A double collagen paper film coating device
Patent Information
- Application Number
- CN202522364183.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-07
- Publication Date
- 2026-09-29
- Estimated Expiration
- 2035-11-07
AI Technical Summary
[0004]本实用新型的目的在于一种双胶原纸淋膜装置,解决所述装置在加工期间,在淋料的时候,为了保障充分以及高效涂抹,就会喷涂较多的物料,这样多余物料会掉落继而造成物料浪费的情况的问题
(1)本实用新型通过在装置上安装有余料回收组件,可以使得在使用该款装置的时候,通过设置的余料回收组件可以使得在工作期间,产生多余的物料沿着两侧槽缝进行导流收集,避免资源浪费的情况。
Smart Images

Figure CN224812913U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of double-colloidal paper coating technology, specifically a double-colloidal paper coating device. Background Technology
[0002] The double-coated collagen paper coating device was developed to meet the higher requirements of collagen paper in the food, medical and other fields for barrier properties, water resistance and structural strength.
[0003] In existing double-colloidal paper coating devices, in order to ensure sufficient and efficient coating, a large amount of material is sprayed during the coating process. This excess material falls off and causes waste. Utility Model Content
[0004] The purpose of this invention is to provide a double-colloidal paper coating device, which solves the problem that during the processing of the device, in order to ensure sufficient and efficient coating, a large amount of material is sprayed, resulting in excess material falling off and causing material waste.
[0005] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution: This utility model is a double-colloidal paper coating device, including a support assembly, an electric protective cover assembly on the top of the support assembly, an electric-driven coating assembly and a waste material recycling assembly inside the support assembly, and the electric-driven coating assembly is located on top of the waste material recycling assembly. The waste material recycling component includes two collection funnels arranged symmetrically. The two collection funnels are located at the top of the inclined guide slide plate, and a collection box is located at the end of the inclined guide slide plate and at the bottom of the inclined guide slide plate.
[0006] Furthermore, the support assembly includes two support plates arranged symmetrically. The bottom of the support plates is provided with anti-slip silicone pads. The top of the two support plates is fixed with two connecting plates. A transmission pipe is provided on the top of one support plate through a bracket. One end of the transmission pipe is provided with a feed regulating valve port. The bottom side of the end of the transmission pipe is provided with a transmission belt, which is arranged between the two support plates.
[0007] Furthermore, the electric protective cover assembly includes a protective flip cover, which is connected to the front side of the connecting plate via a hinged hinge. The outer wall of the protective flip cover is provided with a handle, and one inner wall of the protective flip cover is provided with a linkage rod.
[0008] Furthermore, the electric drive coating assembly includes a rotary motor, which is mounted on the top of a support plate via a bracket. A transmission box is mounted on the output end of the rotary motor via a connecting rod. A worm gear box is provided on the output end of the transmission box via a connecting rod. There are two worm gear boxes, which are symmetrically arranged. The output end of the worm gear box is provided with a coating roller shaft one and a coating roller shaft two. The coating roller shaft one and the coating roller shaft two are limited between two support plates and are located on the top of the conveyor belt. The coating roller shaft one and the coating roller shaft two are arranged adjacent to each other and are located at the bottom of the end of the conveyor pipe. A connecting rotating plate is connected to the outside of one side of the worm gear box via a rotating mechanism.
[0009] Furthermore, the other end of the connecting plate is hinged to the connecting support rod.
[0010] Furthermore, the two collection hoppers are respectively set at the bottom of the two sides of the conveyor belt, and the two collection hoppers are fixedly installed on the inner side of the two support plates. The inclined guide slide is installed horizontally between the two support plates through the bracket. One end of the inclined guide slide passes through the outer side of one support plate. The collection box is installed on the outer wall of the support plate through the bracket.
[0011] This utility model has the following beneficial effects: (1) By installing a residual material recovery component on the device, the present invention enables the excess material generated during operation to be guided and collected along the slots on both sides, thus avoiding resource waste.
[0012] (2) By installing an electric protective cover assembly on the device, the present invention can prevent dust from affecting the coating work during the operation of the device, thus ensuring the final processing effect.
[0013] Of course, any product implementing this utility model does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description
[0014] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0015] Figure 1 This is a schematic diagram of the overall structure of the device; Figure 2 This is a schematic diagram of the internal structure of the electrically driven coating component in the device. Figure 3 This is a schematic diagram of the electric protective cover assembly in the device; Figure 4 This is a schematic diagram of the residual material recovery component in the device; The attached diagram lists the components represented by each number as follows: In the diagram: 1. Support assembly; 2. Electric protective cover assembly; 3. Electric-driven coating assembly; 4. Waste material recovery assembly; 101. Support plate; 102. Anti-slip silicone pad; 103. Feed regulating valve; 104. Transmission pipe; 105. Conveyor belt; 201. Protective flip cover; 202. Hinged flap; 203. Handle; 204. Linkage support rod; 301. Rotary motor; 302. Transmission box; 303. Worm gear box; 304. Coating roller shaft one; 305. Linkage rotating plate; 306. Coating roller shaft two; 401. Collection funnel; 402. Inclined guide slide plate; 403. Collection box. Detailed Implementation
[0016] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0017] Please see Figures 1-4 As shown, this utility model is a double-colloidal paper coating device, including a support assembly 1, an electric protective cover assembly 2 on the top of the support assembly 1, an electric-driven coating assembly 3 and a waste material recycling assembly 4 inside the support assembly 1, and the electric-driven coating assembly 3 is located on top of the waste material recycling assembly 4. The waste material recycling component 4 includes two collection funnels 401, which are arranged symmetrically. The two collection funnels 401 are located at the top of the inclined guide slide plate 402, and a collection box 403 is located at the end of the inclined guide slide plate 402. The collection box 403 is located at the bottom of the inclined guide slide plate 402.
[0018] By installing the waste material recovery component 4 on the device, excess material generated during operation can be guided and collected along the slots on both sides, thus avoiding resource waste.
[0019] The support assembly 1 includes two support plates 101 arranged symmetrically. Each support plate 101 has a non-slip silicone pad 102 at its bottom. Two connecting plates at the top of the two support plates 101 are fixed together. A transmission pipe 104 is connected to the top of one support plate 101 via a support structure. One end of the transmission pipe 104 has a feed regulating valve 103, and the bottom of the end of the transmission pipe 104 has a transmission belt 105 positioned between the two support plates 101. The two symmetrically arranged support plates 101 in the support assembly 1 provide stable support for the device. The non-slip silicone pad 102 at the bottom enhances the stability of the device. The transmission belt 105 acts as a paper transport carrier, conveying the paper to be coated to the processing area of the electrically driven coating assembly 3. The transmission pipe 104 is responsible for transporting collagen raw materials to the coating area, and the amount of raw material conveyed can be controlled by the feed regulating valve 103.
[0020] The electric protective cover assembly 2 includes a protective flip cover 201, which is connected to the front side of the connecting plate via a hinge 202. The outer wall of the protective flip cover 201 is provided with a handle 203, and one inner wall of the protective flip cover 201 is provided with a linkage rod 204. The protective flip cover 201 in the electric protective cover assembly 2 can be flipped open and closed via the hinge 202, and can prevent raw materials from splashing during processing when closed.
[0021] The electric-driven applicator assembly 3 includes a rotary motor 301, which is mounted on the top of a support plate 101 via a bracket. A transmission box 302 is mounted to the output end of the rotary motor 301 via a connecting rod. A worm gear box 303 is mounted to the output end of the transmission box 302 via a connecting rod. Two worm gear boxes 303 are provided and symmetrically arranged. An applicator roller shaft 304 and an applicator roller shaft 306 are mounted to the output end of each worm gear box 303. The applicator roller shaft 304 and the applicator roller shaft 306 are positioned between the two support plates 101 and are located at the top of the conveyor belt 105, adjacent to each other. The applicator roller shaft 304 and the applicator roller shaft 306 are located at the bottom of the end of the conveyor pipe 104. A connecting plate 305 is connected to the outer side of one worm gear box 303 via a rotating mechanism. The rotary motor 301 in the electric-driven applicator assembly 3 provides power, which is transmitted through the transmission box 302. Power is transmitted to two symmetrical worm gear boxes 303, which drive the coating roller shaft 1 304 and the coating roller shaft 2 306 to rotate. When the coated paper moves with the conveyor belt 105 to the area below the two rollers, the collagen raw material output from the end of the conveyor pipe 104 falls onto the paper surface. The two adjacent rollers rotate to evenly coat the raw material onto the paper, thus achieving double collagen coating processing.
[0022] The other end of the connecting plate 305 is hinged to the connecting rod 204.
[0023] Two material collection funnels 401 are respectively set at the bottom of both sides of the conveyor belt 105. The two material collection funnels 401 are fixedly installed on the inner side of the two support plates 101. The inclined guide slide plate 402 is installed horizontally between the two support plates 101 through the bracket. One end of the inclined guide slide plate 402 passes through the outer side of one support plate 101. The collection box 403 is installed on the outer wall of the support plate 101 through the bracket. During the application process, excess collagen raw material drips from both sides of the conveyor belt 105 and falls into the material collection funnels 401 at the bottom of both sides of the conveyor belt 105 in the residual material recovery component 4. After being collected by the material collection funnels 401, the raw material falls into the inclined guide slide plate 402. With the help of the inclined angle of the inclined guide slide plate 402, it slides to the end that passes through the outer side of the support plate 101 and finally falls into the collection box 403 installed on the outer wall of the support plate 101 to complete the residual material recovery.
[0024] This double-collagen paper coating device is supported by a support assembly 1, and uses an electrically driven coating assembly 3 to evenly coat the collagen material onto the paper surface. An electrically operated protective cover assembly 2 ensures operational safety and coordinates equipment operation. Simultaneously, a waste material recovery assembly 4 recycles and reuses excess material generated during the coating process. All components work together to complete the double-collagen paper coating process. The two symmetrically arranged support plates 101 in the support assembly 1 provide stable support for the device, while the anti-slip silicone pad 102 at the bottom enhances stability. A conveyor belt 105 transports the paper to be coated to the processing area of the electrically driven coating assembly 3. A conveyor pipe 104 transports the collagen material to the coating area, and the material delivery rate can be controlled by a feed regulating valve 103. The rotary motor 301 in the electrically driven coating assembly 3 provides power, which is transmitted through a transmission box 302 to two symmetrical worm gear boxes 303. The worm gear boxes 303 drive the coating roller shaft one 304 and the coating roller shaft two 306. As the coated paper moves along the conveyor belt 105 to below the two rollers, the collagen material output from the end of the conveyor pipe 104 falls onto the paper surface. The two adjacent rollers rotate to evenly coat the material onto the paper, achieving double collagen coating. The protective cover 201 in the electric protective cover assembly 2 can be flipped open and closed via the hinge 202. When closed, it prevents material from splashing during processing. When the electric drive coating assembly 3 is running, the worm gear box 303 on one side drives the linkage plate 305 to rotate. The linkage plate 305 is hinged to the linkage support rod 204 on the inner wall of the protective cover 201, realizing the linkage opening and closing of the protective cover 201 and the electric drive coating assembly 3. The protective cover automatically closes when the equipment is running, and can be manually opened for maintenance via the handle 203 when the machine is stopped. During the coating process, excess collagen material drips from both sides of the conveyor belt 105 and falls into the collection funnels 401 at the bottom of both sides of the conveyor belt 105 in the residual material recovery assembly 4. The material is collected in the collection funnels 401. After collection, the material falls into the inclined guide slide plate 402. With the help of the inclined angle of the inclined guide slide plate 402, it slides to one end that penetrates the outside of the support plate 101, and finally falls into the collection box 403 installed on the outer wall of the support plate 101 to complete the recycling of residual material.In actual operation, the equipment preparation stage begins by checking the status of each component. This ensures the support plate 101 in bracket assembly 1 is placed stably and the anti-slip silicone pad 102 is in contact with the ground. The protective cover 201 is opened using the handle 203 of the electric protective cover assembly 2. It is confirmed that there are no foreign objects on the first coating roller 304 and the second coating roller 306 in the electric coating assembly 3, and that the collection box 403 of the residual material recovery assembly 4 is empty. The protective cover 201 is then closed. Next, the raw material and paper feeding stage begins. The double collagen raw material is fed into the feed regulating valve 103 of the transmission pipe 104 in bracket assembly 1. The feed regulating valve 103 is adjusted according to processing requirements to control the flow rate of the raw material into the transmission pipe 104. The paper to be coated is placed at the beginning of the conveyor belt 105 and the conveyor belt 105 is started, causing the paper to move towards the electric coating assembly 3. Finally, the coating process begins. The rotary motor 301 of the electric coating assembly 3 is started. The rotary motor 301 drives the coating roller shaft 1 304 and coating roller shaft 2 306 to rotate via the transmission box 302 and the worm gear box 303. At the same time, the worm gear box 303 drives the connecting plate 305 to rotate, and the connecting support rod 204 pulls the protective flip cover 201 to close around the hinge 202. The collagen raw material in the transmission pipe 104 is output from the end and falls onto the paper surface that moves below the roller shaft. The rotation of the two roller shafts evenly coats the raw material onto the paper to complete the coating process. During this process, excess material is collected simultaneously. Excess material drips from both sides of the conveyor belt 105 during the coating process and is collected by the collection funnel 401 of the excess material collection component 4 and falls into the inclined guide slide plate 402. It slides along the inclined guide slide plate 402 to the outside of the support plate 101 and enters the collection box 403 for recycling. Finally, the finished product output and equipment finishing stage begins. The coated paper is conveyed by the conveyor belt 105. Outputting from the other end of the device, the staff collects the finished paper. After processing, they first close the feed regulating valve 103 and the rotary motor 301. After the coating roller shaft 1 304 and coating roller shaft 2 306 stop rotating, they open the protective cover 201 to clean the roller shafts. Finally, they take out the recycled raw materials from the collection box 403 to complete the processing flow.
[0025] The preferred embodiments of this utility model disclosed above are merely illustrative of the present utility model. These preferred embodiments do not exhaustively describe all details, nor do they limit the utility model to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of this utility model, thereby enabling those skilled in the art to better understand and utilize it. This utility model is limited only by the claims and their full scope and equivalents.
Claims
1. A double-collagen paper coating device, comprising a support assembly (1), characterized in that: The top of the bracket assembly (1) is provided with an electric protective cover assembly (2), and the inside of the bracket assembly (1) is provided with an electric drive coating assembly (3) and a waste material recycling assembly (4). The electric drive coating assembly (3) is located on top of the waste material recycling assembly (4). The waste material recycling component (4) includes a collection funnel (401), there are two collection funnels (401) and they are arranged symmetrically. The two collection funnels (401) are located at the top of the inclined guide slide plate (402). The end of the inclined guide slide plate (402) is provided with a collection box (403), and the collection box (403) is located at the bottom of the inclined guide slide plate (402).
2. The double-collagen paper coating device according to claim 1, characterized in that: The bracket assembly (1) includes a support plate (101). There are two support plates (101) arranged symmetrically. The bottom of the support plate (101) is provided with an anti-slip silicone pad (102). The top of the two support plates (101) is fixed with two connecting plates. The top of one support plate (101) is provided with a transmission pipe (104) through a bracket. One end of the transmission pipe (104) is provided with a feed regulating valve port (103). The bottom side of the end of the transmission pipe (104) is provided with a transmission belt (105). The transmission belt (105) is arranged between the two support plates (101).
3. The double-collagen paper coating device according to claim 1, characterized in that: The electric protective cover assembly (2) includes a protective flip cover (201), which is connected to the front side of the connecting plate via a hinge (202). The outer wall of the protective flip cover (201) is provided with a handle (203), and the inner wall of one side of the protective flip cover (201) is provided with a connecting rod (204).
4. The double-collagen paper coating apparatus according to claim 1, characterized in that: The electric drive coating assembly (3) includes a rotary motor (301), which is mounted on the top of a support plate (101) on one side via a bracket. A transmission box (302) is mounted on the output end of the rotary motor (301) via a connecting rod. A worm gear box (303) is provided on the output end of the transmission box (302) via a connecting rod. There are two worm gear boxes (303) in total, which are arranged symmetrically. The output end of the worm gear box (303) is provided with a coating roller shaft one (304) and a coating roller shaft two (306). The first smearing roller shaft (304) and the second smearing roller shaft (306) are positioned between two support plates (101), and the first smearing roller shaft (304) and the second smearing roller shaft (306) are located at the top of the conveyor belt (105). The first smearing roller shaft (304) and the second smearing roller shaft (306) are arranged adjacent to each other. The first smearing roller shaft (304) and the second smearing roller shaft (306) are located at the bottom of the end of the conveyor pipe (104). A connecting rotating plate (305) is connected to the outside of the worm gear box (303) on one side through a rotating mechanism.
5. The double-collagen paper coating apparatus according to claim 4, characterized in that: The connecting plate (305) is hinged to the other end of the connecting rod (204).
6. The double-collagen paper coating apparatus according to claim 1, characterized in that: The two collection hoppers (401) are respectively set at the bottom of the two sides of the conveyor belt (105). The two collection hoppers (401) are fixedly installed on the inner side of the two support plates (101). The inclined guide slide plate (402) is installed horizontally between the two support plates (101) through the bracket. One end of the inclined guide slide plate (402) passes through the outer side of the support plate (101) on one side. The collection box (403) is installed on the outer wall of the support plate (101) through the bracket.