CN223301346U - Integrated high-precision machining device for propeller - Google Patents
Integrated high-precision machining device for propellerInfo
- Publication number
- CN223301346U CN223301346U CN202422316046.6U CN202422316046U CN223301346U CN 223301346 U CN223301346 U CN 223301346U CN 202422316046 U CN202422316046 U CN 202422316046U CN 223301346 U CN223301346 U CN 223301346U
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- CN
- China
- Prior art keywords
- propeller
- fixedly arranged
- integrated high
- sliding
- precision machining
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Abstract
The utility model relates to the technical field of integrated high-precision machining devices, and discloses an integrated high-precision machining device for a propeller, which solves the problems that the existing integrated high-precision machining device for the propeller usually needs manual feeding after machining the propeller, manual handling greatly increases the labor capacity of operators and reduces the working efficiency, and comprises a bottom plate, wherein an integrated high-precision machining device body is fixedly arranged at the top of the bottom plate, a sliding table is fixedly arranged at one side of the bottom plate, a first motor is fixedly arranged at the lower part of one side of the sliding table, a transmission assembly is arranged at the output end of the first motor, an installation table is arranged at the upper part of the transmission assembly, and the integrated high-precision machining device for the propeller can be used for quickly and conveniently feeding the propeller after machining, does not need manual handling, so that the labor capacity of operators is reduced, and the working efficiency is improved.
Description
Technical Field
The utility model belongs to the technical field of integrated high-precision machining devices, and particularly relates to an integrated high-precision machining device for a propeller.
Background
The integrated high-precision machining device for the propeller is important equipment for machining the high-precision propeller in the modern manufacturing industry, combines various advanced technologies and processes, aims at improving machining efficiency, precision and reliability, can remarkably improve machining precision of the propeller through comprehensive application of technologies such as multi-axis linkage, a high-precision numerical control system, advanced materials and the like, has important significance for improving performance and service life of the propeller, has wider application prospect along with continuous development of the manufacturing industry and continuous progress of the technology, and has increasingly high requirements for the high-precision and high-efficiency propeller in the fields of aviation, navigation, wind power generation and the like, but the conventional integrated high-precision machining device for the propeller usually needs manual feeding after machining the propeller, and manual carrying greatly increases labor amount of operators and reduces working efficiency.
Disclosure of utility model
Aiming at the situation, in order to overcome the defects of the prior art, the utility model provides the integrated high-precision machining device for the screw, which effectively solves the problems that the existing integrated high-precision machining device for the screw usually needs to manually carry out blanking after machining the screw, and the manual carrying greatly increases the labor capacity of operators and reduces the working efficiency.
In order to achieve the above purpose, the integrated high-precision machining device for the propeller comprises a bottom plate, wherein an integrated high-precision machining device body is fixedly arranged at the top of the bottom plate, a material sliding table is fixedly arranged on one side of the bottom plate, a first motor is fixedly arranged at the lower part of one side of the material sliding table, a transmission assembly is arranged at the output end of the first motor, an installation table is arranged at the upper part of the transmission assembly in a transmission manner, mounting plates are fixedly arranged at two sides of the installation table, supporting bars are fixedly arranged at the tops of the two mounting plates, air cylinders are fixedly arranged at the sides, away from each other, of the two supporting bars, and transmission ends of the two air cylinders extend between the two supporting bars and are fixedly provided with clamping plates.
Preferably, the transmission assembly comprises a threaded rod, the threaded rod is fixedly arranged at the output end of the first motor, one end of the threaded rod is rotatably provided with a positioning seat through a shaft seat, the bottom of the positioning seat is fixedly connected with the top of the bottom plate, the surface of the threaded rod is in threaded connection with a threaded sleeve, the bottom of the threaded sleeve is fixedly provided with a sliding block, one side of the upper surface of the bottom plate is provided with a sliding groove, the sliding block is slidably arranged in the sliding groove, and the top of the threaded sleeve is fixedly provided with a fixing table.
Preferably, the top fixed mounting of fixed station has the slide bar, and the sliding sleeve has been cup jointed on the surface of slide bar, and one side fixed mounting of sliding sleeve has the fixed block, and the one end fixed mounting of fixed block has the connecting block, and the equal fixed mounting in both sides of connecting block has the driving pin, and spacing has all been cup jointed on the surface of two driving pins, and the top fixed connection of bottom plate is all passed through the supporting seat in the bottom of two spacing.
Preferably, the top fixed mounting of connecting block has the bracing piece, and the top of bracing piece rotates installs first gear, and the top and the mount table fixed connection of first gear, the fixed surface of bracing piece installs the connecting plate, and the top fixed mounting of connecting plate has the second motor, and the output fixed mounting of second motor has the second gear, and the second gear is connected with first gear engagement.
Compared with the prior art, the integrated high-precision machining device has the beneficial effects that after the screw propeller is machined by the integrated high-precision machining device body, an operator starts a first motor to drive a threaded rod to rotate along a shaft seat on a positioning seat, the threaded rod drives a threaded sleeve to move when rotating, a sliding block is driven to slide along the inside of a sliding groove when the threaded sleeve moves, the stability of the threaded sleeve is improved, the sliding sleeve is driven to move through a sliding rod when the threaded sleeve moves, a connecting block is driven to move through a fixed block when the sliding sleeve moves, two transmission pins are driven to move along two limiting strips when the connecting block moves, and the connecting block is driven to move upwards when the two transmission pins move along the two limiting strips;
The sliding sleeve is driven to slide along the surface of the sliding rod through the fixed block when the connecting block moves upwards, stability of the connecting block during moving upwards is improved, the supporting rod and the first gear drive the installation table to move when the connecting block moves upwards, the two supporting rods are driven to enter the integrated high-precision machining device body through the two installation plates during moving of the installation table, then an operator starts the two cylinders to drive the two clamping plates to clamp the propeller, then the operator starts the first motor to drive the installation table to move downwards for resetting, then the operator starts the second motor to drive the second gear to rotate, the installation table and the propeller are driven to rotate to the material sliding table through the first gear during rotation of the second gear, and then the two cylinders are started to loosen the propeller, so that the propeller is placed on the material sliding table to slide down, and then the blanking is completed rapidly; the integrated high-precision machining device for the screw propeller can quickly and conveniently carry out blanking after machining the screw propeller, and does not need manual carrying, so that the labor capacity of operators is reduced, and the working efficiency is improved.
Drawings
The accompanying drawings are included to provide a further understanding of the utility model and are incorporated in and constitute a part of this specification, illustrate the utility model and together with the embodiments of the utility model, serve to explain the utility model.
In the drawings:
FIG. 1 is a schematic diagram of an integrated high-precision machining device for a propeller;
FIG. 2 is a schematic diagram showing a partial structure of an integrated high-precision machining device for a propeller;
FIG. 3 is a schematic diagram showing a partial structure of an integrated high-precision machining device for a propeller;
FIG. 4 is a schematic diagram of a part of an integrated high-precision machining device for a propeller according to the third embodiment of the present utility model;
In the figure, 1, a bottom plate, 2, an integrated high-precision machining device body, 3, a sliding table, 4, an installation table, 5, an installation plate, 6, a supporting bar, 7, an air cylinder, 8, a clamping plate, 9, a first motor, 10, a threaded rod, 11, a shaft seat, 12, a positioning seat, 13, a threaded sleeve, 14, a sliding block, 15, a sliding groove, 16, a fixed table, 17, a sliding rod, 18, a sliding sleeve, 19, a fixed block, 20, a connecting block, 21, a transmission pin, 22, a limiting bar, 23, a supporting seat, 24, a supporting bar, 25, a first gear, 26, a connecting plate, 27, a second motor, 28 and a second gear.
Detailed Description
The technical solutions of the embodiments of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model, and it is apparent that the described embodiments are only some embodiments of the present utility model, but not all embodiments, and all other embodiments obtained by those skilled in the art without making any inventive effort based on the embodiments of the present utility model are within the scope of protection of the present utility model.
The utility model is shown in figures 1 to 4, and comprises a bottom plate 1, an integrated high-precision processing device body 2 is fixedly arranged at the top of the bottom plate 1, a sliding table 3 is fixedly arranged at one side of the bottom plate 1, a first motor 9 is fixedly arranged at the lower part of one side of the sliding table 3, a transmission assembly is arranged at the output end of the first motor 9, an installation table 4 is arranged at the upper part of the transmission assembly in a transmission manner, installation plates 5 are fixedly arranged at two sides of the installation table 4, support bars 6 are fixedly arranged at the tops of the two installation plates 5, air cylinders 7 are fixedly arranged at the sides of the two support bars 6, which are far away from each other, and the transmission ends of the two air cylinders 7 extend between the two support bars 6 and are fixedly provided with clamping plates 8.
After the integrated high-precision machining device body 2 finishes machining the propeller, an operator starts a first motor 9 to drive a transmission assembly to operate, the transmission assembly drives a mounting table 4 to move when in operation, the mounting table 4 drives two support bars 6 to enter the integrated high-precision machining device body 2 through two mounting plates 5 when in movement, then the operator starts two air cylinders 7 to drive two clamping plates 8 to clamp the propeller, then the operator starts the first motor 9 to drive the mounting table 4 to move downwards to reset, then, the operator adjusts the transmission assembly to drive the mounting table 4 and the propeller to rotate to a sliding table 3, then starts the two air cylinders 7 to loosen the propeller, so that the propeller is placed on the sliding table 3 to slide down, and accordingly blanking is completed rapidly, the integrated high-precision machining device for the propeller can carry out blanking rapidly and conveniently after machining the propeller, manual handling is not needed, the momentum of the operator is reduced, and the working efficiency is improved.
The transmission assembly comprises a threaded rod 10, the threaded rod 10 is fixedly arranged at the output end of a first motor 9, one end of the threaded rod 10 is rotatably provided with a positioning seat 12 through a shaft seat 11, the bottom of the positioning seat 12 is fixedly connected with the top of a bottom plate 1, the surface of the threaded rod 10 is in threaded connection with a threaded sleeve 13, the bottom of the threaded sleeve 13 is fixedly provided with a sliding block 14, one side of the upper surface of the bottom plate 1 is provided with a sliding groove 15, the sliding block 14 is slidably arranged in the sliding groove 15, the top of the threaded sleeve 13 is fixedly provided with a fixed table 16, the top of the fixed table 16 is fixedly provided with a sliding rod 17, the surface of the sliding rod 17 is sheathed with a sliding sleeve 18, one side of the sliding sleeve 18 is fixedly provided with a fixed block 19, one end of the fixed block 19 is fixedly provided with a connecting block 20, two sides of the connecting block 20 are fixedly provided with transmission pins 21, the surfaces of the two transmission pins 21 are sheathed with limiting bars 22, the bottoms of the two limiting bars 22 are fixedly connected with the top of the bottom plate 1 through a supporting seat 23, the top of the connecting block 20 is fixedly provided with a supporting rod 24, the top of the supporting rod 24 is rotatably provided with a first gear 25, the top of the supporting rod 25 is fixedly connected with the mounting table 4, one side of the motor 24 is fixedly provided with the surface of the second gear 26, the second gear 26 is fixedly provided with a second gear 27, and the second gear 27 is fixedly connected with the second gear 28, and the second gear 27 is fixedly arranged at the second gear 27 is meshed with the second gear 28.
An operator starts a first motor 9 to drive a threaded rod 10 to rotate along a shaft seat 11 on a positioning seat 12, the threaded rod 10 drives a threaded sleeve 13 to move when rotating, a sliding block 14 is driven to slide along the inside of a sliding groove 15 when the threaded sleeve 13 moves, stability when the threaded sleeve 13 moves is improved, a sliding sleeve 18 is driven to move through a sliding rod 17 when the threaded sleeve 13 moves, a connecting block 20 is driven to move through a fixed block 19 when the sliding sleeve 18 moves, two transmission pins 21 are driven to move along two limit bars 22 when the connecting block 20 moves, the connecting block 20 is driven to move upwards when the two transmission pins 21 move along the two limit bars 22, the sliding sleeve 18 is driven to slide along the surface of the sliding rod 17 through the fixed block 19 when the connecting block 20 moves upwards, stability when the connecting block 20 moves upwards is improved, and the mounting table 4 is driven to move through a supporting rod 24 and a first gear 25;
the operator starts the second motor 27 to drive the second gear 28 to rotate, and the second gear 28 drives the mounting table 4 and the propeller to rotate and move through the first gear 25 when rotating.
Claims (4)
1. The integrated high-precision machining device for the propeller comprises a bottom plate (1) and is characterized in that an integrated high-precision machining device body (2) is fixedly arranged at the top of the bottom plate (1), a sliding table (3) is fixedly arranged at one side of the bottom plate (1), a first motor (9) is fixedly arranged at the lower part of one side of the sliding table (3), a transmission assembly is arranged at the output end of the first motor (9), an installation table (4) is arranged at the upper part of the transmission assembly in a transmission mode, installation plates (5) are fixedly arranged at two sides of the installation table (4), support bars (6) are fixedly arranged at the tops of the two installation plates (5), air cylinders (7) are fixedly arranged at one sides, away from each other, of the two support bars (6), and the transmission ends of the two air cylinders (7) extend between the two support bars (6) and are fixedly provided with clamping plates (8).
2. The integrated high-precision machining device for the propeller is characterized in that the transmission assembly comprises a threaded rod (10), the threaded rod (10) is fixedly installed at the output end of the first motor (9), one end of the threaded rod (10) is rotatably provided with a positioning seat (12) through a shaft seat (11), the bottom of the positioning seat (12) is fixedly connected with the top of the bottom plate (1), the surface of the threaded rod (10) is in threaded connection with a threaded sleeve (13), the bottom of the threaded sleeve (13) is fixedly provided with a sliding block (14), one side of the upper surface of the bottom plate (1) is provided with a sliding groove (15), the sliding block (14) is slidably installed in the sliding groove (15), and the top of the threaded sleeve (13) is fixedly provided with a fixing table (16).
3. The integrated high-precision machining device for the propeller is characterized in that a sliding rod (17) is fixedly arranged at the top of the fixed table (16), a sliding sleeve (18) is sleeved on the surface of the sliding rod (17), a fixed block (19) is fixedly arranged on one side of the sliding sleeve (18), a connecting block (20) is fixedly arranged at one end of the fixed block (19), transmission pins (21) are fixedly arranged on two sides of the connecting block (20), limit strips (22) are sleeved on the surfaces of the two transmission pins (21), and the bottoms of the two limit strips (22) are fixedly connected with the top of the bottom plate (1) through supporting seats (23).
4. The integrated high-precision machining device for the propeller, as set forth in claim 3, characterized in that the top of the connecting block (20) is fixedly provided with a supporting rod (24), the top of the supporting rod (24) is rotatably provided with a first gear (25), the top of the first gear (25) is fixedly connected with the mounting table (4), the surface of the supporting rod (24) is fixedly provided with a connecting plate (26), and the top of the connecting plate (26) is fixedly connected with the top of the connecting plate
A second motor (27) is arranged, a second gear (28) is fixedly arranged at the output end of the second motor (27),
The second gear (28) is in meshed connection with the first gear (25).
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202422316046.6U CN223301346U (en) | 2024-09-23 | 2024-09-23 | Integrated high-precision machining device for propeller |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| CN202422316046.6U CN223301346U (en) | 2024-09-23 | 2024-09-23 | Integrated high-precision machining device for propeller |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| CN223301346U true CN223301346U (en) | 2025-09-05 |
Family
ID=96904443
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| CN202422316046.6U Active CN223301346U (en) | 2024-09-23 | 2024-09-23 | Integrated high-precision machining device for propeller |
Country Status (1)
| Country | Link |
|---|---|
| CN (1) | CN223301346U (en) |
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2024
- 2024-09-23 CN CN202422316046.6U patent/CN223301346U/en active Active
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