An automated processing equipment for optical film production
Through the clamping, cutting and guiding mechanism of the automatic processing equipment for optical film production, the optical film is cut layer by layer, solving the problems of poor cutting effect and large labor consumption, and improving the cutting accuracy and efficiency.
Patent Information
- Application Number
- CN202210339318.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-04-01
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2042-04-01
AI Technical Summary
Existing optical film cutting equipment has problems such as poor cutting effect and large labor consumption when cutting, especially when cutting multi-layer optical films, it is easy to experience displacement and inefficiency.
An automatic processing equipment for optical film production is adopted, including clamping parts, down pressure parts, down pressure plates and cutting parts. The cutting mechanism is cut layer by layer and pressed by the limit, and the optical film is cut layer by layer by layer with the guide mechanism and the spring telescopic plate. The cutting accuracy is ensured by using the guide column and the limiting unit, and the cut film is removed through the electric push rod.
It realizes precise cutting of optical films, reduces labor consumption, improves cutting efficiency, and can cut out rounded corners of different sizes as needed, improving equipment flexibility.
Smart Images

Figure CN117260835B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of optical film processing, and in particular to automated processing equipment for producing optical films. Background Art
[0002] Optical films mainly include reflective films, anti-reflective films, polarizing films, interference filters and spectrometers, etc.; they have been widely used in the electronics field and have received increasing attention from scientific and technological workers; optical films are mainly used on the screens of electronic devices, such as mobile phones and computers.
[0003] When cutting optical films, existing equipment usually stacks multiple optical films together and cuts them directly at one time. This method is simple and efficient, but this method is prone to slight displacement of the middle layer of the stacked optical films when cutting the optical films, resulting in certain differences in the size of the cut corners, thereby reducing the effect of cutting the rounded corners of the optical films.
[0004] When existing equipment cuts optical films, the optical films are cut individually one by one. This method can ensure the effect of rounded corner cutting of optical films, but this method requires workers to repeatedly place the optical films in the equipment, thereby increasing labor loss and reducing the efficiency of rounded corner cutting of optical films. Summary of the Invention
[0005] Technical problem to be solved: The present invention provides an automated processing equipment for producing optical films, which can solve the above-mentioned problems existing in the rounded corner cutting of optical films.
[0006] Technical solution: In order to achieve the above-mentioned purpose, the present invention adopts the following technical solution, an automated processing equipment for the production of optical films, including a base plate, a clamping member, a lower pressing member, a lower pressing plate and a cutting member, a plurality of clamping members distributed in a rectangular shape are installed on the upper end of the base plate, the two clamping members located at the front and rear are slidably connected with a lower pressing member, the lower pressing plate is connected to the lower pressing member, and the four corners of the lower pressing plate are provided with placement openings, the placement openings are provided with cutting members, and the cutting members are fixedly connected to the lower pressing plate.
[0007] The cutting piece includes a mounting seat installed on the upper end of the lower pressure plate, the mounting seat is penetrated by a sliding plate and slidably connected to the sliding plate, the sliding plate is provided with a plurality of positioning holes, a positioning rod is inserted on the mounting seat, the positioning rod slides with the positioning hole, an L-shaped rod is installed at one end of the positioning rod away from the middle of the lower pressure plate, sliding grooves are evenly provided at both ends of the L-shaped rod, a sliding frame is interactively connected inside the sliding groove, a cylindrical rod is installed on the inner wall of the sliding frame away from the L-shaped rod, a locking screw is threadedly connected to the upper wall of the sliding groove, the upper end of the L-shaped rod is rotatably connected to the cutting mechanism, a guide mechanism is installed between the two rods of the L-shaped rod, and an adjustment plate is installed at one end of the sliding frame away from the cutting mechanism.
[0008] The cutting mechanism includes a rotating frame rotatably connected to the upper end of the L-shaped rod, a movable plate passing through and slidably connected to the interior of the rotating frame, the upper end of the rotating frame is fixedly connected to the output shaft of the driving motor, the driving motor is installed on the lower pressure plate through the motor frame, and a limiting unit is installed at the end of the movable plate away from the rotating frame, and a descending rod is passed through and slidably connected to the middle of the limiting unit, and a plurality of guide columns are installed on the outer surface of the descending rod from top to bottom and staggered, an auxiliary plate is installed on the upper end of the descending rod, and a connecting spring is installed between the lower end of the auxiliary plate and the limiting unit, a guide plate is installed on the outer surface of the descending rod near the lower side, a cutting head is installed at the lower end of the descending rod, and a pressing unit is installed at the lower end of the descending rod away from the cutting head.
[0009] As a preferred technical solution of the present invention, the guide mechanism includes a telescopic support plate installed between the two rods of the L-shaped rod, and an arc guide plate is installed at the end of the telescopic support plate away from the L-shaped rod, and an arc-shaped through hole is opened in the middle of the arc guide plate, and the lower end of the arc guide plate is symmetrically and slidingly connected to two pressing blocks near the telescopic support plate, and the cross-section of the pressing blocks is an inverted T-shaped structure. The arc guide plate is symmetrically penetrated and slidably connected to two lifting rods away from the telescopic support plate, and a rubber sleeve is provided on the outer surface of the lifting rod, and the lower ends of the two lifting rods are jointly installed with an L-shaped plate, and an arc guide frame with a U-shaped cross-section is installed on the upper end of the horizontal section of the L-shaped plate, and a rectangular frame is installed on the upper end of the vertical section of the L-shaped plate, and a spring telescopic plate is rotatably connected inside the rectangular frame, and a square plate is installed on the upper end of the rectangular frame. An electric push rod is hinged between the square plate and the spring telescopic plate, and a rubber head is installed at the lower end of the spring telescopic plate.
[0010] As a preferred technical solution of the present invention, the limiting unit includes a cylindrical block installed at the end of the movable plate, a circular through hole is opened in the middle of the cylindrical block, two sliding through holes are symmetrically opened on the wall of the circular through hole, clamping grooves are opened on both side walls of the sliding through hole, and a right-angled trapezoidal plate is slidably connected inside the clamping groove, and a limiting spring is installed between the right-angled trapezoidal plate and the wall of the clamping groove.
[0011] As a preferred technical solution of the present invention, the edge pressing unit includes a edge pressing plate installed at the lower end of the descending rod, two edge pressing grooves are symmetrically opened at the lower end of the edge pressing plate, and an edge pressing block is slidably connected inside the edge pressing groove. A edge pressing spring is installed between the upper end of the edge pressing block and the edge pressing groove, an inclined surface is provided at the lower end of the edge pressing block, and a rotating roller is rotatably connected to the lower end of the edge pressing block.
[0012] As a preferred technical solution of the present invention, the clamping member includes a clamping plate installed on the upper end of the base plate, and a trapezoidal clamping block is installed on one end of the clamping plate close to the middle of the base plate.
[0013] As a preferred technical solution of the present invention, the pressing member includes a U-shaped frame slidably connected to the two clamping members, the middle section of the U-shaped frame is threadedly connected to a pressing screw, the lower end of the pressing screw is rotatably connected to the lower pressing plate, and guide columns are symmetrically installed on the front and back upper ends of the lower pressing plate. The guide columns slide and penetrate the middle part of the U-shaped frame, and positioning strips are evenly slidably connected to the two vertical ends of the U-shaped frame, and the positioning strips are plugged into the clamping members.
[0014] As a preferred technical solution of the present invention, a connecting plate is installed at the lower end of the sliding frame away from the L-shaped rod, a limiting square frame is installed at one end of the connecting plate close to the lower pressure plate, and a rectangular notch is opened on the upper wall of the sliding frame.
[0015] As a preferred technical solution of the present invention, the adjustment plate is in a U-shaped structure, and an inclined surface is provided at the lower end of the upper horizontal section of the adjustment plate, and the inclined surface is in sliding engagement with the guide column.
[0016] Beneficial effects: 1. The cutting mechanism used in the optical film production automation processing equipment provided by the present invention can realize the function of layer-by-layer cutting, and can press and limit the cutting position, ensuring that each optical film can be cut accurately, thereby improving the effect of optical film cutting.
[0017] 2. The guide mechanism used in the automated processing equipment for producing optical films provided by the present invention cooperates with the cutting mechanism, and the spring telescopic plate removes the optical film cut by the cutting mechanism through the electric push rod to avoid affecting subsequent cutting.
[0018] 3. The cutting mechanism used in the automated processing equipment for producing optical films provided by the present invention can cut multiple optical films layer by layer, reducing the steps of workers repeatedly placing optical films, reducing labor consumption, and increasing the efficiency of cutting optical films layer by layer.
[0019] 4. The cutting mechanism used in the automated processing equipment for producing optical films provided by the present invention can cut fillets of different sizes on the optical film according to actual needs, thereby improving the flexibility of the equipment. BRIEF DESCRIPTION OF THE DRAWINGS
[0020] The present invention will be further described below with reference to the accompanying drawings and examples.
[0021] Figure 1 It is a schematic diagram of the three-dimensional structure from the first perspective of the present invention.
[0022] Figure 2 It is a schematic diagram of the three-dimensional structure from a second viewing angle of the present invention.
[0023] Figure 3 It is the front view of the present invention.
[0024] Figure 4 It is a top view of the present invention.
[0025] Figure 5 This invention Figure 4 Cross-sectional view of AA in the figure.
[0026] Figure 6 It is a schematic diagram of the three-dimensional structure of the cutting piece of the present invention.
[0027] Figure 7 It is a schematic cross-sectional view of the structure of the L-shaped rod, sliding frame and locking screw of the present invention.
[0028] Figure 8 It is a schematic cross-sectional view of the structure of the limiting unit and the guide column of the present invention.
[0029] Figure 9 This invention Figure 5 Enlarged view of the X in the middle.
[0030] Figure 10 It is a schematic diagram of the position relationship between the descending rod and the edge holding unit of the present invention.
[0031] In the figure: 1, bottom plate; 2, clamping member; 21, clamping plate; 22, trapezoidal clamping block; 3, pressing member; 31, U-shaped frame; 32, pressing screw; 33, guide column; 34, positioning bar; 4, pressing plate; 5, cutting member; 51, mounting seat; 52, sliding plate; 53, positioning rod; 54, L-shaped rod; 55, sliding frame; 56, adjusting plate; 57, locking screw; 58, cutting mechanism; 581, rotating frame; 582, moving plate; 583, driving motor; 584, limiting unit; 5841, cylindrical block; 5842, right-angle ladder shaped plate; 5843, limit spring; 585, descending rod; 586, guide column; 587, connecting spring; 588, guide plate; 589, cutting head; 580, edge pressing unit; 5801, edge pressing plate; 5802, edge pressing block; 5803, edge pressing spring; 59, guide mechanism; 591, telescopic support plate; 592, arc-shaped guide plate; 593, clamping block; 594, lifting rod; 595, L-shaped plate; 596, arc-shaped guide frame; 597, rectangular frame; 598, spring telescopic plate; 599, square plate; 590, electric push rod. DETAILED DESCRIPTION
[0032] The embodiments of the present invention are described in detail below with reference to the accompanying drawings. However, the present invention can be implemented in many different ways as defined and covered by the claims.
[0033] See Figures 1-4, an automated processing equipment for producing optical films, including a base plate 1, a clamping member 2, a pressing member 3, a lower pressing plate 4 and a cutting member 5. A plurality of clamping members 2 distributed in a rectangular shape are installed on the upper end of the base plate 1, and the two clamping members 2 located at the front and rear are slidably connected with the pressing member 3, and the lower pressing plate 4 is connected to the pressing member 3. The four corners of the lower pressing plate 4 are provided with placement openings, and the cutting member 5 is arranged in the placement openings. The cutting member 5 is fixedly connected to the lower pressing plate 4.
[0034] See Figure 5 The clamping member 2 includes a clamping plate 21 installed on the upper end of the base plate 1, and a trapezoidal clamping block 22 is installed at one end of the clamping plate 21 close to the middle of the base plate 1. During operation, multiple cut optical films are placed on the base plate 1 manually, and the clamping plate 21 limits and aligns the optical films through the clamping block 22.
[0035] See Figure 1 The lower pressing member 3 includes a U-shaped frame 31 slidably connected to the two clamping members 2, and the middle section of the U-shaped frame 31 is threadedly connected to a pressing screw 32, and the lower end of the pressing screw 32 is rotatably connected to the lower pressing plate 4. The upper end of the lower pressing plate 4 is symmetrically installed with guide columns 33, which slide and penetrate the middle of the U-shaped frame 31. The two vertical ends of the U-shaped frame 31 are evenly slidably connected with positioning bars 34, and the positioning bars 34 are plugged into the clamping members 2. During specific work, after the optical film is placed on the base plate 1, the lower pressing plate 4 is manually covered above the optical film through the U-shaped frame 31 and the pressing screw 32. At the same time, the two side walls of the U-shaped frame 31 are tightly attached to the clamping plates 21 on the front and rear sides, and the U-shaped frame 31 is limited by the positioning bars 34.
[0036] See Figure 5-Figure 7The cutting member 5 includes a mounting seat 51 mounted on the upper end of the lower pressing plate 4, and a sliding plate 52 is penetrated and slidably connected to the mounting seat 51. A plurality of positioning holes are provided on the sliding plate 52, and a positioning rod 53 is inserted on the mounting seat 51. The positioning rod 53 slides with the positioning hole, and an L-shaped rod 54 is installed at one end of the positioning rod 53 away from the middle of the lower pressing plate 4. Sliding grooves are evenly provided at both ends of the L-shaped rod 54, and a sliding frame 55 is interactively connected inside the sliding groove. A cylindrical rod is installed on the inner wall of the sliding frame 55 away from the L-shaped rod 54, and a connecting plate is installed at the lower end of the sliding frame 55 away from the L-shaped rod 54. A limiting square frame is installed at the end of the connecting plate close to the lower pressing plate 4, and a rectangular notch is provided on the upper wall of the sliding frame 55. A locking screw 57 is threadedly connected to the upper wall of the sliding groove. The upper end of the L-shaped rod 54 is rotatably connected to the cutting mechanism 58, and a guide mechanism 59 is installed between the two rods of the L-shaped rod 54. , an adjustment plate 56 is installed at one end of the sliding frame 55 away from the cutting mechanism 58. The adjustment plate 56 is a U-shaped structure, and an inclined surface is provided at the lower end of the upper horizontal section of the adjustment plate 56. During specific operation, after the lower pressing plate 4 presses the optical film, the distance that the sliding frame 55 extends on the L-shaped rod 54 is manually adjusted according to the radius of the fillet required for the optical film. The movement of the L-shaped rod 54 drives the guide mechanism 59 to move, and the guide mechanism 59 drives the cutting mechanism 58 to move, thereby realizing the function of adjusting the cutting radius of the cutting mechanism 58. Thereafter, the sliding frame 55 is limited by the locking screw 57, and then the sliding plate 52 is manually pushed. The sliding plate 52 drives the L-shaped rod 54 to move, so that the sliding frame 55 drives the limiting frame on the connecting plate to be in close contact with the optical film, and then the positioning rod 53 is inserted into the corresponding positioning hole on the sliding plate 52, thereby fixing the sliding plate 52 on the mounting seat 51.
[0037] See Figure 5 、 Figure 6 and Figure 9The cutting mechanism 58 includes a rotating frame 581 rotatably connected to the upper end of the L-shaped rod 54, a movable plate 582 is passed through the interior of the rotating frame 581 and is slidably connected, the upper end of the rotating frame 581 is fixedly connected to the output shaft of the driving motor 583, the driving motor 583 is installed on the lower pressure plate 4 through the motor frame, and a limiting unit 584 is installed on the end of the movable plate 582 away from the rotating frame 581, and a descending rod 585 is passed through the middle of the limiting unit 584 and is slidably connected, and a plurality of guide columns 5 are staggered and installed on the outer surface of the descending rod 585 from top to bottom. 86, the inclined surface on the adjustment plate 56 is slidably matched with the guide column 586, an auxiliary plate is installed on the upper end of the descending rod 585, a connecting spring 587 is installed between the lower end of the auxiliary plate and the limit unit 584, a guide plate 588 is installed on the outer surface of the descending rod 585 near the lower side, a cutting head 589 is installed on the lower end of the descending rod 585, and a pressure unit 580 is installed on the lower end of the descending rod 585 away from the cutting head 589. When working, when adjusting the cutting radius, the guide mechanism 59 drives the descending rod 585 to move, and the descending rod 58 The movable plate 582 is driven to move within the rotating frame 581 by the limiting unit 584. After the cutting radius is adjusted, the driving motor 583 is manually started. The driving motor 583 is an existing reciprocating motor. The driving motor 583 drives the movable plate 582 to rotate back and forth through the rotating frame 581. The movable plate 582 drives the cutting head 589 at the lower end of the descending rod 585 through the limiting unit 584 to cut the optical film. At the same time, the edge pressing unit 580 presses the optical film to prevent the optical film from bulging. , ensuring the accuracy of the rounded corner cutting of the optical film. When the cutting of the upper optical film is completed, the descending rod 585 drives the guide column 586 to cooperate with the inclined surface on the adjustment plate 56, thereby driving the descending rod 585 to descend. At this time, the connecting spring 587 is in a compressed state, and the limiting unit 584 blocks the descending guide column 586 to prevent the guide column 586 from resetting after the guide column 586 is separated from the adjustment plate 56, thereby realizing gradual cutting of the accumulated optical film and ensuring the effect of rounded corner cutting of the optical film.
[0038] See Figure 8The limiting unit 584 includes a cylindrical block 5841 installed at the end of the movable plate 582. A circular through hole is opened in the middle of the cylindrical block 5841. Two sliding through holes are symmetrically opened on the wall of the circular through hole. Clamping grooves are opened on both sides of the sliding through hole. A right-angled trapezoidal plate 5842 is slidably connected inside the clamping groove. A limiting spring 5843 is installed between the right-angled trapezoidal plate 5842 and the wall of the clamping groove. When working, when the descending rod 585 descends, the guide column 586 presses down the inclined surface of the right-angled trapezoidal plate 5842 , the right-angled trapezoidal plate 5842 is forced to shrink, thereby releasing the limit of the guide column 586. When the guide column 586 moves out of the right-angled trapezoidal plate 5842, the limit spring 5843 drives the right-angled trapezoidal plate 5842 to return to its original position, thereby blocking the guide column 586 and preventing the guide column 586 that has already descended from being forced to rise during cutting. After all the optical films are cut, the existing cylindrical strips outside are manually inserted into the clamping groove, and the two right-angled trapezoidal plates 5842 are separated, thereby facilitating the reset of the guide column 586.
[0039] See Figure 10 The edge pressing unit 580 includes a edge pressing plate 5801 installed at the lower end of the descending rod 585, and two edge pressing grooves are symmetrically opened at the lower end of the edge pressing plate 5801. A edge pressing block 5802 is slidably connected inside the edge pressing groove, and a edge pressing spring 5803 is installed between the upper end of the edge pressing block 5802 and the edge pressing groove. The lower end of the edge pressing block 5802 is provided with an inclined surface, and the lower end of the edge pressing block 5802 is rotatably connected to a rotating roller. During specific operation, when cutting, the descending rod 585 drives the edge pressing block 5802 to press the optical film through the edge pressing plate 5801, and the rotating roller at the lower end of the edge pressing block 5802 facilitates the rotation of the edge pressing block 5802, and the edge pressing spring 5803 plays a role in avoiding affecting the descent of the descending rod 585.
[0040] See Figure 5 、 Figure 6 and Figure 9The guide mechanism 59 includes a telescopic support plate 591 installed between the two rods of the L-shaped rod 54. An arc-shaped guide plate 592 is installed at the end of the telescopic support plate 591 away from the L-shaped rod 54. An arc-shaped through hole is opened in the middle of the arc-shaped guide plate 592. The lower end of the arc-shaped guide plate 592 is symmetrically slidably connected to two pressing blocks 593 near the telescopic support plate 591. The cross-section of the pressing block 593 is an inverted T-shaped structure. The arc-shaped guide plate 592 is symmetrically penetrated and slidably connected to two lifting rods 594 away from the telescopic support plate 591. The outer surface of the lifting rod 594 is covered with a rubber sleeve. The two lifting rods 594 are provided with rubber sleeves. An L-shaped plate 595 is installed at the lower end of the descending rod 594. An arc-shaped guide frame 596 with a U-shaped cross-section is installed at the upper end of the horizontal section of the L-shaped plate 595. A rectangular frame 597 is installed at the upper end of the vertical section of the L-shaped plate 595. A spring telescopic plate 598 is rotatably connected inside the rectangular frame 597. A square plate 599 is installed at the upper end of the rectangular frame 597. An electric push rod 590 is hinged between the square plate 599 and the spring telescopic plate 598. A rubber head is installed at the lower end of the spring telescopic plate 598. When working, when adjusting the cutting radius, the two sliding frames 55 move simultaneously. The cylindrical rod in the middle of 55 drives the arc guide plate 592 to move through the arc through hole on the arc guide plate 592, and the arc guide plate 592 drives the descending rod 585 to move through the arc through hole, so as to adjust the cutting radius. Then, the pressing screw 32 is manually rotated, and the pressing screw 32 drives the pressing plate 4 and the pressing block 593 to press the surface of the optical film together. Then, the cutting head 589 reciprocates to cut the optical film layer by layer. When a layer of optical film is cut, the electric push rod 590 drives the spring telescopic plate 598 to rotate, and the rubber head at the lower end of the spring telescopic plate 598 cuts the optical film. The optical film that has fallen off is removed to avoid affecting the subsequent cutting, and when the descending rod 585 descends layer by layer, the descending rod 585 drives the arc guide frame 596 to descend through the guide plate 588, and the arc guide frame 596 drives the rectangular frame 597 and the lifting rod 594 to descend through the L-shaped plate 595. The lifting rod 594 plays a guiding role, and the rubber sleeve on the lifting rod 594 increases the friction between the lifting rod 594 and the arc guide plate 592. The rectangular frame 597 drives the spring telescopic plate 598 to descend, so that the spring telescopic plate 598 continues to work.
[0041] During cutting: S1 , a plurality of cut optical films are placed on the base plate 1 manually, and the clamping plate 21 limits and aligns the optical films through the clamping blocks 22 .
[0042] S2. According to the radius of the fillet required for the optical film, manually adjust the distance that the sliding frame 55 extends on the L-shaped rod 54. The movement of the L-shaped rod 54 drives the guide mechanism 59 to move, and the guide mechanism 59 drives the cutting mechanism 58 to move. Then, manually turn the pressing screw 32. The pressing screw 32 drives the lower pressing plate 4 and the pressing block 593 to press the surface of the optical film together.
[0043] S3. Manually start the drive motor 583. The drive motor 583 is an existing reciprocating motor. The drive motor 583 drives the movable plate 582 to rotate reciprocatingly through the rotating frame 581. The movable plate 582 drives the cutting head 589 at the lower end of the descending rod 585 through the limiting unit 584 to cut the optical film. Then the electric push rod 590 drives the spring telescopic plate 598 to rotate. The rubber head at the lower end of the spring telescopic plate 598 removes the cut optical film.
[0044] S4. When the upper layer of optical film is cut, the descending rod 585 drives the guide column 586 to cooperate with the inclined surface on the adjustment plate 56, thereby driving the descending rod 585 to descend. At the same time, the descending rod 585 drives the arc guide frame 596 to descend through the guide plate 588. The arc guide frame 596 drives the rectangular frame 597 to descend through the L-shaped plate 595. The rectangular frame 597 drives the spring telescopic plate 598 to descend, so that the spring telescopic plate 598 continues to work. After all the stacked optical films are cut, the optical films with rounded corners are manually removed from the base plate 1.
[0045] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the above-described embodiments. The above-described embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.
Claims
1. An automated processing equipment for producing optical thin films, comprising a base plate (1), a clamping member (2), a lower pressing member (3), a lower pressing plate (4) and a cutting member (5), characterized in that: A plurality of rectangularly distributed clamping members (2) are mounted on the upper end of the base plate (1); a lower pressing member (3) is slidably connected to the two clamping members (2) located at the front and rear; a lower pressing plate (4) is connected to the lower pressing member (3); placement openings are provided at the four corners of the lower pressing plate (4); a cutting member (5) is provided in the placement opening; and the cutting member (5) is fixedly connected to the lower pressing plate (4); wherein: The cutting member (5) includes a mounting seat (51) mounted on the upper end of the lower pressure plate (4), a sliding plate (52) passing through the mounting seat (51) and slidably connected, a plurality of positioning holes are provided on the sliding plate (52), a positioning rod (53) is plugged into the mounting seat (51), the positioning rod (53) slides with the positioning hole, an L-shaped rod (54) is mounted on one end of the positioning rod (53) away from the middle of the lower pressure plate (4), sliding grooves are evenly provided at both ends of the L-shaped rod (54), a sliding frame (55) is interactively connected inside the sliding groove, a cylindrical rod is mounted on the inner wall of the sliding frame (55) away from the L-shaped rod (54), a locking screw (57) is threadedly connected to the upper wall of the sliding groove, a cutting mechanism (58) is rotatably connected to the upper end of the L-shaped rod (54), a guide mechanism (59) is installed between the two rods of the L-shaped rod (54), and an adjusting plate (56) is mounted on one end of the sliding frame (55) away from the cutting mechanism (58); The cutting mechanism (58) comprises a rotating frame (581) rotatably connected to the upper end of the L-shaped rod (54), a movable plate (582) is passed through and slidably connected inside the rotating frame (581), an output shaft of a driving motor (583) is fixedly connected to the upper end of the rotating frame (581), the driving motor (583) is mounted on the lower pressing plate (4) through a motor frame, a limiting unit (584) is mounted on one end of the movable plate (582) away from the rotating frame (581), and a lower limiting unit (584) is passed through and slidably connected in the middle of the limiting unit (584). A descending rod (585) is provided on the outer surface of the descending rod (585) and is staggered from top to bottom. An auxiliary plate is provided on the upper end of the descending rod (585). A connecting spring (587) is provided between the lower end of the auxiliary plate and the limiting unit (584). A guide plate (588) is provided on the outer surface of the descending rod (585) near the lower side. A cutting head (589) is provided on the lower end of the descending rod (585). A pressure unit (580) is provided on the lower end of the descending rod (585) away from the cutting head (589). The guide mechanism (59) includes a telescopic support plate (591) installed between the two rods of the L-shaped rod (54), and an arc-shaped guide plate (592) is installed at one end of the telescopic support plate (591) away from the L-shaped rod (54). An arc-shaped through hole is opened in the middle of the arc-shaped guide plate (592). The lower end of the arc-shaped guide plate (592) is symmetrically slidably connected to two pressing blocks (593) near the telescopic support plate (591). The cross section of the pressing block (593) is an inverted T-shaped structure. The arc-shaped guide plate (592) is symmetrically penetrated and slidably connected to the telescopic support plate (591). There are two lifting rods (594) in dynamic connection, and an L-shaped plate (595) is installed on the lower ends of the two lifting rods (594). An arc-shaped guide frame (596) with a U-shaped cross-section is installed on the upper end of the horizontal section of the L-shaped plate (595). A rectangular frame (597) is installed on the upper end of the vertical section of the L-shaped plate (595). A spring telescopic plate (598) is rotatably connected inside the rectangular frame (597). A square plate (599) is installed on the upper end of the rectangular frame (597). An electric push rod (590) is hinged between the square plate (599) and the spring telescopic plate (598). The clamping member (2) comprises a clamping plate (21) mounted on the upper end of the base plate (1), and a trapezoidal clamping block (22) is mounted on one end of the clamping plate (21) close to the middle of the base plate (1); The pressing member (3) includes a U-shaped frame (31) slidably connected to the two clamping members (2); the middle section of the U-shaped frame (31) is threadedly connected to a pressing screw (32); the lower end of the pressing screw (32) is rotatably connected to the lower pressing plate (4); the upper end of the lower pressing plate (4) is symmetrically installed with a guide column (33); the guide column (33) and the middle part of the U-shaped frame (31) are slidably connected and penetrated; the two vertical ends of the U-shaped frame (31) are evenly slidably connected to a positioning bar (34); the positioning bar (34) is plugged into the clamping member (2); A connecting plate is installed at the lower end of the sliding frame (55) away from the L-shaped rod (54), and a limiting square frame is installed at one end of the connecting plate close to the lower pressing plate (4). A rectangular notch is opened on the upper wall of the sliding frame (55); The adjustment plate (56) is of U-shaped structure, and an inclined surface is provided at the lower end of the upper horizontal section of the adjustment plate (56), and the inclined surface is in sliding cooperation with the guide column (586).
2. The automated processing equipment for producing optical thin films according to claim 1, characterized in that: The limiting unit (584) includes a cylindrical block (5841) installed at the end of the movable plate (582), a circular through hole is opened in the middle of the cylindrical block (5841), two sliding through holes are symmetrically opened on the wall of the circular through hole, clamping grooves are opened on both side walls of the sliding through hole, a right-angled trapezoidal plate (5842) is slidably connected inside the clamping groove, and a limiting spring (5843) is installed between the right-angled trapezoidal plate (5842) and the wall of the clamping groove.
3. The automated processing equipment for producing optical thin films according to claim 1, characterized in that: The edge pressing unit (580) includes an edge pressing plate (5801) installed at the lower end of the descending rod (585), two edge pressing grooves are symmetrically opened at the lower end of the edge pressing plate (5801), and an edge pressing block (5802) is slidably connected inside the edge pressing groove. A edge pressing spring (5803) is installed between the upper end of the edge pressing block (5802) and the edge pressing groove, an inclined surface is provided at the lower end of the edge pressing block (5802), and a rotating roller is rotatably connected to the lower end of the edge pressing block (5802).
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