Chip groove processing equipment for woodworking drill and operation method thereof

By designing a combination of support blocks, multiple clamping end devices, and horizontal moving devices, automated multi-piece processing of woodworking drill chip removal grooves was achieved, solving the problem that existing equipment could only process single pieces and improving processing efficiency.

CN117506673BActive Publication Date: 2025-10-28YUEQING YUSHENG TOOLS
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Patent Information

Application Number
CN202311553819.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-11-21
Publication Date
2025-10-28
Estimated Expiration
2043-11-21

AI Technical Summary

Technical Problem

Existing woodworking drill chip removal equipment can only install one workpiece at a time, resulting in low processing efficiency and an inability to efficiently process multiple workpieces.

Method used

A device comprising a support block, a multi-clamping end device, a horizontal moving device, and a chip removal groove processing device is designed. The multi-clamping end device clamps several workpieces to be processed, and the horizontal moving device moves the chip removal groove processing device to realize the automated processing of multiple workpieces to be processed.

Benefits of technology

It improves the efficiency of woodworking chip removal groove processing, enabling automated sequential processing of multiple parts and increasing overall processing efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention belongs to the technical field of woodworking drilling equipment, and particularly relates to a chip removal groove processing device for woodworking drills, comprising: a support block disposed on the ground; a multi-clamping end device disposed on the support block; a support frame with its fixed end disposed on the ground and its support end extending above the output end of the multi-clamping end device; a horizontal moving device with its fixed end disposed on the support end of the support frame and its output end facing the multi-clamping end device; and a chip removal groove processing device disposed on the output end of the horizontal moving device; wherein, the multi-clamping end device is used to clamp several workpieces to be processed, the horizontal moving device is used to move the chip removal groove processing device above the multi-clamping end device, and the chip removal groove processing device is used to process the chip removal grooves on the workpieces to be processed; the beneficial effects of this invention are: automatic chip removal groove processing and chip removal groove depth processing can improve the chip removal groove processing efficiency.
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Description

Technical Field

[0001] This invention relates to the field of woodworking drill processing equipment technology, and in particular to a chip removal groove processing equipment for woodworking drills and its operating method. Background Technology

[0002] The processing of a woodworking drill consists of three steps. The first step is to process the cylindrical material into a tool holder as the workpiece to be processed. The second step is to put the workpiece into a chip removal groove processing device to process several chip removal grooves. The final step is to process the workpiece with the chip removal grooves into a cutting edge.

[0003] In existing technologies, most chip conveyor processing equipment can only install one workpiece at a time for processing. When the next workpiece needs to be processed, a new workpiece must be installed, which results in slow processing efficiency and reduced work efficiency. Summary of the Invention

[0004] In view of the shortcomings of the existing technology, the purpose of this invention is to provide a chip removal groove processing device for woodworking drills and its operation method to solve the above problems.

[0005] In view of this, the present invention provides a chip removal groove processing device for a woodworking drill, comprising:

[0006] Support blocks are installed on the ground;

[0007] A multi-clamping end device is mounted on the support block;

[0008] The support frame has its fixed end set on the ground and its support end extending above the output end of the multi-clamping end device;

[0009] The horizontal moving device has its fixed end set on the support end of the support frame, and its output end facing the multi-clamping end device.

[0010] And a chip removal groove processing device, which is set on the output end of the horizontal moving device;

[0011] The multi-clamping end device is used to clamp several workpieces to be processed, the horizontal moving device is used to move the chip removal groove processing device above the multi-clamping end device, and the chip removal groove processing device is used to process the chip removal groove of the workpieces to be processed.

[0012] By adopting the above technical solution, the setting of the support block enables the installation of the multi-clamping end device. The setting of the support frame enables the installation of the horizontal moving device. The setting of the horizontal moving device enables the chip removal groove processing device to move to any position on the horizontal plane. The setting of the chip removal groove processing device enables the workpiece to be processed to have a chip removal groove. First, several workpieces to be processed are placed on the clamping end of the multi-clamping end device, which enables subsequent automatic processing. Then, the horizontal moving device is started, which moves the chip removal groove processing device above the first workpiece to be processed by the multi-clamping end device, allowing the chip removal groove processing device to accurately process the workpiece. Then, the multi-clamping end device and the chip removal groove processing device are started simultaneously. First, the multi-clamping end device raises the workpiece, and then the chip removal groove processing device processes the chip removal groove on the workpiece. At this time, a single workpiece is completed. Finally, the above steps are repeated to continuously process the subsequent workpieces until all workpieces are processed. By automatically completing the sequential processing of all workpieces, the processing efficiency can be greatly improved.

[0013] In the above technical solution, the further multi-clamping end device includes:

[0014] The telescopic cylinder has its fixed end located at the top of the support block and its output end extending toward the chip removal groove processing device.

[0015] A placement plate is installed on the output end of the telescopic cylinder;

[0016] And several rotating clamping mechanisms, with fixed ends evenly distributed at intervals on the top of the placement plate, and clamping ends facing one end of the chip removal groove processing device;

[0017] Among them, several of the said rotating clamping mechanisms are used to clamp the tool holder end so that the tool tip end extends toward the chip removal groove processing device.

[0018] In this technical solution, the telescopic cylinder enables the placement plate to rise and fall. The placement plate can be equipped with several rotating clamping mechanisms, which can clamp several workpieces to be processed and make them rotate. Through the cooperation of the telescopic cylinder and the rotating clamping mechanism of the placement plate, the workpieces to be processed can be moved into the chip removal groove processing device and rotated upward to process the chip removal groove.

[0019] In the above technical solution, the further rotary clamping mechanism includes:

[0020] The first rotating motor has its fixed end located at the top of the placement plate and its output end extending toward the chip removal groove processing device.

[0021] The hollow tube has one open end connected to the output end of the first rotating motor, and the other end extends away from the first rotating motor.

[0022] The infrared detection structure has the transmitting end and the receiving end respectively located on both sides of the inner wall of the hollow tube;

[0023] And two clamping cylinders, with the fixed ends respectively set on the two side walls of the hollow tube, and the output ends both penetrating into the hollow tube;

[0024] The hollow tube has a through hole on its outer wall for the output end of the clamping cylinder to pass through.

[0025] In this technical solution, the hollow tube can be rotated by the first rotating motor, thereby indirectly causing the workpiece to be processed to rotate. The infrared detection structure can automatically clamp the workpiece when it moves into the hollow tube. The clamping cylinder can clamp the workpiece.

[0026] In the above technical solution, the further chip removal groove processing device includes:

[0027] The connecting rod has one end connected to the moving end of the horizontal moving device and the other end extending toward the multi-clamping end device;

[0028] Mounting plate, connected to the end of the connecting rod away from the horizontal moving device;

[0029] And the chip removal groove cutting mechanism, with the fixed end set on the mounting plate and the output end extending toward the multi-clamping end device;

[0030] The chip removal groove cutting mechanism is used to cut out chip removal grooves for the workpiece to be processed.

[0031] In this technical solution, the mounting plate can be indirectly moved by the horizontal moving device through the setting of the connecting rod. The chip removal groove cutting mechanism can be installed through the setting of the mounting plate. The chip removal groove cutting mechanism can be used to cut the workpiece to be processed.

[0032] In the above technical solution, the chip removal groove cutting mechanism further includes:

[0033] The mounting bucket has a closed end connected to the end of the mounting plate away from the connecting rod, and an open end extending toward the multi-clamping end device.

[0034] The anti-rotation drive motor has its fixed end located at the end of the mounting plate away from the mounting barrel, and its output end is connected to the mounting plate and inside the mounting barrel.

[0035] The rotating disk is connected at one end to the output end of the anti-rotation drive motor, and its outer side wall is attached to the inner wall of the mounting barrel. The rotating disk is provided with a number of vortex-shaped holes arranged in a circumferential array around the central axis of the rotating disk.

[0036] And an adjustable diameter cutting structure, with the drive end passing through several vortex holes and the cutting end extending out of the mounting barrel;

[0037] When the anti-rotation drive motor drives the rotating disk, the cutting diameter of the vortex hole drive adjustable diameter cutting structure changes, thereby changing the depth and width of the chip removal groove.

[0038] In this technical solution, the anti-rotation drive motor enables the rotary disk to rotate, and the mounting bucket ensures stable rotation of the rotary disk. The rotation of the rotary disk drives the adjustable diameter cutting structure to change the cutting diameter, thereby altering the depth and width of the chip removal groove. This allows for the processing of different woodworking drills. The adjustable diameter cutting structure enables the cutting of the workpiece.

[0039] In the above technical solution, the further adjustable diameter cutting structure includes:

[0040] A drive disk is attached to the bottom of the rotating disk, and the drive disk is provided with a number of strip holes arranged circumferentially around the central axis of the limiting disk.

[0041] The limiting block is connected at one end to the outer wall of the drive disc and at the other end to the inner wall of the mounting barrel.

[0042] Several drive rods, one end of which passes through a strip-shaped hole and a spiral hole respectively, and the other end extends out of the mounting barrel;

[0043] Several cutting components are respectively set on the end of the drive rod away from the drive disk;

[0044] And a limiting component, which is located at the end of the mounting barrel away from the mounting plate;

[0045] The cutting assembly is used to cut the chip groove of the workpiece, the limiting assembly is used to increase the stability of the cutting assembly, the outer wall of the drive rod is provided with a limiting ring that slides in the inner wall of the strip hole, and the inner wall of the strip hole is provided with a limiting groove for the limiting ring to slide.

[0046] In this technical solution, the drive rod can move along the length of the slot by the cooperation between the drive disk and the slot, thereby changing the cutting depth and width of several cutting components. The limit block can prevent the drive disk from rotating, so that the drive rod can move when the rotary disk rotates. The limit component can stably cut the workpiece by the cutting components. The limit ring and the limit groove can prevent the drive rod from coming out.

[0047] In the above technical solution, the further cutting component includes:

[0048] Several mounting blocks are respectively installed on the end of the drive rod away from the drive disc, and each of the mounting blocks has a mounting groove on the opposite side;

[0049] Several rotating rods are rotatably connected to the two side walls of the mounting groove;

[0050] Several cutting grinding wheels are respectively fitted onto several rotating rods, with one end of the cutting grinding wheel located inside the mounting groove and the other end located outside;

[0051] And a second rotating motor, with its fixed end embedded in the side wall of the mounting block and its output end connected to the rotating rod;

[0052] The mounting block is located within the limiting component.

[0053] In this technical solution, the second rotating motor enables the rotating rod to rotate, which in turn drives the cutting grinding wheel to rotate and perform cutting.

[0054] In the above technical solution, the further limiting component includes:

[0055] The limiting tube has its end abutting against the end of the mounting barrel that is away from the mounting plate;

[0056] Threaded tube, threaded connection between the limiting tube and the outer wall of the mounting barrel;

[0057] The inner wall of the limiting tube is provided with several limiting grooves for the installation block to move, and the two side walls of the limiting grooves are attached to the outer side wall of the installation block.

[0058] In this technical solution, a threaded tube is used to stably support the limiting tube, and the limiting groove is set so that the mounting block can only move along the limiting groove, thereby making the mounting block stable.

[0059] The above technical solution further includes the following steps:

[0060] S1: First, place several parts to be processed on the clamping ends of the multi-clamping end device;

[0061] S2: Start the horizontal moving device, which moves the chip removal groove processing device above the first workpiece to be processed by the multi-clamping end device.

[0062] S3: Simultaneously start the multi-clamping end device and the chip removal groove processing device. First, the multi-clamping end device rotates and lifts the workpiece to be processed, and then the chip removal groove processing device processes the chip removal groove on the workpiece to be processed.

[0063] S4: Process several parts to be processed successively, following the same steps as S2 and S3.

[0064] In this technical solution, by setting S1, several parts to be processed can be placed so that subsequent processing can continue. By setting S2, the chip removal groove processing device can be moved above the parts to be processed. By setting S3, a chip removal groove can be processed from one part to be processed. By setting S4, multiple parts to be processed can be continuously processed. Attached Figure Description

[0065] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0066] Figure 1 This is a schematic diagram of a woodworking drill structure according to a specific embodiment of the present invention;

[0067] Figure 2 This is a schematic diagram of the processing equipment structure according to a specific embodiment of the present invention;

[0068] Figure 3 This is a partial cross-sectional view of the swivel clamping mechanism according to a specific embodiment of the present invention;

[0069] Figure 4 This is a specific embodiment of the present invention. Figure 2 Enlarged view of point A in the middle;

[0070] Figure 5 This is a cross-sectional view of the cutting assembly according to a specific embodiment of the present invention;

[0071] Figure 6 This is a schematic diagram of the rotating disk structure according to a specific embodiment of the present invention;

[0072] Figure 7 This is a schematic diagram of the drive disk structure according to a specific embodiment of the present invention.

[0073] Reference numerals: 1. Workpiece to be processed; 2. Chip removal groove; 3. Support block; 4. Support frame; 5. Horizontal moving device; 6. Telescopic cylinder; 7. Placement plate; 8. First rotating motor; 9. Hollow tube; 10. Infrared detection structure; 11. Clamping cylinder; 12. Through hole; 13. Connecting rod; 14. Mounting plate; 15. Mounting bucket; 16. Anti-rotation drive motor; 17. Rotary disk; 18. Vortex hole; 19. Drive disk; 20. Strip hole; 21. Limiting block; 22. Drive rod; 23. Limiting ring; 24. Limiting groove; 25. Mounting block; 26. Rotating rod; 27. Cutting wheel; 28. Second rotating motor; 29. ​​Limiting tube; 30. Threaded tube; 31. Limiting groove. Detailed Implementation

[0074] The technical solutions of the embodiments of this application will be clearly described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this application. All other embodiments obtained by those skilled in the art based on the embodiments of this application are within the scope of protection of this application.

[0075] In the description of this application, it should be noted that the terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the exemplary embodiments according to this application. For ease of description, the dimensions of the various parts shown in the drawings are not drawn to actual scale. Techniques, methods, and devices known to those skilled in the art may not be discussed in detail, but where appropriate, such techniques, methods, and devices should be considered part of the specification. In all examples shown and discussed herein, any specific values ​​should be interpreted as merely exemplary and not as limitations. Therefore, other examples of exemplary embodiments may have different values. It should be noted that similar reference numerals and letters in the following drawings denote similar items; therefore, once an item is defined in one drawing, it need not be further discussed in subsequent drawings.

[0076] It should be noted that the terms "first," "second," etc., used in the specification and claims of this application are used to distinguish similar objects and not to describe a specific order or sequence. It should be understood that such data can be interchanged where appropriate so that embodiments of this application can be implemented in orders other than those illustrated or described herein, and the objects distinguished by "first," "second," etc., are generally of the same class and are not limited in number; for example, the first object can be one or more. Furthermore, in the specification and claims, "and / or" indicates at least one of the connected objects, and the character " / " generally indicates an "or" relationship between the preceding and following objects, such as a woodworking drill chip groove processing device and its operating method.

[0077] It should be noted that in the description of this application, the directional terms such as "front, back, up, down, left, right", "horizontal, vertical, horizontal" and "top, bottom" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description. Unless otherwise stated, these directional terms do not indicate or imply that the device or element referred to must have a specific orientation or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation on the scope of protection of this application. The directional terms "inner" and "outer" refer to the inner and outer contours relative to the outline of each component itself.

[0078] It should be noted that, in this application, 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 a process, method, article, or apparatus. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or apparatus that includes that element. Furthermore, it should be noted that the scope of the methods and apparatuses in the embodiments of this application is not limited to performing functions in the order shown or discussed, but may also include performing functions substantially simultaneously or in the reverse order, depending on the functions involved. For example, the described methods may be performed in a different order than described, and various steps may be added, omitted, or combined. Additionally, features described with reference to certain examples may be combined in other examples.

[0079] Example 1:

[0080] This embodiment provides a chip removal groove 2 processing device for a woodworking drill, including:

[0081] Support block 3 is set on the ground;

[0082] A multi-clamping end device is mounted on the support block 3;

[0083] Support frame 4, with its fixed end set on the ground and its supporting end extending above the output end of the multi-clamping end device;

[0084] The horizontal moving device 5 has its fixed end set on the support end of the support frame 4, and its output end is set towards the multi-clamping end device.

[0085] And the chip removal groove 2 processing device is located on the output end of the horizontal moving device 5;

[0086] The multi-clamping end device is used to clamp several workpieces 1 to be processed, the horizontal moving device 5 is used to move the chip removal groove 2 processing device above the multi-clamping end device, and the chip removal groove 2 processing device is used to process the chip removal groove 2 of the workpiece 1 to be processed.

[0087] The installation of support block 3 allows for the installation of the multi-clamping end device. Support frame 4 allows for the installation of horizontal moving device 5. Horizontal moving device 5 allows the chip removal groove 2 processing device to move to any position on the horizontal plane. The chip removal groove 2 processing device allows the workpiece 1 to be processed to have its chip removal groove 2 formed. First, several workpieces 1 are placed on the clamping ends of the multi-clamping end device, enabling subsequent automatic processing. Then, the horizontal moving device 5 is activated, moving the chip removal groove 2 processing device to the multi-clamping end device. Above the first workpiece 1 to be processed by the end device, the chip removal groove 2 processing device can accurately process the workpiece 1. Then, the multi-clamping end device and the chip removal groove 2 processing device are started at the same time. First, the multi-clamping end device raises the workpiece 1, and then the chip removal groove 2 processing device processes the chip removal groove 2 on the workpiece 1. At this time, a single workpiece 1 is completed. Finally, the above steps are repeated to continuously process the subsequent workpieces 1 until all workpieces 1 are processed. By automatically completing the sequential processing of all workpieces, the processing efficiency can be greatly improved.

[0088] Example 2:

[0089] In this embodiment, in addition to the structural features of the aforementioned embodiments, the further multi-clamping end device includes:

[0090] The telescopic cylinder 6 has its fixed end located at the top of the support block 3, and its output end extends toward the chip removal groove 2 processing device.

[0091] Placement plate 7 is set on the output end of telescopic cylinder 6;

[0092] And several rotating clamping mechanisms, with fixed ends evenly distributed at the top of the placement plate 7, and clamping ends facing one end of the chip removal groove 2 processing device;

[0093] Among them, several of the rotary clamping mechanisms are used to clamp the tool holder end so that the tool tip end extends toward the chip removal groove 2 processing device;

[0094] The telescopic cylinder 6 enables the placement plate 7 to rise and fall. The placement plate 7 can be equipped with several rotating clamping mechanisms, which can clamp several workpieces 1 to be processed and make them rotate. Through the cooperation of the telescopic cylinder 6 and the rotating clamping mechanism of the placement plate 7, the workpieces 1 to be processed can be moved into the chip removal groove 2 processing device and rotated upward to process the chip removal groove 2.

[0095] Example 3:

[0096] In this embodiment, in addition to the structural features of the aforementioned embodiments, the further rotary clamping mechanism includes:

[0097] The first rotating motor 8 has its fixed end located at the top of the placement plate 7, and its output end extends toward the chip removal groove 2 processing device.

[0098] The hollow tube 9 has one open end connected to the output end of the first rotating motor 8, and the other end extends away from the first rotating motor 8.

[0099] The infrared detection structure 10 has a transmitting end and a receiving end respectively located on both sides of the inner wall of the hollow tube 9;

[0100] And two clamping cylinders 11, with their fixed ends respectively set on the two side walls of the hollow tube 9, and their output ends penetrating into the hollow tube 9;

[0101] The hollow tube 9 has a through hole 12 on its outer wall for the output end of the clamping cylinder 11 to pass through.

[0102] The first rotating motor 8 enables the hollow tube 9 to rotate, thereby indirectly causing the workpiece 1 to rotate. The infrared detection structure 10 enables automatic clamping when the workpiece 1 moves into the hollow tube 9. The clamping cylinder 11 enables the workpiece 1 to be clamped.

[0103] Example 4:

[0104] In this embodiment, in addition to the structural features of the aforementioned embodiments, the further chip removal groove 2 processing device includes:

[0105] The connecting rod 13 has one end connected to the moving end of the horizontal moving device 5 and the other end extending toward the multi-clamping end device.

[0106] Mounting plate 14 is connected to the end of connecting rod 13 that is away from horizontal moving device 5;

[0107] And the chip removal groove 2 cutting mechanism, the fixed end is set on the mounting plate 14, and the output end extends toward the multi-clamping end device;

[0108] The chip removal groove 2 cutting mechanism is used to cut out the chip removal groove 2 of the workpiece 1 to be processed;

[0109] By setting the connecting rod 13, the mounting plate 14 can be indirectly moved by the horizontal moving device 5. By setting the mounting plate 14, the chip removal groove 2 cutting mechanism can be installed. By setting the chip removal groove 2 cutting mechanism, the workpiece 1 to be processed can be cut.

[0110] Example 5:

[0111] In this embodiment, in addition to the structural features of the aforementioned embodiments, the chip removal groove 2 cutting mechanism further includes:

[0112] The mounting bucket 15 has a closed end connected to the end of the mounting plate 14 away from the connecting rod 13, and an open end extending toward the multi-clamping end device.

[0113] The anti-rotation drive motor 16 has a fixed end located on the end of the mounting plate 14 that is away from the mounting barrel 15, and the output end of the mounting plate 14 is connected to the mounting barrel 15.

[0114] The rotating disk 17 is connected at one end to the output end of the anti-rotation drive motor 16, and its outer side wall is attached to the inner wall of the mounting barrel 15. The rotating disk 17 is provided with a plurality of vortex holes 18 arranged in a circumferential array around the central axis of the rotating disk 17.

[0115] And an adjustable diameter cutting structure, with the drive end passing through several vortex holes 18 and the cutting end extending out of the mounting barrel 15;

[0116] When the anti-rotation drive motor 16 drives the rotary disk 17, the vortex hole 18 drives the adjustable diameter cutting structure to change the cutting diameter, thereby changing the depth and width of the chip removal groove 2.

[0117] The anti-rotation drive motor 16 enables the rotary disk 17 to rotate. The mounting bucket 15 ensures stable rotation of the rotary disk 17. The rotation of the rotary disk 17 drives the adjustable diameter cutting structure to change the cutting diameter, thereby altering the depth and width of the chip removal groove 2. This allows for the processing of different woodworking drills. The adjustable diameter cutting structure enables the cutting of the workpiece 1.

[0118] Example 6:

[0119] In this embodiment, in addition to the structural features of the aforementioned embodiments, the further adjustable diameter cutting structure includes:

[0120] A drive disk 19 is attached to the bottom end of the rotating disk 17. The drive disk 19 is provided with a plurality of strip holes 20 arranged circumferentially around the central axis of the limiting disk.

[0121] The limiting block 21 is connected at one end to the outer wall of the drive disk 19 and at the other end to the inner wall of the mounting barrel 15.

[0122] Several drive rods 22, one end of which passes through the strip hole 20 and the vortex hole 18 respectively, and the other end extends out of the mounting barrel 15;

[0123] Several cutting components are respectively set on the end of the drive rod 22 that is away from the drive disk 19;

[0124] And a limiting component, which is located at one end of the mounting barrel 15 away from the mounting plate 14;

[0125] The cutting assembly is used to cut the chip groove 2 of the workpiece 1, the limiting assembly is used to increase the stability of the cutting assembly, the outer wall of the drive rod 22 is provided with a limiting ring 23 that slides in the inner wall of the strip hole 20, and the inner wall of the strip hole 20 is provided with a limiting groove 24 for the limiting ring 23 to slide.

[0126] By cooperating with the drive disc 19 and the strip hole 20, the drive rod 22 can move along the length direction of the strip hole 20, thereby changing the cutting depth and width of several cutting components. By setting the limit block 21, the drive disc 19 can be prevented from rotating, so that when the rotating disc 17 rotates, it can drive the drive rod 22 to move. By setting the limit component, the cutting components can stably cut the workpiece 1. By cooperating with the limit ring 23 and the limit groove 24, the drive rod 22 can be prevented from coming off.

[0127] Example 7:

[0128] In this embodiment, in addition to the structural features of the aforementioned embodiments, the further cutting component includes:

[0129] A plurality of mounting blocks 25 are respectively installed on one end of the drive rod 22 away from the drive disk 19, and each of the plurality of mounting blocks 25 has a mounting groove on the opposite side;

[0130] Several rotating rods 26 are respectively rotatably connected to the inner walls of the mounting groove on both sides;

[0131] Several cutting grinding wheels 27 are respectively fitted onto several rotating rods 26, with one end of the sidewall of the cutting grinding wheel 27 located in the mounting groove and the other end located outside;

[0132] And a second rotating motor 28, with its fixed end embedded in the side wall of the mounting block 25 and its output end connected to the rotating rod 26;

[0133] The mounting block 25 is confined within the limiting component;

[0134] By setting the second rotating motor 28, the rotating rod 26 can be rotated, and the rotation of the rotating rod 26 drives the cutting grinding wheel 27 to rotate and cut.

[0135] Example 8:

[0136] In this embodiment, in addition to the structural features of the aforementioned embodiments, the further limiting component includes:

[0137] The limiting tube 29 has its end abutting against the end of the mounting barrel 15 that is away from the mounting plate 14;

[0138] Threaded tube 30 is threadedly connected to the outer wall of the limiting tube 29 and the mounting barrel 15;

[0139] The inner wall of the limiting tube 29 is provided with a plurality of limiting grooves 31 for the installation block 25 to move, and the two side walls of the limiting grooves 31 are attached to the outer side wall of the installation block 25.

[0140] The threaded tube 30 is used to stably support the limiting tube 29. The limiting groove 31 is provided so that the mounting block 25 can only move along the limiting groove 31, thereby making the mounting block 25 stable.

[0141] Example 9:

[0142] In this embodiment, in addition to the structural features of the foregoing embodiments, the following steps are further included:

[0143] S1: First, place several workpieces 1 to be processed on the clamping end of the multi-clamping end device;

[0144] S2: Start the horizontal moving device 5. The horizontal moving device 5 moves the chip removal groove 2 processing device above the first workpiece 1 to be processed by the multi-clamping end device.

[0145] S3: Simultaneously start the multi-clamping end device and the chip removal groove 2 processing device. First, the multi-clamping end device rotates and lifts the workpiece 1 to be processed. Then, the chip removal groove 2 processing device processes the chip removal groove 2 on the workpiece 1 to be processed.

[0146] S4: Process several parts 1 to be processed successively, following the steps of S2 and S3;

[0147] By setting S1, several workpieces 1 to be processed can be placed, so that they can be processed continuously. By setting S2, the chip removal groove 2 processing device can be moved above the workpiece 1 to be processed. By setting S3, one workpiece 1 to be processed can be processed into the chip removal groove 2. By setting S4, multiple workpieces 1 to be processed can be processed continuously.

[0148] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A chip removal groove processing device for a woodworking drill, characterized in that, include: Support block (3) is set on the ground; A multi-clamping end device is mounted on the support block (3); The support frame (4) has its fixed end set on the ground and its support end extending above the output end of the multi-clamping device; The horizontal moving device (5) has its fixed end set on the support end of the support frame (4) and its output end facing the multi-clamping end device. And the chip removal groove (2) processing device is set on the output end of the horizontal moving device (5); The multi-clamping end device is used to clamp several workpieces to be processed (1), the horizontal moving device (5) is used to move the chip removal groove (2) processing device to the top of the multi-clamping end device, and the chip removal groove (2) processing device is used to process the chip removal groove (2) of the workpiece (1). The chip removal groove (2) processing device includes: The connecting rod (13) is connected at one end to the moving end of the horizontal moving device (5) and at the other end extends toward the multi-clamping end device. Mounting plate (14) is connected to one end of connecting rod (13) away from horizontal moving device (5); And the chip removal groove (2) cutting mechanism, the fixed end is set on the mounting plate (14), and the output end extends toward the multi-clamping end device; The chip removal groove (2) cutting mechanism is used to cut out the chip removal groove (2) of the workpiece (1) to be processed. The chip removal groove (2) cutting mechanism includes: The mounting bucket (15) has a closed end connected to the end of the mounting plate (14) away from the connecting rod (13), and an open end extending toward the multi-clamping end device. The anti-rotation drive motor (16) has its fixed end located on the end of the mounting plate (14) away from the mounting barrel (15), and its output end is connected to the mounting plate (14) and the mounting barrel (15). The rotating disk (17) is connected at one end to the output end of the anti-rotation drive motor (16), and its outer side wall is attached to the inner wall of the mounting barrel (15). The rotating disk (17) is provided with a plurality of vortex holes (18) arranged in a circumferential array around the central axis of the rotating disk (17). And an adjustable diameter cutting structure, with the drive end passing through several vortex holes (18) and the cutting end extending out of the mounting barrel (15). When the anti-rotation drive motor (16) drives the rotating disk (17), the vortex hole (18) drives the adjustable diameter cutting structure to change the cutting diameter, thereby changing the depth and width of the chip removal groove (2).

2. The chip removal groove processing equipment for a woodworking drill according to claim 1, characterized in that, The multi-clamping end device includes: The telescopic cylinder (6) has its fixed end located at the top of the support block (3) and its output end extending toward the chip removal groove (2) processing device; Placement plate (7) is set on the output end of telescopic cylinder (6); And several rotating clamping mechanisms, with fixed ends evenly distributed at the top of the placement plate (7), and clamping ends set towards one end of the chip removal groove (2) processing device; Among them, several of the said rotary clamping mechanisms are used to clamp the tool holder end so that the tool tip end extends toward the chip removal groove (2) processing device.

3. The chip removal groove processing equipment for a woodworking drill according to claim 2, characterized in that, The rotary clamping mechanism includes: The first rotating motor (8) has its fixed end set at the top of the placement plate (7) and its output end extends toward the chip removal groove (2) processing device; The hollow tube (9) has one end open and connected to the output end of the first rotating motor (8), and the other end extends away from the first rotating motor (8); The infrared detection structure (10) has a transmitting end and a receiving end respectively located on both sides of the inner wall of the hollow tube (9); And two clamping cylinders (11), with the fixed ends respectively set on the two side walls of the hollow tube (9), and the output ends both penetrating into the hollow tube (9); The hollow tube (9) has a through hole (12) on its outer wall for the output end of the clamping cylinder (11) to pass through.

4. The chip removal groove processing equipment for a woodworking drill according to claim 1, characterized in that, The adjustable diameter cutting structure includes: The drive disk (19) is attached to the bottom of the rotating disk (17). The drive disk (19) is provided with a number of strip holes (20) arranged in a circumferential manner around the central axis of the limiting disk. The limiting block (21) is connected at one end to the outer wall of the drive disk (19) and at the other end to the inner wall of the mounting barrel (15); Several drive rods (22) have one end passing through the strip hole (20) and the vortex hole (18) respectively, and the other end extending out of the mounting barrel (15). Several cutting components are respectively set on one end of the drive rod (22) away from the drive disk (19); And a limiting component, which is located at one end of the mounting barrel (15) away from the mounting plate (14); The cutting assembly is used to cut the chip groove (2) of the workpiece (1), the limiting assembly is used to increase the stability of the cutting assembly, the outer wall of the drive rod (22) is provided with a limiting ring (23) that slides in the inner wall of the strip hole (20), and the inner wall of the strip hole (20) is provided with a limiting groove (24) for the limiting ring (23) to slide.

5. The chip removal groove processing equipment for a woodworking drill according to claim 4, characterized in that, The cutting assembly includes: A plurality of mounting blocks (25) are respectively installed on one end of the drive rod (22) away from the drive disk (19), and each of the mounting blocks (25) has a mounting groove on the opposite side; Several rotating rods (26) are respectively rotatably connected to the inner walls of the mounting groove; Several cutting grinding wheels (27) are respectively fitted on several rotating rods (26), and one end of the cutting grinding wheel (27) is located in the mounting groove, while the other end is located outside; And a second rotating motor (28), the fixed end of which is embedded in the side wall of the mounting block (25), and the output end is connected to the rotating rod (26); The mounting block (25) is located within the limiting component.

6. The chip removal groove processing equipment for a woodworking drill according to claim 4, characterized in that, The limiting component includes: The limiting tube (29) has its end abutting against the end of the mounting barrel (15) away from the mounting plate (14); Threaded tube (30) is threaded to the outer wall of the limiting tube (29) and the mounting barrel (15); The inner wall of the limiting tube (29) is provided with several limiting grooves (31) for the installation block (25) to move, and the two side walls of the limiting grooves (31) are attached to the outer side wall of the installation block (25).

7. An operating method for a chip removal groove processing device for a woodworking drill as described in claim 1, characterized in that, Includes the following steps: S1: First, place several workpieces (1) to be processed on the clamping end of the multi-clamping end device; S2: Start the horizontal moving device (5), and the horizontal moving device (5) moves the chip removal groove (2) processing device to above the first workpiece (1) to be processed by the multi-clamping end device; S3: Simultaneously start the multi-clamping end device and the chip removal groove (2) processing device. First, the multi-clamping end device rotates and lifts the workpiece (1) to be processed. Then, the chip removal groove (2) processing device processes the chip removal groove (2) on the workpiece (1). S4: Process several parts to be processed in succession, following the steps of S2 and S3.

Citation Information

Patent Citations

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