Full-automatic assembly system for cutter production

Through the transmission structure and automation equipment of the fully automatic assembly system, the problems of low detection efficiency and transmission damage in tool production are solved, efficient and accurate tool accessories detection and classification are achieved, and production efficiency and product quality are improved.

CN120362925AInactive Publication Date: 2025-07-25SHANGHAI OUCHI MACHINERY EQUIPMENT CO LTD
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Patent Information

Application Number
CN202510575788.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-06
Publication Date
2025-07-25
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the production of existing tools, there are problems such as slow manual inspection speed, easy missed inspection and missed inspection, low efficiency, and easy damage during tool accessories transmission, and the fully automatic assembly system needs to flexibly adapt to different tool shapes and sizes.

Method used

The fully automatic assembly system is adopted, and automation equipment such as transmission structure, detection camera, drive slide table and classification board are used to realize the full process automatic detection and classification of tool accessories, combining multi-stage transmission belt and buffer structure to ensure accurate detection and efficient transmission.

Benefits of technology

It realizes the full process of automatic inspection and classification of tool accessories, improves production efficiency, ensures product quality, and avoids damage through buffer structures, improving assembly accuracy and reliability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a full-automatic assembly system for cutter production, and relates to the technical field of cutter production. Comprising a conveying structure, a collecting structure is mounted on the outer wall of one side of the conveying structure, a storage structure is mounted on the right side of the inner side of the conveying structure, a guiding structure is mounted on the outer wall of the right side of the conveying structure, and the conveying structure comprises a mounting frame. The full-process automation of the tool accessories from detection, classification to assembly is achieved, manual operation links are reduced, the production efficiency is improved, the front face detection camera and the back face detection camera can detect the front faces and the back faces of the tool accessories, and once problems are found, the detection efficiency is improved. Problem tool accessories are pushed into the collecting structure through the driving sliding table and the classifying plate, precise detection and classification of the tool accessories are achieved, and the product quality effect is guaranteed.
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Description

Technical Field

[0001] The present invention relates to the technical field of tool production, and particularly relates to a fully automatic assembly system for tool production. Background Art

[0002] In the current prior art, tool production usually involves not only simple assembly but also many other processes. For example, the parts need to be washed first, then inspected for any problems, and finally assembled. A fully automatic assembly system has to integrate these tasks and complete them in one stop. Moreover, different tools have different shapes and sizes, and the assembly methods are also different. The system also needs to be flexible and able to quickly adjust to meet the production requirements of various tools. Therefore, this fully automatic assembly system is designed to solve the troubles of manual assembly in the past, utilize the current advanced technologies, make tool production fast and good, and adapt to the general trend of intelligentization.

[0003] However, there are still deficiencies in the prior art, such as the following aspects: The existing manual inspection method is slow and prone to missed inspections and misinspections. Manually classifying defective tool accessories leads to low efficiency and is error-prone. There is also the problem that tool accessories may be damaged if they directly fall or collide during transmission. Summary of the Invention

[0004] The present invention provides a fully automatic assembly system for tool production to solve the problems raised in the above background art.

[0005] To solve the above technical problems, the technical solution adopted by the present invention is: A fully automatic assembly system for tool production includes a transmission structure. On the outer wall of one side of the transmission structure, a collection structure is installed. On the right side inside the transmission structure, a storage structure is installed. On the outer wall of the right side of the transmission structure, a guiding structure is installed. The transmission structure includes a mounting frame. On the outer wall of the left side of the mounting frame, a front area motor is installed. At the driving end of the front area motor and inside the mounting frame, a front area conveyor belt is drivingly connected. On the outer wall of the right side of the mounting frame, a back area motor is installed. At the driving end of the back area motor and inside the mounting frame, a back area conveyor belt is drivingly connected.

[0006] Preferably, on the upper surface of the front area conveyor belt and at the top inside the mounting frame, a front detection camera is installed. On the upper surface of the back area conveyor belt and at the top inside the mounting frame, a back detection camera is installed.

[0007] Preferably, a front sorting rack is installed on the inner side of the outer wall of the mounting rack and on one side of the conveyor belt in the front area. A front sliding rod is installed on the inner side of the bottom of the front sorting rack. A front driving slide is slidably connected to the outer wall of the front sliding rod. A front sorting plate is installed at the bottom of the front driving slide.

[0008] Preferably, a reverse sorting rack is installed on the inner side of the outer wall of the mounting rack and on one side of the conveyor belt in the reverse area. A reverse sliding rod is installed on the inner side of the bottom of the reverse sorting rack. A reverse driving slide is slidably connected to the outer wall of the reverse sliding rod. A reverse sorting plate is installed at the bottom of the reverse driving slide.

[0009] Preferably, a flipping motor is installed in the middle of one side of the outer wall of the mounting rack. One end of the flipping motor for transmission is connected to a flipping plate inside the mounting rack. A small conveyor motor is installed on the outer wall of one side of the flipping plate. One end of the small conveyor motor for transmission is connected to a small rotating rod. A small conveyor belt is drivingly connected to the outer wall of the small rotating rod. A flipping rod is installed in the middle of the flipping plate. Flipping blades are installed on both sides of the outer wall of the flipping rod.

[0010] Preferably, the collection structure includes a collection box. A collection motor is installed on the left side of the bottom of the collection box. One end of the collection motor for transmission is connected to a collection conveyor belt inside the collection box. A transmission slot is opened at the bottom of the outer wall of the mounting rack. A buffer plate is installed at the top inside the collection box.

[0011] Preferably, the storage structure includes a storage box. A storage motor is installed on the outer wall of the left side of the storage box. A storage guide plate is installed at the top inside the storage box. One end of the storage motor for transmission is drivingly connected to a buffer conveyor belt.

[0012] Preferably, a storage bottom plate is installed at the bottom of the storage box. A storage push rod is installed inside the storage bottom plate. One end of the storage push rod is connected to a storage push plate. A storage limit slot is opened on the outer wall of the storage bottom plate. A storage push block is installed at the top of the storage push plate and inside the storage limit slot.

[0013] Preferably, the guiding structure includes a guiding frame. A guiding motor is installed on the right side of the outer wall of the guiding frame. One end of the guiding motor for transmission is drivingly connected to a guiding conveyor belt. An assembly plate is installed on the left side inside the guiding frame. An assembly limit slot is opened on the outer wall of the assembly plate. Short telescopic rods are respectively installed on both sides of the bottom of the assembly plate.

[0014] Preferably, one end of the short telescopic rod is provided with a short push plate, and a short limit block is installed at the top of the short push plate and located in the assembly limit groove. In the middle of the bottom of the assembly plate, a long telescopic rod is installed. One end of the long telescopic rod is provided with a long push plate, and a long limit block is installed at the top of the long push plate and located inside the assembly limit groove.

[0015] To sum up, the technical solution mainly has the following beneficial effects: Through the collaborative work of various automated devices such as motors, conveyor belts, and cameras, the full process automation of tool accessories from inspection, classification to assembly is realized, reducing the manual operation links and improving the production efficiency. The front detection camera and the back detection camera can detect the front and back sides of the tool accessories. Once a problem is found, the defective tool accessories are pushed into the collection structure through the driving slide and the classification plate, realizing the precise detection and classification of the tool accessories and ensuring the product quality. Through multi-level transmission structures such as the front area conveyor belt, the back area conveyor belt, the small conveyor belt, the collection conveyor belt, and the buffer conveyor belt, the efficient transmission of tool accessories is realized. At the same time, the buffer plate in the collection box can buffer the incoming tool accessories, avoiding damage to the tool accessories due to direct dropping. In the guiding structure, the short telescopic rod, the long telescopic rod, and the corresponding push plates and limit blocks can be flexibly adjusted according to the size and position of the tool accessories, ensuring that the tool accessories can be accurately assembled to the specified position, improving the assembly accuracy and reliability. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is the front view structural schematic diagram of the present invention; Figure 2 is the top view structural schematic diagram of the present invention; Figure 3 is the sectional view structural schematic diagram of the mounting frame of the present invention; Figure 4 is the structural schematic diagram of the storage structure of the present invention; Figure 5 is the sectional view schematic diagram of the storage structure of the present invention; Figure 6 is the structural schematic diagram of the flip plate of the present invention; Figure 7 is the sectional view structural schematic diagram of the collection structure of the present invention; Figure 8 is the sectional view structural schematic diagram of the assembly plate of the present invention.

[0017] In the figure: 1. Transmission structure; 11. Mounting frame; 111. Transmission groove; 12. Front area motor; 121. Front area conveyor belt; 13. Rear area motor; 131. Rear area conveyor belt; 14. Rear sorting rack; 141. Rear slide bar; 142. Rear sorting plate; 143. Rear drive slide; 15. Tipping motor; 151. Tipping plate; 152. Tipping rod; 153. Tipping blade; 154. Small transmission motor; 155. Small rotating rod; 156. Small conveyor belt; 16. Front detection camera; 17. Rear detection camera; 18. Front sorting rack; 181. Front slide bar; 182. Front sorting plate; 183. Front drive slide; 2. Collection structure; 21. Collection box; 211. Collection motor; 212. Collection conveyor belt; 22. Buffer plate; 3. Guiding structure; 31. Guiding frame; 32. Guiding motor; 33. Guiding conveyor belt; 34. Assembly plate; 341. Assembly limit groove; 35. Short telescopic rod; 351. Short push plate; 352. Short limit block; 36. Long telescopic rod; 361. Long push plate; 362. Long limit block; 4. Storage structure; 41. Storage box; 42. Storage guide plate; 43. Storage motor; 44. Buffer conveyor belt; 45. Storage bottom plate; 451. Storage limit groove; 46. Storage push rod; 461. Storage push plate; 462. Storage push block. Detailed implementation mode

[0018] 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.

[0019] As Figure 1 - Figure 8 shown, a fully automatic assembly system for tool production includes a transmission structure 1. A collection structure 2 is installed on the outer wall of one side of the transmission structure 1. A storage structure 4 is installed on the right side inside the transmission structure 1. A guiding structure 3 is installed on the outer wall of the right side of the transmission structure 1. The transmission structure 1 includes a mounting frame 11; A front area motor 12 is installed on the outer wall of the left side of the mounting frame 11. One end of the front area motor 12 for transmission is drivingly connected to a front area conveyor belt 121 inside the mounting frame 11. A rear area motor 13 is installed on the outer wall of the right side of the mounting frame 11. One end of the rear area motor 13 for transmission is drivingly connected to a rear area conveyor belt 131 inside the mounting frame 11. A front detection camera 16 is installed on the upper surface of the front area conveyor belt 121 at the top inside the mounting frame 11. A rear detection camera 17 is installed on the upper surface of the rear area conveyor belt 131 at the top inside the mounting frame 11.

[0020] It should be noted that in this embodiment, the tool accessories are classified and placed on the upper surface of the front area conveyor belt 121, and then the front area motor 12 is started. One end driven by the front area motor 12 drives the front area conveyor belt 121 for transmission connection, so that the tool accessories move to the lower surface of the front detection camera 16. The tool accessories on the upper surface of the front area conveyor belt 121 are detected by the front detection camera 16. The surface of the tool accessories is detected by the front detection camera 16. Then, by starting the flipping motor 15, the tool accessories are flipped over by the flipping motor 15 and at the same time turned to the upper surface of the reverse area conveyor belt 131. Then, the reverse side of the tool accessories is detected by the reverse detection camera 17. Thus, the tool accessories enter the inner side of the storage structure 4 through the reverse area conveyor belt 131. On the inner side of the outer wall of the mounting frame 11 and on one side of the front area conveyor belt 121, a front classification frame 18 is installed. On the inner side of the bottom of the front classification frame 18, a front slide bar 181 is installed. A front driving slide table 183 is slidably connected to the outer wall of the front slide bar 181. A front classification plate 182 is installed at the bottom of the front driving slide table 183. On the inner side of the outer wall of the mounting frame 11 and on one side of the reverse area conveyor belt 131, a reverse classification frame 14 is installed. On the inner side of the bottom of the reverse classification frame 14, a reverse slide bar 141 is installed. A reverse driving slide table 143 is slidably connected to the outer wall of the reverse slide bar 141. A reverse classification plate 142 is installed at the bottom of the reverse driving slide table 143.

[0021] It should be noted that in this embodiment, when the front detection camera 16 detects a problem with the tool accessories, the front driving slide table 183 is started, and the front driving slide table 183 slides on the outer wall of the front slide bar 181. Thus, the front classification plate 182 driven by the front driving slide table 183 pushes the tool accessories on the upper surface of the front area conveyor belt 121 into the inner side of the collection structure 2, so as to classify the tool accessories. When the reverse detection camera 17 detects a problem with the tool accessories, the reverse driving slide table 143 is also started, and the reverse driving slide table 143 slides on the outer wall of the reverse slide bar 141. Thus, the tool accessories on the upper surface of the reverse area conveyor belt 131 are pushed into the inner side of the collection structure 2, realizing the function of detecting and classifying the reverse side of the tool accessories.

[0022] On the middle part of one side of the outer wall of the mounting frame 11, a turning motor 15 is installed. One end of the turning motor 15 for transmission is located inside the mounting frame 11 and is drivingly connected to a turning plate 151. On the outer wall of one side of the turning plate 151, a small transmission motor 154 is installed. One end of the small transmission motor 154 for transmission is installed with a small rotating rod 155. The outer wall of the small rotating rod 155 is drivingly connected to a small transmission belt 156. In the middle of the turning plate 151, a turning rod 152 is installed. On both sides of the outer wall of the turning rod 152, turning blades 153 are installed.

[0023] It should be noted that in this embodiment, when the tool accessories are transmitted to the turning blades 153 by starting the front area transmission belt 121, the turning motor 15 is started. One end of the turning motor 15 for transmission drives the turning plate 151 to rotate. At the same time, the small transmission motor 154 is started, so that the small transmission motor 154 drives the small rotating rod 155 to rotate, and the small rotating rod 155 drives the small transmission belt 156 to be drivingly connected. Thus, the turning blades 153 are driven by the turning motor 15 to adjust the angle, so that the blades fall onto the upper surface of the small transmission belt 156, and then the small transmission belt 156 is used to transmit to the upper surface of the reverse area transmission belt 131 for reverse detection.

[0024] The collecting structure 2 includes a collecting box 21. On the left side of the bottom of the collecting box 21, a collecting motor 211 is installed. One end of the collecting motor 211 for transmission is located inside the collecting box 21 and is drivingly connected to a collecting transmission belt 212. A transmission slot 111 is opened at the bottom of the outer wall of the mounting frame 11. On the top inside the collecting box 21, a buffer plate 22 is installed.

[0025] It should be noted that in this embodiment, when entering the inside of the tool accessories in the collecting box 21, the buffer plate 22 is used for buffering, and then it slides onto the upper surface of the collecting transmission belt 212. Then the collecting motor 211 is started, and one end of the collecting motor 211 for transmission drives the collecting transmission belt 212 to rotate, so as to collect the problematic tool accessories together.

[0026] The storage structure 4 includes a storage box 41. On the outer wall of the left side of the storage box 41, a storage motor 43 is installed. On the top inside the storage box 41, a storage guide plate 42 is installed. One end of the storage motor 43 for transmission is drivingly connected to a buffer transmission belt 44. At the bottom of the storage box 41, a storage bottom plate 45 is installed. Inside the storage bottom plate 45, a storage push rod 46 is installed. One end of the storage push rod 46 is installed with a storage push plate 461. A storage limit groove 451 is opened on the outer wall of the storage bottom plate 45. On the top of the storage push plate 461 and inside the storage limit groove 451, a storage push block 462 is installed.

[0027] It should be noted that in this embodiment, qualified tool accessories are transported to the inside of the storage box 41 by the reverse area conveyor belt 131, slide onto the upper surface of the buffer conveyor belt 44 through the storage guide plate 42, and then start the storage motor 43 to let the storage motor 43 guide them to fall onto the upper surface of the storage bottom plate 45. At the same time, the tool accessories can be stacked at the bottom inside the storage box 41. Then start the storage push rod 46, and push the storage push plate 461 through one end of the storage push rod 46, so that the storage push block 462 at the top of the storage push plate 461 pushes the tool accessories at the bottom inside the storage box 41, and pushes the tool accessories onto the upper surface of the guide conveyor belt 33.

[0028] The guiding structure 3 includes a guiding frame 31. A guiding motor 32 is installed on the right side of the outer wall of the guiding frame 31. One end of the guiding motor 32 for transmission is connected to a guiding conveyor belt 33 in a transmission manner. An assembly plate 34 is installed on the left side inside the guiding frame 31. An assembly limit groove 341 is formed on the outer wall of the assembly plate 34. Short telescopic rods 35 are respectively installed on both sides of the bottom of the assembly plate 34. A short push plate 351 is installed at one end of the short telescopic rod 35. A short limit block 352 is installed at the top of the short push plate 351 and located in the assembly limit groove 341. A long telescopic rod 36 is installed in the middle of the bottom of the assembly plate 34. A long push plate 361 is installed at one end of the long telescopic rod 36. A long limit block 362 is installed at the top of the long push plate 361 and located inside the assembly limit groove 341.

[0029] It should be noted that in this embodiment, by starting the guiding motor 32, one end of the guiding motor 32 for transmission drives the guiding conveyor belt 33 to be connected in a transmission manner, and transports the tool accessories to the upper surface of the assembly plate 34. Then, the short telescopic rod 35 or the long telescopic rod 36 is used for telescoping, so that the short telescopic rod 35 or the long telescopic rod 36 drives the short push plate 351 and the long push plate 361 to telescope. At the same time, the short limit block 352 and the long limit block 362 are limited and slide inside the assembly limit groove 341, so that the short limit block 352 and the long limit block 362 push the right side of the tool accessories, thereby adjusting the position of the tool accessories.

[0030] Working principle of the present invention: Classify the tool accessories and place them on the upper surface of the front area conveyor belt 121. Then start the front area motor 12. One end driven by the front area motor 12 drives the front area conveyor belt 121 for transmission connection, so that the tool accessories move to the lower surface of the front detection camera 16. The front detection camera 16 detects the tool accessories on the upper surface of the front area conveyor belt 121. The front detection camera 16 is used to detect the surface of the tool accessories. Then start the flipping motor 15. The flipping motor 15 flips the tool accessories over and at the same time turns them to the upper surface of the reverse area conveyor belt 131. When the front detection camera 16 detects problems with the tool accessories, start the front driving slide 183, and let the front driving slide 183 slide on the outer wall of the front slide bar 181. Thus, the front classification plate 182 driven by the front driving slide 183 pushes the tool accessories on the upper surface of the front area conveyor belt 121 into the inner side of the collection structure 2, so as to classify the tool accessories. When starting the front area conveyor belt 121 to transport the tool accessories to the flipping blade 153, start the flipping motor 15. One end driven by the flipping motor 15 drives the flipping plate 151 to rotate. At the same time, start the small transmission motor 154, so that the small transmission motor 154 drives the small rotating rod 155 to rotate, and the small rotating rod 155 drives the small conveyor belt 156 for transmission connection. Thus, the flipping motor 15 drives the flipping blade 153 to adjust the angle, so that the blade falls onto the upper surface of the small conveyor belt 156. Then use the small conveyor belt 156 to be transported to the upper surface of the reverse area conveyor belt 131 for reverse detection. Then use the reverse detection camera 17 to detect the reverse side of the tool accessories again. Thus, the tool accessories enter the inner side of the storage structure 4 through the reverse area conveyor belt 131. When the reverse detection camera 17 detects problems with the tool accessories, also start the reverse driving slide 143, and let the reverse driving slide 143 slide on the outer wall of the reverse slide bar 141. Thus, the tool accessories on the upper surface of the reverse area conveyor belt 131 are pushed into the inner side of the collection structure 2, realizing the function of reverse detection and classification of the tool accessories. When entering the inner side of the tool accessories in the collection box 21, use the buffer plate 22 for buffering, and then slide to the upper surface of the collection conveyor belt 212. Then start the collection motor 211. One end driven by the collection motor 211 drives the collection conveyor belt 212 to rotate, so as to collect the tool accessories with problems together. Qualified tool accessories are transported to the inside of the storage box 41 by the reverse area conveyor belt 131, slide onto the upper surface of the buffer conveyor belt 44 through the storage guide plate 42, and then start the storage motor 43 to let the storage motor 43 guide them to fall onto the upper surface of the storage bottom plate 45. At the same time, the tool accessories can be stacked at the bottom inside the storage box 41. Then start the storage push rod 46, and push the storage push plate 461 through one end of the storage push rod 46, so that the storage push block 462 at the top of the storage push plate 461 pushes the tool accessories at the bottom inside the storage box 41, and pushes the tool accessories onto the upper surface of the guide conveyor belt 33. By starting the guide motor 32, one end driven by the guide motor 32 drives the guide conveyor belt 33 for transmission connection, and transports the tool accessories to the upper surface of the assembly plate 34. Then use the short telescopic rod 35 or the long telescopic rod 36 to expand and contract, so that the short telescopic rod 35 or the long telescopic rod 36 drives the short push plate 351 and the long push plate 361 to expand and contract. At the same time, let the short limit block 352 and the long limit block 362 slide in the limit inside the assembly limit groove 341, so that the short limit block 352 and the long limit block 362 push the right side of the tool accessories, thereby adjusting the position of the tool accessories.

[0031] The above shows and describes the basic principles, main features and advantages of the present invention. Those skilled in the art should understand that the present invention is not limited by the above embodiments. What is described in the above embodiments and the specification only illustrates the principle of the present invention. Without departing from the spirit and scope of the present invention, the present invention will have various changes and improvements, and these changes and improvements all fall within the scope of the present invention claimed. The scope of protection claimed by the present invention is defined by the appended claims and their equivalents.

Claims

1. An automatic assembly system for tool production, comprising a transmission structure (1), a collection structure (2) is installed on the outer wall of one side of the transmission structure (1), a storage structure (4) is installed on the right side inside the transmission structure (1), and a guiding structure (3) is installed on the outer wall of the right side of the transmission structure (1), characterized in that: The transmission structure (1) includes a mounting frame (11); On the outer wall of one side on the left of the mounting frame (11), a front area motor (12) is installed. At the driven end of the front area motor (12) and inside the mounting frame (11), a front area conveyor belt (121) is drivingly connected; On the outer wall of one side on the right of the mounting frame (11), a back area motor (13) is installed. At the driven end of the back area motor (13) and inside the mounting frame (11), a back area conveyor belt (131) is drivingly connected.

2. The fully automatic assembly system for tool production according to claim 1, characterized in that: At the top inside the mounting frame (11) and on the upper surface of the front area conveyor belt (121), a front detection camera (16) is installed. At the top inside the mounting frame (11) and on the upper surface of the back area conveyor belt (131), a back detection camera (17) is installed.

3. The fully automatic assembly system for tool production according to claim 1, wherein: On the inner side of the outer wall of the mounting frame (11) and on one side of the front area conveyor belt (121), a front sorting frame (18) is installed. Inside the bottom of the front sorting frame (18), a front slide bar (181) is installed. On the outer wall of the front slide bar (181), a front driving slide table (183) is slidably connected. At the bottom of the front driving slide table (183), a front sorting plate (182) is installed.

4. The fully automatic assembly system for tool production according to claim 1, wherein: On the inner side of the outer wall of the mounting frame (11) and on one side of the back area conveyor belt (131), a back sorting frame (14) is installed. Inside the bottom of the back sorting frame (14), a back slide bar (141) is installed. On the outer wall of the back slide bar (141), a back driving slide table (143) is slidably connected. At the bottom of the back driving slide table (143), a back sorting plate (142) is installed.

5. The fully automatic assembly system for tool production according to claim 4, characterized in that: In the middle of one side of the outer wall of the mounting frame (11), a flipping motor (15) is installed. At the driven end of the flipping motor (15) and inside the mounting frame (11), a flipping plate (151) is drivingly connected. On the outer wall of one side of the flipping plate (151), a small transmission motor (154) is installed. At the driven end of the small transmission motor (154), a small rotating rod (155) is installed. On the outer wall of the small rotating rod (155), a small conveyor belt (156) is drivingly connected. In the middle of the flipping plate (151), a flipping rod (152) is installed. On both sides of the outer wall of the flipping rod (152), flipping blades (153) are installed.

6. The full-automatic assembly system for tool production according to claim 1, wherein: The collection structure (2) includes a collection box (21). On the left side of the bottom of the collection box (21), a collection motor (211) is installed. At the driven end of the collection motor (211) and inside the collection box (21), a collection conveyor belt (212) is drivingly connected. A transmission slot (111) is opened at the bottom of the outer wall of the mounting frame (11). At the top inside the collection box (21), a buffer plate (22) is installed.

7. The fully automatic assembly system for tool production according to claim 1, wherein: The storage structure (4) includes a storage box (41). On the outer wall on the left side of the storage box (41), a storage motor (43) is installed. At the top inside the storage box (41), a storage guide plate (42) is installed. At the driven end of the storage motor (43), a buffer conveyor belt (44) is drivingly connected.

8. The fully automatic assembly system for tool production according to claim 7, characterized in that: A savings bottom plate (45) is installed at the bottom of the savings box (41). A savings push rod (46) is installed inside the savings bottom plate (45). One end of the savings push rod (46) is installed with a savings push plate (461). A savings limit groove (451) is formed on the outer wall of the savings bottom plate (45). A savings push block (462) is installed at the top of the savings push plate (461) and inside the savings limit groove (451).

9. The fully automatic assembly system for tool production according to claim 1, characterized in that: The guiding structure (3) includes a guiding frame (31). A guiding motor (32) is installed on the right side of the outer wall of the guiding frame (31). One end of the driving part of the guiding motor (32) is drivingly connected to a guiding conveyor belt (33). An assembly plate (34) is installed on the left side inside the guiding frame (31). An assembly limit groove (341) is formed on the outer wall of the assembly plate (34). Short telescopic rods (35) are respectively installed on both sides of the bottom of the assembly plate (34).

10. The full-automatic assembly system for tool production according to claim 9, wherein: One end of the short telescopic rod (35) is installed with a short push plate (351). A short limit block (352) is installed at the top of the short push plate (351) and inside the assembly limit groove (341). A long telescopic rod (36) is installed in the middle of the bottom of the assembly plate (34). One end of the long telescopic rod (36) is installed with a long push plate (361). A long limit block (362) is installed at the top of the long push plate (361) and inside the assembly limit groove (341).