CN221210139U - Rod tip chamfering equipment for continuous processing - Google Patents

Rod tip chamfering equipment for continuous processing Download PDF

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Publication number
CN221210139U
CN221210139U CN202322920871.2U CN202322920871U CN221210139U CN 221210139 U CN221210139 U CN 221210139U CN 202322920871 U CN202322920871 U CN 202322920871U CN 221210139 U CN221210139 U CN 221210139U
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Prior art keywords
feeding
block
discharging
groove
assembly
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CN202322920871.2U
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Chinese (zh)
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胡国忠
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Suzhou Yirunda Intelligent Technology Co ltd
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Suzhou Yirunda Intelligent Technology Co ltd
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Abstract

The utility model discloses bar end chamfering equipment for continuous processing, which belongs to the technical field of mechanical equipment production and processing and comprises a rack; a feeding groove, a feeding mechanism, a processing groove and a discharging groove are sequentially arranged on the frame along the conveying direction of the workpiece, and the feeding groove and the discharging groove are inclined downwards along the conveying direction of the material; the two-way movable chamfering mechanism is arranged at two sides of the frame; the feeding mechanism comprises a synchronous feeding and discharging assembly and a synchronous clamping assembly, the synchronous feeding and discharging assembly and the synchronous clamping assembly are arranged on the frame, and the synchronous clamping assembly and the synchronous feeding and discharging assembly are located on the upper side and the lower side of the processing groove. Through the mode, the synchronous feeding and discharging assembly conveys the chamfered workpiece to the discharging groove, and simultaneously conveys the workpiece to be processed to the processing groove, so that continuous synchronous feeding and discharging are realized; the synchronous clamping assembly clamps the workpiece to be machined, so that the workpiece is prevented from rotating during subsequent chamfering machining; the two-way movable chamfering mechanism operates to chamfer two ends simultaneously.

Description

Rod tip chamfering equipment for continuous processing
Technical Field
The utility model relates to the technical field of mechanical equipment production and processing, in particular to bar end chamfering equipment for continuous processing.
Background
In the processing process of the bar, the cut end part of the bar tends to be very sharp, and if the cut bar is directly used, the cut bar is easy to injure a user, so that the end part is often required to be chamfered after the bar is cut, and the sharp part becomes smooth, so that the injury of the user is avoided.
The round bar chamfering machine is disclosed in the patent with publication number CN212976989U, the equipment drives a gear and a rack through a feeding handle to complete feeding work, and then the round bar is subjected to chamfering processing through a chamfering mechanism after a workpiece to be processed is clamped through a clamping plate and a clamping block.
However, the feeding mechanism and the discharging mechanism of the equipment are manually operated respectively, so that continuous feeding and discharging of a machined workpiece are difficult to realize, chamfering processing can be carried out on one end only at a time, and the overall processing efficiency is low;
Based on the above, the present utility model has devised a bar end chamfering apparatus for continuous processing to solve the above-mentioned problems.
Disclosure of utility model
In view of the above-mentioned shortcomings of the prior art, the present utility model provides a bar end chamfering apparatus for continuous processing.
In order to achieve the above purpose, the utility model is realized by the following technical scheme:
A bar end chamfering device for continuous processing comprises a frame;
a feeding groove, a feeding mechanism, a processing groove and a discharging groove are sequentially arranged on the frame along the conveying direction of the workpiece, and the feeding groove and the discharging groove are inclined downwards along the conveying direction of the material; the two-way movable chamfering mechanism is arranged at two sides of the frame;
The feeding mechanism comprises a synchronous feeding and discharging assembly and a synchronous clamping assembly, the synchronous feeding and discharging assembly and the synchronous clamping assembly are arranged on the frame, and the synchronous clamping assembly and the synchronous feeding and discharging assembly are positioned on the upper side and the lower side of the processing groove;
further, the synchronous feeding and discharging assembly comprises a driving assembly and a feeding and discharging assembly, the driving assembly is arranged on the frame, and the feeding and discharging assembly is arranged on the driving assembly;
Further, the driving assembly of the synchronous feeding and discharging assembly comprises a first cylinder, a guide column and a connecting plate, wherein the first cylinder is fixedly arranged on the frame, and the output end of the first cylinder is fixedly connected with the connecting plate; two guide posts are fixedly arranged on two sides of the connecting plate and are in limit sliding connection with the frame;
Further, the feeding and discharging assembly of the synchronous feeding and discharging assembly comprises a feeding block, a feeding guide groove, a guiding block, a discharging block and a discharging guide groove, the feeding block and the discharging block are fixedly arranged on the connecting plate, and the guiding block is fixedly connected with the frame between the feeding block and the discharging block; a feeding guide groove for accommodating a single workpiece is formed in the upper side of the feeding block, and a discharging guide groove is formed in the upper side of the discharging block;
Further, the side wall of the guide block, which is close to one side of the feeding block, is higher than the inner bottom of the feeding groove, the side wall of the guide block, which is close to one side of the processing groove, is not lower than the upper top of the processing groove, and the top surface of the guide block is inclined downwards along the material conveying direction;
Further, the top of the blanking block is higher than the top of the feeding block, and the feeding guide groove and the blanking guide groove are inclined downwards along the material conveying direction;
Furthermore, the synchronous clamping assembly comprises a support column, a mounting frame, a second air cylinder, a guide rod, a fastening block and a fastening groove, wherein the mounting frame is fixedly arranged on the frame through a plurality of support columns, the second air cylinder is fixedly arranged in the middle of the mounting frame, and the output end of the second air cylinder is fixedly connected with the fastening block; two guide rods are fixedly arranged on two sides of the fastening block and are in limiting sliding connection with the mounting frame; the lower end of the fastening block is provided with an arc-shaped fastening groove which is matched with the processing groove to clamp the workpiece;
Further, the bidirectional movable chamfering mechanism comprises a bidirectional chamfering component and a movable component, and the movable component is arranged on the frame; two groups of bidirectional chamfering assemblies are arranged on the left side and the right side of the processing groove, and the bidirectional chamfering assemblies are arranged on the moving assembly;
Further, the moving assembly comprises a moving motor, a bidirectional threaded rod, sliding blocks and sliding rails, wherein the moving motor is fixedly arranged on the frame, the two sliding blocks are symmetrically arranged on the left side and the right side of the processing groove, the bidirectional threaded rod is fixedly connected with the output end of the moving motor, and the two sides of the bidirectional threaded rod are respectively in threaded connection with the two sliding blocks through threaded sleeves; a sliding rail for limiting and sliding of the sliding block is fixedly arranged on the frame;
further, the bidirectional chamfering assembly comprises a mounting plate, a chamfering motor, a rotating table and a chamfering cutter, wherein the mounting plate is fixedly arranged on the sliding block, the chamfering motor is fixedly arranged on the mounting plate, and the rotating table is fixedly connected with the output end of the chamfering motor; the edge of the rotating table is obliquely and fixedly provided with a cutting knife.
The utility model has the following technical effects:
1. According to the utility model, the chamfered workpiece is conveyed to the discharge chute through the synchronous feeding and discharging assembly, and meanwhile, the subsequent workpiece to be processed is conveyed to the processing chute, so that continuous synchronous feeding and discharging is realized, and the processing efficiency is improved; clamping the workpiece to be machined through the synchronous clamping assembly, so that the workpiece is prevented from rotating during subsequent chamfering machining; the two ends of the workpiece are simultaneously subjected to chamfering processing through the operation of the bidirectional moving chamfering mechanism, so that the processing efficiency is improved;
2. According to the utility model, the workpiece keeps a trend of moving in the material conveying direction or moving in the material conveying direction through the feeding chute, the discharging chute, the feeding guide chute on the feeding block, the discharging guide chute on the discharging block and the upper top surface of the guide block; meanwhile, the continuous synchronous feeding and discharging of the workpiece is realized by utilizing the height difference among the feeding groove, the discharging groove, the feeding guide groove on the feeding block, the discharging guide groove on the discharging block and the guide block.
Drawings
In order to more clearly illustrate the embodiments of the present utility model or the technical solutions in the prior art, the drawings used in the description of the embodiments or the prior art will be briefly described below. It is evident that the drawings in the following description are only some embodiments of the present utility model and that other drawings may be obtained from these drawings without inventive effort for a person of ordinary skill in the art.
FIG. 1 is a perspective view of a bar end chamfering apparatus for continuous processing of the present utility model;
FIG. 2 is an elevation view of a bar end chamfering apparatus for continuous processing of the present utility model;
FIG. 3 is a second perspective view of a bar end chamfering apparatus for continuous processing according to the present utility model;
FIG. 4 is a cross-sectional view taken along the direction A-A of FIG. 2;
Fig. 5 is an enlarged view at B in fig. 3.
Reference numerals in the drawings represent respectively:
1. A frame; 2. a feed chute; 3. a discharge chute; 4. a feeding mechanism; 41. a synchronous feeding and discharging assembly; 411. a first cylinder; 412. a guide post; 413. a connecting plate; 414. feeding a material block; 415. a feeding guide groove; 416. a guide block; 417. discharging a material block; 418. a blanking guide groove; 42. a synchronous clamping assembly; 421. a support post; 422. a mounting frame; 423. a second cylinder; 424. a guide rod; 425. a fastening block; 426. a fastening groove; 5. a processing groove; 6. a bidirectional moving chamfering mechanism; 61. a bi-directional chamfer assembly; 611. a mounting plate; 612. cutting the motor; 613. a rotating table; 614. a cutting knife; 62. a moving assembly; 621. a moving motor; 622. a two-way threaded rod; 623. a slide block; 624. a slide rail.
Detailed Description
In order to make the objects, technical solutions and advantages of the embodiments of the present utility model more clear, the technical solutions of the embodiments of the present utility model will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present utility model. It will be apparent that the described embodiments are some, but not all, embodiments of the utility model. All other embodiments, which can be made by those skilled in the art based on the embodiments of the utility model without making any inventive effort, are intended to be within the scope of the utility model.
The utility model is further described below with reference to examples.
In some embodiments, referring to fig. 1, 2 and 4 of the specification, a bar end chamfering apparatus for continuous processing includes a frame 1;
A feeding groove 2, a feeding mechanism 4, a processing groove 5 and a discharging groove 3 are sequentially arranged on the frame 1 along the conveying direction of the workpiece, and the feeding groove 2 and the discharging groove 3 are inclined downwards along the conveying direction of the material; the two-way movable chamfering mechanism 6 is arranged at two sides of the frame 1;
the feeding mechanism 4 comprises a synchronous feeding and discharging assembly 41 and a synchronous clamping assembly 42, the synchronous feeding and discharging assembly 41 and the synchronous clamping assembly 42 are arranged on the frame 1, and the synchronous clamping assembly 42 and the synchronous feeding and discharging assembly 41 are positioned on the upper side and the lower side of the processing groove 5;
In the embodiment, when a rod end chamfering device for continuous processing works normally, a workpiece to be processed on a feeding groove 2 moves towards a synchronous feeding and discharging assembly 41 under the action of gravity to carry out automatic feeding; the workpiece to be machined is conveyed to the machining groove 5 through the synchronous feeding and discharging assembly 41 for automatic feeding, and then the synchronous clamping assembly 42 is started to clamp the workpiece to be machined, so that the workpiece is prevented from rotating during subsequent chamfering machining; then, starting the bidirectional moving chamfering mechanism 6 to operate, and chamfering two ends of the workpiece at the same time, so that the machining efficiency is improved; after machining is completed, the workpiece after chamfering is conveyed to the discharging chute 3 through the synchronous feeding and discharging assembly 41, and meanwhile, the workpiece to be machined subsequently is conveyed to the machining chute 5, so that continuous feeding and discharging are realized, and the machining efficiency is further improved.
In some embodiments, as shown in fig. 1-4, as a preferred embodiment of the present utility model, the synchronous feeding and discharging assembly 41 includes a first cylinder 411, a guide post 412, a connecting plate 413, a feeding block 414, a feeding guide slot 415, a guiding block 416, a discharging block 417 and a discharging guide slot 418, wherein the first cylinder 411 is fixedly mounted on the frame 1, and an output end of the first cylinder 411 is fixedly connected with the connecting plate 413; two guide posts 412 are fixedly arranged on two sides of the connecting plate 413, and the guide posts 412 are in limit sliding connection with the frame 1; the connecting plate 413 is fixedly provided with an upper material block 414 and a lower material block 417, and the guide material block 416 is fixedly connected with the frame 1 between the upper material block 414 and the lower material block 417;
The side wall of the side of the guide block 416, which is close to the upper block 414, is higher than the inner bottom of the feeding groove 2, the side wall of the side of the guide block 416, which is close to the processing groove 5, is not lower than the upper top of the processing groove 5, and the top surface of the guide block 416 is inclined downwards along the material conveying direction; a feeding guide groove 415 for accommodating a single workpiece is formed in the upper side of the feeding block 414, and a discharging guide groove 418 is formed in the upper side of the discharging block 417; the top of the discharging block 417 is higher than the top of the charging block 414, and the charging guide groove 415 and the discharging guide groove 418 are inclined downwards along the material conveying direction;
The synchronous clamping assembly 42 comprises a support 421, a mounting frame 422, a second air cylinder 423, a guide rod 424, a fastening block 425 and a fastening groove 426, wherein the mounting frame 422 is fixedly arranged on the frame 1 through a plurality of support posts 421, the second air cylinder 423 is fixedly arranged in the middle of the mounting frame 422, and the output end of the second air cylinder 423 is fixedly connected with the fastening block 425; two guide rods 424 are fixedly arranged on two sides of the fastening block 425, and the guide rods 424 are in limit sliding connection with the mounting frame 422; the lower end of the fastening block 425 is provided with an arc-shaped fastening groove 426 which is matched with the processing groove 5 to clamp a workpiece;
In this embodiment, when the synchronous feeding and discharging assembly 41 and the synchronous clamping assembly 42 work normally, the workpiece keeps moving in the material conveying direction or tends to move in the material conveying direction through the feeding guide slot 415 on the feeding block 414, the discharging guide slot 418 on the discharging block 417 and the upper top surface of the guiding block 416; when the synchronous feeding and discharging assembly 41 is in an initial state, the feeding block 414 is positioned below the inner bottom surface of the feeding groove 2, and the discharging block 417 is completely positioned below the processing groove 5, so that the workpiece movement is not influenced by the feeding block 414 and the discharging block 417; at this time, the workpiece to be processed in the feed chute 2 is next to one side of the guide block 416, and the processed workpiece is positioned in the processing chute 5;
Starting the first air cylinder 411 to drive the connecting plate 413 to move, and driving the feeding block 414 to move upwards by the connecting plate 413 under the limiting action of the guide column 412; after the feeding guide groove 415 contacts a workpiece to be processed, the workpiece to be processed is driven to slide upwards on the side wall of the guide block 416 in a fitting way until the lower edge of the feeding guide groove 415 on the feeding block 414 is flush with the upper edge of the upper top surface of the guide block 416, and the workpiece slides onto the guide block 416 and is blocked by the lower block 417; simultaneously, the blanking block 417 on the connecting plate 413 slides upwards, and the blanking guide groove 418 on the blanking block 417 is flush with the processing groove 5 and then continuously pushes the processed workpiece upwards to move; after the lower edge of the discharge guide slot 418 and the upper edge of the discharge slot 3 are flush, the finished workpiece is moved onto the discharge slot 3 and removed from the discharge slot 3; therefore, the workpiece loading and unloading are synchronously carried out, and the processing efficiency is improved;
Then the first air cylinder 411 drives the upper block 414 and the lower block 417 to move downwards through the driving connecting plate 413 until the upper edge of the lower block 417 is flush with the upper edge of the guide block 416, the lower block 417 no longer blocks the workpiece to be processed on the guide block 416, and the workpiece to be processed on the guide block 416 slides into the processing groove 5; simultaneously, the subsequent workpieces to be processed on the feeding groove 2 are not blocked by the feeding block 414 any more, the guide block 416 moves until the workpieces are closely attached to the guide block 416, and the synchronous feeding and discharging assembly 41 is restored to the initial state; thereby realizing the continuity of synchronous feeding and discharging of the workpiece;
after the workpiece to be processed is positioned in the processing groove 5 and the synchronous feeding and discharging assembly 41 is restored to the initial state, the second cylinder 423 drives the fastening block 425 to move, the fastening block 425 moves downwards under the limiting action of the guide rod 424, and the fastening groove 426 moves downwards along with the fastening block until the fastening block contacts the workpiece downwards; the workpiece is clamped under the cooperation of the fastening block 425 and the processing groove 5, so that the subsequent chamfering work is convenient.
In some embodiments, as shown in fig. 1-5, as a preferred embodiment of the present utility model, the bi-directional moving chamfering mechanism 6 includes a bi-directional chamfering assembly 61 and a moving assembly 62, the moving assembly 62 being mounted on the frame 1; two sets of bidirectional chamfering assemblies 61 are arranged on the left side and the right side of the processing groove 5, and the bidirectional chamfering assemblies 61 are arranged on the moving assembly 62;
The moving component 62 comprises a moving motor 621, a bidirectional threaded rod 622, sliding blocks 623 and sliding rails 624, wherein the moving motor 621 is fixedly arranged on the frame 1, the two sliding blocks 623 are symmetrically arranged on the left side and the right side of the processing groove 5, the bidirectional threaded rod 622 is fixedly connected with the output end of the moving motor 621, and the two sides of the bidirectional threaded rod 622 are respectively in threaded connection with the two sliding blocks 623 through threaded sleeves; a slide rail 624 for limiting and sliding of the slide block 623 is fixedly arranged on the frame 1; the bidirectional chamfering assembly 61 comprises a mounting plate 611, a cutting motor 612, a rotating table 613 and a cutting knife 614, wherein the mounting plate 611 is fixedly arranged on a sliding block 623, the cutting motor 612 is fixedly arranged on the mounting plate 611, and the rotating table 613 is fixedly connected with the output end of the cutting motor 612; the edge of the rotating table 613 is obliquely and fixedly provided with a cutting knife 614;
In this embodiment, when the bidirectional chamfering component 61 and the moving component 62 work normally, the cutting motor 612 is started to drive the rotating table 613 to rotate, and the rotating table 613 rotates to drive the cutting knife 614 to rotate; meanwhile, the movable motor 621 is started to drive the bidirectional threaded rod 622 to rotate, the bidirectional threaded rod 622 rotates to drive the sliding blocks 623 at two sides to move towards the direction approaching to the workpiece under the guiding action of the sliding rails 624, and the sliding blocks 623 drive the cutting motor 612, the rotating table 613 and the cutting knife 614 to move towards the direction approaching to the workpiece through the mounting plate 611; at this time, the high-speed rotating cutting blade 614 cuts the edge of the workpiece port during forward pushing, so that the two ends of the workpiece are simultaneously machined, and the machining efficiency is further improved.
The above embodiments are only for illustrating the technical solution of the present utility model, and are not limiting; although the utility model has been described in detail with reference to the foregoing embodiments, it will be understood by those of ordinary skill in the art that: the technical scheme described in the foregoing embodiments can be modified or some technical features thereof can be replaced by equivalents; such modifications and substitutions do not depart from the spirit and scope of the technical solutions of the embodiments of the present utility model.

Claims (10)

1. Bar end chamfering equipment for continuous processing, comprising a frame (1), characterized in that:
A feeding groove (2), a feeding mechanism (4), a processing groove (5) and a discharging groove (3) are sequentially arranged on the frame (1) along the conveying direction of the workpiece, and the feeding groove (2) and the discharging groove (3) are inclined downwards along the conveying direction of the material; the two-way movable chamfering mechanism (6) is arranged at two sides of the frame (1);
The feeding mechanism (4) comprises a synchronous feeding and discharging assembly (41) and a synchronous clamping assembly (42), the synchronous feeding and discharging assembly (41) and the synchronous clamping assembly (42) are arranged on the frame (1), and the synchronous clamping assembly (42) and the synchronous feeding and discharging assembly (41) are located on the upper side and the lower side of the processing groove (5).
2. Rod end chamfering apparatus for continuous processing according to claim 1, characterized in that the synchronous feeding and discharging assembly (41) comprises a driving assembly and a feeding and discharging assembly, the driving assembly is mounted on the frame (1), and the feeding and discharging assembly is mounted on the driving assembly.
3. The bar end chamfering apparatus for continuous processing according to claim 2, characterized in that the driving assembly of the synchronous feeding and discharging assembly (41) includes a first cylinder (411), a guide post (412) and a connecting plate (413), the first cylinder (411) is fixedly installed on the frame (1), and the output end of the first cylinder (411) is fixedly connected with the connecting plate (413); two guide posts (412) are fixedly arranged on two sides of the connecting plate (413), and the guide posts (412) are in limit sliding connection with the frame (1).
4. A rod end chamfering apparatus for continuous processing according to claim 3, characterized in that the feeding and discharging assembly of the synchronous feeding and discharging assembly (41) comprises a feeding block (414), a feeding guide groove (415), a guide block (416), a discharging block (417) and a discharging guide groove (418), the feeding block (414) and the discharging block (417) are fixedly installed on the connecting plate (413), and the guide block (416) is fixedly connected with the frame (1) between the feeding block (414) and the discharging block (417); the upper side of the feeding block (414) is provided with a feeding guide groove (415) for accommodating a single workpiece, and the upper side of the discharging block (417) is provided with a discharging guide groove (418).
5. The continuous processing rod end chamfering apparatus according to claim 4, characterized in that a side wall of the guide block (416) on a side close to the upper block (414) is higher than an inner bottom of the feed chute (2), a side wall of the guide block (416) on a side close to the processing chute (5) is not lower than an upper top of the processing chute (5), and a top surface of the guide block (416) is inclined downward in the material conveying direction.
6. The bar end chamfering apparatus for continuous processing according to claim 5, characterized in that the top of the lower block (417) is higher than the top of the upper block (414), and the upper guide groove (415) and the lower guide groove (418) are inclined downward in the material conveying direction.
7. The bar end chamfering apparatus for continuous processing according to claim 6, characterized in that the synchronous clamping assembly (42) includes a pillar (421), a mounting frame (422), a second cylinder (423), a guide rod (424), a fastening block (425) and a fastening groove (426), the mounting frame (422) is fixedly installed on the frame (1) through a plurality of pillars (421), the second cylinder (423) is fixedly installed in the middle of the mounting frame (422), and the output end of the second cylinder (423) is fixedly connected with the fastening block (425); two guide rods (424) are fixedly arranged on two sides of the fastening block (425), and the guide rods (424) are in limit sliding connection with the mounting frame (422); the lower end of the fastening block (425) is provided with an arc-shaped fastening groove (426) which is matched with the processing groove (5) to clamp the workpiece.
8. Bar end chamfering apparatus for continuous processing according to claim 7, characterized in that the bi-directional moving chamfering mechanism (6) includes a bi-directional chamfering assembly (61) and a moving assembly (62), the moving assembly (62) being mounted on the frame (1); two groups of bidirectional chamfering assemblies (61) are arranged on the left side and the right side of the processing groove (5), and the bidirectional chamfering assemblies (61) are arranged on the moving assembly (62).
9. The bar end chamfering apparatus for continuous processing according to claim 8, characterized in that the moving assembly (62) includes a moving motor (621), a bi-directional threaded rod (622), a slide block (623) and a slide rail (624), the moving motor (621) is fixedly installed on the frame (1), the two slide blocks (623) are symmetrically disposed at the left and right sides of the processing groove (5), the bi-directional threaded rod (622) is fixedly connected with the output end of the moving motor (621), and both sides of the bi-directional threaded rod (622) are respectively in threaded connection with the two slide blocks (623) through threaded sleeves; a slide rail (624) for limiting and sliding the slide block (623) is fixedly arranged on the frame (1).
10. The bar end chamfering apparatus for continuous processing according to claim 9, characterized in that the bidirectional chamfering assembly (61) includes a mounting plate (611), a cutting motor (612), a rotating table (613) and a cutting blade (614), the mounting plate (611) is fixedly mounted on a slider (623), the cutting motor (612) is fixedly mounted on the mounting plate (611), the rotating table (613) is fixedly connected with an output end of the cutting motor (612); the edge of the rotating table (613) is obliquely and fixedly provided with a cutting knife (614).
CN202322920871.2U 2023-10-31 2023-10-31 Rod tip chamfering equipment for continuous processing Active CN221210139U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202322920871.2U CN221210139U (en) 2023-10-31 2023-10-31 Rod tip chamfering equipment for continuous processing

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202322920871.2U CN221210139U (en) 2023-10-31 2023-10-31 Rod tip chamfering equipment for continuous processing

Publications (1)

Publication Number Publication Date
CN221210139U true CN221210139U (en) 2024-06-25

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CN202322920871.2U Active CN221210139U (en) 2023-10-31 2023-10-31 Rod tip chamfering equipment for continuous processing

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Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN118875865A (en) * 2024-09-19 2024-11-01 三力五金机械制品(深圳)有限公司 A CNC chamfering device for metal parts
CN119526087A (en) * 2024-12-26 2025-02-28 株洲硬质合金集团有限公司 Loading and unloading device for automatic chamfering of bars, automatic chamfering system and method

Cited By (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN118875865A (en) * 2024-09-19 2024-11-01 三力五金机械制品(深圳)有限公司 A CNC chamfering device for metal parts
CN119526087A (en) * 2024-12-26 2025-02-28 株洲硬质合金集团有限公司 Loading and unloading device for automatic chamfering of bars, automatic chamfering system and method

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