A processing apparatus for a sanding reflective film
By designing the winding roller and linkage mechanism, the shortcomings of existing frosted reflective film processing equipment in terms of adjusting the position and number of holes have been solved, improving processing efficiency and stability, and reducing equipment maintenance costs.
Patent Information
- Application Number
- CN202521835862.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-27
- Publication Date
- 2026-08-25
- Estimated Expiration
- 2035-08-27
AI Technical Summary
Existing frosted reflective film processing equipment requires replacing the entire device when changing the perforation position and quantity, and manual confirmation of the position is required after perforation, which affects efficiency. In addition, the conveyor belt material has high requirements and is easily damaged, resulting in high cost.
Design a frosted reflective film processing equipment that includes a winding roller, a punching mechanism, and a linkage mechanism. The punching position is adjusted by the winding roller, the linkage mechanism synchronously drives the abutment frame for positioning, and the unidirectional rotation handle controls the number of punches, thereby improving the punching stability and efficiency.
It enables convenient adjustment of the perforation position and number, improves the processing efficiency and perforation stability of frosted reflective film, and reduces equipment maintenance costs.
Smart Images

Figure CN224677480U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of frosted reflective film processing technology, specifically, it relates to a processing equipment for frosted reflective film. Background Technology
[0002] The manufacturing process of frosted reflective film mainly includes frosting process and AG process, both of which achieve reflectivity control through surface treatment.
[0003] Chinese Patent No. CN218875635U discloses a reflective film perforation device, which improves the protection of the device and increases the perforation stability. It includes a mounting base, positioning slide rails, a mounting frame, a moving beam, a mounting seat, a stamping die, stamping heads, a transmission mechanism, and a drive mechanism. The positioning slide rails are symmetrically mounted on the mounting base. The mounting frame is slidably mounted on the mounting base via the positioning slide rails. The moving beam is slidably mounted on the mounting frame. The mounting seat is mounted on the mounting frame. The stamping die is mounted on the mounting seat. Multiple sets of stamping heads are equidistantly mounted on the moving beam and cooperate with the stamping die. The transmission mechanism is mounted on the mounting base and is connected to the mounting frame. The drive mechanism is mounted on the mounting frame and is connected to the moving beam.
[0004] During the use of the above-mentioned device, the punching position and number of holes for the frosted reflective film are fixed. If the number and position of holes need to be changed, the entire punching device needs to be replaced. In addition, the punching position of the frosted reflective film needs to be manually determined before and after punching, and the reflective film needs to be rolled up after punching, which will affect the processing efficiency of punching. Although there are devices in the existing technology that lay the frosted reflective film flat on the conveyor belt for punching, which can solve the problem of rolling up the frosted reflective film after punching, this method not only has too high requirements for the material of the conveyor belt itself, but is also prone to damage and requires frequent maintenance. It is not only costly, but also quite troublesome in actual use. In view of this, this utility model is proposed. Utility Model Content
[0005] The technical problem to be solved by this utility model is to overcome the shortcomings of the prior art and provide a processing equipment for frosted reflective film, which solves the problems mentioned in the background art.
[0006] To solve the above-mentioned technical problems, the basic concept of the technical solution adopted by this utility model is as follows: A processing device for frosted reflective film, comprising: The processing table has two winding rollers rotating on its upper side; A support frame is fixed on the upper side of the processing table. A drive mechanism is installed on the support frame, and a control block is installed at the output end of the drive mechanism. The drilling mechanism includes two mounting plates, which are fixedly connected to the inner sides of the support frame. The mounting plates have multiple through slots, and mounting rods are rotatably fitted in the through slots. A one-way rotating handle is installed on the upper side of the mounting rod, and a control rod is elastically and slidably fitted on the lower side of the mounting rod. A drilling head is fixed at one end of the control rod. The inner wall of the through slot has an interconnected rotating slot and a first sliding slot. One side of the rotating slot and the first sliding slot extends to the outside of the mounting plate and forms a T-shaped slot. The control rod is slidably fitted in the T-shaped slot. The abutment frame is slidably fitted on the upper side of the processing table, and a linkage mechanism is installed at one end of the abutment frame and the control block.
[0007] Optionally, the upper side of the processing table is provided with two sets of mounting blocks, which are respectively installed at both ends of the upper side of the processing table, and the winding roller is rotated and fitted in each set of mounting blocks.
[0008] Optionally, the one-way rotating handle includes a rotating rod, which is fixed to the upper side of the mounting rod. The rotating rod has multiple strip-shaped slots around its periphery. A mounting groove is installed on one side of the inner wall of the groove, and a locking block is elastically fitted inside the mounting groove. One side of the locking block has an inclined surface. A handle is fixed to the upper side of the rotating rod, and the two ends of the handle are conical structures.
[0009] Optionally, a rotating ring is fixed between the mounting rod and the control rod, and an annular limiting groove is provided on the inner circumference of the through groove, with the rotating ring rotating and engaging within the annular limiting groove.
[0010] Optionally, the linkage mechanism includes two toothed plates, which are respectively fixed on one side of the control block and the abutment frame. A gear is rotatably engaged between the two toothed plates, and the gear is rotatably engaged on one side of the support frame. The inner walls of the support frame are provided with second sliding grooves, and both ends of the abutment frame are provided with sliders. The abutment frame is slidably engaged in the second sliding grooves through the sliders.
[0011] Optionally, the drive mechanism includes a cylinder, which is mounted on the upper side of the support frame. The output end of the cylinder passes through the support frame and is connected to the control block, which is located between two mounting plates.
[0012] By adopting the above technical solution, the present invention has the following beneficial effects compared with the prior art. Of course, any product implementing the present invention does not necessarily need to achieve all of the following advantages at the same time: The two winding rollers not only facilitate the adjustment of the perforation position of the reflective film, but also allow for convenient winding of the perforated frosted reflective film, improving the processing efficiency. The linkage mechanism allows the control block to drive the perforating head to perforate the frosted reflective film while simultaneously moving the abutment frame towards the film, thus supporting and positioning the film and improving the stability of the perforating head. The one-way rotating handle allows the control rod below the mounting rod to rotate to the outside of the T-slot, facilitating the control block to drive the perforating head below the control rod to perforate the frosted reflective film. This allows for adjustment of the number of perforations, enabling the frosted reflective film processing equipment to adapt to various perforation requirements.
[0013] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings. Attached Figure Description
[0014] The accompanying drawings described below are merely some embodiments. Those skilled in the art can obtain other drawings based on these drawings without any creative effort. In the drawings: Figure 1 This is a schematic diagram of the overall structure of the frosted reflective film processing equipment; Figure 2 This is a schematic diagram of the linkage mechanism; Figure 3 This is a schematic diagram of the groove and slider mating structure; Figure 4 This is a schematic diagram of the internal structure of the mounting plate; Figure 5 This is a schematic diagram of the overall structure of a one-way rotating handle; Figure 6 for Figure 5 Schematic diagram of the structure at point A in the middle.
[0015] The attached diagram lists the components represented by each number as follows: Processing table 1, winding roller 101, mounting block 102, mounting block 103; Support frame 2, second slide 201, slider 202; Drive mechanism 3, control block 301, cylinder 302; Abutment frame 4; Drilling mechanism 5, mounting plate 501, through groove 502, mounting rod 503, drilling head 504, control rod 505, rotating groove 506, first sliding groove 507, T-shaped groove 508, rotating ring 509, annular limiting groove 510; Linkage mechanism 6, gear plate 601, gear 602; One-way rotating handle 7, rotating rod 701, strip groove 702, mounting groove 703, locking block 704, handle 705.
[0016] It should be noted that these accompanying drawings and textual descriptions are not intended to limit the scope of the present invention in any way, but rather to illustrate the concept of the present invention to those skilled in the art by referring to specific embodiments. Detailed Implementation
[0017] The present invention will now be described in further detail with reference to the accompanying drawings.
[0018] Please see Figure 1-6 As shown, this embodiment provides a processing device for frosted reflective film, including a processing table 1, with two winding rollers 101 rotatably engaged on the upper side of the processing table 1; Support frame 2 is fixed on the upper side of processing table 1. A drive mechanism 3 is installed on the support frame 2. A control block 301 is installed at the output end of the drive mechanism 3. The drilling mechanism 5 includes two mounting plates 501, which are fixedly connected to the inner sides of the support frame 2. The mounting plates 501 are provided with multiple through slots 502. A mounting rod 503 is rotatably fitted in the through slots 502. A one-way rotating handle 7 is installed on the upper side of the mounting rod 503. A control rod 505 is elastically and slidably fitted on the lower side of the mounting rod 503. A drilling head 504 is fixed at one end of the control rod 505. The inner wall of the through slot 502 is provided with a rotating slot 506 and a first sliding slot 507 that are interconnected. One side of the rotating slot 506 and the first sliding slot 507 extends to the outside of the mounting plate 501 and forms a T-shaped slot 508. The control rod 505 is slidably fitted in the T-shaped slot 508. The abutment frame 4 is slidably fitted on the upper side of the processing table 1, and a linkage mechanism 6 is installed at one end of the abutment frame 4 and the control block 301. Specifically, a first spring is sleeved on the mounting rod 503, and one end of the first spring is connected to the control rod 505.
[0019] In use, first place the frosted reflective film that needs to be perforated on one of the winding rollers 101, and place the other end of the frosted reflective film on the winding roller 101 on the other winding roller 101. Then start the winding roller 101 to adjust the position of the frosted reflective film that needs to be perforated. After the frosted reflective film is perforated, it can be quickly perforated to the next position by simply winding it up with the two winding rollers 101, which improves the processing efficiency of the frosted reflective film. When the frosted reflective film is driven by the two winding rollers 101 to the bottom of the punching mechanism 5, the number and position of the holes to be punched on the frosted reflective film are first adjusted by the one-way rotating handle 7. After the punching requirements are determined, the one-way rotating handle 7 at the predetermined punching position is rotated. The one-way rotating handle 7 will drive the mounting rod 503 to rotate. During the rotation of the mounting rod 503, the control rod 505 will rotate in the rotating groove 506. When the control rod 505 rotates to the position corresponding to the first sliding groove 507, one end of the control rod 505 will rotate from the rotating groove 506 to the outside of the mounting plate 501. At this time, the rotation of the one-way rotating handle 7 is stopped, and then the drive mechanism 3 is started. The drive mechanism 3 will squeeze the extended control rod 505 through the control block 301 and drive the control rod 505 to move in the T-shaped groove 508. During the movement of the control rod 505, the punching head 504 will move towards the frosted reflective film below. At the same time, the control rod 505 will stretch the first spring during the movement. When the control block 301 moves the punching head 504, the control block 301 will drive the abutment frame 4 to move towards the frosted reflective film through the linkage mechanism 6, so that when the punching head 504 punches the frosted reflective film, the abutment frame 4 can support the frosted reflective film, which can improve the stability of the punching head 504 when punching the frosted reflective film. When the punching head 504 completes the punching of the frosted reflective film, simply rotate the reverse start drive mechanism 5. The drive mechanism 5 will drive the control block 301 to move upward. During the movement, the control block 301 will stop pressing the control rod 505. At this time, the first spring at one end of the control rod 505, which is stretched, will reset under its own elastic force, thereby driving the punching head 504 to reset. Then, simply start the winding roller 101 again to wind up the punched frosted reflective film and move the unpunched position of the frosted reflective film to below the punching mechanism 5, and repeat the above steps.
[0020] The two winding rollers 101 facilitate not only adjusting the perforation position of the frosted reflective film but also conveniently winding up the perforated film, thus improving the processing efficiency. The linkage mechanism 6, when the control block 301 drives the perforating head 504 to perforate the frosted reflective film, simultaneously drives the abutment frame 4 to move towards the frosted reflective film, thereby supporting and positioning the film and improving the stability of the perforating head 504. The one-way rotating handle 7 controls the control rod 505 below the mounting rod 503 to rotate to the outside of the T-slot 508, facilitating the control block 301 to drive the perforating head 504 below the control rod 505 to perforate the frosted reflective film. This allows the number of perforations to be adjusted, enabling the frosted reflective film processing equipment to adapt to various perforation requirements.
[0021] In this embodiment, the processing table 1 has two sets of mounting blocks 102 on its upper side. The two sets of mounting blocks 102 are respectively installed at both ends of the upper side of the processing table 1, and the winding roller 101 is rotatably fitted within each set of mounting blocks 102. Specifically, each set of mounting blocks 102 consists of two parts, one of which, 103, has a motor mounted on one side. The output end of the motor is connected to the winding roller 101. The motor can drive the frosted reflective film on the winding roller 101 to be wound up, which not only facilitates the adjustment of the perforation position of the frosted reflective film, but also facilitates the winding up of the frosted reflective film after perforation.
[0022] The one-way rotating handle 7 of this embodiment includes a rotating rod 701, which is fixed to the upper side of the mounting rod 503. Multiple strip-shaped slots 702 are provided around the rotating rod 701. A mounting groove 703 is installed on one side of the inner wall of the through groove 502. A locking block 704 is elastically fitted inside the mounting groove 703, and one side of the locking block 704 has a bevel. Specifically, a second spring is fixed between the inner wall of the mounting groove 703 and the locking block 704. A handle 705 is fixed to the upper side of the rotating rod 701 in this embodiment, and both ends of the handle 705 are conical structures. Specifically, the strip groove 702 is arc-shaped. Through the designed locking block and strip groove 702, when the handle 705 drives the mounting rod 503 to rotate in one direction, the locking block 704, with one side being inclined, prevents it from engaging with the strip groove 702. However, when the rotating rod 701 rotates in the opposite direction, the inclined surface on the locking block 704 will be opposite to the arc direction of the strip groove 702, thus limiting the locking block's movement of the strip groove 702. Furthermore, the handle 705 has a pointed conical design, which allows for the control of the rod 505... The rotation angle provides direction. When the pointed cone protrusions at both ends of the handle 705 point to the sides of the support frame 2, it means that the control rod 505 is aligned with the first slide groove 507. This makes it easier for the operator to determine whether the drilling head 504 at the required drilling position is activated, improving the operability of drilling frosted reflective film. Specifically, the strip groove 702 and the block 704 here can also be selected from the ratchet and pawl structure in the prior art, which can also realize the unidirectional rotation of the rotating rod 701, so as to facilitate the operation of the operator.
[0023] In this embodiment, a rotating ring 509 is fixed between the mounting rod 503 and the control rod 505. An annular limiting groove 510 is provided on the inner circumference of the through groove 502, and the rotating ring 509 rotatably engages within the annular limiting groove 510. Through the rotating ring 509, when the mounting rod 503 drives the control rod 505 to rotate, the mounting rod 503 will rotate within the annular limiting groove 510 via the rotating ring 509. Furthermore, when the control block 301 drives the control rod 505 to move, because the rotating ring 509 is located within the annular limiting groove 501, the control block 301 can limit the mounting rod 503 during the movement of the drilling head 504. This allows the drilling head 504 to stretch the first spring during operation, so that after the control block 301 releases the pressure from the control rod 504, the drilling head 504 can reset under the elastic force of the first spring, facilitating the next frosted reflective film drilling process.
[0024] The linkage mechanism 6 of this embodiment includes two toothed plates 601, which are respectively fixed to one side of the control block 301 and the abutment frame 4. A gear 602 is rotatably engaged between the two toothed plates 601, and the gear 602 is rotatably engaged on one side of the support frame 2. The inner walls of the support frame 2 of this embodiment are provided with second sliding grooves 201, and both ends of the abutment frame 4 are provided with sliders 202. The abutment frame 4 is slidably engaged in the second sliding grooves 201 through the sliders 202. With the abutment frame 4 in place, during the movement of the control block 301, the toothed plate 601 on the control block 301 will be driven by the gear 602 to move the toothed plate 601 on the abutment frame 4 and the abutment frame 4 toward the frosted reflective film. This can position the frosted reflective film that is about to be punched by the punching head 504, improving the stability of the punching head 504 punching the frosted reflective film. Furthermore, with the setting of the second slide groove 201, the abutment frame 4 can move within the second slide groove 201 via the slider 202, improving the stability of the abutment frame 4 during movement.
[0025] The drive mechanism 3 in this embodiment includes a cylinder 302, which is mounted on the upper side of the support frame 2. The output end of the cylinder 302 passes through the support frame 2 and is connected to the control block 301, which is located between two mounting plates 501. With the cylinder 302 in place, the control block 301 can be driven to reciprocate between the two mounting plates 501, thereby facilitating the control of the punching head 504 to punch the frosted reflective film.
[0026] The punching mechanism 5 in this embodiment also includes the following: In Example 1, the mounting plate 501 of this embodiment is provided with a connecting groove, and a sliding block is slidably fitted in the connecting groove. The sliding block is provided with a guide groove. The mounting rod 503, the drilling head 504, the control rod 505 and the one-way rotating handle 7 are all installed in the guide groove. A positioning element is installed on one side of the mounting plate 501. The positioning element cooperates with the sliding block. Through the connecting groove, the drilling position of the drilling head 504 located in the sliding block can be adjusted, so that any position on the frosted reflective film that needs to be drilled can be adjusted. The positioning element here can be in the form of a pin or the prior art.
[0027] It should be noted that all electrical devices involved in this application can be powered by batteries or external power sources.
[0028] This utility model is not limited to the above-described embodiments. Anyone should know that structural changes made under the guidance of this utility model, and any technical solutions that are the same as or similar to this utility model, fall within the protection scope of this utility model. Technical aspects, shapes, and structures not described in detail in this utility model are all publicly known technologies.
Claims
1. A processing device for frosted reflective film, characterized in that, include: The processing table (1) has two winding rollers (101) rotating on its upper side. Support frame (2) is fixed on the upper side of processing table (1). A drive mechanism (3) is installed on the support frame (2). A control block (301) is installed at the output end of the drive mechanism (3). The drilling mechanism (5) includes two mounting plates (501). The two mounting plates (501) are fixedly connected to the opposite inner side of the support frame (2). The mounting plates (501) are provided with multiple through slots (502). The through slots (502) are rotatably fitted with mounting rods (503). The upper side of the mounting rods (503) is fitted with a one-way rotating handle (7). The lower side of the mounting rods (503) is elastically and slidably fitted with a control rod (505). One end of the control rod (505) is fixed with a drilling head (504). The inner wall of the through slots (502) is provided with a rotating slot (506) and a first sliding slot (507) that are interconnected. One side of the rotating slot (506) and the first sliding slot (507) extends to the outside of the mounting plate (501) and forms a T-shaped slot (508). The control rod (505) is slidably fitted in the T-shaped slot (508). The abutment frame (4) is slidably fitted on the upper side of the processing table (1), and a linkage mechanism (6) is installed at one end of the abutment frame (4) and the control block (301).
2. The processing equipment for frosted reflective film according to claim 1, characterized in that, Two sets of mounting blocks (102) are provided on the upper side of the processing table (1). The two sets of mounting blocks (102) are respectively installed at both ends of the upper side of the processing table (1), and the winding roller (101) is rotated and fitted in each set of mounting blocks (102).
3. The processing equipment for frosted reflective film according to claim 1, characterized in that, The one-way rotating handle (7) includes a rotating rod (701), which is fixed on the upper side of the mounting rod (503). The rotating rod (701) has multiple strip-shaped slots (702) on its periphery. A groove (703) is installed on one side of the inner wall of the through groove (502). A locking block (704) is elastically fitted inside the mounting groove (703). One side of the locking block (704) has an inclined surface.
4. The processing equipment for frosted reflective film according to claim 3, characterized in that, A handle (705) is fixed on the upper side of the rotating rod (701), and the two ends of the handle (705) are conical structures.
5. The processing equipment for frosted reflective film according to claim 1, characterized in that, A rotating ring (509) is fixed between the mounting rod (503) and the control rod (505). An annular limiting groove (510) is provided on the inner wall of the through groove (502). The rotating ring (509) rotates and fits in the annular limiting groove (510).
6. The processing equipment for frosted reflective film according to claim 1, characterized in that, The linkage mechanism (6) includes two toothed plates (601), which are fixed on one side of the control block (301) and the abutment frame (4) respectively. A gear (602) is rotatably engaged between the two toothed plates (601), and the gear (602) is rotatably engaged on one side of the support frame (2).
7. The processing equipment for frosted reflective film according to claim 6, characterized in that, The inner walls of the support frame (2) are provided with second sliding grooves (201), and the two ends of the abutment frame (4) are provided with sliders (202). The abutment frame (4) slides in the second sliding grooves (201) through the sliders (202).
8. The processing equipment for frosted reflective film according to claim 1, characterized in that, The drive mechanism (3) includes a cylinder (302), which is mounted on the upper side of the support frame (2). The output end of the cylinder (302) passes through the support frame (2) and is connected to the control block (301). The control block (301) is located between two mounting plates (501).
Citation Information
Patent Citations
Perforating device for reflective film
CN218875635U