Mounting structure for multi-tool-bit grooving tool
The fixing mechanism, which uses sliding connections and elastic elements, solves the problem of inconvenient disassembly under traditional bolt fixing methods, enabling rapid disassembly and stable installation of multi-head grooving tools, thereby improving production efficiency and equipment maintenance convenience.
Patent Information
- Application Number
- CN202511330837.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-17
- Publication Date
- 2025-11-04
- Estimated Expiration
- Not applicable · inactive patent
Smart Images

Figure CN120885752A_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of grooving tool technology, specifically a mounting structure for a multi-head grooving tool. Background Technology
[0002] With the development of the optical field, the application of prisms has expanded from traditional instruments to emerging scenarios such as lasers and VR, increasing the requirements for precision and structure. While large prism plates offer high processing efficiency, they are limited in precision and flexibility. Therefore, grooving technology for large prism plates has become a key means to improve processing quality and meet diverse needs.
[0003] Currently, traditional multi-head grooving tools employ a design concept that integrates the spacer ring and the cutting blade into a single unit, which is then mounted onto the grooving equipment. After installation, the prism plate is placed on a conveyor belt, which moves the prism plate. Simultaneously, the drive rotation component within the grooving equipment begins operation, rotating the cutting blade. When the prism plate reaches the bottom of the cutting blade, the rotating blade performs the grooving operation on the plate's surface.
[0004] However, most tool mounting structures use bolts for fixing. While this method may ensure a certain level of stability during initial installation, the inability to quickly and automatically disassemble them causes significant inconvenience during subsequent maintenance and replacement. Because bolt fixing requires specialized tools, operators must spend considerable time loosening the bolts when disassembling the tools. Furthermore, over prolonged use, the bolts may rust or become stuck, further increasing the difficulty of disassembly. This not only significantly reduces disassembly efficiency, extending equipment downtime and impacting production schedules, but also increases the workload of operators. Summary of the Invention
[0005] To address the problems mentioned in the background section, the present invention provides a mounting structure for a multi-head grooving tool.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a mounting structure for a multi-head grooving tool, comprising a main body, a conveyor belt, and a rotating assembly, and further comprising:
[0007] The fixing mechanism is located at the top of the main body;
[0008] The fixing mechanism includes a slide rail fixedly connected to the top of the main body. A mounting bracket is slidably fitted on the surface of the slide rail. A rotating shell is rotatably connected inside the mounting bracket. A tool body is inserted between the rotating shell and the rotating assembly. A slot is provided on the surface of the tool body. An elastic element is fixedly installed inside the rotating shell. A connecting block is fixedly installed at one end of the elastic element. An insert block located inside the tool body is fixedly installed on one side of the connecting block.
[0009] Release assembly, which is located inside the rotating housing;
[0010] The driving mechanism is located at the top of the conveyor belt.
[0011] Preferably, the release assembly includes an elastic element two fixedly connected inside the rotating shell, a connecting ring one fixedly installed on the side of the elastic element two near the surface of the connecting block, a connecting ring two located on the outer surface of the rotating shell fixedly installed on the side of the connecting ring one away from the surface of the connecting block, and a squeezing block located inside the connecting block fixedly installed on the other side of the connecting ring one.
[0012] Preferably, it further includes:
[0013] A limiting mechanism is provided on one side of the conveyor belt. The limiting mechanism includes a slider 1 slidably connected inside the conveyor belt. A limiting block located on the outer surface of the conveyor belt is fixedly installed on one side of the slider 1. The slider 1 and the conveyor belt are elastically connected by an elastic element 3. A slide rail 2 is fixedly installed at the top of the main body. The slider 2 is slidably fitted on the surface of the slide rail 2. A steel wire rope is fixedly installed on one side of the limiting block, and one end of the steel wire rope is fixedly connected to one side of the slider 2. A connecting rod is fixedly installed on the other side of the slider 2. A drive plate is fixedly installed at one end of the connecting rod, and the drive plate is fixedly connected to a connecting ring 1. The slider 2 and the slide rail 2 are elastically connected by an elastic element 4.
[0014] Preferably, a positioning plate is fixedly installed on the side of the conveyor belt near the surface of the cutter body, and the positioning plate is longitudinally symmetrical about the center of the mounting frame.
[0015] Preferably, the pushing mechanism includes a fixed cylinder fixedly connected to the top end of the conveyor belt, a sliding rod slidably connected inside the fixed cylinder, the sliding rod and the fixed cylinder being elastically connected by an elastic element, a connecting plate fixedly installed at one end of the sliding rod, an airbag fixedly installed at the top end of the conveyor belt, and the airbag and the fixed cylinder being connected through a connecting pipe.
[0016] Preferably, the top and one side of the conveyor belt are rotatably connected to guide wheels, and steel wire ropes are wound around the surface of the guide wheels. The guide wheels are located on both sides of the mounting frame in groups of three.
[0017] Preferably, a limiting ring is fixedly fitted onto the surface of the rotating shell, and the surface of the limiting ring is fully fitted against the inner wall of the mounting bracket.
[0018] Preferably, the cutter body has a cross groove at one end near the surface of the rotating assembly, and one side of the insert is designed with an inclined surface. The number of inserts is six, and they are arranged in an array inside the rotating shell.
[0019] Preferably, the slider is T-shaped, and the surface of the slider is in contact with the inner wall of the conveyor belt, and one side of the limiting block is a beveled design.
[0020] Preferably, the pressing block and the insert block are both designed with inclined surfaces on opposite sides, and the two inclined surfaces are parallel to each other. The elastic element 2 and the interior of the rotating shell are respectively provided with telescopic rods.
[0021] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0022] (1) By pushing the second connecting ring and the first connecting ring to move, the second elastic element will be stretched when the first connecting ring moves. Then the first connecting ring will drive the extrusion block to slide inside the connecting block and will extrude and push the connecting block to move. The connecting block will drive the insertion block away from the surface of the tool body, thereby canceling the fixation of the tool body. Finally, by pushing the extrusion block, the extrusion block drives the insertion block away from the surface of the tool body, thereby avoiding the use of bolts for fixation, thereby improving the disassembly efficiency and disassembly convenience, and reducing the workload of operators.
[0023] (2) When the connecting ring moves, the connecting ring pushes the drive plate and the connecting rod to move. The connecting rod drives the slider two to slide on the surface of the slide rail two. The moving slider two squeezes the elastic element four. Then the slider two pulls the wire rope to move. The wire rope drives the limit block and the slider one to move. Thus, while canceling the fixation of the tool body, the fixation of the mounting bracket is also canceled. Finally, the stability of the prism plate slot of the tool body is ensured by the cooperation of the limit block and the positioning plate. Furthermore, the design of canceling the fixation of the mounting bracket by moving the connecting ring improves the maintenance efficiency of the device and avoids the cumbersome and inconvenient nature of the traditional fixing method.
[0024] (3) In this invention, the compressed elastic element 5 pushes the sliding rod, connecting plate and mounting bracket to move, and the mounting bracket will move away from the other end of the tool body. The gas inside the airbag will also re-enter the fixed cylinder, thereby assisting the sliding rod to push the mounting bracket to move smoothly. Finally, the compressed elastic element 5 pushes the mounting bracket away from the other end of the tool body, and can make full use of the additional thrust generated by the gas injected into the airbag to assist the elastic element 5 to push the sliding rod to move smoothly, thereby improving the efficiency and stability of the mounting bracket movement. Attached Figure Description
[0025] Figure 1 This is a schematic diagram of the structure of the present invention;
[0026] Figure 2 This is a schematic diagram of the strabismus device of the present invention;
[0027] Figure 3 This is a cross-sectional view of the mounting bracket of the present invention;
[0028] Figure 4 For the present invention Figure 3 Enlarged diagram of point A in the diagram;
[0029] Figure 5 This is a schematic diagram showing the blade body of the present invention;
[0030] Figure 6 For the present invention Figure 5 Enlarged diagram of point B in the diagram;
[0031] Figure 7 This is a schematic diagram showing the interior of the rotating shell of the present invention;
[0032] Figure 8 This is a cross-sectional view of the connecting block of the present invention;
[0033] Figure 9 This is a schematic diagram illustrating the limiting mechanism of the present invention;
[0034] Figure 10 This is a cross-sectional view of the conveyor belt of the present invention;
[0035] Figure 11 This is a schematic diagram illustrating the actuator of the present invention.
[0036] In the diagram: 1. Main body; 2. Conveyor belt; 3. Rotating assembly; 4. Fixing mechanism; 401. Slide rail one; 402. Mounting bracket; 403. Rotating shell; 404. Elastic element one; 405. Connecting block; 406. Insertion block; 407. Tool body; 5. Release assembly; 501. Elastic element two; 502. Connecting ring one; 503. Connecting ring two; 504. Pressing block; 6. Limiting mechanism; 601. Slider one 602. Limiting block; 603. Elastic component three; 604. Steel wire rope; 605. Slide rail two; 606. Slider two; 607. Connecting rod; 608. Elastic component four; 609. Drive plate; 7. Pushing mechanism; 701. Fixed cylinder; 702. Sliding rod; 703. Connecting plate; 704. Elastic component five; 705. Airbag; 706. Connecting pipe; 8. Guide wheel; 9. Positioning plate; 10. Limiting ring. Detailed Implementation
[0037] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0038] like Figures 1 to 11 As shown, the present invention provides a mounting structure for a multi-head grooving tool, including a main body 1, a conveyor belt 2, and a rotating assembly 3, and further including:
[0039] Fixing mechanism 4 is located at the top of the main body 1;
[0040] The fixing mechanism 4 includes a slide rail 401 fixedly connected to the top of the main body 1. A mounting bracket 402 is slidably fitted on the surface of the slide rail 401. A rotating shell 403 is rotatably connected inside the mounting bracket 402. A tool body 407 is inserted between the rotating shell 403 and the rotating assembly 3. A slot is provided on the surface of the tool body 407. An elastic element 404 is fixedly installed inside the rotating shell 403. A connecting block 405 is fixedly installed at one end of the elastic element 404. An insert block 406 located inside the tool body 407 is fixedly installed on one side of the connecting block 405.
[0041] Release component 5, which is disposed inside the rotating housing 403;
[0042] The driving mechanism 7 is located at the top of the conveyor belt 2.
[0043] like Figure 4 , Figure 6 , Figure 7 and Figure 8 As shown, the release assembly 5 includes an elastic element 2 501 fixedly connected inside the rotating shell 403. A connecting ring 1 502 is fixedly installed on the side of the elastic element 2 501 near the surface of the connecting block 405. A connecting ring 2 503 located on the outer surface of the rotating shell 403 is fixedly installed on the side of the connecting ring 1 502 away from the surface of the connecting block 405. A compression block 504 located inside the connecting block 405 is fixedly installed on the other side of the connecting ring 1 502.
[0044] Using the above scheme: The operator first inserts one end of the tool body 407 into the rotating assembly 3, then pushes the mounting bracket 402 to slide on the surface of the slide rail 401. The other end of the tool body 407 enters the rotating housing 403 and contacts the surface of the insert block 406. The tool body 407 then compresses the insert block 406 and retracts into the rotating housing 403. As the insert block 406 moves, the elastic element 404 is compressed. Then, the groove on the surface of the tool body 407 aligns with the rotating housing 403, and the compressed elastic element 404 pushes the connecting block 405 and... The insert block 406 moves toward the surface of the tool body 407 and enters the slot to fix the tool body 407. After the tool body 407 is fixed, the prism plate to be slotted can be placed at the top of the conveyor belt 2 and the conveyor belt 2 is driven to move the prism plate toward the surface of the tool body 407. During its movement, the rotating component 3 is driven to rotate the tool body 407. The tool body 407 will drive the rotating shell 403 to rotate inside the mounting bracket 402. When the tool body 407 contacts the prism plate, it will then slot its surface.
[0045] When the tool body 407 needs maintenance or replacement after prolonged use, the connecting ring 2 503 can be pushed. The connecting ring 2 503 will drive the connecting ring 1 502 to move inside the rotating housing 403. When the connecting ring 1 502 moves, the elastic element 2 501 will be stretched. Then, the connecting ring 1 502 will drive the pressing block 504 to slide inside the connecting block 405. When the pressing block 504 moves, it will press and push the connecting block 405 to move. The connecting block 405 will drive the insert block 406 away from the surface of the tool body 407, thereby canceling the fixation of the tool body 407. Then, the pushing mechanism 7 will push the mounting bracket 402 away from the surface of the tool body 407. At this time, the operator can disassemble the tool body 407. Finally, by pushing the pressing block 504, the pressing block 504 drives the insert block 406 away from the surface of the tool body 407, thereby avoiding the use of bolts for fixation, thus improving the disassembly efficiency and convenience, and reducing the workload of the operator.
[0046] like Figure 9 and Figure 10 As shown, it also includes:
[0047] The limiting mechanism 6 is located on one side of the conveyor belt 2. The limiting mechanism 6 includes a slider 601 slidably connected inside the conveyor belt 2. A limiting block 602 located on the outer surface of the conveyor belt 2 is fixedly installed on one side of the slider 601. The slider 601 and the conveyor belt 2 are elastically connected by an elastic element 603. A slide rail 605 is fixedly installed at the top of the main body 1. A slider 606 is slidably fitted on the surface of the slide rail 605. A wire rope 604 is fixedly installed on one side of the limiting block 602, and one end of the wire rope 604 is fixedly connected to one side of the slider 606. A connecting rod 607 is fixedly installed on the other side of the slider 606. A drive plate 609 is fixedly installed on one end of the connecting rod 607, and the drive plate 609 is fixedly connected to a connecting ring 502. The slider 606 and the slide rail 605 are elastically connected by an elastic element 608.
[0048] like Figure 5 and Figure 6 As shown, a positioning plate 9 is fixedly installed on the side of the conveyor belt 2 near the surface of the tool body 407, and the positioning plate 9 is longitudinally symmetrical about the center of the mounting frame 402.
[0049] The above solution is adopted: through the design of the limiting mechanism 6, when the mounting bracket 402 moves to the other end of the tool body 407, it will contact the limiting block 602, which will then squeeze and push the limiting block 602 and the slider 601 to move. The moving slider 601 will squeeze the elastic element 603. When the side of the mounting bracket 402 contacts the surface of the positioning plate 9, the compressed elastic element 603 will push the slider 601 and the limiting block 602 to reset. Then, by cooperating with the positioning plate 9, the mounting bracket 402 is fixed, thereby ensuring the stability of the mounting bracket 402.
[0050] When connecting ring 2 503 and connecting ring 1 502 are pushed to move the insert 406 away from the surface of the tool body 407, connecting ring 1 502 will drive the drive plate 609 to move. The drive plate 609 will push the connecting rod 607 to move. The connecting rod 607 will drive slider 2 606 to slide on the surface of slide rail 2 605. The moving slider 2 606 will squeeze the elastic element 4 608. Then slider 2 606 will pull the wire rope 604 to move. The wire rope 604 will drive the limit block 602 and slider 1 601 to move, thereby canceling the movement. While fixing the tool body 407, the fixing of the mounting bracket 402 is also removed. Then, the pushing mechanism 7 can smoothly push the mounting bracket 402 and the rotating shell 403 away from the other end of the tool body 407. Finally, the limiting block 602 cooperates with the positioning plate 9 to ensure the stability of the prism plate slot of the tool body 407. Furthermore, the design of using the moving connecting ring 502 to remove the fixing of the mounting bracket 402 improves the maintenance efficiency of the device and avoids the cumbersome and inconvenient nature of traditional fixing methods.
[0051] like Figure 11 As shown, the pushing mechanism 7 includes a fixed cylinder 701 fixedly connected to the top end of the conveyor belt 2. A sliding rod 702 is slidably connected inside the fixed cylinder 701. The sliding rod 702 and the fixed cylinder 701 are elastically connected by an elastic element 704. A connecting plate 703 is fixedly installed at one end of the sliding rod 702. An air bag 705 is fixedly installed at the top end of the conveyor belt 2. The air bag 705 and the fixed cylinder 701 are connected through a connecting pipe 706.
[0052] Using the above solution: Through the design of the pushing mechanism 7, when the mounting bracket 402 moves towards the other end of the tool body 407, it will drive the connecting plate 703 to move. The connecting plate 703 will push the sliding rod 702 to retract into the fixed cylinder 701. When the sliding rod 702 moves, it will squeeze the elastic element 504, and the sliding rod 702 will squeeze the air inside the fixed cylinder 701. Since the airbag 705 is connected to the fixed cylinder 701 through the connecting pipe 706, the air inside the fixed cylinder 701 will pass through the connecting pipe 706 and enter the airbag 705. As the gas enters, the airbag 705 will expand. Then, the insertion block 406 and the connecting ring 502 will cancel the movement of the tool body. When the tool body 407 and the mounting bracket 402 are fixed, the compressed elastic element 704 pushes the sliding rod 702, the connecting plate 703 and the mounting bracket 402 to move. The mounting bracket 402 will move away from the other end of the tool body 407, and the gas inside the air bag 705 will re-enter the fixed cylinder 701, thereby assisting the sliding rod 702 to smoothly push the mounting bracket 402 to move. Finally, the compressed elastic element 704 pushes the mounting bracket 402 away from the other end of the tool body 407, and can make full use of the additional thrust generated by the gas injected into the air bag 705 to assist the elastic element 704 in pushing the sliding rod 702 to move smoothly, thereby improving the efficiency and stability of the movement of the mounting bracket 402.
[0053] like Figure 10 and Figure 11 As shown, guide wheels 8 are rotatably connected to the top and one side of the conveyor belt 2, and steel wire rope 604 is wound around the surface of the guide wheels 8. The guide wheels 8 are located on both sides of the mounting frame 402 in groups of three.
[0054] The above solution employs the following design: When the wire rope 604 moves, the friction between the guide wheel 8 and the guide wheel 8 will cause the guide wheel 8 to rotate. The guide wheel 8 can limit the direction of movement of the wire rope 604 and protect the wire rope 604. Furthermore, baffles are provided on both sides of the wire rope 604. Even when the mounting frame 402 presses against the limiting block 602 and causes the wire rope 604 to become slack, the wire rope 604 will not detach from the surface of the guide wheel 8, thereby improving the stability and service life of the wire rope 604.
[0055] like Figure 4 , Figure 6 and Figure 7 As shown, a limiting ring 10 is fixedly mounted on the surface of the rotating shell 403, and the surface of the limiting ring 10 is fully in contact with the inner wall of the mounting bracket 402. A cross groove is opened at one end of the tool body 407 near the surface of the rotating assembly 3, and one side of the insert 406 is designed with a bevel. There are six inserts 406, and they are arranged in an array inside the rotating shell 403.
[0056] The above solution employs the following: The limiting ring 10, when the rotating shell 403 rotates, drives the limiting ring 10 to rotate inside the mounting frame 402. Since the surface of the limiting ring 10 fully fits the inner wall of the mounting frame 402, it effectively limits the rotation of the shell 403, preventing positional shifts and improving the stability of the equipment. The insert block 406 and the tool body 407 are designed such that a cross groove is provided at one end of the tool body 407 near the surface of the rotating assembly 3. This allows for proper positioning when inserted into the rotating assembly 3, ensuring alignment between the groove on the surface of the tool body 407 and the insert block 406. This facilitates smooth rotation of the tool body 407 by the rotating assembly 3. Furthermore, the beveled design on one side of the insert block 406 ensures that the tool body 407 can smoothly compress and push the insert block 406 into the rotating shell 403, reducing wear between components and extending the device's service life.
[0057] like Figure 7 , Figure 8 and Figure 10 As shown, slider 601 is a T-shaped design, and the surface of slider 601 is in contact with the inner wall of conveyor belt 2. One side of limit block 602 is a slope design. The opposite sides of extrusion block 504 and insertion block 406 are both sloped, and the two slopes are parallel to each other. The elastic element 501 and the rotating shell 403 are respectively provided with telescopic rods.
[0058] The above solution employs the following design: The slider 601 and the limiting block 602 are designed with a T-shape, ensuring the stability of the limiting block 602's movement. One side of the limiting block 602 is also designed with a slope, ensuring the mounting bracket 402 can smoothly press and push the limiting block 602, improving operational smoothness. The pressing block 504 and the insert block 406 are designed with slopes on opposite sides, reducing resistance between them and ensuring the pressing block 504 presses and pushes the insert block 406. Furthermore, the elastic element 501 and the rotating shell 403 are equipped with telescopic rods, supporting the insert block 406 and the connecting ring 502, thus improving the component's operational stability.
[0059] Working principle and usage process of this invention:
[0060] First, the operator inserts one end of the tool body 407 into the rotating assembly 3, and then pushes the mounting bracket 402 to slide along the guide rail 401. As the mounting bracket 402 moves, it compresses the limiting block 602 and the slider 601, causing the other end of the tool body 407 to enter the rotating shell 403. Next, the tool body 407 compresses the insert block 406 and retracts into the rotating shell 403, compressing the elastic element 404. When the mounting bracket 402 contacts the surface of the positioning plate 9 on one side, it reaches the designated position. The compressed elastic element 404 then pushes the insert block 406. The tool body 407 is inserted into the slot at the end of the tool body 407. At this time, the mounting bracket 402 passes over the elastic element 603. The elastic element 603 will push the slider 601 and the limit block 602 to reset, thereby fixing the tool body 407 and the mounting bracket 402. After the tool body 407 and the mounting bracket 402 are fixed, the prism plate to be slotted can be installed at the top of the conveyor belt 2, and the conveyor belt 2 is driven to move the prism plate toward the surface of the tool body 407. During its movement, the rotating component 3 is driven to rotate the tool body 407, thereby slotting its surface.
[0061] Furthermore, when the mounting bracket 402 moves, it will also drive the connecting plate 703 to move. The connecting plate 703 will push the sliding rod 702 to retract into the fixed cylinder 701. When the sliding rod 702 moves, it will squeeze the elastic element 704 and the sliding rod 702 will squeeze the air inside the fixed cylinder 701, allowing the air to enter the airbag 705. As the air enters, the airbag 705 will expand, which will facilitate the subsequent resetting and disassembly work.
[0062] When the tool body 407 needs maintenance or replacement after long-term use, the connecting ring 2 503 and the connecting ring 1 502 can be moved. When the connecting ring 1 502 moves, the elastic element 2 501 will be stretched. Then the connecting ring 1 502 will drive the pressing block 504 to slide inside the connecting block 405 and will press and push the connecting block 405 to move. The connecting block 405 will drive the insert block 406 away from the surface of the tool body 407, thereby canceling the fixation of the tool body 407.
[0063] At the same time, when the connecting ring 502 moves, the connecting ring 502 will push the drive plate 609 and the connecting rod 607 to move. The connecting rod 607 will drive the slider 606 to slide on the surface of the slide rail 605. The moving slider 606 will squeeze the elastic element 608. Then the slider 606 will pull the wire rope 604 to move. The wire rope 604 will drive the limit block 602 and the slider 601 to move. Thus, while canceling the fixation of the tool body 407, the fixation of the mounting bracket 402 will also be automatically canceled.
[0064] Furthermore, as the mounting bracket 402 and the tool body 407 are no longer restricted, the compressed elastic element 704 will push the sliding rod 702, the connecting plate 703, and the mounting bracket 402 to move. The mounting bracket 402 will move away from the other end of the tool body 407, and the gas inside the airbag 705 will re-enter the fixed cylinder 701, thereby assisting the sliding rod 702 to smoothly push the mounting bracket 402 to move, forming a misalignment to prevent the insert block 406 from resetting and locking in the slot at the end of the tool body 407. At this time, the operator can quickly and automatically disassemble the tool body 407 and finally complete the operation process.
[0065] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0066] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A mounting structure for a multi-head grooving tool, comprising a main body (1), a conveyor belt (2), and a rotating assembly (3), characterized in that, Also includes: A fixing mechanism (4) is located at the top of the main body (1); The fixing mechanism (4) includes a slide rail (401) fixedly connected to the top of the main body (1). A mounting bracket (402) is slidably fitted on the surface of the slide rail (401). A rotating shell (403) is rotatably connected inside the mounting bracket (402). A tool body (407) is inserted between the rotating shell (403) and the rotating assembly (3). A slot is opened on the surface of the tool body (407). An elastic element (404) is fixedly installed inside the rotating shell (403). A connecting block (405) is fixedly installed at one end of the elastic element (404). An insert block (406) located inside the tool body (407) is fixedly installed on one side of the connecting block (405). Release assembly (5), which is disposed inside the rotating housing (403); The driving mechanism (7) is located at the top of the conveyor belt (2).
2. The mounting structure for a multi-head grooving tool according to claim 1, characterized in that: The release assembly (5) includes an elastic element two (501) fixedly connected inside the rotating shell (403). A connecting ring one (502) is fixedly installed on the side of the elastic element two (501) near the surface of the connecting block (405). A connecting ring two (503) located on the outer surface of the rotating shell (403) is fixedly installed on the side of the connecting ring one (502) away from the surface of the connecting block (405). A squeezing block (504) located inside the connecting block (405) is fixedly installed on the other side of the connecting ring one (502).
3. The mounting structure for a multi-head grooving tool according to claim 1, characterized in that, Also includes: A limiting mechanism (6) is provided on one side of the conveyor belt (2). The limiting mechanism (6) includes a slider (601) slidably connected inside the conveyor belt (2). A limiting block (602) located on one side of the outer surface of the conveyor belt (2) is fixedly installed on one side of the slider (601). The slider (601) and the conveyor belt (2) are elastically connected by an elastic element (603). A slide rail (605) is fixedly installed at the top of the main body (1). The slider (602) is slidably fitted on the surface of the slide rail (605). (606) A steel wire rope (604) is fixedly installed on one side of the limiting block (602), and one end of the steel wire rope (604) is fixedly connected to one side of the slider two (606). A connecting rod (607) is fixedly installed on the other side of the slider two (606). A drive plate (609) is fixedly installed on one end of the connecting rod (607), and the drive plate (609) is fixedly connected to the connecting ring one (502). The slider two (606) and the slide rail two (605) are elastically connected through the elastic element four (608).
4. The mounting structure for a multi-head grooving tool according to claim 1, characterized in that: A positioning plate (9) is fixedly installed on the side of the conveyor belt (2) near the surface of the tool body (407), and the positioning plate (9) is longitudinally symmetrical about the center of the mounting frame (402).
5. The mounting structure for a multi-head grooving tool according to claim 1, characterized in that: The pushing mechanism (7) includes a fixed cylinder (701) fixedly connected to the top end of the conveyor belt (2). A sliding rod (702) is slidably connected inside the fixed cylinder (701). The sliding rod (702) and the fixed cylinder (701) are elastically connected by an elastic element (704). A connecting plate (703) is fixedly installed at one end of the sliding rod (702). An airbag (705) is fixedly installed at the top end of the conveyor belt (2). The airbag (705) and the fixed cylinder (701) are connected by a connecting pipe (706).
6. The mounting structure for a multi-head grooving tool according to claim 1, characterized in that: The top and one side of the conveyor belt (2) are rotatably connected to guide wheels (8), and steel wire rope (604) is wound around the surface of the guide wheels (8). The guide wheels (8) are located on both sides of the mounting frame (402) in groups of three.
7. The mounting structure for a multi-head grooving tool according to claim 1, characterized in that: The surface of the rotating shell (403) is fixedly fitted with a limiting ring (10), and the surface of the limiting ring (10) is fully in contact with the inner wall of the mounting bracket (402).
8. The mounting structure for a multi-head grooving tool according to claim 1, characterized in that: The cutter body (407) has a cross groove at one end near the surface of the rotating assembly (3), and one side of the insert (406) is designed with a bevel. There are six inserts (406) and they are arranged in an array inside the rotating shell (403).
9. The mounting structure for a multi-head grooving tool according to claim 3, characterized in that: The slider (601) is a T-shaped design, and the surface of the slider (601) is in contact with the inner wall of the conveyor belt (2). One side of the limiting block (602) is a sloping design.
10. The mounting structure for a multi-head grooving tool according to claim 2, characterized in that: The pressing block (504) and the insert block (406) are both designed with inclined surfaces on opposite sides, and the two inclined surfaces are parallel to each other. The elastic element 2 (501) and the rotating shell (403) are respectively provided with telescopic rods inside.