Anti-deviation positioning device for splicing release paper
By designing a release paper splicing anti-deviation positioning device that includes glue application, fixing and collection mechanisms, the problems of existing devices being unable to fix release papers of different sizes and low glue curing efficiency are solved, achieving stable fixing and efficient processing.
Patent Information
- Application Number
- CN202511261438.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-05
- Publication Date
- 2025-11-18
AI Technical Summary
Existing release paper splicing and positioning devices cannot effectively fix release papers of different sizes, and cannot improve the curing efficiency of adhesive during splicing.
A release paper splicing anti-deviation positioning device was designed, which includes a horizontal support plate, a vertical support rod, an adhesive application mechanism, a fixing mechanism, and a collection mechanism. The device achieves stable fixing and rapid adhesive curing of release papers of different sizes through components such as an electric telescopic rod, a sliding plate, and a heating plate.
It achieves stable fixing and efficient adhesive curing of release paper of different sizes, improving the efficiency of release paper splicing processing.
Smart Images

Figure CN120964466A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of release paper processing technology, specifically relating to a release paper splicing anti-deviation positioning device. Background Technology
[0002] Release paper, also known as release liner or anti-stick paper, is a type of paper coated with a special release agent to prevent other materials from adhering. Its structure consists of a base paper and a release agent coating. The base paper is typically made of materials such as kraft paper, glassine paper, or coated paper. Kraft paper has high strength and good toughness, making it suitable for applications requiring high mechanical strength; glassine paper has good transparency and smoothness, often used for products with high appearance quality requirements; coated paper has good printability and can be used for situations where markings need to be printed on the release paper. The release agent coating is the key part for achieving the release function. Common release agents include silicone release agents, fluorinated release agents, and acrylic release agents. Silicone release agents have excellent release performance and chemical stability, maintaining good release effects under different temperature and environmental conditions; fluorinated release agents have higher surface energy and better chemical resistance, suitable for special materials with extremely high release requirements; acrylic release agents are relatively inexpensive and have a certain degree of flexibility, suitable for cost-sensitive applications.
[0003] Release paper possesses numerous characteristics and applications. Its most important property is its release property, allowing materials in contact with it to be easily peeled off when needed without leaving residue or affecting the performance and surface quality of the peeled material. Therefore, it is widely used in the production of self-adhesive labels, tapes, medical patches, and other products as a protective coating or release layer to prevent adhesives from sticking together during storage and transportation. The smooth and flat surface of release paper provides excellent support and adhesion for the materials it contacts, ensuring the uniformity and consistency of the processed materials. In electronic component manufacturing, the flatness and smoothness of release paper used to support electronic components such as chips, resistors, and capacitors have a significant impact on the processing accuracy and quality of the components. Positioning devices are required for the positioning of release paper during the splicing process.
[0004] Existing release liner splicing and positioning devices are generally designed for splicing release liner of fixed size, and cannot effectively fix release liner of different sizes. Furthermore, they cannot effectively improve the curing efficiency of the release liner adhesive during splicing, making them inconvenient for users. Therefore, we propose a release liner splicing anti-deviation positioning device to solve the above problems. Summary of the Invention
[0005] The purpose of this invention is to provide a release paper splicing anti-displacement positioning device, which can fix release papers of different sizes, and facilitate the adhesive curing of release papers of different sizes after splicing, thereby improving the efficiency of release paper splicing processing.
[0006] The specific technical solution adopted by this invention is as follows:
[0007] A release liner splicing anti-deviation positioning device includes a horizontally arranged first support plate. Multiple vertically arranged first support rods are fixedly connected to one side wall of the first support plate, and multiple vertically arranged second support rods are fixedly connected to the other side wall of the first support plate. A second support plate is fixedly connected to the end of each of the first support rods away from the first support plate, and the second support plate is horizontally arranged. A third support plate is fixedly connected to the end of each of the second support rods away from the first support plate, and the third support plate is horizontally arranged. A splicing adhesive applicator is provided on the second support plate. Two symmetrically arranged release liner fixing mechanisms are provided on the first support plate. Two symmetrically arranged first mounting slots are provided on the first support plate, each matching one of the two release liner fixing mechanisms. A first moving body is provided in each of the two first mounting slots, and each of the two first moving bodies matches one of the two release liner fixing mechanisms. Two symmetrically arranged release liner collecting mechanisms are provided on the third support plate. Two symmetrically arranged through slots are provided on the first support plate, each matching one of the two release liner collecting mechanisms, and both through slots penetrate the side wall of the first support plate.
[0008] In a preferred embodiment, the splicing and gluing mechanism includes an electric telescopic rod with a gluing head engaged on it, and a first sliding groove is provided on the side wall of the second support plate, the first sliding groove being matched with the electric telescopic rod.
[0009] In a preferred embodiment, the release paper fixing mechanism includes a first sliding plate, which is perpendicular to the first mounting groove. The first sliding plate has two symmetrically arranged second sliding plates, which are slidably connected to the first sliding plate. Both second sliding plates are perpendicular to the first sliding plate. The first sliding plate has two symmetrically arranged second sliding grooves, and each of the two second sliding grooves has a second moving body. The two second moving bodies are respectively matched with the two second sliding plates. Each of the two second sliding plates has a moving rod inserted into it. The moving rod is located away from the first sliding plate and has a pressing plate engaged with it. The second sliding plate has a fixing buckle matched with the moving rod.
[0010] In a preferred embodiment, the first moving body includes a first moving plate, which is engaged with the bottom wall of the first sliding plate. A first driver is provided in the first mounting groove, and the output end of the first driver is engaged with a first gear. A first tooth groove that meshes with the first gear is provided on the side wall of the first moving plate.
[0011] In a preferred embodiment, the release paper collecting mechanism includes a collecting trough, a first electric rotating rod is engaged in the collecting trough, and a collecting cylinder is sleeved on the first electric rotating rod. A third moving body is provided on the inner wall of the collecting trough, and an adhesive quick-drying mechanism is installed on the third moving body.
[0012] In a preferred embodiment, the second moving body includes a second electric rotary rod, on which a rotary cylinder is sleeved, and multiple paddles are engaged with the rotary cylinder, the multiple paddles being matched and configured with a second sliding plate.
[0013] In a preferred embodiment, the third moving body includes a vertically arranged second moving plate, the second moving plate is provided with a third sliding groove, and the third moving plate is slidably connected in the third sliding groove. A power body matching the third moving plate is provided in the third sliding groove. An installation rod is snapped onto the third moving plate, a second driver is snapped onto the installation rod, and a rotating shaft is fixedly connected to the output end of the second driver. An installation plate is fixedly connected to the rotating shaft.
[0014] In a preferred embodiment, the power unit includes a third drive, the output end of which is connected to a second gear, the inner wall of the third slide groove is provided with a second mounting groove that matches the third drive, and the side wall of the third moving plate is provided with a second tooth groove that meshes with the second gear.
[0015] In a preferred embodiment, the adhesive quick-drying mechanism includes a first electric heating plate and a second electric heating plate. The first electric heating plate is engaged with the side wall of a third movable plate, and the second electric heating plate is engaged with the side wall of a mounting plate. The first electric heating plate and the second electric heating plate are connected by a telescopic power cord.
[0016] In a preferred embodiment, both side walls of the first support plate are provided with connecting holes, and the two connecting holes are respectively matched with the two first movable plates.
[0017] The technical effects achieved by this invention are as follows:
[0018] Place the two release papers to be spliced on the first support plate and position them in a suitable splicing position. Activate the first driver on one side to rotate the first gear, which in turn moves the first moving plate and the first sliding plate. Move the first sliding plate to the side of one side of the release paper. Activate the second electric rotary rod to rotate the rotating cylinder and multiple paddles, causing the second sliding plate to slide on the first sliding plate. Move the pressing plate to the vicinity of the other side of one side of the release paper. Open the fixing buckle and adjust the moving rod to move the pressing plate, pressing it to hold down the other side of one side of the release paper, ensuring its stable fixation. Repeat the same operation on the other side of the release paper to fix both release papers separately, facilitating the fixing of release papers of different sizes. After fixing, The electric telescopic rod moves along the first chute, moving the glue applicator to the contact position of the two release papers. The electric telescopic rod is then extended to allow the glue applicator to apply glue to the two release papers. After the glue application is complete, the contact between the pressing plate and the release paper is broken, and the glued release paper is conveyed to the collection trough through the through chute. The edges of the release paper are placed on the collection cylinder, and the first and second electric heating plates are turned on to heat and dry the glued area of the release paper, allowing the glue to cure quickly. The first electric rotating rod is turned on to rotate the collection cylinder, facilitating the winding of the release paper. The third driver is turned on to rotate the second gear, thereby moving the third moving plate in the vertical direction, which in turn adjusts the working position of the first and second electric heating plates, facilitating the glue curing of release papers of different sizes. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of a release paper splicing anti-deviation positioning device according to the present invention;
[0020] Figure 2 This is a schematic diagram of the first moving body of a release paper splicing anti-deviation positioning device according to the present invention;
[0021] Figure 3 for Figure 1 A schematic diagram at point A in the middle;
[0022] Figure 4 This is a schematic diagram of the release paper collection mechanism of a release paper splicing anti-deviation positioning device according to the present invention;
[0023] Figure 5 for Figure 4 A schematic diagram at point B in the middle;
[0024] Figure 6 This is a schematic diagram of the second moving body of a release paper splicing anti-deviation positioning device according to the present invention.
[0025] In the diagram: 1 First support plate, 2 First support rod, 3 Second support rod, 4 Second support plate, 5 Third support plate, 6 First mounting groove, 7 Electric telescopic rod, 8 Glue applicator head, 9 First slide groove, 10 First sliding plate, 11 Second sliding plate, 12 Second slide groove, 13 Moving rod, 14 Pressing plate, 15 Fixing buckle, 16 First moving plate, 17 First driver, 18 First gear, 19 Collection groove, 20 First electric rotating rod, 21 Collection cylinder, 22 Second electric rotating rod, 23 Rotating cylinder, 24 Paddle, 25 Second moving plate, 26 Third slide groove, 27 Third moving plate, 28 Mounting rod, 29 Second driver, 30 Rotating shaft, 31 Mounting plate, 32 Third driver, 33 Second gear, 34 Through groove, 35 Second mounting groove, 36 First electric heating plate, 37 Second electric heating plate, 38 Telescopic power cord, 39 Connecting hole. Detailed Implementation
[0026] To make the above-mentioned objects, features and advantages of the present invention more apparent and understandable, the specific embodiments of the present invention will be described in detail below with reference to the accompanying drawings.
[0027] Please see Figure 1-6 As shown, this invention provides a release paper splicing anti-deviation positioning device, including a horizontally arranged first support plate 1. A plurality of vertically arranged first support rods 2 are fixedly connected to one side wall of the first support plate 1, and a plurality of vertically arranged second support rods 3 are fixedly connected to the other side wall of the first support plate 1. A second support plate 4 is fixedly connected to the end of each of the first support rods 2 away from the first support plate 1, and the second support plate 4 is horizontally arranged. A third support plate 5 is fixedly connected to the end of each of the second support rods 3 away from the first support plate 1, and the third support plate 5 is horizontally arranged. A splicing glue application mechanism is provided on the second support plate 4. The first support plate 1 has two symmetrically arranged release paper fixing mechanisms. The first support plate 1 has two symmetrically arranged first mounting grooves 6, which are respectively matched with the two release paper fixing mechanisms. Each of the two first mounting grooves 6 has a first moving body, which is respectively matched with the two release paper fixing mechanisms. The third support plate 5 has two symmetrically arranged release paper collecting mechanisms. The first support plate 1 has two symmetrically arranged through grooves 34, which are respectively matched with the two release paper collecting mechanisms. Both through grooves 34 penetrate the side wall of the first support plate 1.
[0028] The splicing and gluing mechanism includes an electric telescopic rod 7, on which a gluing head 8 is snapped. A first sliding groove 9 is provided on the side wall of the second support plate 4, and the first sliding groove 9 is matched with the electric telescopic rod 7.
[0029] The release paper fixing mechanism includes a first slide plate 10, which is perpendicular to the first mounting groove 6. The first slide plate 10 has two symmetrically arranged second slide plates 11, which are slidably connected to the first slide plate 10. Both second slide plates 11 are perpendicular to the first slide plate 10. The first slide plate 10 has two symmetrically arranged second sliding grooves 12, and each of the two second sliding grooves 12 has a second moving body. The two second moving bodies are respectively matched with the two second slide plates 11. Each of the two second slide plates 11 has a moving rod 13 inserted into it. The moving rod 13 is located away from the first slide plate 10, and a pressing plate 14 is engaged with the moving rod 13. The second slide plate 11 has a fixing buckle 15 that matches the moving rod 13.
[0030] The first moving body includes a first moving plate 16, which is engaged with the bottom wall of the first sliding plate 10. A first driver 17 is provided in the first mounting groove 6, and a first gear 18 is engaged at the output end of the first driver 17. A first tooth groove is provided on the side wall of the first moving plate 16 to mesh with the first gear 18.
[0031] The release paper collection mechanism includes a collection trough 19, a first electric rotating rod 20 is snapped into the collection trough 19, and a collection cylinder 21 is sleeved on the first electric rotating rod 20. A third moving body is provided on the inner wall of the collection trough 19, and an adhesive quick-drying mechanism is installed on the third moving body.
[0032] The second moving body includes a second electric rotating rod 22, on which a rotating cylinder 23 is sleeved, and multiple paddles 24 are engaged on the rotating cylinder 23, with the multiple paddles 24 matched and configured with the second sliding plate 11.
[0033] The third moving body includes a vertically arranged second moving plate 25, a third sliding groove 26 on the second moving plate 25, and a third moving plate 27 slidably connected in the third sliding groove 26. A power body matching the third moving plate 27 is arranged in the third sliding groove 26. A mounting rod 28 is snapped onto the third moving plate 27, a second driver 29 is snapped onto the mounting rod 28, and a rotating shaft 30 is fixedly connected to the output end of the second driver 29. A mounting plate 31 is fixedly connected to the rotating shaft 30.
[0034] The power unit includes a third drive 32, the output end of which is connected to a second gear 33. The inner wall of the third slide 26 is provided with a second mounting groove 35 that matches the third drive 32. The side wall of the third moving plate 27 is provided with a second tooth groove that meshes with the second gear 33.
[0035] The adhesive quick-drying mechanism includes a first electric heating plate 36 and a second electric heating plate 37. The first electric heating plate 36 is engaged with the side wall of the third moving plate 27, and the second electric heating plate 37 is engaged with the side wall of the mounting plate 31. The first electric heating plate 36 and the second electric heating plate 37 are connected by a telescopic power cord 38.
[0036] Both sides of the first support plate 1 are provided with connecting holes 39, and the two connecting holes 39 are respectively matched with the two first moving plates 16.
[0037] In this invention, when splicing release liner sheets is required, two sheets of release liner sheets to be spliced are placed on the first support plate 1 and positioned in a suitable splicing position. The first driver 17 on one side is activated, driving the first gear 18 to rotate, which in turn moves the first moving plate 16 and the first sliding plate 10. The first sliding plate 10 on one side is moved to the side of one release liner sheet. The second electric rotating rod 22 is activated, driving the rotating cylinder 23 and multiple paddles 24 to rotate, thereby causing the second sliding plate 11 to slide on the first sliding plate 10. The pressing plate 14 is moved to the vicinity of the other side of one release liner sheet. The fixing buckle 15 is opened, and the adjusting rod 13 drives the pressing plate 14 to press down on the other side of one release liner sheet, ensuring stable fixation. The same operation is performed on the other side of the release liner sheet, fixing both release liner sheets separately, facilitating the fixing of release liner sheets of different sizes. After fixing, move the electric telescopic rod 7 on the first slide 9 to move the glue applicator 8 to the contact position of the two release papers. Open the electric telescopic rod 7 to extend and retract, so that the glue applicator 8 can apply glue to the two release papers. After the glue application is completed, disconnect the pressing plate 14 from the release paper and transport the glued release paper to the collection tank 19 through the through groove 34. Place the corners of the release paper on the collection cylinder 21, turn on the first electric heating plate 36 and the second electric heating plate 37 to heat and dry the glued part of the release paper, so that the glue can be cured quickly. Turn on the first electric rotating rod 20 to drive the collection cylinder 21 to rotate, so as to facilitate the winding of the release paper. Turn on the third driver 32 to drive the second gear 33 to rotate, thereby driving the third moving plate 27 to move in the vertical direction, and then adjust the working position of the first electric heating plate 36 and the second electric heating plate 37 to facilitate the glue curing of release papers of different sizes.
[0038] The above description is merely a preferred embodiment of the present invention. It should be noted that those skilled in the art can make various improvements and modifications without departing from the principles of the present invention, and these improvements and modifications should also be considered within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described or explained in this invention are implemented according to conventional methods in the art unless otherwise specified or limited.
Claims
1. A release paper splicing anti-deviation positioning device, characterized in that: The system includes a horizontally positioned first support plate (1), with multiple vertically positioned first support rods (2) fixedly connected to one side wall of the first support plate (1), and multiple vertically positioned second support rods (3) fixedly connected to the other side wall of the first support plate (1). A second support plate (4) is fixedly connected to one end of each of the multiple first support rods (2) away from the first support plate (1), and the second support plate (4) is horizontally positioned. A third support plate (5) is fixedly connected to one end of each of the multiple second support rods (3) away from the first support plate (1), and the third support plate (5) is horizontally positioned. A splicing and gluing mechanism is provided on the second support plate (4), and two symmetrically positioned mechanisms are provided on the first support plate (1). The release paper fixing mechanism is provided with two symmetrically arranged first mounting slots (6) on the first support plate (1), and the two first mounting slots (6) are respectively matched with two release paper fixing mechanisms. Each of the two first mounting slots (6) is provided with a first moving body, and the two first moving bodies are respectively matched with two release paper fixing mechanisms. The third support plate (5) is provided with two symmetrically arranged release paper collecting mechanisms. The first support plate (1) is provided with two symmetrically arranged through slots (34), and the two through slots (34) are respectively matched with two release paper collecting mechanisms. Both through slots (34) penetrate the side wall of the first support plate (1).
2. The release paper splicing anti-deviation positioning device according to claim 1, characterized in that: The splicing and gluing mechanism includes an electric telescopic rod (7), on which a gluing head (8) is attached. The side wall of the second support plate (4) is provided with a first sliding groove (9), which is matched with the electric telescopic rod (7).
3. The release paper splicing anti-deviation positioning device according to claim 1, characterized in that: The release paper fixing mechanism includes a first slide plate (10), which is perpendicular to the first mounting groove (6). The first slide plate (10) has two symmetrically arranged second slide plates (11), which are slidably connected to the first slide plate (10). Both second slide plates (11) are perpendicular to the first slide plate (10). The first slide plate (10) has two symmetrically arranged second sliding grooves (12), and each of the two second sliding grooves (12) has a second moving body. The two second moving bodies are respectively matched with the two second slide plates (11). Each of the two second slide plates (11) has a moving rod (13) inserted into it. The moving rod (13) is located away from the first slide plate (10), and a pressing plate (14) is engaged on the moving rod (13). The second slide plate (11) has a fixing buckle (15) matched with the moving rod (13).
4. The release paper splicing anti-deviation positioning device according to claim 3, characterized in that: The first moving body includes a first moving plate (16), which is engaged with the bottom wall of the first sliding plate (10). The first mounting groove (6) is provided with a first driver (17), and the output end of the first driver (17) is engaged with a first gear (18). The side wall of the first moving plate (16) is provided with a first tooth groove that meshes with the first gear (18).
5. The release paper splicing anti-deviation positioning device according to claim 1, characterized in that: The release paper collection mechanism includes a collection trough (19), a first electric rotating rod (20) is engaged in the collection trough (19), and a collection cylinder (21) is sleeved on the first electric rotating rod (20). A third moving body is provided on the inner wall of the collection trough (19), and an adhesive quick-drying mechanism is installed on the third moving body.
6. The release paper splicing anti-deviation positioning device according to claim 3, characterized in that: The second moving body includes a second electric rotating rod (22), on which a rotating cylinder (23) is sleeved, and multiple paddles (24) are engaged on the rotating cylinder (23), and the multiple paddles (24) are matched with the second sliding plate (11).
7. The release paper splicing anti-deviation positioning device according to claim 5, characterized in that: The third moving body includes a vertically arranged second moving plate (25), a third sliding groove (26) is provided on the second moving plate (25), and a third moving plate (27) is slidably connected in the third sliding groove (26). A power body matching the third moving plate (27) is provided in the third sliding groove (26). An installation rod (28) is snapped on the third moving plate (27), and a second driver (29) is snapped on the installation rod (28). A rotating shaft (30) is fixedly connected to the output end of the second driver (29), and an installation plate (31) is fixedly connected to the rotating shaft (30).
8. The release paper splicing anti-deviation positioning device according to claim 7, characterized in that: The power unit includes a third driver (32), the output end of which is connected to a second gear (33). The inner wall of the third slide (26) is provided with a second mounting groove (35) that matches the third driver (32), and the side wall of the third moving plate (27) is provided with a second tooth groove that meshes with the second gear (33).
9. The release paper splicing anti-deviation positioning device according to claim 7, characterized in that: The adhesive quick-drying mechanism includes a first electric heating plate (36) and a second electric heating plate (37). The first electric heating plate (36) is engaged with the side wall of the third moving plate (27), and the second electric heating plate (37) is engaged with the side wall of the mounting plate (31). The first electric heating plate (36) and the second electric heating plate (37) are connected by a telescopic power cord (38).
10. The release paper splicing anti-deviation positioning device according to claim 1, characterized in that: Both sides of the first support plate (1) are provided with connecting holes (39), and the two connecting holes (39) are respectively matched with the two first moving plates (16).