Butt-joint discharging conveying assembly and double-gluing equipment
By designing a docking material conveying component and a double-coating device, the problem of low transmission efficiency in complex production environments has been solved, achieving high efficiency, automation, and stable operation of the equipment. It has a wide range of applications, is small in size, and is suitable for material conveying in double-coating equipment.
Patent Information
- Application Number
- CN202423099234.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-16
- Publication Date
- 2026-01-27
- Estimated Expiration
- 2034-12-16
AI Technical Summary
Existing double coating equipment is inefficient in connecting transmission equipment to processing equipment when facing complex and ever-changing production environments. The equipment is bulky, lacks flexibility, and has a complex structure, which increases maintenance costs and affects the operating efficiency and stability of the production line.
Design a docking and unloading conveying component, including a conveying component and an unloading component. The conveying component consists of at least two folded conveying parts and a clamp. Channels with opposite conveying directions are arranged alternately. The clamp moves along the height direction. The unloading component is connected to the bottom of the conveying component to realize automatic unloading and collection of materials. It is combined with a control system for real-time regulation.
It improves the flexibility of the equipment's application scenarios, reduces the equipment's size, enhances the degree of automation and controllability, and improves the operating efficiency and stability of the production line.
Smart Images

Figure CN223832743U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of double-coating equipment, specifically to a docking material conveying component and a double-coating device. Background Technology
[0002] In today's industrial production, double-coating equipment plays a crucial role, serving as the link between various stages of the production line and ensuring smooth material flow and production continuity. However, most existing double-coating equipment adopts a unidirectional transmission design, which proves inadequate in handling complex and ever-changing production environments. Unidirectional double-coating equipment is bulky, wasting limited production space and lacking flexibility when facing complex production processes requiring multiple processing steps or rework, making it difficult to achieve efficient and seamless production transitions. Furthermore, to adapt to different production needs, existing double-coating equipment often requires additional unloading mechanisms, which not only complicates the equipment structure and increases maintenance costs but also affects the overall operating efficiency and stability of the production line. Summary of the Invention
[0003] Therefore, the technical problem to be solved by this utility model is to overcome the problem of low efficiency of existing transportation equipment docking and processing equipment, and to provide a docking and unloading transmission component and a double-coating device.
[0004] To solve the above-mentioned technical problems, this utility model provides a docking and unloading conveying assembly, comprising: a conveying assembly, the conveying assembly including at least two folding conveying components and at least one clamp, the at least two folding conveying components being spaced apart along the height direction of the conveying assembly and communicating with each other, wherein the folding conveying component located at the top docks with a feeding device, each folding conveyor including a first conveying channel and a second conveying channel with opposite conveying directions, the first conveying channel and the second conveying channel being spaced apart along the height direction of the conveying assembly, wherein the material output end of the first conveying channel is connected to the material input end of the second conveying channel, and at least one clamp passes through the first conveying channel and the second conveying channel of at least two folding conveying components sequentially from top to bottom; and an unloading assembly, the unloading assembly being disposed at the bottom of the conveying assembly and docking with the folding conveying component located at the bottom, the unloading assembly including an unloading box and an unloading belt, the unloading belt extending along a first direction, the unloading box communicating with the output end of the folding conveying assembly and the input end of the unloading belt.
[0005] In one embodiment of the present invention, the folding transmission component includes a support frame, a transmission rack, and at least one rack driver. The transmission rack and at least one rack driver are disposed in the support frame, and the working end of the rack driver is connected to the transmission rack to drive the transmission rack to move along the support frame.
[0006] In one embodiment of the present invention, the support frame is a "U" shaped structure, and at least one rack and pinion driver is disposed at the turning point of the support frame.
[0007] In one embodiment of the present invention, the clamp includes a frame, a gear shaft, and a chuck. The gear shaft is connected to the frame and can mesh with the transmission rack. The chuck is disposed at the end of the gear shaft and can rotate synchronously with the gear shaft.
[0008] In one embodiment of the present invention, the transmission component includes a plurality of clamps, and the frames of two adjacent clamps are connected to each other to move synchronously.
[0009] In one embodiment of the present invention, the feeding assembly further includes a feeding frame and a belt drive assembly. The feeding frame extends along a first direction, and the feeding belt and the belt drive assembly are respectively disposed on the feeding frame, and the feeding belt is sleeved on the belt drive assembly.
[0010] In one embodiment of the present invention, the belt drive assembly includes a belt driver, a transmission chain, a drive shaft, and a driven shaft. The drive shaft and the driven shaft are respectively connected to both ends of the unloading frame. The unloading belt is sleeved and connected to the drive shaft and the driven shaft. The belt driver is connected to the unloading frame, and its working end is connected to the drive shaft.
[0011] In one embodiment of the present invention, the feeding box includes a body, an inlet and an outlet. The inlet is located at the top of the body, the outlet is located at the bottom of the body, and the opening area of the inlet is larger than that of the outlet. The side wall of the body is inclined from the inlet toward the outlet.
[0012] In one embodiment of the present invention, it further includes a control system, wherein the transmission component and the feeding component are respectively signal-connected to the control system.
[0013] This utility model also provides a double-coating device, which includes the above-mentioned docking and unloading conveying component and a secondary coating device. At least part of the docking and unloading conveying component is disposed in the secondary coating device. The secondary coating device includes two coating parts, which are disposed on the extension path of the conveying component.
[0014] The above-mentioned technical solution of this utility model has the following advantages compared with the prior art:
[0015] The docking and feeding conveyor assembly and dual-coating device described in this utility model use a conveyor assembly to move the material to be transferred, enabling it to dock sequentially with different processing equipment during movement, thereby achieving different processing steps. Simultaneously, its structural design makes full use of available space, minimizing its size and thus increasing its flexibility in applicable scenarios, broadening its applicability. Furthermore, the feeding assembly, through its close cooperation with the conveyor assembly, can automatically feed and collect the material after a series of processing steps, significantly improving the automation level of this mechanism. Compared to conventional conveying and feeding equipment currently available, this application possesses significant advantages such as strong controllability, wide applicability, high automation, small size, and stable transmission, and has broad application prospects in the industry. Attached Figure Description
[0016] To make the content of this utility model easier to understand, the present utility model will be further described in detail below with reference to specific embodiments and accompanying drawings.
[0017] Figure 1 This is a three-dimensional structural diagram of the docking material conveying component and the secondary adhesive coating equipment in a preferred embodiment of this utility model;
[0018] Figure 2 yes Figure 1 A three-dimensional structural diagram of the docking and unloading transmission component is shown.
[0019] Figure 3 yes Figure 1 Enlarged structural diagram at point A in the middle;
[0020] Figure 4 yes Figure 2 Enlarged structural diagram at point B.
[0021] Explanation of reference numerals in the accompanying drawings: 100, transmission assembly; 110, folding transmission component; 111, support frame; 112, transmission rack; 113, rack driver; 114, first transmission channel; 115, second transmission channel; 120, clamp; 121, frame; 122, gear shaft; 123, chuck; 200, unloading assembly; 210, unloading box; 220, unloading belt; 230, belt drive assembly; 231, belt driver; 232, transmission chain; 233, drive shaft; 234, driven shaft; 240, unloading rack; 300, secondary gluing equipment; X, first direction; Y, second direction; Z, third direction. Detailed Implementation
[0022] The present invention will be further described below with reference to the accompanying drawings and specific embodiments, so that those skilled in the art can better understand and implement the present invention. However, the embodiments are not intended to limit the present invention. Example 1
[0023] See Figure 1 As shown, this embodiment provides a docking and unloading conveying assembly 100, which includes: a conveying assembly 100, the conveying assembly 100 including at least two folding conveying members 110 and at least one clamp 120, the at least two folding conveying members 110 being spaced apart along the height direction of the conveying assembly 100 and communicating with each other, wherein the folding conveying member 110 located at the top docks with a loading device, and each folding conveying member includes a first conveying channel 114 and a second conveying channel 115 with opposite conveying directions, the first conveying channel 114 and the second conveying channel 115 being spaced apart along the height direction of the conveying assembly 100, wherein... The material output end of the first transmission channel 114 is connected to the material input end of the second transmission channel 115. At least one of the clamps 120 passes through the first transmission channel 114 and the second transmission channel 115 of at least two of the folding transmission components 110 from top to bottom. The unloading assembly 200 is disposed at the bottom of the transmission assembly 100 and docks with the folding transmission component 110 located at the bottom. It includes an unloading box 210 and an unloading belt 220. The unloading belt 220 extends along the first direction X. The unloading box 210 is connected to the output end of the folding transmission assembly 100 and the input end of the unloading belt 220.
[0024] The docking and unloading conveying component 100 described in this embodiment drives the material to be transferred, enabling it to dock sequentially with different processing equipment during the movement, thereby achieving different processing processes. Simultaneously, its structural design makes full use of space, minimizing its size and thus increasing its flexibility in applicable scenarios, giving it a wider range of applications. Furthermore, the unloading component 200, through its close cooperation with the conveying component 100, can automatically unload and collect the material after a series of processing steps, significantly improving the automation level of this mechanism. Compared to conventional conveying and unloading equipment at present, this application has significant advantages such as strong controllability, wide applicability, high automation, small size, and stable transmission, and has broad application prospects in the industry.
[0025] See Figure 1 and Figure 2As shown, the docking and feeding transmission component 100 in this embodiment is used for docking with the double coating equipment. It should be noted that the double coating equipment can perform two coating processes on the material. Therefore, the docking and feeding transmission component 100 can drive the material to move in the double coating equipment so that it can undergo two coating processes in sequence.
[0026] It should be noted that, for ease of description, in this embodiment, the length direction of the docking unloading and conveying component 100 is defined as the first direction X, the width direction of the docking unloading and conveying component 100 is defined as the second direction Y, and the height direction of the docking unloading and conveying component 100 is defined as the third direction Z. The first direction X, the second direction Y, and the third direction Z are arranged perpendicularly to each other, and the first direction X and the second direction Y are located in the same plane.
[0027] See Figure 1 and Figure 2 As shown, the transmission component 100 in this embodiment includes two folded transmission members 110. The two folded transmission members 110 are arranged at a Z-interval along a third direction, and the output end of the upper folded transmission member 110 is connected to the input end of the lower folded transmission member 110. Preferably, any folded transmission member 110 is a horizontally arranged "U"-shaped structure, thereby enabling it to connect with different material input ports of the dual-coating device. Further, the material moves away from the dual-coating device through the first transmission channel 114 and enters the dual-coating device through the second transmission channel 115. The processed material can finally be directionally recycled through the unloading component 200, thus completing a complete processing flow.
[0028] See Figure 3 As shown, the folding transmission component 110 in this embodiment includes a support frame 111, a transmission rack 112, and at least one rack driver 113. The transmission rack 112 and at least one rack driver 113 are disposed in the support frame 111, and the working end of the rack driver 113 is connected to the transmission rack 112 to drive the transmission rack 112 to move along the support frame 111. Specifically, the support frame 111 has a "U"-shaped structure, and at least one rack driver 113 is disposed at the turning point of the support frame 111, thereby achieving optimal driving effect and avoiding unstable transportation due to excessively long transmission paths. Further, the rack driver 113 in this embodiment is preferably a rotary motor. In different embodiments, it can be configured as other structures with the same driving function, and this utility model does not make specific settings in this regard.
[0029] Correspondingly, the transmission assembly 100 in this embodiment includes a plurality of clamps 120, with the frames 121 of two adjacent clamps 120 connected to each other for synchronous movement. Each clamp 120 includes a frame 121, a gear shaft 122, and a chuck 123. The gear shaft 122 is connected to the frame 121 and meshes with the transmission rack 112. The chuck 123 is located at the end of the gear shaft 122 and rotates synchronously with the gear shaft 122, thereby enabling stable movement along the transmission rack 112.
[0030] When the processed material moves to the bottom of the conveyor assembly 100, the clamp 120 releases the material, allowing it to pass through the feeding and feeding belt 220, thus completing the feeding and conveying process via the feeding belt 220. The feeding box 210 includes a body, an inlet, and an outlet. The inlet is located at the top of the body, and the outlet is located at the bottom of the body. The opening area of the inlet is larger than that of the outlet. The sidewall of the body is inclined from the inlet towards the outlet, thereby increasing its receiving range and achieving directional material conveying, preventing the material from detaching from the feeding belt 220 due to unstable landing points.
[0031] In this embodiment, the unloading assembly 200 further includes an unloading frame 240 and a belt drive assembly 230. The unloading frame 240 extends along a first direction X, and the unloading belt 220 and the belt drive assembly 230 are respectively disposed on the unloading frame 240, with the unloading belt 220 sleeved on the belt drive assembly 230. Further, the belt drive assembly 230 includes a belt driver 231, a transmission chain 232, a drive shaft 233, and a driven shaft 234. The drive shaft 233 and the driven shaft 234 are respectively connected to both ends of the unloading frame 240, the unloading belt 220 is sleeved on and connected to the drive shaft 233 and the driven shaft 234, and the belt driver 231 is connected to the unloading frame 240, with its working end connected to the drive shaft 233.
[0032] This embodiment also includes a control system, with the transmission component 100 and the feeding component 200 respectively connected to the control system via signal connections. During actual production and processing, operators can use the control system to adjust the above structure in real time, thereby improving the flexibility of the equipment. Parameters can also be preset through the control system, thereby increasing the automation level of the equipment. Example 2
[0033] This embodiment provides a dual-coating device, which includes the above-mentioned docking and unloading conveying component 100 and a secondary coating device 300. At least a portion of the docking and unloading conveying component 100 is disposed in the secondary coating device 300. The secondary coating device 300 includes two coating components, which are disposed on the extension path of the conveying component 100.
[0034] In summary, the docking and unloading conveying component 100 and the double-coating device described in this utility model, through the conveying component 100, drive the material to be transferred, enabling it to dock sequentially with different processing equipment during the movement, thereby realizing different processing processes. Simultaneously, its structural design makes full use of space, minimizing its size and thus increasing its flexibility in applicable scenarios, giving it a wider range of applications. Furthermore, the unloading component 200, through its close cooperation with the conveying component 100, can automatically unload and collect the material after a series of processing steps, significantly improving the automation level of this mechanism. Compared to conventional conveying and unloading equipment at present, this application has significant advantages such as strong controllability, wide applicability, high automation, small size, and stable transmission, and has broad application prospects in this industry.
[0035] Obviously, the above embodiments are merely illustrative examples for clear explanation and are not intended to limit the implementation. Those skilled in the art will recognize that other variations or modifications can be made based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations here. However, obvious variations or modifications derived therefrom are still within the protection scope of this invention.
Claims
1. A docking and unloading conveying component, characterized in that: include: A transmission assembly includes at least two folding transmission components and at least one clamp. The at least two folding transmission components are spaced apart along the height direction of the transmission assembly and are interconnected. The top folding transmission component is connected to a feeding device. Each folding transmission component includes a first transmission channel and a second transmission channel with opposite transmission directions. The first transmission channel and the second transmission channel are spaced apart along the height direction of the transmission assembly. The material output end of the first transmission channel is connected to the material input end of the second transmission channel. At least one clamp passes through the first transmission channel and the second transmission channel of the at least two folding transmission components sequentially from top to bottom. A feeding assembly is disposed at the bottom of the transmission assembly and docks with the folding transmission component located at the bottom. The feeding assembly includes a feeding box and a feeding belt. The feeding belt extends along a first direction. The feeding box connects the output end of the folding transmission component and the input end of the feeding belt.
2. The docking and unloading transmission assembly according to claim 1, characterized in that: The folding transmission component includes a support frame, a transmission rack, and at least one rack driver. The transmission rack and at least one rack driver are disposed in the support frame, and the working end of the rack driver is connected to the transmission rack to drive the transmission rack to move along the support frame.
3. The docking and unloading conveying assembly according to claim 2, characterized in that: The support frame has a "U" shaped structure, and at least one of the rack and pinion actuators is located at the turning point of the support frame.
4. The docking and unloading transmission assembly according to claim 2, characterized in that: The clamp includes a frame, a gear shaft, and a chuck. The gear shaft is connected to the frame and can mesh with the transmission rack. The chuck is located at the end of the gear shaft and can rotate synchronously with the gear shaft.
5. The docking and unloading transmission assembly according to claim 4, characterized in that: The transmission component includes multiple clamps, and the frames of two adjacent clamps are connected to each other for synchronous movement.
6. The docking and unloading transmission assembly according to claim 1, characterized in that: The unloading assembly further includes an unloading frame and a belt drive assembly. The unloading frame extends along a first direction, and the unloading belt and the belt drive assembly are respectively disposed on the unloading frame, with the unloading belt sleeved on the belt drive assembly.
7. The docking and unloading transmission assembly according to claim 6, characterized in that: The belt drive assembly includes a belt driver, a transmission chain, a drive shaft, and a driven shaft. The drive shaft and the driven shaft are respectively connected to both ends of the unloading frame. The unloading belt is sleeved and connected to the drive shaft and the driven shaft. The belt driver is connected to the unloading frame, and its working end is connected to the drive shaft.
8. The docking and unloading transmission assembly according to claim 1, characterized in that: The feeding box includes a body, an inlet and an outlet. The inlet is located at the top of the body, and the outlet is located at the bottom of the body. The opening area of the inlet is larger than that of the outlet. The side wall of the body is inclined from the inlet toward the outlet.
9. The docking and unloading transmission assembly according to claim 1, characterized in that: It also includes a control system, wherein the transmission component and the feeding component are respectively signal-connected to the control system.
10. A double-coating device, characterized in that: The device includes the docking and unloading conveying assembly and the secondary adhesive coating equipment as described in any one of claims 1 to 9, wherein at least a portion of the docking and unloading conveying assembly is disposed in the secondary adhesive coating equipment, and the secondary adhesive coating equipment includes two adhesive coating components disposed on the extension path of the conveying assembly.