A transformer component machining device
Through the design of the drive mechanism and linkage mechanism, the multi-station synchronous adjustment and continuous processing of the instrument transformer component processing equipment were realized, which solved the problems of cumbersome equipment adjustment and safety hazards of the cutting surface, and improved production efficiency and safety.
Patent Information
- Application Number
- CN202511236177.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-01
- Publication Date
- 2026-01-02
- Estimated Expiration
- 2045-09-01
AI Technical Summary
Existing instrument transformer component processing equipment requires frequent tool changes during cutting, making it difficult to adjust quickly, and the cut surface is prone to burrs and sharp edges, posing safety hazards.
The design combines a drive mechanism, a linkage mechanism, and a processing mechanism to achieve synchronous adjustment and continuous processing at multiple workstations. Combined with a grinding mechanism, the cut surfaces are precision-machined, reducing manual intervention and processing time.
It enables rapid adaptation to the processing of battery cells of different specifications, improves production efficiency and safety, and reduces processing cycle and safety hazards.
Smart Images

Figure CN120734755B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of mutual inductor core processing, in particular to a mutual inductor part processing equipment. BACKGROUND
[0002] The core is the core magnetic component of the mutual inductor, and its main function is to efficiently conduct and concentrate magnetic flux to achieve accurate transformation of voltage or current. The core needs to be cut and then interleaved and laminated during production and processing.
[0003] The existing cutting device is fixed during cutting. When different sizes or different cutting requirements are encountered, the cutting tool needs to be disassembled and installed, which is relatively cumbersome and is not conducive to quick adjustment of the equipment. In addition, the cutting surface of the workpiece may produce burrs and other impurities after cutting, which needs to be optimized again. The edges of the cutting surface are relatively sharp and may cause harm to the contact person, which poses a certain safety hazard and cannot meet people's use requirements. SUMMARY
[0004] The purpose of the present application is to provide a mutual inductor part processing equipment to solve the problems raised in the background art.
[0005] In order to achieve the above purpose, the present application adopts the following technical scheme: a mutual inductor part processing equipment, comprising a workbench, a group of conveyors are arranged at the front and rear positions of the middle end of the workbench, a group of supporting frames are arranged at the positions corresponding to the two groups of conveyors at the top end of the workbench, a driving mechanism is arranged on the top surface of the supporting frame, the bottom end of the driving mechanism is connected with not less than two groups of processing mechanisms, and a group of compression rollers are arranged at the positions close to the two groups of conveyors at the top surface of the workbench.
[0006] The driving mechanism comprises a driving box, a guide rod, a rotating rod, a driving motor one, a linkage mechanism and a moving block, a group of driving boxes are connected to the top surface of the supporting frame, a group of guide rods are arranged at the upper end of the driving box, a group of rotating rods are connected to the middle end of the driving box, the right end of the rotating rod extends through the driving box to the outside and is connected with a group of driving motors one, not less than two groups of moving blocks are arranged on the outside of the guide rod and the rotating rod, and the rear end of the moving block is connected through the linkage mechanism.
[0007] By adopting the technical scheme, the driving mechanism of the inner top surface of the support frame is connected with no less than two groups of machining mechanisms, the multiple battery cells can be simultaneously cut, the machining period can be effectively shortened, the compression roller can apply moderate pressure on the parts in transportation to prevent displacement of the parts during machining, the machining precision is ensured, the driving motor drives the linkage mechanism through the rotating rod to enable the moving blocks to move synchronously along the guide rods and the rotating rod, the machining mechanisms can be simultaneously controlled to move, the synchronous adjustment of multiple stations is realized, different specifications of battery cells can be flexibly adapted, different machining requirements of different sizes can be adapted, manual intervention is reduced, the production efficiency is improved, and the batch efficient production operation is suitable.
[0008] Preferably, the linkage mechanism comprises linkage arms one and two, the linkage arms one are arranged in two groups, the left end of the linkage arm one is connected with the rear of the driving box, the right end is connected with the linkage arm two, the right end of the linkage arm one is connected with the rear end of the rightmost moving block, and the left end is connected with the linkage arm two, the linkage arms two are connected in head-to-tail mode, and the middle end is connected with the rear end of the moving block.
[0009] By adopting the technical scheme, the linkage arms two are connected in head-to-tail mode, the movement of all the moving blocks is correlated, the synchronous movement of multiple stations is realized, the linkage arm one can uniformly transmit power, and the jamming or deviation caused by uneven force on one side is avoided, and the rigid linkage arm structure can reduce transmission error and be suitable for high-precision machining.
[0010] Preferably, the upper end of the moving block is provided with a through hole one corresponding to the guide rod, the middle end is provided with a through hole two corresponding to the rotating rod, the bottom end of the moving block is connected with a group of sliding blocks one, the bottom surface of the sliding block one is provided with a group of front connecting arms and rear connecting arms at front and rear positions, respectively, and the bottom ends of the front connecting arms and the rear connecting arms are connected with the machining mechanisms.
[0011] By adopting the technical scheme, the through hole one cooperates with the guide rod to ensure the guiding precision of the moving block during linear movement, the through hole two cooperates with the rotating rod to realize power transmission of the moving block during rotary movement, and the double through holes enable the moving block to realize accurate linear movement and accept rotary power input, thereby realizing high-precision, high-stability multi-degree-of-freedom movement control.
[0012] Preferably, the machining mechanism comprises a transition cylinder, a reciprocating box, a polishing mechanism, a synchronous sleeve, and a cutting tool, the bottom end of the rear connecting arm is connected with the transition cylinder, the bottom end of the transition cylinder is provided with the reciprocating box, the bottom end of the reciprocating box is connected with the polishing mechanism, the front end of the transition cylinder is connected with the outside of the front connecting arm through the synchronous sleeve, and the bottom end of the front connecting arm is connected with the cutting tool.
[0013] By adopting the technical scheme, the polishing mechanism and the cutting tool are integrated in the same machining unit, continuous machining of the workpiece in multiple processes can be realized, the transfer time of the workpiece between different stations is reduced, and the machining efficiency is improved. Meanwhile, the synchronous sleeve connects the front connecting arm and the transition cylinder to ensure the coordinated movement of the cutting tool and the polishing mechanism, and the relative position accuracy of the cutting tool and the polishing mechanism can be maintained.
[0014] Preferably, a group of moving grooves are arranged on the front end of the reciprocating box bottom surface, a group of sliding blocks two are connected to the inner end of the moving grooves, a group of electric push rods are arranged on the inner middle end of the sliding blocks two, the bottom end of the output end of the electric push rod is connected with the polishing mechanism, a group of cavities are arranged on the inner rear end of the reciprocating box, a group of rotating discs are arranged in the cavities, a group of driving motors two are connected to the left end of the rotating disc, a group of rotating arms are connected to the right outer end, a group of pushing arms one are connected to the other end of the rotating arm, and the other end of the pushing arm one extends through the moving groove and is connected with the rear end of the sliding block two.
[0015] By adopting the technical scheme, the driving motor two drives the rotating disc to rotate, the rotating motion is converted into reciprocating linear motion through the connecting rod mechanism of the rotating arm and the pushing arm one, the sliding block two is driven to move linearly, and the polishing mechanism is driven to move reciprocally, so as to improve the polishing effect of the cutting surface.
[0016] Preferably, the polishing mechanism comprises polishing plates one, two groups of polishing plates one are arranged, a group of polishing plates two are hingedly connected to the upper and lower ends of the two groups of polishing plates one, the middle ends of the opposite surfaces of the two groups of polishing plates one are connected through a connecting block, a connecting frame is arranged on the bottom end of the connecting block, the output end of the electric push rod extends to the top end of the connecting block and is connected with a vertical rod, the vertical rod extends to the bottom end of the connecting frame through the connecting block and the connecting frame in sequence, a group of through grooves are arranged on the vertical rod corresponding to the positions of the upper and lower polishing plates two, two groups of pushing arms two are arranged in the through grooves corresponding to the upper ends, and the inner sides of the polishing plates two are hingedly connected to the one ends of the pushing arms two away from the vertical rod.
[0017] By adopting the technical scheme, four groups of hingedly connected polishing plates two can constitute a movable polishing unit, when the vertical rod is pressed down, the pushing arms two push the polishing plates two to adaptively deflect through the through grooves, the corners of the cutting surface are polished, the finishing of the cutting surface can be realized, the harm to the contact person caused by the too sharp edge after cutting is avoided, and the use safety is improved.
[0018] Preferably, the connecting frame is in the shape of "U", the connecting block is arranged on the inner bottom end, and the front and rear top ends are connected to the front and rear positions of the bottom surface of the sliding block two.
[0019] By adopting the technical scheme, the connecting frame can hold the connecting block and the sliding block two, and the connecting block, the polishing plate one and the polishing plate two can move synchronously when the sliding block two moves.
[0020] Preferably, the outer sides of the two groups of left and right end polishing plates one are flush with the outer sides of the cutting tools.
[0021] By adopting the above technical scheme, the polishing effect on the cutting surface can be ensured.
[0022] Preferably, the outer right side of the rotating rod is provided with external threads, and the through hole two of the rightmost end moving block is provided with corresponding internal threads.
[0023] By adopting the above technical scheme, the rotating rod can drive the rightmost end moving block to move, thereby driving the remaining moving blocks to move synchronously.
[0024] Preferably, the number of the second linkage arms is one less than the number of the moving blocks.
[0025] Compared with the prior art, the present application has the following advantages:
[0026] 1. The driving mechanism arranged on the top surface of the support frame includes a driving box, a guide rod, a rotating rod, a driving motor one, a linkage mechanism, and a moving block, etc. The driving motor one drives the rotating rod to rotate, thereby driving the moving block to move synchronously through the linkage mechanism, which is beneficial to adjust the distance between the moving blocks and the machining mechanisms connected to the bottom ends of the moving blocks, can quickly adjust the distance between the machining mechanisms, avoids complicated adjustment steps, and meets different cutting requirements.
[0027] 2. The machining mechanism arranged at the bottom end of the moving block includes a transition cylinder, a reciprocating box, a polishing mechanism, a synchronous sleeve, and a cutting tool, etc. Through mutual cooperation, the machining mechanism can realize multi-process continuous machining of the workpiece, reduce the transfer time of the workpiece between different stations, improve the cutting machining efficiency, and the reciprocating box is provided with a moving groove, a cavity, a rotating disc, a driving motor two, and a rotating arm, etc. The moving groove can drive the polishing mechanism to move back and forth, realize dynamic polishing of the cutting surface, and strengthen the polishing effect.
[0028] 3. The polishing mechanism arranged at the bottom end of the sliding block two includes a polishing plate one, a polishing plate two, a connecting block, a connecting frame, a vertical rod, a through slot, and a pushing arm two, etc. Through mutual cooperation with the electric push rod in the sliding block two, the polishing mechanism can realize angle rotation of the upper and lower four groups of polishing plate two, polish the corners of the cutting surface, increase the polishing surface, realize fine machining of the cutting surface, avoid injury to the contact person caused by the excessively sharp edge after cutting, and effectively improve the use safety. BRIEF DESCRIPTION OF DRAWINGS
[0029] Figure 1 The figure is a structural schematic view of the present application.
[0030] Figure 2The internal structure diagram of the driving mechanism of the application is shown in the figure.
[0031] Figure 3 The structure diagram of the linkage mechanism of the application is shown in the figure.
[0032] Figure 4 The right view structure diagram of the moving block of the application is shown in the figure.
[0033] Figure 5 The right view structure diagram of the processing mechanism of the application is shown in the figure.
[0034] Figure 6 The internal structure diagram of the reciprocating box of the application is shown in the figure.
[0035] Figure 7 The front view structure diagram of the polishing mechanism of the application is shown in the figure.
[0036] In the figure: workbench-1, conveyor belt-2, support frame-3, driving mechanism-4, processing mechanism-5, compression roller-6, driving box-41, guide rod-42, rotating rod-43, driving motor-44, linkage mechanism-45, moving block-46, linkage arm-451, linkage arm-452, through hole-461, through hole-462, sliding block-463, front connecting arm-464, rear connecting arm-465, transition cylinder-51, reciprocating box-52, polishing mechanism-53, synchronous sleeve-54, cutting tool-55, moving groove-521, sliding block-522, electric push rod-523, cavity-524, rotating disc-525, driving motor-526, rotating arm-527, push arm-528, polishing plate-531, polishing plate-532, connecting block-533, connecting frame-534, vertical rod-535, through groove-536, push arm-537. DETAILED DESCRIPTION
[0037] In order to further explain the technical solutions of the application, the following specific embodiments are described in detail.
[0038] Please refer to Figure 1 The application provides a mutual inductor part processing equipment, which comprises a workbench 1, a group of conveyor belts 2 capable of conveying workpieces are installed at the front and rear positions of the middle end of the workbench 1, a group of support frames 3 are fixedly connected to the positions between the two groups of conveyor belts 2 on the top end of the workbench 1, a driving mechanism 4 is installed on the top surface of the support frame 3, and not less than two groups of processing mechanisms 5 are connected to the bottom end of the driving mechanism 4, a group of compression rollers 6 are installed on the top surface of the workbench 1 near the positions between the two groups of conveyor belts 2, and the workpieces can be pressed and limited.
[0039] Specifically, the driving mechanism 4 connected with not less than two groups of processing mechanisms 5 on the inner top surface of the support frame 3 can simultaneously cut multiple battery cells, effectively shortening the processing period, and the compression roller 6 can apply moderate pressure to the parts in transport to prevent displacement during processing and ensure processing accuracy.
[0040] Please refer to Figure 2 The driving mechanism 4 includes a driving box 41, a guide rod 42, a rotating rod 43, a driving motor 44, a linkage mechanism 45, and a moving block 46. One driving box 41 is fixedly connected to the inner top surface of the support frame 3. One guide rod 42 is fixedly connected to the upper end of the driving box 41. One rotating rod 43 is rotatably connected to the middle end of the driving box 41. One driving motor 44 is connected to the right end of the rotating rod 43 outside the driving box 41. The driving shaft of the driving motor 44 is fixedly connected to the right end of the rotating rod 43 to drive the rotating rod 43 to rotate. The guide rod 42 and the rotating rod 43 are both slidably connected with not less than two groups of moving blocks 46. The moving blocks 46 are connected through the linkage mechanism 45. The right outer side of the rotating rod 43 is provided with external threads, and the through hole two 462 of the rightmost moving block 46 is provided with corresponding internal threads. The rotating rod 43 can drive the rightmost moving block 46 to move, thereby driving the remaining moving blocks 46 to move synchronously.
[0041] Specifically, the driving motor 44 drives the linkage mechanism 45 through the rotating rod 43 to make the moving blocks 46 move synchronously along the guide rod 42 and the rotating rod 43, which facilitates the simultaneous control of the movement of the processing mechanisms 5, realizes the synchronous adjustment of multiple stations, flexibly adapts to different specifications of battery cells, adapts to different processing requirements of different sizes, reduces manual intervention, improves production efficiency, and is suitable for batch efficient production operations.
[0042] Please refer to Figures 2-3 The linkage mechanism 45 includes linkage arms one 451 and linkage arms two 452. The linkage arms one 451 are provided in two groups. The number of linkage arms two 452 is one less than the number of moving blocks 46. The left end of the left linkage arm one 451 is rotatably connected to the inner back of the driving box 41. The right end is hingedly connected to the left end of one group of linkage arms two 452. The right end of the right linkage arm one 451 is rotatably connected to the rear end of the rightmost moving block 46. The left end is hingedly connected to the right end of one group of linkage arms two 452. The linkage arms two 452 are connected end to end. The middle ends are rotatably connected to the rear ends of the moving blocks 46.
[0043] Specifically, the linkage arms two 452 are connected end to end, which can ensure that the movements of all moving blocks 46 are related to each other, realizing the synchronous action of multiple stations. The linkage arms one 451 can uniformly transmit power, avoiding jamming or deviation caused by uneven force on one side. Through the rigid linkage arm structure, transmission error can be reduced, which is suitable for high-precision processing.
[0044] Please refer to Figure 2 AndFigure 4 The moving block 46 is provided with a through hole one 461 corresponding to the guide rod 42 at the upper end, and a through hole two 462 corresponding to the rotating rod 43 at the middle end. The bottom end of the moving block 46 is fixedly connected with a group of I-shaped sliding blocks one 463. The bottom surface of the sliding block one 463 is respectively provided with a group of front connecting arms 464 and rear connecting arms 465. The bottom end of the front connecting arm 464 and the rear connecting arm 465 is connected with the machining mechanism 5.
[0045] Specifically, the through hole one 461 cooperates with the guide rod 42 to ensure the guiding accuracy of the moving block 46 in linear motion. The through hole two 462 cooperates with the rotating rod 43 to realize power transmission of the moving block 46 in rotary motion. The double through hole design can make the moving block 46 realize accurate linear motion and accept rotary power input, realizing high-precision, high-stability multi-degree-of-freedom motion control.
[0046] Please refer to Figure 5 The machining mechanism 5 includes a transition cylinder 51, a reciprocating box 52, a polishing mechanism 53, a synchronous sleeve 54, and a cutting tool 55. The bottom end of the rear connecting arm 465 is fixedly connected with the transition cylinder 51. The bottom end of the transition cylinder 51 is fixedly connected with the reciprocating box 52. The bottom end of the reciprocating box 52 is connected with the polishing mechanism 53. The front end of the transition cylinder 51 is connected with the outer side of the front connecting arm 464 through the synchronous sleeve 54, which can improve the connection stability of the two groups. The bottom end of the front connecting arm 464 is provided with the cutting tool 55, which can cut the workpiece. The outer sides of the two groups of polishing plates one 531 at the left and right ends are flush with the outer side of the cutting tool 55, which can ensure the polishing effect of the cutting surface.
[0047] Specifically, the polishing mechanism 53 and the cutting tool 55 are integrated in the same machining unit, which can realize multi-process continuous machining of the workpiece, reduce the transfer time of the workpiece between different stations, and improve the machining efficiency. At the same time, the synchronous sleeve 54 connects the front connecting arm 464 and the transition cylinder 51 to ensure the cooperative motion of the cutting tool 55 and the polishing mechanism 53, and can maintain the relative position accuracy of the cutting tool 55 and the polishing mechanism 53.
[0048] Please refer to Figure 6A group of moving grooves 521 are arranged on the bottom of the reciprocating box 52 near the front end, a group of sliding blocks two 522 are slidably connected to the inner end of the moving grooves 521, a group of electric push rods 523 are installed on the inner middle end of the sliding blocks two 522, the bottom end of the electric push rod 523 extends to the bottom end of the sliding block two 522, and the bottom end of the output end of the electric push rod 523 is connected with the polishing mechanism 53. A group of cavities 524 are arranged in the reciprocating box 52 at the rear end, a group of rotating discs 525 are installed in the cavities 524, a group of drive motors two 526 are connected to the left end of the rotating disc 525, the drive shaft of the drive motor two 526 is fixedly connected with the middle end of the rotating disc 525, and the rotating disc 525 can be driven to rotate, a group of rotating arms 527 are hingedly connected to the right outer end of the rotating disc 525, one end of the rotating arm 527 is hingedly connected with a group of push arms one 528, and the other end of the push arm one 528 extends through the moving groove 521 and is fixedly connected with the rear end of the sliding block two 522.
[0049] Specifically, the drive motor two 526 drives the rotating disc 525 to rotate, the rotating motion is converted into reciprocating linear motion through the connecting rod mechanism of the rotating arm 527 and the push arm one 528, the sliding block two 522 can be driven to move linearly, and the polishing mechanism 53 can be driven to move reciprocatingly, so that the polishing effect on the cutting surface is improved.
[0050] Please refer to Figures 6-7 The polishing mechanism 53 comprises polishing plates one 531, and each polishing plate one 531 is hingedly connected with a group of polishing plates two 532 at the upper and lower ends. The middle ends of the opposite surfaces of the two polishing plates one 531 are fixedly connected through a connecting block 533. The bottom end of the connecting block 533 is fixedly connected with a connecting frame 534 in the shape of "U". The connecting block 533 is arranged at the inner bottom end of the connecting frame 534. The front and rear top ends of the connecting frame 534 are connected to the front and rear positions of the bottom surface of the sliding block two 522. The connecting frame 534 can hold the connecting block 533 and the sliding block two 522. When the sliding block two 522 moves, the connecting block 533, the polishing plate one 531 and the polishing plate two 532 can move synchronously. The bottom end of the output end of the electric push rod 523 extends to the top end of the connecting block 533 and is fixedly connected with a vertical rod 535. The bottom end of the vertical rod 535 extends to the bottom end of the connecting frame 534 through the connecting block 533 and the connecting frame 534 in sequence. The output or recovery output end of the electric push rod 523 can drive the vertical rod 535 to move up and down. A group of through grooves 536 are arranged on the vertical rod 535 corresponding to the positions of the polishing plates two 532 at the upper and lower ends. Two groups of push arms two 537 are hingedly connected to the inner sides of the polishing plates two 532 at the left and right ends of the vertical rod 535.
[0051] Specifically, the four sets of articulated polishing plate two 532 can constitute a movable polishing unit, which can push the polishing plate two 532 to adaptively deflect through the through slot 536 when the vertical rod 535 is pressed down, polish the corners of the cutting surface, realize the finishing of the cutting surface, avoid the cutting of the too sharp edge to cause harm to the contact person, and improve the use safety.
[0052] The present application provides a kind of mutual inductor parts processing equipment, drive mechanism 4 is arranged on the top surface of support frame 3, drive mechanism 4 includes drive box 41, guide rod 42, rotating rod 43, drive motor one 44, linkage mechanism 45 and moving block 46 etc., drive motor one 44 drives rotating rod 43 to rotate, thereby moving block 46 is driven to move synchronously by linkage mechanism 45, it is favorable to the spacing adjustment of moving block 46 and the processing mechanism 5 connected to the bottom end of moving block 46, the spacing between processing mechanism 5 can be adjusted quickly, avoid tedious adjustment steps, meet different cutting needs;Processing mechanism 5 is arranged on the bottom end of moving block 46, processing mechanism 5 includes transition cylinder 51, reciprocating box 52, polishing mechanism 53, synchronous sleeve 54 and cutting tool 55 etc., under the cooperation of each other, the multi-process continuous processing of workpiece can be realized, the transfer time of workpiece between different stations is reduced, the cutting processing efficiency is improved, and moving groove 521, cavity 524, rotating disc 525, drive motor two 526 and rotating arm 527 etc. are arranged in reciprocating box 52, which can drive polishing mechanism 53 to move back and forth, realize dynamic polishing of cutting surface, and strengthen polishing effect;Polishing mechanism 53 is arranged on the bottom end of sliding block two 522, polishing mechanism 53 includes polishing plate one 531, polishing plate two 532, connecting block 533, connecting frame 534, vertical rod 535, through slot 536 and push arm two 537 etc., through the cooperation of electric push rod 523 in sliding block two 522, the angle rotation of four sets of polishing plate two 532 above and below can be realized, the corners of cutting surface are polished, the polishing surface is increased, the finishing of cutting surface can be realized, the too sharp edge after cutting is avoided to cause harm to the contact person, and the use safety is effectively improved.
[0053] The above only for the preferred examples of the present application and is not used to limit the present application, although the present application is described in detail with reference to the foregoing examples, for those skilled in the art, the technical solutions recorded in the foregoing embodiments can be modified, or some technical features can be replaced equivalently. Any modification, equivalent replacement, improvement, etc. within the spirit and principles of the present application shall be included in the protection scope of the present application.
Claims
1. A device for processing components of a current transformer, comprising a workbench (1), wherein a set of conveyor belts (2) are provided at the front and rear positions of the middle of the workbench (1), and a set of support frames (3) is provided at the top of the workbench (1) at the position between the two sets of conveyor belts (2). Its features are: It also includes a drive mechanism (4) located on the top surface of the support frame (3), and the bottom end of the drive mechanism (4) is connected to at least two sets of processing mechanisms (5). A set of pressure rollers (6) is provided on the top surface of the workbench (1) near the position between the two sets of conveyor belts (2). The drive mechanism (4) includes a drive box (41), a guide rod (42), a rotating rod (43), a drive motor (44), a linkage mechanism (45), and a moving block (46). A set of drive boxes (41) is connected to the top surface of the support frame (3). A set of guide rods (42) is provided at the upper end of the drive box (41). A set of rotating rods (43) is connected to the middle end of the drive box (41). The right end of the rotating rod (43) extends through to the outside of the drive box (41) and is connected to a set of drive motors (44). At least two sets of moving blocks (46) are provided on the outside of both the guide rod (42) and the rotating rod (43). The rear end of the moving block (46) is connected through the linkage mechanism (45). The linkage mechanism (45) includes a first linkage arm (451) and a second linkage arm (452). The first linkage arm (451) is divided into two groups, left and right. The left end of the first linkage arm (451) is connected to the rear of the drive box (41). The right end of the first linkage arm (451) is connected to the second linkage arm (452). The right end of the first linkage arm (451) is connected to the rear end of the rightmost moving block (46). The left end of the first linkage arm (451) is connected to the second linkage arm (452). The second linkage arm (452) is connected end to end. The middle end of the second linkage arm (452) is connected to the rear end of the moving block (46). The upper end of the movable block (46) is provided with a through hole 1 (461) corresponding to the guide rod (42), and the middle end of the movable block (46) is provided with a through hole 2 (462) corresponding to the rotating rod (43). The bottom end of the movable block (46) is connected to a set of slider 1 (463). The bottom end of the slider 1 (463) is provided with a set of front connecting arm (464) and rear connecting arm (465) respectively. The bottom ends of the front connecting arm (464) and rear connecting arm (465) are connected to the processing mechanism (5). The processing mechanism (5) includes a transition cylinder (51), a reciprocating box (52), a grinding mechanism (53), a synchronous sleeve (54), and a cutting tool (55). The bottom end of the rear connecting arm (465) is connected to the transition cylinder (51), the bottom end of the transition cylinder (51) is provided with the reciprocating box (52), the bottom end of the reciprocating box (52) is connected to the grinding mechanism (53), the front end of the transition cylinder (51) is connected to the outside of the front connecting arm (464) through the synchronous sleeve (54), and the bottom end of the front connecting arm (464) is connected to the cutting tool (55). The reciprocating box (52) has a set of moving grooves (521) near the front end on the bottom surface. A set of sliders (522) is connected to the inner end of the moving grooves (521). A set of electric push rods (523) is provided in the middle of the sliders (522). The bottom end of the output end of the electric push rods (523) is connected to the grinding mechanism (53). The polishing mechanism (53) includes a polishing plate (531), which consists of two sets. Each set of polishing plates (531) is hinged to a set of polishing plates (532) at its upper and lower ends. The two sets of polishing plates (531) are connected at their midpoints by a connecting block (533). The bottom end of the connecting block (533) is provided with a connecting frame (534). The bottom end of the output end of the electric push rod (523) extends to the top end of the connecting block (533) and is connected to a set of vertical... The bottom end of the vertical rod (535) extends through the connecting block (533) and the connecting frame (534) to the bottom end of the connecting frame (534). The vertical rod (535) is provided with a set of through grooves (536) at the positions of the upper and lower grinding plates (532). The upper end of each through groove (536) is provided with two sets of push arms (537). The end of each push arm (537) away from the vertical rod (535) is hinged to the inner side of the grinding plate (532).
2. The instrument transformer component processing equipment according to claim 1, characterized in that: The reciprocating box (52) has a cavity (524) at its rear end. A turntable (525) is provided in the cavity (524). A drive motor (526) is connected to the left end of the turntable (525). A rotating arm (527) is connected to the outer right end of the turntable (525). A push arm (528) is connected to the other end of the rotating arm (527). The other end of the push arm (528) extends through the moving groove (521) and is connected to the rear end of the slider (522).
3. The instrument transformer component processing equipment according to claim 1, characterized in that: The connecting frame (534) is U-shaped, and the connecting block (533) is located at its inner bottom end. The front and rear top ends of the connecting frame (534) are respectively connected to the front and rear positions of the bottom of the slider two (522).
4. The instrument transformer component processing equipment according to claim 1, characterized in that: The outer sides of the two sets of grinding plates (531) at the left and right ends are flush with the outer sides of the cutting tool (55).
5. The instrument transformer component processing equipment according to claim 1, characterized in that: The rotating rod (43) has an external thread on its outer right side, and the moving block (46) at the rightmost end has a corresponding internal thread in its through hole (462).
6. The instrument transformer component processing equipment according to claim 1, characterized in that: The number of the second linkage arm (452) is one less than the number of the moving blocks (46).
Citation Information
Patent Citations
Novel cutting equipment for building material manufacturing
CN114559487A
Building engineering material cutting equipment
CN119347967A