Aluminum plate splicing positioning device
By designing the aluminum plate splicing positioning device, the automatic clamping and splicing of aluminum plates is achieved using the transmission mechanism and threaded structure, the problem of the aluminum plate being unable to be spliced in the center is solved, and the accuracy and stability of the aluminum plate splicing are improved.
Patent Information
- Application Number
- CN202422399829.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-30
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-09-30
AI Technical Summary
The existing aluminum plate processing and positioning device cannot center the aluminum plate and push splicing to the center, resulting in insufficient splicing accuracy and stability.
An aluminum plate splicing positioning device is designed, including an operating table, a transmission mechanism and an aluminum plate splicing mechanism. Through the transmission mechanism, the aluminum plate splicing mechanism is pushed to move toward the center of the operating table, and the aluminum plate is automatically clamped and spliced by using threads and a reduction motor.
The precise alignment and automated splicing of aluminum plates are realized, which improves splicing accuracy and stability, and saves labor costs and time.
Smart Images

Figure CN223115135U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of aluminum plate processing, in particular to an aluminum plate splicing and positioning device. Background Technique
[0002] Aluminum is the metal material with the largest usage and the widest application in non-ferrous metals. The advantages and characteristics of aluminum are as follows: 1. Low density; 2. High plasticity. Aluminum has good ductility and can be made into various products through pressure processing means such as extrusion and stretching; 3. Corrosion resistance, with much better corrosion resistance than steel; 4. Easy to strengthen; 5. Easy surface treatment. When splicing and processing aluminum plates, a positioning device is needed to limit the aluminum plates to keep them stable, so as to improve the quality of subsequent processing.
[0003] For example, the patent with the national authorized patent publication number CN221474894U discloses an aluminum plate processing positioning device, including a positioning seat and a contact plate. The contact plate is fixedly installed on one side of the positioning seat. A fixed column is fixedly installed inside the positioning seat. One end of the fixed column is sleeved with a moving block. The top of the moving block is provided with a U-shaped block. One side of the U-shaped block is provided with an auxiliary rod. One end of the auxiliary rod is provided with a replacement rod. A concave hole is opened on one side of the replacement rod. By setting the moving block, U-shaped block, first positioning plate, gear, rack and second positioning plate, the rack meshed with it is driven to move back and forth, so that the distance between the first positioning plate and the second positioning plate can be adjusted. With this structure, the aluminum plate can be clamped according to different lengths of the aluminum plate, increasing the range of the positioning device to limit the aluminum plate. The second positioning plate is in a fixed state, and the first positioning plate can move under the movement of the moving block, thus enhancing the firmness of the aluminum plate.
[0004] However, in the above aluminum plate processing positioning device, during the clamping process of the aluminum plate, the aluminum plate cannot be centered and pushed towards the center for splicing to assist the staff in splicing the aluminum plate. Content of the Utility Model
[0005] The purpose of the utility model is to provide an aluminum plate splicing and positioning device to solve the problem that the aluminum plate cannot be centered and pushed towards the center for splicing during the clamping process as mentioned in the above background technique.
[0006] To achieve the above purpose, the utility model provides the following technical solutions:
[0007] An aluminum plate splicing and positioning device, including: an operating table, a transmission mechanism is fixedly installed at one end of the operating table, an aluminum plate splicing mechanism is threadedly installed on the outer surface of the transmission mechanism, and the aluminum plate splicing mechanism can be pushed by the transmission mechanism into the guiding groove and move closer to the center of the operating table. The guiding groove is opened on both sides of the operating table.
[0008] Preferably, a standing station is fixedly installed at one end of the operating table, and the standing station is located between two aluminum plate splicing mechanisms.
[0009] Preferably, bull's eye shafts are arranged on the upper surface of the operating table.
[0010] Preferably, the transmission mechanism includes a first reduction motor fixedly installed at one end of the operating table. One end of the output shaft of the first reduction motor is fixedly installed with a connecting rod. The outer surface of the connecting rod is provided with a positive thread and a reverse thread, and aluminum plate splicing mechanisms are threadedly installed on the outer surfaces of the positive thread and the reverse thread.
[0011] Preferably, the aluminum plate splicing mechanism includes two connecting columns, which are respectively threadedly installed on the outer surfaces of the positive thread and the reverse thread. Both sides of the outer surfaces of the two connecting columns are fixedly installed with connecting arms, and the connecting arms slide in the guide grooves. The upper surfaces of the connecting arms of the two connecting columns are respectively fixedly installed with a first U-shaped frame and a second U-shaped frame.
[0012] Preferably, two transmission columns are rotatably installed in the first U-shaped frame. A conveyor belt is sleeved on the outer surfaces of the two transmission columns. A second reduction motor is fixedly installed on the upper surface of the first U-shaped frame. The output shaft of the second reduction motor passes through the first U-shaped frame and is fixedly connected to the transmission column. A frame is fixedly installed in the first U-shaped frame, and the frame is sleeved inside by the conveyor belt;
[0013] Among them, a transmission wheel is rotatably installed in the second U-shaped frame.
[0014] Compared with the prior art, the beneficial effects of the present invention are:
[0015] 1. Through the design of the operating table, bull's eye shafts, aluminum plate splicing mechanism and transmission mechanism, when splicing aluminum plates, two aluminum plates can be placed at both ends of the upper surface of the operating table, and then the transmission mechanism can be started to drive the two aluminum plate splicing mechanisms to move longitudinally and synchronously towards the center, which can push the aluminum plates towards the center of the operating table, clamp the aluminum plates at the center of the upper surface of the operating table, and then the aluminum plate splicing mechanism can be started to drive the two aluminum plates to move horizontally towards the center and abut against each other for splicing. Moreover, the spliced aluminum plates are centered, ensuring the precise alignment of the aluminum plates before splicing, avoiding the errors that may occur in manual alignment, improving the splicing accuracy, and driving the aluminum plates to move longitudinally and horizontally, enabling the aluminum plates to slide on the bull's eye shafts on the surface of the operating table, ensuring the flat movement of the aluminum plates on the operating table, contributing to maintaining the flatness after splicing, so that after the two aluminum plates are spliced, the staff can perform splicing treatment on the aluminum plates at the standing station.
[0016] 2. Through the design of the first reduction motor, right-handed thread, left-handed thread, first U-shaped frame, second U-shaped frame, conveyor belt, transmission wheel and connecting arm, after placing two groups of aluminum plates at both ends of the upper surface of the operating table, the first reduction motor can be started to drive the right-handed thread and left-handed thread on the outer surface of the connecting rod to rotate. The right-handed thread and left-handed thread will drive two groups of connecting columns to drive the connecting arm to slide and lean towards the center in the guiding groove, enabling the two groups of connecting arms to drive the first U-shaped frame and the second U-shaped frame respectively to push the aluminum plates placed on the upper surface of the operating table towards the center. It can stop until the first U-shaped frame and the second U-shaped frame push and clamp the aluminum plates at the center of the upper surface of the operating table. The aluminum plates can be clamped between the conveyor belt and the transmission wheel inside the first U-shaped frame and the second U-shaped frame. Subsequently, the second reduction motor can be started to drive the conveyor belt, enabling the conveyor belt to drive the aluminum plates to move horizontally and touch and splice at one end of the transmission wheel towards the center. Thus, the clamping and splicing processes are completed automatically without manual operation, saving labor costs and time. Secondly, it can ensure the accurate clamping position of the aluminum plates, and can accurately push and clamp the aluminum plates at the center position of the surface of the operating table, thereby ensuring the accuracy and stability of processing and splicing, and helping to speed up the production rhythm. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 is a schematic diagram of the overall structure of the aluminum plate splicing and positioning device of the present utility model;
[0018] Figure 2 is a schematic diagram of the structures of the first U-shaped frame and the second U-shaped frame of the present utility model;
[0019] Figure 3 is a schematic diagram of the structure of the transmission mechanism of the present utility model;
[0020] Figure 4 is a schematic diagram of the structure of the aluminum plate splicing mechanism of the present utility model.
[0021] In the figure: 1. Operating table; 101. Bull's-eye shaft; 102. Guiding groove; 103. Standing station; 2. Aluminum plate splicing mechanism; 201. Second U-shaped frame; 202. Transmission wheel; 203. First U-shaped frame; 204. Second reduction motor; 205. Transmission column; 206. Frame; 207. Conveyor belt; 208. Connecting arm; 209. Connecting column; 3. Transmission mechanism; 301. First reduction motor; 302. Connecting rod; 303. Right-handed thread; 304. Left-handed thread. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0022] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.
[0023] Please refer to Figures 1-4 , the following technical solutions are provided in this embodiment:
[0024] As Figures 1-2 shown, an aluminum plate splicing and positioning device includes: an operation table 1, a transmission mechanism 3 is fixedly installed at one end of the operation table 1, and an aluminum plate splicing mechanism 2 is threadedly installed on the outer surface of the transmission mechanism 3. The aluminum plate splicing mechanism 2 can be pushed by the transmission mechanism 3 into the guide groove 102 and move closer to the center of the operation table 1. The guide groove 102 is opened on both sides of the operation table 1.
[0025] A standing station 103 is fixedly installed at one end of the operation table 1, and the standing station 103 is located between two aluminum plate splicing mechanisms 2.
[0026] Bull's-eye shafts 101 are arranged on the upper surface of the operation table 1.
[0027] Through the design of the operation table 1, the bull's-eye shafts 101, the aluminum plate splicing mechanism 2 and the transmission mechanism 3, when splicing aluminum plates, two aluminum plates can be placed at both ends of the upper surface of the operation table 1, and then the transmission mechanism 3 can be started to drive the two aluminum plate splicing mechanisms 2 to move synchronously longitudinally towards the center, which can push the aluminum plates towards the center of the operation table 1, and can clamp the aluminum plates at the center of the upper surface of the operation table 1. Then, the aluminum plate splicing mechanism 2 can be started to drive the two aluminum plates to move transversely towards the center and abut against each other for splicing. Moreover, the spliced aluminum plates are centered, ensuring the precise alignment of the aluminum plates before splicing, avoiding the errors that may occur in manual alignment, improving the splicing accuracy, and during the process of driving the aluminum plates to move longitudinally and transversely, the aluminum plates can slide on the bull's-eye shafts 101 on the surface of the operation table 1, which can ensure the flat movement of the aluminum plates on the operation table 1, contribute to maintaining the flatness after splicing, and enable the two aluminum plates to be spliced and then for the staff to perform splicing processing on the aluminum plates at the standing station 103.
[0028] As Figures 3-4 shown, the transmission mechanism 3 includes a first reduction motor 301, the first reduction motor 301 is fixedly installed at one end of the operation table 1, a connecting rod 302 is fixedly installed at one end of the output shaft of the first reduction motor 301, and a positive thread 303 and a reverse thread 304 are arranged on the outer surface of the connecting rod 302. Aluminum plate splicing mechanisms 2 are threadedly installed on the outer surfaces of both the positive thread 303 and the reverse thread 304.
[0029] The aluminum plate splicing mechanism 2 includes two sets of connecting columns 209, which are respectively threadedly installed on the outer surfaces of the right-handed thread 303 and the left-handed thread 304. Connecting arms 208 are fixedly installed on both sides of the outer surfaces of the two sets of connecting columns 209. The connecting arms 208 slide in the guiding grooves 102. The upper surfaces of the connecting arms 208 of the two sets of connecting columns 209 are respectively fixedly installed with a first U-shaped frame 203 and a second U-shaped frame 201.
[0030] Two sets of transmission columns 205 are rotatably installed in the first U-shaped frame 203. A conveyor belt 207 is sleeved on the outer surfaces of the two sets of transmission columns 205. A second reduction motor 204 is fixedly installed on the upper surface of the first U-shaped frame 203. The output shaft of the second reduction motor 204 passes through the first U-shaped frame 203 and is fixedly connected to the transmission column 205. A frame 206 is fixedly installed in the first U-shaped frame 203, and the frame 206 is sleeved inside the conveyor belt 207;
[0031] Among them, a transmission wheel 202 is rotatably installed in the second U-shaped frame 201.
[0032] Through the design of the first reduction motor 301, the right-handed thread 303, the left-handed thread 304, the first U-shaped frame 203, the second U-shaped frame 201, the conveyor belt 207, the transmission wheel 202 and the connecting arm 208, after placing two aluminum plates at both ends of the upper surface of the operating table 1, the first reduction motor 301 can be started to drive the right-handed thread 303 and the left-handed thread 304 on the outer surface of the connecting rod 302 to rotate. The right-handed thread 303 and the left-handed thread 304 will drive the two sets of connecting columns 209 to drive the connecting arms 208 to slide towards the center in the guiding grooves 102, so that the two sets of connecting arms 208 can drive the first U-shaped frame 203 and the second U-shaped frame 201 to push the aluminum plates placed on the upper surface of the operating table 1 towards the center until the first U-shaped frame 203 and the second U-shaped frame 201 push and clamp the aluminum plates at the center of the upper surface of the operating table 1 and then stop. The aluminum plates can be clamped between the conveyor belt 207 and the transmission wheel 202 in the first U-shaped frame 203 and the second U-shaped frame 201. Subsequently, the second reduction motor 204 can be started to drive the conveyor belt 207, so that the conveyor belt 207 can drive the aluminum plates to move towards the center and abut against the end of the transmission wheel 202 horizontally for abutting and splicing. Thus, the clamping and splicing processes are automatically completed without manual operation, saving labor costs and time. Secondly, the clamping position of the aluminum plates can be ensured to be accurate, and the aluminum plates can be accurately pushed and clamped at the center position of the surface of the operating table 1, thereby ensuring the accuracy and stability of processing and splicing, and helping to speed up the production rhythm.
[0033] Summarize and sort out the working steps of this solution according to the above technical solution: When splicing aluminum plates, two groups of aluminum plates can be placed at both ends of the upper surface of the operating table 1. Then, the first reduction motor 301 can be started to drive the positive thread 303 and the reverse thread 304 on the outer surface of the connecting rod 302 to rotate. The positive thread 303 and the reverse thread 304 will drive two groups of connecting columns 209 to drive the connecting arms 208 to slide towards the center in the guiding groove 102, enabling the two groups of connecting arms 208 to drive the first U-shaped frame 203 and the second U-shaped frame 201 respectively to push the aluminum plates placed on the upper surface of the operating table 1 towards the center until the first U-shaped frame 203 and the second U-shaped frame 201 push and clamp the aluminum plates at the center of the upper surface of the operating table 1, and then stop. The aluminum plates can be clamped between the conveyor belt 207 and the transmission wheel 202 inside the first U-shaped frame 203 and the second U-shaped frame 201. Then, the second reduction motor 204 can be started to drive the conveyor belt 207, enabling the conveyor belt 207 to drive the aluminum plates to abut against one end of the transmission wheel 202 and move transversely towards the center to abut and splice. Subsequently, it can be provided for the staff to splice the aluminum plates at the standing station 103.
[0034] In summary: During the process of clamping the aluminum plates, this device can center and push the aluminum plates towards the center for splicing to assist the staff in splicing the aluminum plates, without manual operation, saving labor costs and time. Secondly, it can ensure the accurate clamping position of the aluminum plates, and can accurately push and clamp the aluminum plates at the center position of the surface of the operating table 1, thus ensuring the accuracy and stability of processing and splicing.
[0035] Parts not involved in the present utility model are the same as or can be implemented by using the prior art. Although the embodiments of the present utility model have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present utility model. The scope of the present utility model is defined by the appended claims and their equivalents.
Claims
1. An aluminum plate splicing and positioning device, characterized in that, Including: An operating table (1), at one end of the operating table (1), a transmission mechanism (3) is fixedly installed. An aluminum plate splicing mechanism (2) is threadedly installed on the outer surface of the transmission mechanism (3). The aluminum plate splicing mechanism (2) can be pushed by the transmission mechanism (3) into the guiding groove (102) to move closer to the center of the operating table (1). The guiding groove (102) is opened on both sides of the operating table (1).
2. The aluminum plate splicing and positioning device according to claim 1, characterized in that: At one end of the operating table (1), a standing station (103) is fixedly installed. The standing station (103) is located between two groups of aluminum plate splicing mechanisms (2).
3. The aluminum plate splicing and positioning device according to claim 2, characterized in that: Bull's-eye shafts (101) are arranged on the upper surface of the operating table (1).
4. The aluminum plate splicing and positioning device according to claim 1, characterized in that: The transmission mechanism (3) includes a first reduction motor (301). The first reduction motor (301) is fixedly installed at one end of the operating table (1). One end of the output shaft of the first reduction motor (301) is fixedly installed with a connecting rod (302). External threads of a forward thread (303) and a reverse thread (304) are arranged on the outer surface of the connecting rod (302). Aluminum plate splicing mechanisms (2) are threadedly installed on the outer surfaces of both the forward thread (303) and the reverse thread (304).
5. The aluminum plate splicing and positioning device according to claim 1 or 4, characterized in that: The aluminum plate splicing mechanism (2) includes two connecting columns (209). The two connecting columns (209) are respectively threadedly installed on the outer surfaces of the forward thread (303) and the reverse thread (304). Connecting arms (208) are fixedly installed on both sides of the outer surfaces of the two connecting columns (209). The connecting arms (208) slide in the guiding groove (102). On the upper surfaces of the connecting arms (208) of the two connecting columns (209), a first U-shaped frame (203) and a second U-shaped frame (201) are respectively fixedly installed.
6. The aluminum plate splicing and positioning device according to claim 5, wherein: Two transmission columns (205) are rotatably installed in the first U-shaped frame (203). A conveyor belt (207) is sleeved on the outer surfaces of the two transmission columns (205). A second reduction motor (204) is fixedly installed on the upper surface of the first U-shaped frame (203). The output shaft of the second reduction motor (204) passes through the first U-shaped frame (203) and is fixedly connected to the transmission column (205). A frame (206) is fixedly installed in the first U-shaped frame (203). The frame (206) is sleeved inside the conveyor belt (207). Wherein, a transmission wheel (202) is rotatably installed in the second U-shaped frame (201).
Citation Information
Patent Citations
Aluminum plate machining positioning device
CN221474894U