Whirl mill cutter head

By introducing radial and circumferential adjustment components to support the cutting tool on the cyclone milling cutter head, the vibration problem caused by insufficient support in the prior art is solved, the thread surface quality and structural strength are improved, and the tool position adjustment is simplified.

CN224526066UActive Publication Date: 2026-07-21FOSHAN YUNFENG PRECISION MACHINERY
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
FOSHAN YUNFENG PRECISION MACHINERY
Filing Date
2025-08-08
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

When the existing cyclone milling cutter head's fine-tuning mechanism adjusts the position of the forming cutter along the radial direction of the cutter head, insufficient support is provided, resulting in a gap between the forming cutter and the cutter head. This causes significant vibration during the cutting process, affecting the surface quality of the workpiece's threads.

Method used

The tool is supported in two directions by using radial and circumferential adjustment components to eliminate the gap between the tool and the body. The tool is fixed by adjusting the radial and circumferential positions, which reduces vibration and improves the quality of the thread surface.

Benefits of technology

It effectively reduces tool vibration during the cutting process, improves the quality of the workpiece thread surface, and enhances the structural strength of the main body, avoiding the impact of assembly deviations caused by tool head disassembly and assembly on cutting accuracy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a kind of whirling milling cutter head, belong to lathe processing technical field, due to circumferential adjusting member or circumferential adjusting groove exists circumferential slope, change the position of circumferential adjusting member in up-down direction makes that circumferential adjusting member can promote tool to move;Due to radial adjusting member or radial adjusting groove exists radial slope, subsequently by changing the position of radial adjusting member in up-down direction makes that radial adjusting member can promote tool to move;Loosen locking member so that tool can be horizontally slid in mounting groove, after the position of tool is fixed by locking locking member after adjusting the position of tool by radial adjusting member and circumferential adjusting member, and radial adjusting member and circumferential adjusting member abut tool in two directions, i.
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Description

Technical Field

[0001] This utility model relates to the field of machine tool processing technology, and in particular to a cyclone milling cutter disc. Background Technology

[0002] Whirl milling is a high-speed thread milling device used with conventional lathes. It is a thread machining method that uses carbide forming cutters mounted on a high-speed rotating cutter head to mill threads from a workpiece. Currently, whirl milling cutters typically have two or more forming cutters mounted on the cutter head, and each cutting cutter has a fine-tuning mechanism to adjust its position to ensure consistent cutting depth. However, existing fine-tuning mechanisms adjust the cutting cutter position radially along the cutter head. This results in insufficient support for the cutting cutters, and the gap between the cutting cutter and the cutter head makes the cutting cutter prone to significant vibration during milling, leading to a decrease in the surface quality of the threads. Utility Model Content

[0003] This invention aims to solve at least one of the technical problems existing in the prior art. To this end, this invention proposes a cyclone milling cutter disc, in which radial and circumferential adjustment components support the cutter in two directions, thereby eliminating the gap between the cutter and the body, helping to reduce vibration of the cutter during cutting, and helping to improve the surface quality of the threaded parts of the workpiece.

[0004] The cyclone milling cutter disc according to an embodiment of the present utility model includes:

[0005] The main body has a through-hole in the middle, and a mounting groove is provided on the top of the main body. The mounting groove is located around the machining hole. A radial adjustment groove is provided on the side of the mounting groove away from the machining hole. A circumferential adjustment groove is provided on the side of the mounting groove along the circumference of the main body.

[0006] The cutting tool is horizontally slidably positioned in the mounting groove;

[0007] A locking element that detachably connects the cutting tool to the body;

[0008] A radial adjustment member is slidably connected to the radial adjustment groove, the radial adjustment member abuts against the cutting tool, the radial adjustment member and / or the radial adjustment groove are provided with a radial slope, the radial slope gradually tilts from top to bottom towards the mounting groove or the radial slope gradually tilts from top to bottom away from the mounting groove, the radial adjustment member adjusts its position in the vertical direction to change the horizontal distance between the radial adjustment member and the cutting tool;

[0009] A circumferential adjusting member is slidably connected to the circumferential adjusting groove. The circumferential adjusting member abuts against the cutting tool. The circumferential adjusting member and / or the circumferential adjusting groove are provided with a circumferential inclined surface. The circumferential inclined surface gradually tilts from top to bottom towards the mounting groove or gradually tilts from top to bottom away from the mounting groove. The position of the circumferential adjusting member is adjusted in the vertical direction to change the horizontal distance between the circumferential adjusting member and the cutting tool.

[0010] The cyclone milling cutter disc according to the embodiments of this utility model has at least the following beneficial effects: Because the circumferential adjusting member or the circumferential adjusting groove has a circumferential inclined surface, changing the position of the circumferential adjusting member in the vertical direction allows the circumferential adjusting member to push the tool to move; because the radial adjusting member or the radial adjusting groove has a radial inclined surface, subsequently changing the position of the radial adjusting member in the vertical direction allows the radial adjusting member to push the tool to move; loosening the locking member allows the tool to slide horizontally in the mounting groove; after adjusting the position of the tool by the radial adjusting member and the circumferential adjusting member, locking the locking member fixes the position of the tool, while the radial adjusting member and the circumferential adjusting member abut against the tool in two directions, that is, the radial adjusting member and the circumferential adjusting member support the tool in two directions, thereby eliminating the gap between the tool and the body, which helps to reduce... Minimal tool vibration during cutting helps improve the surface quality of the workpiece's threads. Furthermore, the radial and circumferential adjustment components, which are positioned vertically to change their horizontal distance relative to the tool, reduce the length of the radial and circumferential adjustment grooves excavated on the main body, thereby increasing the structural strength of the main body and preventing excessive vibration during cutting. Moreover, since both the radial and circumferential adjustment components are located on the end face of the main body, and their vertical adjustment eliminates the need to disassemble the tool head for adjustment, users can directly adjust the tool position on the machine tool, avoiding assembly deviations during tool head disassembly and assembly that could affect cutting accuracy.

[0011] According to some embodiments of the present invention, the radial adjustment member is provided with a radial slider and a radial connector. The radial slider is slidably disposed in the radial adjustment groove, and the radial connector is detachably connected to the radial slider and the main body.

[0012] According to some embodiments of the present invention, the radial adjustment groove is provided with a radial connecting hole, the radial connecting hole gradually slopes from top to bottom, the slope direction of the radial connecting hole is parallel to the slope direction of the radial inclined surface, and the radial connector connects to the radial connecting hole.

[0013] According to some embodiments of the present invention, the radial adjustment member and / or the radial adjustment groove are further provided with a conical surface on the side away from the mounting groove. The conical surface extends circumferentially along the radial connecting hole and gradually slopes towards one side of the mounting groove from top to bottom.

[0014] According to some embodiments of the present invention, the circumferential adjusting member is provided with a circumferential slider and a circumferential connecting member. The circumferential slider is slidably disposed in the circumferential adjusting groove, and the circumferential connecting member is detachably connected to the circumferential slider and the main body.

[0015] According to some embodiments of the present invention, the circumferential adjusting groove is provided with a circumferential connecting hole, the circumferential connecting hole gradually slopes from top to bottom, the slope direction of the circumferential connecting hole is parallel to the slope direction of the circumferential inclined surface, and the circumferential connecting member connects to the circumferential connecting hole.

[0016] According to some embodiments of the present invention, the cutting tool is provided with a cutting head, the cutting head extends into the machining hole, and the two opposite sides of the cutting head are respectively provided with a cutting edge and a cutting back, and the circumferential adjustment member abuts against the cutting back.

[0017] According to some embodiments of the present invention, the sidewall of the machining hole is provided with a chip removal groove that runs through the vertical direction, and the cutting edge extends into the chip removal groove.

[0018] According to some embodiments of the present invention, the cutter is in the shape of a triangular prism, and the three sidewalls of the cutter respectively abut against the sidewalls of the radial adjusting member, the circumferential adjusting member, and the mounting groove.

[0019] According to some embodiments of the present invention, the radial adjustment member is in contact with the tool surface, and the circumferential adjustment member is in contact with the tool surface. Attached Figure Description

[0020] Figure 1 This is a schematic diagram of the structure of a cyclone milling cutter disc according to an embodiment of the present invention;

[0021] Figure 2 This is an exploded view of a cyclone milling cutter disc according to an embodiment of the present invention;

[0022] Figure 3 This is an exploded view of a cyclone milling cutter disc according to another embodiment of the present invention;

[0023] Figure 4 This is a top view schematic diagram of a cyclone milling cutter disc according to an embodiment of the present invention;

[0024] Figure 5 yes Figure 4 Schematic diagram of the cross section of AA;

[0025] Figure 6 yes Figure 4 Schematic diagram of cross section of BB.

[0026] Reference numerals: Body 100, Machining hole 110, Chip removal groove 111, Mounting groove 120, Radial adjustment groove 130, Radial connecting hole 131, Circumferential adjustment groove 140, Circumferential connecting hole 141, Tool 200, Tool head 210, Cutting edge 211, Radial adjustment component 300, Radial inclined surface 301, Conical surface 302, Radial slider 310, Circumferential adjustment component 400, Circumferential inclined surface 401, Circumferential slider 410. Detailed Implementation

[0027] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.

[0028] In the description of this utility model, it should be understood that the terms front, back, up, down, axial, circumferential, etc., 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 utility model and simplifying the description, and 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. Therefore, they should not be construed as limitations on this utility model.

[0029] In the description of this utility model, "multiple" means two or more; "greater than," "less than," and "exceeding" are understood to exclude the stated number; "above," "below," and "within" are understood to include the stated number. The use of "first" and "second" in the description is merely for distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly specifying the number of indicated technical features or their sequential relationship.

[0030] In the description of this utility model, it should be noted that terms such as "setting," "installing," and "connecting" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.

[0031] The technical solution of this utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the embodiments described below are some embodiments of this utility model, not all embodiments.

[0032] Cyclone milling is a machining method that uses a forming cutter head on a high-speed rotating cutter head to mill threads. This process is mainly used for machining long external thread workpieces such as lead screws and spiral feed rods, and can also be extended to machining large-diameter internal threads and annular grooves. The equipment uses a special cyclone milling machine or a regular lathe equipped with a cyclone head, and the thread is formed by the low-speed rotation of the workpiece and the high-speed movement of the cutter head.

[0033] A vortex milling cutter head typically mounts multiple cutters, all of which work together to cut the same workpiece, thereby reducing the cutting amount of each cutter and achieving high-speed cutting. However, due to differences in the cutting conditions of each cutter, the wear levels of each cutter vary, and some cutters wear more severely. It is necessary to replace these cutters promptly or adjust their cutting positions to ensure that the cutting amount of each cutter remains consistent, thus preventing severely worn cutters from increasing the cutting amount of other cutters and potentially causing breakage.

[0034] Therefore, existing technologies typically employ fine-tuning mechanisms at multiple tool positions. These mechanisms alter the tool's cutting position by changing its relative position to the workpiece. However, because the tool requires fine-tuning, a gap must exist between the tool and the cutter head to ensure smooth tool adjustment. After the fine-tuning mechanism adjusts the position and locks the tool, the gap between the tool and the cutter head causes significant vibration during cutting, resulting in tool marks or steps on the threaded surface of the workpiece and a decrease in thread surface quality.

[0035] Therefore, this utility model provides a cyclone milling cutter disc, in which radial adjustment and circumferential adjustment components support the cutter in two directions, thereby eliminating the gap between the cutter and the main body, which helps to reduce the vibration of the cutter during the cutting process and helps to improve the surface quality of the thread on the workpiece.

[0036] Reference Figures 1 to 6 As shown, this utility model provides a cyclone milling cutter disc.

[0037] The cyclone milling cutter head includes a main body 100, multiple cutting tools 200, multiple locking components, multiple radial adjustment components 300, and multiple circumferential adjustment components 400.

[0038] The main body 100 is disc-shaped. With the axis of the main body 100 as the relative vertical direction, a machining hole 110 is provided in the middle of the main body 100, which runs vertically through the center. The top surface of the main body 100 is also provided with a plurality of mounting grooves 120. Each mounting groove 120 is triangular and is arranged around the outer periphery of the machining hole 110. The mounting grooves 120 are evenly spaced along the circumference of the machining hole 110. Each mounting groove 120 extends into the machining hole 110 through one corner. A radial adjustment groove 130 is provided on the side wall of each mounting groove 120 away from the machining hole 110. Viewed from a top angle, a circumferential adjustment groove 140 is provided on the side wall of each mounting groove 120 in the counterclockwise direction.

[0039] Each radial adjustment groove 130 has an arc-shaped conical surface 302 on its side wall away from the mounting groove 120. The conical surface 302 gradually slopes from top to bottom towards the mounting groove 120. Each radial adjustment groove 130 has a radial inclined surface 301 on its two side walls that connect with the adjacent mounting groove 120. The radial inclined surface 301 gradually slopes from top to bottom towards the mounting groove 120.

[0040] The bottom wall of each radial adjustment groove 130 is also provided with a radial connecting hole 131 that runs through the vertical direction. The radial connecting hole 131 is a threaded hole. The radial connecting hole 131 gradually tilts from top to bottom toward the mounting groove 120. The axial direction of the radial connecting hole 131, the tilt of the conical surface 302 and the tilt direction of the radial inclined surface 301 are parallel to each other.

[0041] Each circumferential adjustment groove 140 has a circumferential inclined surface 401 on its side wall away from the mounting groove 120. The circumferential inclined surface 401 gradually slopes towards the mounting groove 120 from top to bottom. The bottom wall of each circumferential adjustment groove 140 is also provided with a circumferential connecting hole 141 that runs through the vertical direction. The circumferential connecting hole 141 is a threaded hole. The circumferential connecting hole 141 gradually slopes towards the mounting groove 120 from top to bottom. The axial direction of the circumferential connecting hole 141 is parallel to the slope direction of the circumferential inclined surface 401.

[0042] The inner wall of the machining hole 110 is provided with a plurality of chip removal grooves 111 that run through the vertical direction. The chip removal grooves 111 are evenly distributed around the circumference of the machining hole 110. When viewed from a top angle, each mounting groove 120 has a chip removal groove 111 on one side in the clockwise direction.

[0043] The cutter 200 is shaped like a triangular prism, and its shape matches the shape of the mounting groove 120. Multiple cutters 200 are slidably disposed in multiple mounting grooves 120 in a one-to-one correspondence, and the cutter 200 can slide horizontally in the mounting groove 120.

[0044] Each tool 200 has a locking hole running vertically through its center, and each mounting groove 120 has a locking screw hole on its bottom wall. The locking element is a locking screw. After the locking screw passes through the locking hole, it is screwed into the locking screw hole to fix the tool 200 in the mounting groove 120. The diameter of the locking hole of the tool 200 is larger than the diameter of the locking screw. After the locking screw is loosened, the locking hole of the tool 200 can move horizontally relative to the locking screw to ensure that the tool 200 can be adjusted horizontally in the mounting groove 120.

[0045] A cutting head 210 is provided at one corner of the cutting tool 200. The cutting head 210 extends into the machining hole 110. Viewed from a top angle, the cutting edge 211 is provided on the clockwise side wall of the cutting head 210, and the back of the cutting head 212 is provided on the counterclockwise side wall of the cutting head 210. The side wall of the cutting tool 200 connected to the cutting edge 211 abuts against the clockwise side wall of the mounting groove 120. The cutting edge 211 extends into the chip removal groove 111 adjacent to the clockwise side of the mounting groove 120.

[0046] When the cutting edge 211 extends into the chip removal groove 111, the chips generated after cutting can be discharged upward or downward along the chip removal groove 111, avoiding chip accumulation in the machining hole 110 and preventing chip accumulation from damaging the tool 200.

[0047] Reference Figures 1 to 5 As shown, multiple radial adjustment components 300 are arranged one-to-one in multiple radial adjustment grooves 130, and each radial adjustment component 300 includes a radial slider 310 and a radial connector.

[0048] The radial slider 310 is slidably disposed in the radial adjustment groove 130 in the up-down direction. The side wall of the radial slider 310 away from the mounting groove 120 is provided with a conical surface 302. The two side walls connected to the conical surface 302 are respectively provided with radial inclined surfaces 301. The radial slider 310 extends into the mounting groove 120 towards the side wall of the mounting groove 120 and abuts against the side wall of the tool 200 away from the machining hole 110.

[0049] The radial slider 310 is also provided with a radial through hole that runs through the vertical direction. The axis of the radial through hole coincides with the axis of the radial connecting hole 131. The radial connector is a radial screw, which passes through the radial through hole and is screwed into the radial connecting hole 131.

[0050] Removing the radial connector from the radial connector hole 131 allows for the replacement of the radial slider 310, preventing severe wear of the radial slider 310 from affecting the positioning accuracy of the tool 200.

[0051] The inclined radial connecting hole 131 ensures that the radial slider 310 moves only along the axial direction of the radial connecting hole 131 during the rotation and tightening of the radial connector, thus guaranteeing the movement accuracy of the radial slider 310 and helping to accurately position the tool 200.

[0052] Setting the conical surface 302 can also restrict the movement direction of the radial slider 310, ensuring that the radial slider 310 only moves along the axial direction of the radial connecting hole 131.

[0053] The sidewall of the radial slider 310 contacts the sidewall of the tool 200, increasing the contact area and preventing the radial slider 310 and the tool 200 from colliding and damaging each other.

[0054] Tightening the radial connector causes the radial slider 310 to move downward along the axis of the radial connecting hole 131. Since the axis of the radial connecting hole 131 is inclined from top to bottom towards the mounting groove 120, and the conical surface 302 and the radial inclined surface 301 are inclined from top to bottom towards the mounting groove 120, the downward-moving radial slider 310 gradually shifts towards the mounting groove 120 and pushes the tool 200 towards the machining hole 110.

[0055] Loosening the radial connector causes the radial slider 310 to move upward along the axis of the radial connecting hole 131. Since the axis of the radial connecting hole 131 is inclined from bottom to top away from the mounting groove 120, and the conical surface 302 and the radial inclined surface 301 are inclined from bottom to top away from the mounting groove 120, the upward-moving radial slider 310 gradually shifts away from the mounting groove 120, allowing the tool 200 to slide in the direction of the radial adjustment groove 130 and adjust its position, so as to move the tool 200 away from the machining hole 110.

[0056] Reference Figures 1 to 4 , Figure 6 As shown, multiple circumferential adjustment components 400 are arranged one-to-one in multiple circumferential adjustment slots 140, and each circumferential adjustment component 400 includes a circumferential slider 410 and a circumferential connector.

[0057] The circumferential slider 410 is slidably disposed in the circumferential adjustment groove 140 in the vertical direction. The side wall of the circumferential slider 410 away from the mounting groove 120 is provided with a circumferential inclined surface 401. The circumferential slider 410 extends into the mounting groove 120 towards the side wall of the mounting groove 120 and abuts against the side wall of the tool 200. The circumferential slider 410 abuts against the back of the tool 200, which helps to support the back of the tool 212 and reduce the vibration of the tool head 210.

[0058] The circumferential slider 410 is also provided with a circumferential through hole that runs through the vertical direction. The axis of the circumferential through hole coincides with the axis of the circumferential connecting hole 141. The circumferential connector is a circumferential screw, which passes through the circumferential through hole and is screwed into the circumferential connecting hole 141.

[0059] Removing the circumferential connector from the circumferential connecting hole 141 allows for the replacement of the circumferential slider 410, preventing severe wear of the circumferential slider 410 from affecting the positioning accuracy of the tool 200.

[0060] The inclined circumferential connecting hole 141 ensures that the circumferential slider 410 moves only along the axial direction of the circumferential connecting hole 141 during the rotation and tightening of the circumferential connector, thus guaranteeing the movement accuracy of the circumferential slider 410 and helping to accurately position the tool 200.

[0061] The sidewall of the circumferential slider 410 contacts the sidewall of the tool 200, increasing the contact area and preventing the circumferential slider 410 and the tool 200 from colliding and damaging each other.

[0062] Tightening the circumferential connector causes the circumferential slider 410 to move downward along the axis of the circumferential connecting hole 141. Since the axis of the circumferential connecting hole 141 is inclined from top to bottom towards the mounting groove 120 and the circumferential inclined surface 401 is inclined from top to bottom towards the mounting groove 120, the downward-moving circumferential slider 410 gradually shifts towards the mounting groove 120 and pushes the cutter 200 towards the opposite side wall of the mounting groove 120 and the radial slider 310, thereby pressing the cutter 200.

[0063] Loosening the circumferential connector causes the circumferential slider 410 to move upward along the axis of the circumferential connecting hole 141. Since the axis of the circumferential connecting hole 141 is inclined from bottom to top away from the mounting groove 120, and the circumferential inclined surface 401 is inclined from bottom to top away from the mounting groove 120, the upwardly moving circumferential slider 410 gradually shifts away from the mounting groove 120, allowing the cutter 200 to slide towards the circumferential adjustment groove 140 and adjust its position.

[0064] Because the circumferential adjusting member 400 or the circumferential adjusting groove 140 has a circumferential inclined surface 401, changing the position of the circumferential adjusting member 400 in the vertical direction allows the circumferential adjusting member 400 to push the tool 200 to move; because the radial adjusting member 300 or the radial adjusting groove 130 has a radial inclined surface 301, subsequently changing the position of the radial adjusting member 300 in the vertical direction allows the radial adjusting member 300 to push the tool 200 to move.

[0065] Loosening the locking member allows the tool 200 to slide horizontally in the mounting groove 120. After adjusting the position of the tool 200 by the radial adjustment member 300 and the circumferential adjustment member 400, locking the locking member fixes the position of the tool 200. The radial adjustment member 300 and the circumferential adjustment member 400 abut against the tool 200 in two directions, that is, the radial adjustment member 300 and the circumferential adjustment member 400 support the tool 200 in two directions, thereby eliminating the gap between the tool 200 and the body, which helps to reduce the vibration of the tool 200 during the cutting process and helps to improve the surface quality of the thread on the workpiece.

[0066] Furthermore, the radial adjustment member 300 and the circumferential adjustment member 400 are adjusted in the vertical direction to change their horizontal distance relative to the tool 200, which helps to reduce the length of the radial adjustment groove 130 and the circumferential adjustment groove 140 excavated on the main body 100, thereby improving the structural strength of the main body 100 and preventing the main body 100 from vibrating excessively during the cutting process of the tool 200.

[0067] Furthermore, since both the radial adjustment component 300 and the circumferential adjustment component 400 are located on the end face of the main body 100, and the radial adjustment component 300 and the circumferential adjustment component 400 adjust their positions in the vertical direction to change their horizontal distance relative to the tool 200, there is no need to disassemble the tool head for adjustment. This allows users to directly adjust the position of the tool 200 on the machine tool, avoiding the impact of assembly deviations on cutting accuracy caused by tool head disassembly and assembly.

[0068] The embodiments of the present utility model have been described in detail above with reference to the accompanying drawings. However, the present utility model is not limited to the above embodiments. Within the knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present utility model.

Claims

1. A cyclone milling cutter disc, characterized in that, include: The main body has a through-hole in the middle, and a mounting groove is provided on the top of the main body. The mounting groove is located around the machining hole. A radial adjustment groove is provided on the side of the mounting groove away from the machining hole. A circumferential adjustment groove is provided on the side of the mounting groove along the circumference of the main body. The cutting tool is horizontally slidably positioned in the mounting groove; A locking element that detachably connects the cutting tool to the body; A radial adjustment member is slidably connected to the radial adjustment groove, the radial adjustment member abuts against the cutting tool, the radial adjustment member and / or the radial adjustment groove are provided with a radial slope, the radial slope gradually tilts from top to bottom towards the mounting groove or the radial slope gradually tilts from top to bottom away from the mounting groove, the radial adjustment member adjusts its position in the vertical direction to change the horizontal distance between the radial adjustment member and the cutting tool; A circumferential adjusting member is slidably connected to the circumferential adjusting groove. The circumferential adjusting member abuts against the cutting tool. The circumferential adjusting member and / or the circumferential adjusting groove are provided with a circumferential inclined surface. The circumferential inclined surface gradually tilts from top to bottom towards the mounting groove or gradually tilts from top to bottom away from the mounting groove. The position of the circumferential adjusting member is adjusted in the vertical direction to change the horizontal distance between the circumferential adjusting member and the cutting tool.

2. The cyclone milling cutter disc according to claim 1, characterized in that, The radial adjustment component includes a radial slider and a radial connector. The radial slider is slidably disposed in the radial adjustment groove, and the radial connector is detachably connected to the radial slider and the main body.

3. The cyclone milling cutter disc according to claim 2, characterized in that, The radial adjustment groove is provided with a radial connecting hole, which gradually slopes from top to bottom. The slope direction of the radial connecting hole is parallel to the slope direction of the radial inclined surface. The radial connector connects to the radial connecting hole.

4. The cyclone milling cutter disc according to claim 3, characterized in that, The radial adjusting member and / or the radial adjusting groove are further provided with a conical surface on the side away from the mounting groove. The conical surface extends circumferentially along the radial connecting hole and gradually slopes towards one side of the mounting groove from top to bottom.

5. The cyclone milling cutter disc according to claim 1, characterized in that, The circumferential adjusting component includes a circumferential slider and a circumferential connecting component. The circumferential slider is slidably disposed in the circumferential adjusting groove, and the circumferential connecting component is detachably connected to the circumferential slider and the main body.

6. The cyclone milling cutter disc according to claim 5, characterized in that, The circumferential adjustment groove is provided with a circumferential connecting hole, which gradually slopes from top to bottom. The slope direction of the circumferential connecting hole is parallel to the slope direction of the circumferential inclined surface. The circumferential connector connects to the circumferential connecting hole.

7. The cyclone milling cutter disc according to claim 1, characterized in that, The cutting tool is provided with a cutting head that extends into the machining hole. The two opposite sides of the cutting head are respectively provided with a cutting edge and a cutting back. The circumferential adjustment member abuts against the cutting back.

8. The cyclone milling cutter disc according to claim 7, characterized in that, The sidewall of the machining hole is provided with a chip removal groove that runs through the vertical direction, and the cutting edge extends into the chip removal groove.

9. The cyclone milling cutter disc according to claim 7, characterized in that, The cutting tool is in the shape of a triangular prism, and its three sidewalls respectively abut against the radial adjusting member, the circumferential adjusting member, and the sidewall of the mounting groove.

10. The cyclone milling cutter disc according to claim 1, characterized in that, The radial adjustment member is in contact with the tool face, and the circumferential adjustment member is in contact with the tool face.