plate (4) and the pressing roller (43). One end of the elastic element (44) is connected to the sliding plate (4), and the other end is connected to the pressing roller (43).
3. The copper foil production line inspection mechanism according to claim 1, characterized in that: At least two of the pressing rollers (43) are connected to the sliding plate (4), and the distance between each pressing roller (43) and the copper foil is equal.
4. The copper foil production line inspection mechanism according to claim 1, characterized in that: There are four sliding plates (4), one carrier plate (2) corresponds to two sliding plates (4). The sliding plates (4) are inclined relative to the carrier plate (2). The carrier plate (2) drives the two corresponding sliding plates (4) to slide towards each other or away from each other through the linkage component (5).
5. The copper foil production line inspection mechanism according to claim 1, characterized in that: The testing frame (1) is connected to a protrusion (13), and the protrusion (13) is provided with a groove for sliding cooperation with the sliding plate (4).
6. The copper foil production line inspection mechanism according to claim 1, characterized in that: The linkage component (5) includes an active rack (51) connected to the carrier plate (2), a connecting gear (52) rotatably connected to the detection frame (1), and a driven rack (53) connected to the sliding plate (4). The active rack (51) and the driven rack (53) are both meshed with the connecting gear (52).
7. The copper foil production line inspection mechanism according to claim 1, characterized in that: The carrier plate (2) is connected to a support rod (23), and a positioning ball (24) is connected to one end of the support rod (23) away from the carrier plate (2). The sliding plate (4) is provided with a positioning groove (41) for the positioning ball (24) to be inserted.
8. The copper foil production line inspection mechanism according to claim 7, characterized in that: The sliding plate (4) is provided with a guide surface (42) for abutting against the positioning ball (24), and the guide surface (42) is located at the opening of the positioning groove (41).
9. The copper foil production line inspection mechanism according to claim 1, characterized in that: The drive assembly (3) includes a bidirectional lead screw (31) rotatably connected to the test frame (1) and a drive member (32) for driving the bidirectional lead screw (31) to rotate. The drive member (32) is connected to the test frame (1), and both carrier plates (2) are threadedly connected to the bidirectional lead screw (31).
10. The copper foil production line inspection mechanism according to claim 1, characterized in that: Lighting lamps (22) are connected to the opposite sides of the two carrier plates (2).