CN116237763A - Diameter size precision machining control method for shaft lever part - Google Patents
Diameter size precision machining control method for shaft lever part Download PDFInfo
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- CN116237763A CN116237763A CN202211464472.3A CN202211464472A CN116237763A CN 116237763 A CN116237763 A CN 116237763A CN 202211464472 A CN202211464472 A CN 202211464472A CN 116237763 A CN116237763 A CN 116237763A
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- fixedly connected
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- 238000003754 machining Methods 0.000 claims abstract 6
- 238000003801 milling Methods 0.000 claims abstract 4
- 238000000034 method Methods 0.000 claims abstract 2
- 238000009434 installation Methods 0.000 claims 3
- 230000005540 biological transmission Effects 0.000 abstract 2
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Classifications
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23P—METAL-WORKING NOT OTHERWISE PROVIDED FOR; COMBINED OPERATIONS; UNIVERSAL MACHINE TOOLS
- B23P23/00—Machines or arrangements of machines for performing specified combinations of different metal-working operations not covered by a single other subclass
- B23P23/02—Machine tools for performing different machining operations
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23Q—DETAILS, COMPONENTS, OR ACCESSORIES FOR MACHINE TOOLS, e.g. ARRANGEMENTS FOR COPYING OR CONTROLLING; MACHINE TOOLS IN GENERAL CHARACTERISED BY THE CONSTRUCTION OF PARTICULAR DETAILS OR COMPONENTS; COMBINATIONS OR ASSOCIATIONS OF METAL-WORKING MACHINES, NOT DIRECTED TO A PARTICULAR RESULT
- B23Q1/00—Members which are comprised in the general build-up of a form of machine, particularly relatively large fixed members
- B23Q1/25—Movable or adjustable work or tool supports
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23Q—DETAILS, COMPONENTS, OR ACCESSORIES FOR MACHINE TOOLS, e.g. ARRANGEMENTS FOR COPYING OR CONTROLLING; MACHINE TOOLS IN GENERAL CHARACTERISED BY THE CONSTRUCTION OF PARTICULAR DETAILS OR COMPONENTS; COMBINATIONS OR ASSOCIATIONS OF METAL-WORKING MACHINES, NOT DIRECTED TO A PARTICULAR RESULT
- B23Q11/00—Accessories fitted to machine tools for keeping tools or parts of the machine in good working condition or for cooling work; Safety devices specially combined with or arranged in, or specially adapted for use in connection with, machine tools
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B23—MACHINE TOOLS; METAL-WORKING NOT OTHERWISE PROVIDED FOR
- B23Q—DETAILS, COMPONENTS, OR ACCESSORIES FOR MACHINE TOOLS, e.g. ARRANGEMENTS FOR COPYING OR CONTROLLING; MACHINE TOOLS IN GENERAL CHARACTERISED BY THE CONSTRUCTION OF PARTICULAR DETAILS OR COMPONENTS; COMBINATIONS OR ASSOCIATIONS OF METAL-WORKING MACHINES, NOT DIRECTED TO A PARTICULAR RESULT
- B23Q5/00—Driving or feeding mechanisms; Control arrangements therefor
- B23Q5/22—Feeding members carrying tools or work
- B23Q5/34—Feeding other members supporting tools or work, e.g. saddles, tool-slides, through mechanical transmission
- B23Q5/38—Feeding other members supporting tools or work, e.g. saddles, tool-slides, through mechanical transmission feeding continuously
- B23Q5/40—Feeding other members supporting tools or work, e.g. saddles, tool-slides, through mechanical transmission feeding continuously by feed shaft, e.g. lead screw
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02P—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
- Y02P70/00—Climate change mitigation technologies in the production process for final industrial or consumer products
- Y02P70/10—Greenhouse gas [GHG] capture, material saving, heat recovery or other energy efficient measures, e.g. motor control, characterised by manufacturing processes, e.g. for rolling metal or metal working
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Physics & Mathematics (AREA)
- Optics & Photonics (AREA)
- Jigs For Machine Tools (AREA)
Abstract
The invention provides a diameter size precision machining control method of a shaft lever part, which relates to the technical field of shaft lever part machining and comprises the following operation steps: s1, fixing a part; s2, adjusting a processing position through a processing device; and S3, starting cutting the part through the cutting assembly. According to the invention, the first gear, the second gear, the third gear and the rack are arranged for meshed transmission, so that the transmission precision can be improved, the position adjustment of the mounting block and the cutting assembly is more stable, the first cylinder drives the two clamping plates to move towards the direction close to the supporting arm at the same time, so that the supporting arm can be clamped, the change of the milling depth of the milling cutter in the moving milling process is avoided, the machining error is reduced, and the machining precision is improved.
Description
Technical Field
The invention relates to the technical field of shaft rod part machining, in particular to a diameter size precision machining control method of a shaft rod part.
Background
The shaft lever type workpiece is the most main and basic workpiece in mechanical equipment, is mainly used for supporting a transmission part and transmitting torque, ensures that the workpiece (or a cutter) arranged on a shaft has certain rotation precision, generally uses a milling machine when the shaft lever type workpiece is processed, fixes the shaft lever type workpiece through a tool when the shaft lever type workpiece is processed, drives the shaft lever type workpiece to rotate through the tool, and realizes different punching and milling effects by adjusting the position of a milling cutter.
However, in the prior art, the milling cutter is usually used for milling the part in the moving process, the milling depth of the milling cutter cannot be ensured to be fixed in the moving milling process, and the condition that the contact depth of the milling cutter and the part is changed easily occurs, so that the machining error is large.
Disclosure of Invention
Aiming at the defects of the prior art, the invention provides a diameter size precision machining control method for shaft rod parts, which can effectively solve the problems that the depth of milling of a milling cutter cannot be ensured to be fixed in the moving milling process, the contact depth of the milling cutter and the parts is easy to change, and the machining error is large.
In order to achieve the above purpose, the technical scheme adopted by the invention is as follows:
the diameter size precision machining control method of the shaft lever part specifically comprises the following operation steps:
s1, fixing shaft lever parts to be processed through a tool;
s2, controlling the starting of the processing device through a control center, and adjusting the processing position through a first adjusting component and a second adjusting component in the processing device to accurately control the diameter and the size of processing;
and S3, controlling a cutting assembly in the processing device to start through a control center, cutting and cutting the part, and taking down the part after the processing is finished.
Meanwhile, the invention also discloses a diameter size precision machining control device of the shaft rod part, which comprises a mounting block, wherein the mounting block is connected to the workbench in a sliding manner, a first adjusting component is arranged on one side of the mounting block, a second adjusting component is arranged at the upper end of the mounting block, and a cutting component is arranged at one end of the second adjusting component.
Preferably, two first limit grooves are formed in the upper surface of the workbench, second limit grooves are formed in the top end of the mounting block, two limit blocks corresponding to the first limit grooves are fixedly connected to the bottom end of the mounting block, and the two limit blocks are respectively and slidably connected with the inner walls of the two first limit grooves.
Preferably, the first adjusting component comprises two first fixing blocks and fixing plates, the two fixing plates are fixedly connected to the upper surface of the workbench, racks are fixedly connected to the inner parts of the opposite sides of the two fixing plates respectively, and the two first fixing blocks are fixedly connected to one side of the mounting block.
Preferably, one side of the first fixing block is fixedly connected with a first motor, the output end of the first motor is rotationally connected to one side of the other first fixing block, and a first gear is fixedly sleeved on the output shaft of the first motor.
Preferably, one side of the installation block is fixedly connected with two second fixing blocks below the first fixing block, the two second fixing blocks are internally sleeved with a rotating shaft in a rotating mode, a second gear is fixedly sleeved on the shaft body in the middle of the rotating shaft, the second gear is meshed with the first gear, third gears are fixedly connected with the shaft bodies at two ends of the rotating shaft respectively, and the two third gears are meshed with racks at two sides respectively.
Preferably, the second adjusting component comprises a second motor fixedly installed at one end of the installation block, the output end of the second motor is fixedly connected with a screw rod, the screw rod is rotationally connected inside a second limiting groove, a screw rod sleeve is movably sleeved on the screw rod body, and the screw rod sleeve is slidably connected with the inner wall of the second limiting groove.
Preferably, the top end of the screw rod sleeve is fixedly connected with a supporting arm, and two sides of the supporting arm are respectively and fixedly connected with a antiskid plate.
Preferably, the mounting plates are fixedly connected to two sides of the upper surface of the mounting block respectively, the first air cylinders are fixedly mounted on two sides, away from the mounting plates, of the two mounting plates respectively, the output ends of the two first air cylinders penetrate through the two mounting plates respectively and are fixedly connected with clamping plates, and the two clamping plates are propped against the two antiskid plates respectively.
Preferably, the cutting assembly comprises a rotary cylinder, the rotary cylinder is fixedly arranged at one end of the supporting arm, which is far away from the screw rod sleeve, the output end of the rotary cylinder penetrates through the supporting arm and then is fixedly connected with a mounting seat, and two ends of one side of the mounting seat, which is far away from the output end of the rotary cylinder, are respectively fixedly connected with a milling cutter and a cutting knife.
Compared with the prior art, the invention has the following beneficial effects:
1. the first motor is started through the control center, the first motor drives the first gear to rotate, the first gear is meshed with the second gear, the second gear is enabled to synchronously rotate with the first gear in the opposite direction, the second gear drives the rotating shaft and the third gear to rotate simultaneously, the third gear is meshed with the rack, the third gear is enabled to move on the rack, the installation block is driven to synchronously move, the transmission precision can be improved through the meshed transmission among the first gear, the second gear, the third gear and the rack, the position adjustment of the installation block and the cutting assembly is more stable, and the machining precision is further improved.
2. The second motor is started to drive the screw rod to rotate, cooperation between the screw rod and the screw rod sleeve is adopted, so that the screw rod sleeve moves, relative sliding occurs between the screw rod sleeve and the inner wall of the second limiting groove, stability of the screw rod sleeve in the moving process is improved, the screw rod sleeve drives the supporting arm and the cutting assembly to synchronously move, and then the distance between the cutting assembly and a part can be adjusted.
Drawings
FIG. 1 is a perspective view of the overall structure of the present invention;
FIG. 2 is an enlarged view of the structure of FIG. 1 at D in accordance with the present invention;
FIG. 3 is a schematic top view of the present invention;
FIG. 4 is a perspective view of the cross-sectional structure of FIG. 3 A-A in accordance with the present invention;
FIG. 5 is a perspective view of the cross-sectional structure B-B of FIG. 3 in accordance with the present invention;
fig. 6 is a perspective view of the C-C sectional structure of fig. 3 according to the present invention.
In the figure: 1. a work table; 101. a first limit groove; 2. a first adjustment assembly; 201. a first fixed block; 202. a first motor; 203. a first gear; 204. a second fixed block; 205. a second gear; 206. a rotating shaft; 207. a third gear; 208. a fixing plate; 209. a rack; 3. a second adjustment assembly; 301. a second motor; 302. a screw rod; 303. a screw rod sleeve; 304. a support arm; 305. a cleat; 306. a first cylinder; 307. a mounting plate; 308. a clamping plate; 4. a mounting block; 401. the second limit groove; 402. a limiting block; 5. a cutting assembly; 501. a rotary cylinder; 502. a mounting base; 503. a milling cutter; 504. a cutting knife.
Detailed Description
The technical solutions of the embodiments of the present invention will be clearly and completely described below in conjunction with the embodiments of the present invention, and it is apparent that the described embodiments are only some embodiments of the present invention, not all embodiments. All other embodiments, which can be made by those skilled in the art based on the embodiments of the invention without making any inventive effort, are intended to be within the scope of the invention.
Referring specifically to fig. 1, a method for controlling the diameter dimension precision machining of a shaft rod part specifically includes the following steps:
s1, fixing shaft lever parts to be processed through a tool;
s2, controlling the starting of the processing device through a control center, and adjusting the processing position through a first adjusting component 2 and a second adjusting component 3 in the processing device to accurately control the diameter and the size of processing;
and S3, controlling the cutting assembly 5 in the processing device to start through the control center, cutting and cutting the part, and taking down the part after the processing is finished.
Referring to fig. 1 and fig. 4 specifically, the invention also discloses a diameter dimension precision processing control device for shaft rod parts, which comprises a mounting block 4, wherein the mounting block 4 is slidably connected to a workbench 1, a first adjusting component 2 is arranged on one side of the mounting block 4, a second adjusting component 3 is arranged at the upper end of the mounting block 4, a cutting component 5 is arranged at one end of the second adjusting component 3, two first limit grooves 101 are formed in the upper surface of the workbench 1, a second limit groove 401 is formed in the top end of the mounting block 4, two limit blocks 402 corresponding to the first limit grooves 101 are fixedly connected to the bottom end of the mounting block 4, and the two limit blocks 402 are slidably connected with the inner walls of the two first limit grooves 101 respectively.
In this embodiment, through setting up stopper 402 and first spacing groove 101, when installation piece 4 moves under the drive of first adjusting part 2, take place to slide between stopper 402 and the first spacing groove 101 inner wall, can play direction and spacing effect to installation piece 4, and then improve the stability of cutting part 5 removal in-process, improve machining precision.
Referring to fig. 1-3, the first adjusting component 2 includes two first fixing blocks 201 and fixing plates 208, the two fixing plates 208 are fixedly connected to the upper surface of the workbench 1, racks 209 are fixedly connected to the inner parts of opposite sides of the two fixing plates 208, the two first fixing blocks 201 are fixedly connected to one side of the mounting block 4, one side of the first fixing block 201 is fixedly connected with a first motor 202, an output end of the first motor 202 is rotatably connected to one side of the other first fixing block 201, a first gear 203 is fixedly sleeved on an output shaft of the first motor 202, one side of the mounting block 4 is fixedly connected to two second fixing blocks 204 below the first fixing block 201, a rotating shaft 206 is sleeved in the inner part of the two second fixing blocks 204, a second gear 205 is fixedly sleeved on a shaft body of the middle part of the rotating shaft 206, the second gear 205 is meshed with the first gear 203, three gears 207 are fixedly connected to shaft bodies of two ends of the rotating shaft 206, and the two third gears 207 are meshed with racks 209 on two sides respectively.
It can be appreciated that in this application, the first motor 202 is started through the control center, so that the first motor 202 drives the first gear 203 to rotate, and the first gear 203 is meshed with the second gear 205, so that the second gear 205 is synchronous with the first gear 203 and rotates reversely, the second gear 205 drives the rotating shaft 206 and the third gear 207 to rotate simultaneously, and the third gear 207 is meshed with the rack 209 through the third gear 207, so that the third gear 207 moves on the rack 209, and further drives the mounting block 4 to move synchronously, and the transmission is meshed among the first gear 203, the second gear 205, the third gear 207 and the rack 209, so that the transmission precision can be improved, and the position adjustment of the mounting block 4 and the cutting assembly 5 is more stable, so that the machining precision is further improved.
Referring to fig. 3-5, the second adjusting component 3 includes a second motor 301 fixedly installed at one end of the installation block 4, a screw rod 302 is fixedly connected to an output end of the second motor 301, the screw rod 302 is rotatably connected inside a second limiting groove 401, a screw rod sleeve 303 is movably sleeved on a rod body of the screw rod 302, the screw rod sleeve 303 is slidably connected with an inner wall of the second limiting groove 401, a supporting arm 304 is fixedly connected to a top end of the screw rod sleeve 303, two sides of the supporting arm 304 are fixedly connected with anti-skid plates 305 respectively, two sides of an upper surface of the installation block 4 are fixedly connected with installation plates 307 respectively, first air cylinders 306 are fixedly installed at two sides, far away from the two installation plates 307, output ends of the two first air cylinders 306 penetrate through the two installation plates 307 respectively and are fixedly connected with clamping plates 308, and the two clamping plates 308 are respectively abutted against the two anti-skid plates 305.
When specifically setting up, drive lead screw 302 through start second motor 301 and rotate, cooperation between lead screw 302 and the lead screw cover 303, thereby make lead screw cover 303 take place to remove, take place relative slip between lead screw cover 303 and the second spacing groove 401 inner wall, improve the stability of lead screw cover 303 in-process of removing, drive support arm 304 and cutting assembly 5 synchronous movement through the lead screw cover 303, and then can adjust the interval between the cutting assembly 5 to the part, when cutting assembly 5 moves to the assigned position, control center starts two first cylinders 306, drive two splint 308 simultaneously towards the direction that is close to support arm 304 through first cylinder 306, thereby can press from both sides the support arm 304 tightly, through setting up antiskid plate 305, can play skid-proof effect, improve the stability of being connected with splint 308.
Referring to fig. 3, 5 and 6, the cutting assembly 5 includes a rotary cylinder 501, the rotary cylinder 501 is fixedly mounted at one end of the support arm 304 far away from the screw sleeve 303, an output end of the rotary cylinder 501 penetrates through the support arm 304 and is fixedly connected with a mounting seat 502, and two ends of one side of the mounting seat 502 far away from the output end of the rotary cylinder 501 are respectively and fixedly connected with a milling cutter 503 and a cutting knife 504.
In this embodiment, the tool drives the part to rotate, in the process of rotating the part, the cutting assembly 5 is driven by the second adjusting assembly 3 to move towards the direction close to the part until contacting with the part, the cutting operation on the part can be realized along with the continuous movement of the milling cutter 503, when the part needs to be cut, the rotary cylinder 501 is started, the mounting seat 502 is driven to rotate by the rotary cylinder 501, so that the positions of the milling cutter 503 and the cutting knife 504 are interchanged, and the cutting knife 504 is driven to move by the second adjusting assembly 3, thereby realizing the operation.
The working principle of the diameter size precision machining control method of the shaft lever part is as follows:
when the milling cutter is used, firstly, a part to be processed is fixed on the workbench 1 through a tool, then, the first motor 202 is started through the control center, the first gear 203 is driven to rotate through the first motor 202, the second gear 205 and the first gear 203 are enabled to synchronously and reversely rotate, the rotating shaft 206 and the third gear 207 are driven to rotate through the second gear 205, the third gear 207 is enabled to move on the rack 209 through the meshing between the third gear 207 and the rack 209, the mounting block 4 is further driven to move, after the mounting block 4 is enabled to move to one end of the part, the second motor 301 is started to drive the screw rod 302 to rotate, the screw rod sleeve 303 is enabled to drive the supporting arm 304 and the cutting assembly 5 to move towards the direction close to the part, the part is driven to rotate through the tool, the milling cutter 503 is enabled to cut the part, after the milling cutter 503 moves to a designated position, the two first air cylinders 306 are simultaneously started, the two clamping plates 308 are driven to simultaneously abut against the supporting arm 304, the stability of the cutting assembly 5 is improved, when the part 501 is required to be cut, the rotating air cylinder 501 is started, the mounting block 502 is driven to rotate through the rotating cylinder, the mounting block 502 and the cutting assembly 504 is driven to rotate, the cutting assembly 504 is driven by the rotating body, the cutter 3 is enabled to move through the second cutter assembly 3, and the cutting assembly is driven to move through the second cutter 3.
It should be understood that the foregoing examples of the present invention are merely illustrative of the present invention and not limiting of the embodiments of the present invention, and that various other changes and modifications can be made by those skilled in the art based on the above description, and it is not intended to be exhaustive of all of the embodiments, and all obvious changes and modifications that come within the scope of the invention are defined by the following claims.
Claims (10)
1. The diameter size precision machining control method of the shaft lever part is characterized by comprising the following operation steps of:
s1, fixing shaft lever parts to be processed through a tool;
s2, controlling the starting of the processing device through a control center, and adjusting the processing position through a first adjusting component (2) and a second adjusting component (3) in the processing device to accurately control the diameter and the size of processing;
and S3, controlling a cutting assembly (5) in the processing device to start through a control center, cutting and cutting the part, and taking down the part after the processing is finished.
2. The utility model provides a diameter size precision processing control device of axostylus axostyle part which characterized in that: the machining device comprises a mounting block (4), the mounting block (4) is slidably connected to the workbench (1), the first adjusting component (2) is arranged on one side of the mounting block (4), the second adjusting component (3) is arranged at the upper end of the mounting block (4), and the cutting component (5) is arranged at one end of the second adjusting component (3).
3. The device for controlling the diameter dimension precision processing of a shaft part according to claim 2, wherein: two first limit grooves (101) are formed in the upper surface of the workbench (1), second limit grooves (401) are formed in the top end of the mounting block (4), two limit blocks (402) corresponding to the first limit grooves (101) are fixedly connected to the bottom end of the mounting block (4), and the two limit blocks (402) are respectively connected with the inner walls of the two first limit grooves (101) in a sliding mode.
4. A diameter dimension precision processing control device for shaft parts according to claim 3, characterized in that: the first adjusting component (2) comprises two first fixed blocks (201) and fixed plates (208), wherein the two fixed plates (208) are fixedly connected to the upper surface of the workbench (1), racks (209) are fixedly connected to the inner parts of opposite sides of the two fixed plates (208), and the two first fixed blocks (201) are fixedly connected to one side of the installation block (4).
5. The device for controlling the diameter dimension precision processing of a shaft component according to claim 4, wherein: one of them first fixed block (201) one side fixedly connected with first motor (202), the output of first motor (202) rotates to connect in another first fixed block (201) one side, fixed cover is equipped with first gear (203) on the output shaft of first motor (202).
6. The device for controlling the diameter dimension precision processing of a shaft component according to claim 5, wherein: two second fixed blocks (204) are fixedly connected to one side of the installation block (4) and located below the first fixed block (201), a rotating shaft (206) is sleeved inside the second fixed blocks (204), a second gear (205) is fixedly sleeved on the shaft body in the middle of the rotating shaft (206), the second gear (205) is meshed with the first gear (203), third gears (207) are fixedly connected to the shaft bodies at two ends of the rotating shaft (206) respectively, and the two third gears (207) are meshed with racks (209) at two sides respectively.
7. A diameter dimension precision processing control device for shaft parts according to claim 3, characterized in that: the second adjusting component (3) comprises a second motor (301) fixedly installed at one end of the installation block (4), a screw rod (302) is fixedly connected to the output end of the second motor (301), the screw rod (302) is rotatably connected inside a second limiting groove (401), a screw rod sleeve (303) is movably sleeved on the rod body of the screw rod (302), and the screw rod sleeve (303) is slidably connected with the inner wall of the second limiting groove (401).
8. The device for controlling the diameter dimension precision processing of a shaft component according to claim 7, wherein: the screw rod sleeve (303) top fixedly connected with support arm (304), support arm (304) both sides are fixedly connected with antiskid ribbed tile (305) respectively.
9. The device for controlling the diameter dimension precision processing of a shaft part according to claim 2, wherein: mounting plates (307) are fixedly connected to two sides of the upper surface of the mounting block (4), first air cylinders (306) are fixedly mounted on one sides, away from each other, of the mounting plates (307), output ends of the first air cylinders (306) penetrate through the two mounting plates (307) respectively and are fixedly connected with clamping plates (308), and the two clamping plates (308) are propped against the two antiskid plates (305) respectively.
10. The device for controlling the diameter dimension precision processing of a shaft component according to claim 7, wherein: the cutting assembly (5) comprises a rotary cylinder (501), the rotary cylinder (501) is fixedly arranged at one end of a supporting arm (304) far away from a screw rod sleeve (303), an output end of the rotary cylinder (501) penetrates through the supporting arm (304) and then is fixedly connected with a mounting seat (502), and two ends of one side of the mounting seat (502) far away from the output end of the rotary cylinder (501) are respectively fixedly connected with a milling cutter (503) and a cutting knife (504).
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202211464472.3A CN116237763A (en) | 2022-11-22 | 2022-11-22 | Diameter size precision machining control method for shaft lever part |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202211464472.3A CN116237763A (en) | 2022-11-22 | 2022-11-22 | Diameter size precision machining control method for shaft lever part |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| CN116237763A true CN116237763A (en) | 2023-06-09 |
Family
ID=86626548
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CN202211464472.3A Withdrawn CN116237763A (en) | 2022-11-22 | 2022-11-22 | Diameter size precision machining control method for shaft lever part |
Country Status (1)
| Country | Link |
|---|---|
| CN (1) | CN116237763A (en) |
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN117381503A (en) * | 2023-11-02 | 2024-01-12 | 天长市康弘石油管材有限公司 | An intelligent pipe cutting robot |
| CN118023587A (en) * | 2024-04-12 | 2024-05-14 | 湖南工程学院 | Milling device for aluminum-based silicon carbide composite material |
-
2022
- 2022-11-22 CN CN202211464472.3A patent/CN116237763A/en not_active Withdrawn
Cited By (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN117381503A (en) * | 2023-11-02 | 2024-01-12 | 天长市康弘石油管材有限公司 | An intelligent pipe cutting robot |
| CN117381503B (en) * | 2023-11-02 | 2025-02-18 | 天长市康弘石油管材有限公司 | Intelligent pipe cutting robot |
| CN118023587A (en) * | 2024-04-12 | 2024-05-14 | 湖南工程学院 | Milling device for aluminum-based silicon carbide composite material |
| CN118023587B (en) * | 2024-04-12 | 2024-06-14 | 湖南工程学院 | Milling device for aluminum-based silicon carbide composite material |
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Application publication date: 20230609 |