Aluminum cosmetic pipe anode oxide film thickness automatic classifying and screening device
By designing an automatic classification and screening device for anodized film thickness of aluminum cosmetic tubes, the problem of inefficient manual detection and classification in the prior art is solved, and automated film thickness detection and classification conveying is realized, which improves production efficiency and accuracy.
Patent Information
- Application Number
- CN202422209072.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-10
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-09-10
AI Technical Summary
The prior art lacks automation devices for the classification and screening of the thickness of anodized film of aluminum cosmetic tubes, resulting in the need of manual detection and classification, which is inefficient.
An automatic classification and screening device for the thickness of anodic film of aluminum cosmetic tubes is designed, including a conveying table, feeding assembly, guide plate and controller, and automatic detection and classified transportation are realized through the detection mechanism and feeding mechanism.
The automated classification and screening of aluminum cosmetic pipes has been realized, production efficiency has been improved, manual intervention has been reduced, and the efficiency of the feeding process and the accuracy of detection has been improved.
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Figure CN223113591U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of cosmetic tubes, in particular to an automatic classification and screening device for the thickness of an anodic oxidation film of an aluminum cosmetic tube. Background Technique
[0002] Cosmetics refer to chemical industrial products or fine chemical products that are applied, sprayed or otherwise dispersed on any part of the human body surface, such as skin, hair, fingernails, lips and teeth, for the purpose of cleaning, maintaining, beautifying, modifying and changing appearance, or correcting body odor and maintaining a good state. Cosmetics are generally packaged in plastic tubes, and some are packaged in aluminum tubes. When an aluminum tube is used as a cosmetic tube, it needs to be plated with an anodic oxidation film. Anodic oxidation is the electrochemical oxidation of metals or alloys. Aluminum and its alloys form an oxide film on the aluminum products under the action of an applied current in a corresponding electrolyte and specific process conditions.
[0003] Cosmetic tubes with anodic oxidation films of different thicknesses have different uses during use. Therefore, a classification device is needed for screening. However, there is no device in the prior art for screening cosmetic tubes with anodic oxidation films of different thicknesses. Manual inspection and classification are used. Therefore, there is an urgent need for an automatic classification and screening device for the thickness of an anodic oxidation film of an aluminum cosmetic tube to perform automatic classification and screening, so as to replace manual classification and improve production efficiency. Content of the Utility Model
[0004] The utility model provides an automatic classification and screening device for the thickness of an anodic oxidation film of an aluminum cosmetic tube, which has the advantage of automatic screening and classification, so as to solve the problem that the prior art cannot perform automatic classification by detecting the thickness of the anodic oxidation film.
[0005] For the purpose of realizing automatic screening and classification, the present utility model provides the following technical solutions: An automatic classification and screening device for the thickness of anodic oxidation film of aluminum cosmetic pipes, comprising a conveying table, a feeding assembly, a guiding plate and a controller. The conveying table includes a table body and a conveyor belt. The upper end surface of the table body is provided with a recessed groove, and the conveyor belt is arranged in the groove. Installation platforms are symmetrically installed at the left and right ends of the table body, and driving assemblies are arranged on the upper end surfaces of the installation platforms. The guiding plate is installed at the output end of the driving assembly and extends to the upper end of the conveyor belt. The controller is installed on the upper end surface of the installation platform. A feeding table is installed at the rear end surface of the table body, and the feeding assembly is installed on the upper end surface of the feeding table. The feeding assembly includes a storage box, a detection mechanism and a feeding mechanism. The detection mechanism and the feeding mechanism are both installed in the storage box. The detection mechanism is used to detect the thickness of the oxidation film, and the feeding mechanism is used to send out the pipes from the storage box after the detection is completed. The detection mechanism, the feeding mechanism and the driving assembly are all electrically connected to the controller.
[0006] Preferably, the storage box is installed on the upper end surface of the feeding table. A feeding bin and a storage bin are respectively arranged in the storage box. The front wall of the storage bin is provided with a discharge port, and the top wall of the storage bin is provided with a feeding port. The discharge port is communicated with the feeding bin. The feeding mechanism includes an L-shaped feeding plate and a first electric telescopic rod. The first electric telescopic rod is installed on the bottom wall of the feeding bin, and the output end of the first electric telescopic rod is arranged upward. The L-shaped feeding plate is installed at the output end of the first electric telescopic rod and closes the discharge port. An installation plate is installed in the feeding bin, and the installation plate is located above the feeding mechanism. The detection mechanism is arranged on the lower end surface of the installation plate. An opening communicating with the feeding bin is provided in front of the storage box, and the opening is located below the discharge port.
[0007] Preferably, the detection mechanism includes a second electric telescopic rod and an anodic oxidation film thickness detection probe. The anodic oxidation film thickness detection probe is electrically connected to the controller. The second electric telescopic rod is installed on the lower end surface of the installation plate, and the output end of the second electric telescopic rod is arranged downward. The anodic oxidation film thickness detection probe is installed at the output end of the second electric telescopic rod.
[0008] Preferably, the driving assembly includes a cylinder and a sliding rod. A box body is arranged on the upper end surface of the installation platform. An installation bin is arranged in the box body. A sliding groove communicated with the installation bin is arranged on the outer wall of the box body. The cylinder is installed on the top wall of the installation bin, and the output end of the cylinder is arranged downward. The sliding rod is installed at the output end of the cylinder and extends out of the installation bin through the sliding groove. One end of the sliding rod extending out of the installation bin is fixedly connected to the guiding plate. The cylinder is electrically connected to the controller.
[0009] Preferably, the bottom surface of the storage bin is inclined and slopes towards the discharge port.
[0010] Preferably, one end of the guide plate extending into the upper end of the conveyor belt is inclined.
[0011] Compared with the prior art, the present utility model provides an automatic classification and screening device for the thickness of an anodic oxidation film of aluminum cosmetic tubes, which has the following beneficial effects:
[0012] 1. This automatic classification and screening device for the thickness of an anodic oxidation film of aluminum cosmetic tubes can automatically classify and convey according to different oxidation film thicknesses after automatically detecting the oxidation film thickness by setting a detection mechanism, a feeding mechanism, a controller, a driving component and a guide plate.
[0013] 2. By setting a first electric telescopic rod and an L-shaped feeding plate, and by setting an opening at the lower end of the discharge port, the L-shaped feeding plate can be driven to move up and down by the first electric telescopic rod to discharge from the discharge port, and the tubes can be sent out through the opening by the L-shaped feeding plate, thus realizing the effect of continuous feeding and improving the efficiency of the feeding process.
[0014] 3. By setting a second electric telescopic rod and an oxidation film thickness detection probe, the thickness of the oxidation film of the tubes can be detected, which is convenient for classification, and the distance between the oxidation film thickness detection probe and the L-shaped feeding plate can be adjusted according to needs by the second electric telescopic rod, which is convenient for detection. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 is a schematic external structure diagram of the present utility model;
[0016] Figure 2 is a schematic structure diagram of the feeding component of the present utility model;
[0017] Figure 3 is a schematic internal structure diagram of the storage box of the present utility model;
[0018] Figure 4 is a schematic structure diagram of the conveying table of the present utility model;
[0019] Figure 5 is a schematic internal structure diagram of the conveying table and the box body of the present utility model;
[0020] Figure 6 is a schematic structure diagram of the guide plate provided by the present utility model.
[0021] In the figure: 1. Conveyor table; 11. Table body; 111. Groove; 12. Conveyor belt; 2. Feeding assembly; 21. Storage box; 211. Feeding bin; 212. Storage bin; 213. Discharge port; 214. Inlet; 215. Opening; 216. Mounting plate; 22. Detection mechanism; 221. Second electric telescopic rod; 222. Anodic oxide film thickness detection probe; 23. Feeding mechanism; 231. L-shaped feeding plate; 232. First electric telescopic rod; 3. Guide plate; 4. Controller; 5. Mounting table; 6. Driving assembly; 61. Cylinder; 62. Slide bar; 7. Feeding table; 8. Box body; 81. Installation bin; 82. Slide groove. Detailed implementation manners
[0022] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention. Embodiment 1
[0023] Please refer to Figures 1-6 , the present invention discloses an automatic classification and screening device for the anodic oxide film thickness of aluminum cosmetic tubes, including a conveyor table 1, a feeding assembly 2, a guide plate 3 and a controller 4. The conveyor table 1 includes a table body 11 and a conveyor belt 12. An inwardly concave groove 111 is provided on the upper end surface of the table body 11. The conveyor belt 12 is arranged in the groove 111. Mounting tables 5 are symmetrically installed at the left and right ends of the table body 11. Driving assemblies 6 are provided on the upper end surfaces of the mounting tables 5. The guide plate 3 is installed at the output end of the driving assembly 6 and extends into the upper end of the conveyor belt 12. The controller 4 is installed on the upper end surface of the mounting table 5. A feeding table 7 is installed on the rear end surface of the table body 11. The feeding assembly 2 is installed on the upper end surface of the feeding table 7. The feeding assembly 2 includes a storage box 21, a detection mechanism 22 and a feeding mechanism 23. The detection mechanism 22 and the feeding mechanism 23 are both installed in the storage box 21. The detection mechanism 22 is used to detect the anodic oxide film thickness. The feeding mechanism 23 is used to send the tubes out of the storage box 21 after the detection is completed. The detection mechanism 22, the feeding mechanism 23 and the driving assembly 6 are all electrically connected to the controller 4.
[0024] Through the above design, by setting the detection mechanism 22, the feeding mechanism 23, the controller 4, the driving assembly 6 and the guide plate 3, it is possible to automatically classify and convey according to different anodic oxide film thicknesses after automatically detecting the anodic oxide film thickness.
[0025] Please refer to Figures 1-3, the storage box 21 is installed on the upper end surface of the feeding table 7. A feeding bin 211 and a storage bin 212 are respectively arranged in the storage box 21. An outlet 213 is arranged on the front wall of the storage bin 212, and a feeding port 214 is arranged on the top wall of the storage bin 212. The outlet 213 is communicated with the feeding bin 211. The feeding mechanism 23 includes an L-shaped feeding plate 231 and a first electric telescopic rod 232. The first electric telescopic rod 232 is installed on the bottom wall of the feeding bin 211, and the output end of the first electric telescopic rod 232 is arranged upward. The L-shaped feeding plate 231 is installed on the output end of the first electric telescopic rod 232 and closes the outlet 213. A mounting plate 216 is installed in the feeding bin 211, and the mounting plate 216 is located above the feeding mechanism 23. The detection mechanism 22 is arranged on the lower end surface of the mounting plate 216. An opening 215 communicating with the feeding bin 211 is arranged on the front of the storage box 21, and the opening 215 is located below the outlet 213. By arranging the first electric telescopic rod 232 and the L-shaped feeding plate 231, and by arranging the opening 215 below the outlet 213, the first electric telescopic rod 232 can be driven to move the L-shaped feeding plate 231 up and down, so that the outlet 213 discharges materials, and the L-shaped feeding plate 231 sends the pipe materials out through the opening 215, thereby realizing the effect of continuous feeding and improving the efficiency of the feeding process. The detection mechanism 22 includes a second electric telescopic rod 221 and an oxide film thickness detection probe 222. The oxide film thickness detection probe 222 is electrically connected to the controller 4. The second electric telescopic rod 221 is installed on the lower end surface of the mounting plate 216, and the output end of the second electric telescopic rod 221 is arranged downward. The oxide film thickness detection probe 222 is installed on the output end of the second electric telescopic rod 221. By arranging the second electric telescopic rod 221 and the oxide film thickness detection probe 222, the thickness of the oxide film of the pipe material can be detected, so as to facilitate classification, and the second electric telescopic rod 221 can adjust the distance between the oxide film thickness detection probe 222 and the L-shaped feeding plate 231 according to requirements, which is convenient for detection. Embodiment 2
[0026] Based on the above Embodiment 1, please refer to Figure 1 , Figure 5 , Figure 6, the driving assembly 6 includes a cylinder 61 and a sliding rod 62. The upper end surface of the mounting table 5 is provided with a box body 8. An installation chamber 81 is provided inside the box body 8. A sliding groove 82 communicating with the installation chamber 81 is provided on the outer wall of the box body 8. The cylinder 61 is installed on the top wall of the installation chamber 81. The output end of the cylinder 61 is arranged downward. The sliding rod 62 is installed on the output end of the cylinder 61 and extends out of the installation chamber 81 through the sliding groove 82. One end of the sliding rod 62 extending out of the installation chamber 81 is fixedly connected to the guide plate 3. The cylinder 61 is electrically connected to the controller 4. By arranging the cylinder 61 and the sliding rod 62, the guide plate 3 can be driven to move up and down, so as to adjust the movement of the guide plate 3 according to the classification requirements, so that the guide plate 3 can export the pipes on the conveyor belt 12, thereby realizing classified transportation. The bottom surface of the storage bin 212 is inclined and inclined towards the discharge port 213. By arranging the bottom surface of the storage bin 212 to be inclined, it is convenient to introduce the pipes into the discharge port 213 and facilitate the discharge of the discharge port 213. One end of the guide plate 3 extending into the upper end of the conveyor belt 12 is inclined. By arranging one end of the guide plate 3 extending onto the conveyor belt 12 to be inclined, it is convenient to guide the pipes towards the mounting table 5 and facilitate the transportation of the pipes.
[0027] The working principle and usage process of the present utility model:
[0028] During use, the pipe is placed into the storage bin 212 through the feeding port 214. Subsequently, the controller 4 is activated and the second electric telescopic rod 221 is activated through the controller 4 to adjust the position of the oxide film thickness detection probe 222. Then, the controller 4 activates the first electric telescopic rod 232 to start conveying the pipe. The first electric telescopic rod 232 contracts downward to drive the L-shaped feeding plate 231 to move downward. At this time, there is no obstacle blocking the discharge port 213, and the pipes pass through one by one and fall onto the L-shaped feeding plate 231. At the same time, the controller 4 controls the first electric telescopic rod 232 to extend, causing the L-shaped feeding plate 231 to move upward again to block the discharge port 213 and contact the oxide film thickness detection probe 222, enabling the oxide film thickness detection probe 222 to detect the thickness of the oxide film. At the same time, when the oxide film thickness detection probe 222 transmits an electrical signal back to the controller 4, the controller 4 activates one of the symmetrically arranged cylinders 61 at the set classification position. The cylinder 61 contracts to drive the slide bar 62 to move downward, and the slide bar 62 drives the guide plate 3 to move downward and contact the upper end surface of the table body 11. At the same time, the controller 4 activates the first electric telescopic rod 232 to cause the L-shaped feeding plate 231 to move downward again, enabling the pipes on the L-shaped feeding plate 231 to be introduced onto the conveyor belt 12 through the opening 215 and conveyed. At this time, the first electric telescopic rod 232 repeats the movement, thus repeating the actions of moving upward and downward for continuous feeding and detection. When the conveyed pipe contacts the guide plate 3, it is conveyed by the conveyor belt 12 and guided by the guide plate 3 to the mounting table 5 on one side of the installed guide plate 3, thereby completing the classification. At the same time, when the next pipe is detected, the controller 4 controls the other cylinder 61 to extend and reset the previously extended cylinder 61, thereby performing connection classification. When the pipe classification is completed, the controller 4 is turned off to complete the operation.
Claims
1. An automatic classification and screening device for the thickness of anodic oxidation film of aluminum cosmetic tubes, comprising a conveying table (1), a feeding assembly (2), a guide plate (3) and a controller (4), characterized in that: The conveying table (1) includes a table body (11) and a conveyor belt (12). An inwardly recessed groove (111) is provided on the upper end surface of the table body (11). The conveyor belt (12) is arranged in the groove (111). Mounting tables (5) are symmetrically installed at the left and right ends of the table body (11). Driving components (6) are provided on the upper end surfaces of the mounting tables (5). The guide plate (3) is installed at the output end of the driving component (6) and extends to the upper end of the conveyor belt (12). The controller (4) is installed on the upper end surface of the mounting table (5). A feeding table (7) is installed on the rear end surface of the table body (11). The feeding component (2) is installed on the upper end surface of the feeding table (7). The feeding component (2) includes a storage box (21), a detection mechanism (22), and a feeding mechanism (23). The detection mechanism (22) and the feeding mechanism (23) are both installed in the storage box (21). The detection mechanism (22) is used to detect the thickness of the oxide film. The feeding mechanism (23) is used to send the pipe out of the storage box (21) after the detection is completed. The detection mechanism (22), the feeding mechanism (23), and the driving component (6) are all electrically connected to the controller (4).
2. The automatic classification and screening device for the thickness of anodic oxidation film of an aluminum cosmetic pipe according to claim 1, wherein: The storage box (21) is installed on the upper end surface of the feeding table (7). A feeding bin (211) and a storage bin (212) are respectively provided in the storage box (21). An outlet (213) is provided on the front wall of the storage bin (212). An inlet (214) is provided on the top wall of the storage bin (212). The outlet (213) communicates with the feeding bin (211). The feeding mechanism (23) includes an L-shaped feeding plate (231) and a first electric telescopic rod (232). The first electric telescopic rod (232) is installed on the bottom wall of the feeding bin (211). The output end of the first electric telescopic rod (232) is arranged upward. The L-shaped feeding plate (231) is installed at the output end of the first electric telescopic rod (232) and closes the outlet (213). A mounting plate (216) is installed in the feeding bin (211). The mounting plate (216) is located above the feeding mechanism (23). The detection mechanism (22) is arranged on the lower end surface of the mounting plate (216). An opening (215) communicating with the feeding bin (211) is provided on the front of the storage box (21). The opening (215) is located below the outlet (213).
3. An automatic classification and screening device for the thickness of an anodic oxidation film of an aluminum cosmetic tube according to claim 2, characterized in that: The detection mechanism (22) includes a second electric telescopic rod (221) and an oxide film thickness detection probe (222). The oxide film thickness detection probe (222) is electrically connected to the controller (4). The second electric telescopic rod (221) is installed on the lower end surface of the mounting plate (216). The output end of the second electric telescopic rod (221) is arranged downward. The oxide film thickness detection probe (222) is installed at the output end of the second electric telescopic rod (221).
4. An automatic classification and screening device for the thickness of an anodic oxidation film of an aluminum cosmetic pipe according to claim 1, characterized in that: The driving component (6) includes a cylinder (61) and a sliding rod (62). The upper end surface of the mounting table (5) is provided with a box body (8). An installation chamber (81) is arranged inside the box body (8). A sliding groove (82) communicating with the installation chamber (81) is arranged on the outer wall of the box body (8). The cylinder (61) is installed on the top wall of the installation chamber (81). The output end of the cylinder (61) is arranged downward. The sliding rod (62) is installed on the output end of the cylinder (61) and extends out of the installation chamber (81) through the sliding groove (82). One end of the sliding rod (62) extending out of the installation chamber (81) is fixedly connected to the guide plate (3). The cylinder (61) is electrically connected to the controller (4).
5. An automatic classification and screening device for the thickness of an anodic oxidation film of an aluminum cosmetic tube according to claim 2, characterized in that: The bottom surface of the storage bin (212) is inclined and inclined towards the discharge port (213).
6. The automatic classification and screening device for the thickness of anodic oxidation film of an aluminum cosmetic pipe according to claim 1, characterized in that: One end of the guide plate (3) extending into the upper end of the conveyor belt (12) is inclined.