Material pipe feeding mechanism of product material pipe internal printing surface detection equipment
By designing the vertical plate assembly, the feeding translation cylinder, and the pusher plate in coordination, the problems of existing equipment being unable to achieve overall feeding of the material tube and misfeeding were solved, improving detection efficiency and ensuring the stability of the feeding process.
Patent Information
- Application Number
- CN202423001327.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-05
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2034-12-05
AI Technical Summary
Existing printed surface inspection equipment is inefficient, cannot achieve overall material feeding through the feed tube, and is prone to product accumulation at the feeding end, lacking an effective material blocking mechanism.
A material tube feeding mechanism was designed, comprising a vertical plate assembly, a feeding translation cylinder, a pusher plate, and a feeding trough. The mechanism enables simultaneous feeding of multiple material tubes through the cooperation of the vertical plate assembly and the feeding trough, and prevents accidental feeding through the feeding baffle assembly. The mechanism also utilizes the cooperation of the feeding lifting cylinder and the pusher plate to achieve stable pushing of the material tubes.
It enables overall feeding of the feed tube, improves testing efficiency, prevents incorrect feeding of the feed tube, and ensures the stability and accuracy of the feeding process.
Smart Images

Figure CN223534366U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of printed surface inspection, specifically relating to a material feeding mechanism for a product material tube in a material tube inspection device for printed surface inspection. Background Technology
[0002] Electronic components such as network transformers and power transformers have markings printed on their surfaces during the manufacturing process. The printed surfaces must be complete and undamaged, thus requiring inspection. Currently, this inspection is typically done one by one, with manual sorting of good and defective products. More automated equipment may have mechanisms for automatically sorting good and defective products. However, this method remains inefficient, and large-scale inspections become extremely time-consuming. Therefore, a comprehensive inspection of the printed surfaces of the entire material tube is necessary.
[0003] Traditional testing processes are performed one item at a time, and the corresponding feeding mechanism for the testing equipment also feeds products one at a time. Existing feeding mechanisms cannot meet the need to feed the entire material tube. Furthermore, traditional feeding mechanisms lack a material-stopping mechanism at the feeding end, which can easily lead to product accumulation if the testing equipment malfunctions or the feeding mechanism breaks down. Therefore, a feeding mechanism that can both meet the material tube feeding requirements and effectively stop material flow is needed to solve the existing problems. Utility Model Content
[0004] The technical problem to be solved by this utility model is to address the shortcomings of the prior art by providing a tube feeding mechanism for a product tube printing surface inspection device, which can meet the whole tube feeding requirements for the overall printing surface inspection of the tube, and at the same time, a material blocking mechanism is set to prevent the tube from being fed incorrectly.
[0005] The technical solution adopted by this utility model is: a material feeding mechanism for a product material tube printing surface detection device, including a mechanism mounting base plate and support plates disposed at both ends of the upper surface of the mechanism mounting base plate. The upper surfaces of the two support plates are respectively provided with two sets of vertical plate assemblies with openings facing each other through connecting plates. A feeding groove for the material feeding tube is opened on one side of the vertical plate assembly near the bottom. A feeding baffle assembly for opening or closing the feeding groove by movement is provided on the side of the vertical plate assembly near the feeding groove above the feeding groove. A feeding lifting cylinder is provided on the upper surface of the mechanism mounting base plate between the two support plates and near the support plates. A feeding translation cylinder is also provided on the upper surface of the mounting base plate between the two feeding lifting cylinders. A pusher plate is provided on the feeding translation cylinder through the pushing support plate.
[0006] In one embodiment, both sets of the upright plate assemblies include an mounting plate and two baffle plates, the two baffle plates are respectively disposed on the same side of the mounting plate, and a material blocking space is formed between the mounting plate and the two baffle plates. The feeding groove is opened on the baffle plate on the same side of the two sets of the upright plate assemblies.
[0007] In one embodiment, the feeding baffle assembly consists of two sets, each set being disposed on two baffle plates. Each set of the feeding baffle assembly includes a baffle cylinder with its piston rod end extending toward the feeding trough. The piston rod end of the baffle cylinder is provided with a connecting block. The end of the connecting block away from the baffle cylinder is provided with a feeding baffle block that rotates along the connecting block and opens or closes the feeding trough as the piston rod end of the baffle cylinder retracts and extends.
[0008] In one embodiment, the two baffles are positioned above the feeding trough and have mounting grooves that communicate with the feeding trough. One end of the feeding baffle extends into the mounting groove and is connected to the inner sidewall of the mounting groove via a first rotating shaft.
[0009] In one embodiment, the connecting block has a connecting groove at one end near the feeding stop block, and the feeding stop block is connected to the connecting groove via a second rotating shaft.
[0010] In one embodiment, the feeding stop block includes a stop section, a first connecting section, and a second connecting section. The stop section is disposed outside the feeding trough and opens or closes the feeding trough as the piston rod end of the stop cylinder extends and retracts. The first connecting section is connected to the stop section and the second connecting section respectively. The first connecting section is disposed in the connecting groove and connected to the connecting groove through a second rotating shaft. The second connecting section extends into the mounting groove and is connected to the inner sidewall of the mounting groove through a first rotating shaft.
[0011] In one embodiment, both sets of the upright plate assemblies are provided with feeding detection optical fibers on the baffle plate on the other side.
[0012] In one embodiment, the mounting base plate is further provided with two loading cylinder mounting plates, and the two loading lifting cylinders are respectively disposed on the sides of the two loading cylinder mounting plates.
[0013] The beneficial effects of this utility model are as follows:
[0014] 1. The vertical plate assembly, feeding translation cylinder, pusher plate and feeding trough work together to meet the requirement of feeding multiple material tubes at the same time, providing a good testing basis for subsequent overall material tube testing;
[0015] 2. The feeding translation cylinder, the pusher plate, and the feeding lifting cylinder work together. After the pusher plate pushes the material, the feeding lifting cylinder works to lift the upper material pipe, so that the feeding translation cylinder can drive the pusher plate back to the starting position, in preparation for the next push.
[0016] 3. The components of the feeding and blocking assembly work together to open or close the feeding chute with simple movements. It has a certain degree of stability and accuracy, preventing the feeding tube from feeding the wrong material. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the structure of this utility model;
[0018] Figure 2 This is a schematic diagram showing the layout of the components of this utility model;
[0019] Figure 3 This utility model Figure 2 Enlarged view of point A in the middle.
[0020] In the diagram: 201, base plate of the mechanism; 202, support plate; 203, connecting plate; 204, upright plate assembly; 205, feeding chute; 206, feeding baffle assembly; 207, feeding lifting cylinder; 208, feeding translation cylinder; 209, pushing support upright plate; 210, pushing plate; 211, feeding detection fiber optic cable; 212, feeding cylinder mounting plate; 20401, mounting upright plate; 20402, baffle plate; 20403, baffle space; 204021, mounting groove; 2061, baffle cylinder; 2062, connecting block; 2063, feeding baffle block; 2064, first rotating shaft; 2065, second rotating shaft; 20621, connecting groove; 20631, baffle section; 20632, first connecting section; 20633, second connecting section. Detailed Implementation
[0021] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.
[0022] like Figures 1-3 As shown, a material feeding mechanism for a product material tube printing surface inspection device includes a mechanism mounting base plate 201 and support plates 202 disposed at both ends of the upper surface of the mechanism mounting base plate 201. The upper surfaces of the two support plates 202 are respectively provided with two sets of opposing vertical plate assemblies 204 via connecting plates 203. One side of each vertical plate assembly 204, near the bottom, has a feeding groove 205 through which the material feeding tube passes. The side of the vertical plate assembly 204 near the feeding groove 205 is located... Above the feeding trough 205, there is a feeding baffle assembly 206 that opens or closes the feeding trough 205 by movement. The upper surface of the mounting base plate 201 of the mechanism is located between the two support plates 202 and close to the support plates 202, and a feeding lifting cylinder 207 is provided. The upper surface of the mounting base plate is also located between the two feeding lifting cylinders 207, and a feeding translation cylinder 208 is provided on the feeding translation cylinder 208 through a pushing support plate 209.
[0023] In this embodiment, both sets of the upright plate assemblies 204 include an mounting upright plate 20401 and two baffle plates 20402. The two baffle plates 20402 are respectively disposed on the same side of the mounting upright plate 20401, and a baffle space 20403 is formed between the mounting upright plate 20401 and the two baffle plates 20402. The feeding groove 205 is opened on the baffle plates 20402 located on the same side of the two sets of upright plate assemblies 204.
[0024] In this embodiment, the feeding baffle assembly 206 consists of two sets, which are respectively disposed on two baffle plates 20402. Each set of the feeding baffle assembly 206 includes a baffle cylinder 2061 whose piston rod end extends toward the feeding groove 205. The piston rod end of the baffle cylinder 2061 is provided with a connecting block 2062. The end of the connecting block 2062 away from the baffle cylinder 2061 is provided with a feeding baffle block 2063 that rotates along the connecting block 2062 and opens or closes the feeding groove 205 as the piston rod end of the baffle cylinder 2061 retracts and extends.
[0025] In this embodiment, the two baffle plates 20402 are located above the feeding trough 205 and have mounting grooves 204021 that communicate with the feeding trough 205. One end of the feeding baffle block 2063 extends into the mounting groove 204021 and is connected to the inner sidewall of the mounting groove 204021 through the first rotating shaft 2064.
[0026] In this embodiment, the connecting block 2062 has a connecting groove 20621 at one end near the feeding stop block 2063, and the feeding stop block 2063 is connected to the connecting groove 20621 through the second rotating shaft 2065.
[0027] In this embodiment, the feeding stop block 2063 includes a stop section 20631, a first connecting section 20632, and a second connecting section 20633. The stop section 20631 is disposed outside the feeding trough 205 and opens or closes the feeding trough 205 as the piston rod end of the stop cylinder 2061 extends and retracts. The first connecting section 20632 is connected to the stop section 20631 and the second connecting section 20633 respectively. The first connecting section 20632 is disposed in the connecting groove 20621 and connected to the connecting groove 20621 through a second rotating shaft 2065. The second connecting section 20633 extends into the mounting groove 204021 and is connected to the inner sidewall of the mounting groove 204021 through a first rotating shaft 2064.
[0028] In this embodiment, both sets of upright plate assemblies 204 are provided with feeding detection optical fibers 211 on the baffle plate 20402 on the other side.
[0029] In this embodiment, the mounting base plate is also provided with two loading cylinder mounting plates 212, and the two loading lifting cylinders 207 are respectively disposed on the sides of the two loading cylinder mounting plates 212.
[0030] When the material feeding mechanism is working, the material tube to be tested is placed in the material-blocking space 20403 formed between the mounting plate 20401 and the two baffle plates 20402, waiting for feeding. The number of material tubes in a row can be adjusted by adjusting the width of the mounting plate 20401; if the width of the mounting plate 20401 is adjusted, the size of the connecting plate 203 used to mount the mounting plate 20401 needs to be adjusted accordingly. When the mechanism is in the non-feeding state, the piston rod end of the baffle cylinder 2061 is in the extended state, and the feeding baffle block 2063 blocks the material tube in front of the feeding groove 205. After feeding begins, the piston rod end of the baffle cylinder 2061 retracts, pulling the connecting block 2062 upward. Since the feeding baffle block 2063 is connected to the inner wall of the mounting groove 204021 and the connecting groove 20621 respectively via the first rotating shaft 2064 and the second rotating shaft 2065, during the upward movement, the second connecting section 20633 of the feeding baffle block 2063 cannot move and will rotate relative to the first rotating shaft 2064. The first connecting section 20632 of the feeding baffle block 2063 will also rotate relative to the second rotating shaft 2065, thereby causing the baffle section 20631 to rotate away from the feeding trough 205. The feeding translation cylinder 208 operates, driving the pusher plate 210 to move via the pusher support plate 209, pushing the bottommost material tube towards the feeding trough 205, and finally pushing a row of material tubes out of the feeding trough 205 to achieve feeding. During the feeding process of the pusher plate 210, the material tube of the upper layer will fall onto the pusher plate 210. After the feeding is completed, the piston rod end of the loading lifting cylinder 207 extends and lifts the material tube located on the pusher plate 210; the loading translation cylinder 208 works, driving the pusher plate 210 back to the initial position; the piston rod end of the loading lifting cylinder 207 retracts, and the material tube naturally falls to the bottom layer of the vertical plate assembly 204, and the entire mechanism returns to the initial position.
[0031] The fiber optic cable 211 used in this organization is used to detect the presence of a material pipe at that location, thereby monitoring the feeding status and alerting the operator to the feeding status.
[0032] The embodiments described above merely illustrate specific implementations of this utility model, and while the descriptions are detailed, they should not be construed as limiting the scope of this utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these modifications and improvements all fall within the protection scope of this utility model.
Claims
1. A material feeding mechanism for a product material tube printing surface inspection device, characterized in that: The system includes a mounting base plate and support plates at both ends of the upper surface of the mounting base plate. The upper surfaces of the two support plates are respectively provided with two sets of upright plate assemblies with openings facing each other via connecting plates. One side of the upright plate assembly has a feeding trough near the bottom, through which a feeding pipe passes. The side of the upright plate assembly near the feeding trough is provided with a feeding baffle assembly that opens or closes the feeding trough by movement. The upper surface of the mounting base plate is provided with a feeding lifting cylinder located between the two support plates and near the support plates. The upper surface of the mounting base plate is also provided with a feeding translation cylinder located between the two feeding lifting cylinders. The feeding translation cylinder is provided with a pusher plate via a pusher support plate.
2. The material feeding mechanism of the product material tube printing surface detection equipment according to claim 1, characterized in that: Both sets of the upright plate assemblies include an installation upright plate and two baffle plates. The two baffle plates are respectively disposed on the same side of the installation upright plate, and a material blocking space is formed between the installation upright plate and the two baffle plates. The feeding trough is opened on the baffle plate on the same side of the two sets of the upright plate assemblies.
3. The material feeding mechanism of the product material tube printing surface detection equipment according to claim 2, characterized in that: The feeding baffle assembly consists of two sets, each set being disposed on two baffle plates. Each set of the feeding baffle assembly includes a baffle cylinder with the piston rod end extending toward the feeding trough. The piston rod end of the baffle cylinder is provided with a connecting block. The end of the connecting block away from the baffle cylinder is provided with a feeding baffle block that rotates along the connecting block and opens or closes the feeding trough as the piston rod end of the baffle cylinder retracts and extends.
4. The material feeding mechanism of the product material tube printing surface detection equipment according to claim 3, characterized in that: The two baffles are located above the feeding trough and have mounting slots that communicate with the feeding trough. One end of the feeding baffle extends into the mounting slot and is connected to the inner sidewall of the mounting slot through a first rotating shaft.
5. The material feeding mechanism of the product material tube printing surface detection equipment according to claim 4, characterized in that: The connecting block has a connecting groove at one end near the feeding stop block, and the feeding stop block is connected to the connecting groove via a second rotating shaft.
6. The material feeding mechanism of the product material tube printing surface detection equipment according to claim 5, characterized in that: The feeding baffle includes a baffle section, a first connecting section, and a second connecting section. The baffle section is located outside the feeding trough and opens or closes the feeding trough as the piston rod of the baffle cylinder extends and retracts. The first connecting section is connected to the baffle section and the second connecting section respectively. The first connecting section is located in the connecting groove and is connected to the connecting groove through a second rotating shaft. The second connecting section extends into the mounting groove and is connected to the inner sidewall of the mounting groove through a first rotating shaft.
7. The material feeding mechanism of the product material tube printing surface detection equipment according to any one of claims 1-6, characterized in that: Both sets of the upright plate assemblies are equipped with feeding detection optical fibers on the baffle plate on the other side.
8. The material feeding mechanism of the product material tube printing surface detection equipment according to any one of claims 1-6, characterized in that: The mounting base plate is also provided with two loading cylinder mounting plates, and the two loading lifting cylinders are respectively located on the sides of the two loading cylinder mounting plates.