Sleeve capacitor core winding machine
By designing a cleaning, angle adjustment and absorption and collection mechanism in the casing capacitor core coiler, the deviation and scratch problems caused by dust during the winding process are solved, and efficient surface cleaning and adaptability are achieved, ensuring uniformity of winding and surface integrity of the capacitor core.
Patent Information
- Application Number
- CN202510379191.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-27
- Publication Date
- 2025-05-13
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
During the winding process of the casing capacitor core, dust adheres to the surface, which changes the friction coefficient, affects the uniformity of the winding, which may cause the core to shift and wrinkle, and the dust particles may be rough, which may scratch the surface of the capacitor core.
A casing capacitor core coiler is designed, including a cleaning mechanism, an angle adjustment mechanism and an absorption and collection mechanism. The cleaning mechanism can clean dust on the surface of the casing capacitor core through the cooperation of the annular cleaning block and the gear roller; the angle adjustment mechanism can adjust the position of the cleaning mechanism to adapt to the core of different specifications through the cooperation of the small cylinder and the "U"-shaped block; the absorption and collection mechanism can absorb and collect dust on the surface of the cleaning mechanism through the cooperation of the vacuum cleaner and the scraper.
Through the cleaning effect of the cleaning mechanism, dust on the surface of the casing capacitor core can be effectively removed, the surface can be kept clean, and the deviation and scratch problems caused by dust during winding are avoided; the angle adjustment mechanism can adapt to cores of different specifications to ensure the consistency of cleaning effects; the absorption and collection mechanism can maintain the clean state of the cleaning mechanism to ensure the continuity and efficiency of subsequent operations.
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Figure CN119976474A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of coiling machines, and in particular to a casing capacitor core coiling machine. Background Art
[0002] The casing capacitor core winding machine is an automated equipment specially used for the arrangement and winding of casing capacitor cores. The equipment adopts advanced mechanical structure and intelligent control system, realizing efficient, accurate and stable capacitor core winding operation, greatly improving production efficiency and product quality.
[0003] According to the Chinese publication number: CN217201200U, the anti-bias finishing and rolling machine includes a machine body, on which are arranged several conveying rollers for conveying fabrics and a winding roller for winding fabrics, two guide rollers are arranged between the winding roller and the conveying roller, the fabrics go around the conveying rollers to the top of the two guide rollers and then to the bottom of the winding rollers, a deviation correction device for preventing fabric deviation is arranged on the winding roller, several jet heads are arranged above the two guide rollers, and the air outlet of the jet head is arranged vertically toward between the two guide rollers. The deviation correction device is arranged to prevent the fabrics from being skewed during the rolling process, thereby ensuring the rolling quality, and the cooperation of the jet head and the dust collecting box is arranged to prevent dust from floating in the air, thereby ensuring the cleanliness of the overall processing environment.
[0004] After the processing of the sleeve capacitor core is completed, dust will adhere to its surface due to the factory environment. At this time, the friction coefficient of the surface of the sleeve capacitor core with dust on the surface will change during the winding process. During the winding process, friction is an important factor affecting the uniformity of winding. The friction in the area where dust is attached may increase or decrease, causing the core to deviate and wrinkle during winding. When the dust particles are rough and large, these particles will scratch the surface of the capacitor core as the core rotates and contacts with other components during the winding process. Summary of the invention
[0005] The purpose of the present application is to provide a sleeve capacitor core winding machine to solve the problem raised in the above-mentioned background technology that the friction coefficient of the surface of the sleeve capacitor core with dust on its surface changes during the winding process. During the winding process, friction is an important factor affecting the uniformity of winding. The friction in the area where dust is attached may increase or decrease, resulting in the core being offset and wrinkled during winding. In addition, when the dust particles are rough and large, these particles will scratch the surface of the capacitor core as the core rotates and contacts with other components during the winding process.
[0006] To achieve the above-mentioned purpose, the present application provides the following technical solutions: a casing capacitor core whole coiling machine, comprising: a whole coiling machine main body, a cleaning mechanism, an angle adjustment mechanism and an absorption and collection mechanism, the whole coiling machine is composed of a fixed bottom plate, a positioning roller assembly arranged on one side above the fixed bottom plate, a tensioning adjustment assembly arranged in the middle position above the fixed bottom plate and a winding assembly arranged on the other side above the fixed bottom plate, the cleaning mechanism is arranged above the fixed bottom plate on one side of the positioning roller assembly, the cleaning mechanism comprises fixed blocks arranged above the fixed bottom plate at both ends of one side of the positioning roller assembly, the number of the fixed blocks is two groups, each group of the fixed blocks is composed of two groups of integrally formed "L"-shaped blocks, and the two groups of "L"-shaped blocks of the fixed blocks The two ends of the "-shaped block are respectively provided with a through hole and an arc-shaped sliding hole, the cleaning mechanism also includes a gear roller rotatably connected to the through holes of the two groups of fixed blocks, a connecting roller arranged in the arc-shaped sliding holes of the two groups of fixed blocks, an annular cleaning block sleeved on the gear roller and the connecting roller, the inner wall of the annular cleaning block is provided with a plastic rack meshing with the gear roller, a bidirectional motor arranged in the middle of the outer wall of the fixed block, a first pulley arranged on the output ends of both sides of the bidirectional motor through an axis, a second pulley arranged on the gear roller, and a wide belt sleeved on the first pulley and the second pulley, the angle adjustment mechanism is arranged on the outer wall of the fixed block, and the absorption and collection mechanism is arranged on the top and bottom of the fixed block.
[0007] By adopting the above technical solution, dust on the surface of the bushing capacitor core can be cleaned.
[0008] Preferably, the angle adjustment mechanism comprises a small cylinder horizontally fixed on the outer wall of the fixed block and a first "U"-shaped block arranged on the output end of the small cylinder, and two groups of round shafts are welded to the inner wall of the first "U"-shaped block.
[0009] By adopting the above technical solution, the structure on the output end can be driven by a small cylinder to achieve a change in position.
[0010] Preferably, the angle adjustment mechanism also includes a connecting rod with one end rotatably connected to the circular axis of the first "U"-shaped block and a second "U"-shaped block rotatably connected to the other end of the connecting rod, and the second "U"-shaped block is welded to the connecting roller.
[0011] By adopting the above technical solution, the connected structures can be driven to move together through the change in angle.
[0012] Preferably, the absorption and collection mechanism comprises a guide rod with one end vertically welded to the top and bottom of the fixed block, and a protrusion is integrally formed at the other end of the guide rod.
[0013] By adopting the above technical solution, the structure on the rod can be provided by the guide rod to achieve stable vertical movement.
[0014] Preferably, the absorption and collection mechanism also includes an outer frame vertically slidably connected to the guide rod and a spring sleeved on the guide rod, the outer frame is provided with a rectangular hole, and the top of the outer frame is provided with a circular hole, and the two ends of the spring are respectively attached to the outer wall of the outer frame and the fixed block.
[0015] By adopting the above technical solution, the position change can be achieved by squeezing and pushing the structure at one end through the elastic force of the spring itself.
[0016] Preferably, the absorption and collection mechanism further comprises a vacuum cleaner arranged on the fixed bottom plate, and the output end of the vacuum cleaner is connected to the outer wall of the circular hole of the outer frame through a hose.
[0017] By adopting the above technical solution, the dust can be absorbed by its own suction force.
[0018] Preferably, the absorption and collection mechanism further comprises mounting blocks integrally formed on both ends of one side of the rectangular hole of the outer frame and rotating rollers rotatably connected inside the two groups of mounting blocks, and positioning holes are provided on the mounting blocks.
[0019] By adopting the above technical solution, it is possible to avoid damage to the surface of the annular cleaning block during the contact with the annular cleaning block.
[0020] Preferably, the absorption and collection mechanism further comprises a scraper arranged outside the outer frame and located on one side of the mounting block.
[0021] By adopting the above technical solution, the annular cleaning block can be separated from the dust through the rotation of the annular cleaning block after it contacts the scraper.
[0022] Preferably, the absorption and collection mechanism further comprises elastic blocks welded to both sides of the scraper, the elastic blocks are in an "L" shape, and the elastic blocks are arranged in positioning holes of the mounting block.
[0023] By adopting the technical solution, it is possible to quickly install and dismantle the device by manually bending it and causing deformation.
[0024] Preferably, the absorption and collection mechanism further comprises a collection box slidably connected in the rectangular hole of the outer frame, and the collection box is provided with an air hole at the circular hole of the outer frame.
[0025] By adopting the above technical solution, gas can flow through the air holes.
[0026] In summary, the present application includes at least one of the following beneficial effects:
[0027] (1) By providing a cleaning mechanism, the two sides of the sleeve capacitor core can be cleaned during the transportation of the sleeve capacitor core before winding up, and the parts for cleaning on the two sides of the sleeve capacitor core can be kept clean by rotating itself, thereby providing good surface cleaning efficiency of the sleeve capacitor core before winding up and avoiding dust particles remaining on the surface of the sleeve capacitor core during the winding process.
[0028] (2) By providing a cleaning mechanism and an angle adjustment mechanism, the cleaning mechanism can be driven to change its position through the angle adjustment mechanism, so that when facing sleeve capacitor cores of different thickness specifications, it can stably adhere to the surface of the sleeve capacitor core, thereby quickly cleaning the dust on both sides of the sleeve capacitor core.
[0029] (3) By providing a cleaning mechanism and an absorption and collection mechanism, after the cleaning mechanism absorbs the dust on the surface of the sleeve capacitor core, the dust absorbed on the surface of the cleaning mechanism can be cleaned by the absorption and collection mechanism, thereby playing a role in maintaining the cleaning mechanism of the sleeve capacitor core in a clean state at all times, and can be collected by the absorption and collection mechanism, so that the collected dust particles can be discharged uniformly later. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] Figure 1 A schematic diagram of the three-dimensional structure of this application;
[0031] Figure 2 A schematic diagram of the three-dimensional structure of the cleaning mechanism, angle adjustment mechanism and absorption and collection mechanism of the present application;
[0032] Figure 3 A schematic diagram of the three-dimensional structure of the cleaning mechanism and the angle adjustment mechanism of the present application;
[0033] Figure 4 For this application Figure 3 Schematic diagram of the three-dimensional structure in section;
[0034] Figure 5 This is a schematic diagram of the three-dimensional structure of the absorption and collection mechanism of this application;
[0035] Figure 6 This is a schematic diagram of the three-dimensional structure of the outer frame of this application;
[0036] Figure 7 For this application Figure 6 Expand the 3D structure diagram.
[0037] In the figure: 1. Fixed bottom plate; 2. Positioning roller assembly; 3. Tension adjustment assembly; 4. Winding assembly; 5. Cleaning mechanism; 501. Fixed block; 502. Gear roller; 503. Connecting roller; 504. Annular cleaning block; 505. Bidirectional motor; 506. First pulley; 507. Second pulley; 508. Wide belt; 6. Angle adjustment mechanism; 601. Small cylinder; 602. First "U" shaped block; 603. Connecting rod; 604. Second "U" shaped block; 7. Absorption and collection mechanism; 701. Guide rod; 702. Outer frame; 703. Spring; 704. Vacuum cleaner; 705. Mounting block; 706. Rotating roller; 707. Scraper; 708. Elastic block; 709. Collection box. DETAILED DESCRIPTION
[0038] The following will be combined with the drawings in the embodiments of the present application to clearly and completely describe the technical solutions in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments. Based on the embodiments in the present application, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of this application.
[0039] The following is combined with Figure 1-7 The embodiments of the present application are described in further detail.
[0040] Example 1
[0041] See also Figure 1-Figure 7 , this embodiment provides a technical solution: a casing capacitor core winding machine, comprising: a fixed bottom plate 1, a positioning roller assembly 2, a tension adjustment assembly 3, a winding assembly 4, a cleaning mechanism 5, an angle adjustment mechanism 6 and an absorption and collection mechanism 7;
[0042] The whole roll machine consists of a fixed base plate 1, a positioning roller assembly 2 arranged on one side above the fixed base plate 1, a tensioning adjustment assembly 3 arranged in the center above the fixed base plate 1, and a winding assembly 4 arranged on the other side above the fixed base plate 1. The tensioning adjustment assembly 3 is composed of a roller with adjustable position on the output end driven by a large cylinder, and the winding assembly 4 is composed of a winding roller connected to the output end and driven by a driving motor. The above is the existing technology and will not be repeated below.
[0043] The cleaning mechanism 5 is arranged above the fixed base plate 1 and located on one side of the positioning roller assembly 2. The cleaning mechanism 5 includes fixed blocks 501 arranged above the fixed base plate 1 and located at both ends of one side of the positioning roller assembly 2. The number of the fixed blocks 501 is two groups. Each group of fixed blocks 501 is composed of two groups of integrally formed "L"-shaped blocks. The two ends of the two groups of "L"-shaped blocks of the fixed blocks 501 are respectively provided with through holes and arc-shaped sliding holes. The cleaning mechanism 5 also includes gear rollers 502 rotatably connected in the through holes of the two groups of fixed blocks 501. The gear rollers 502 arranged in the two groups of fixed blocks 501 are provided with a plurality of gear rollers 503. 1, a connecting roller 503 in an arc-shaped sliding hole, an annular cleaning block 504 sleeved on the gear roller 502 and the connecting roller 503, the inner wall of the annular cleaning block 504 is provided with a plastic rack meshing with the gear roller 502, a bidirectional motor 505 arranged at the center of the outer wall of the fixed block 501, a first pulley 506 arranged on the output ends of both sides of the bidirectional motor 505 through an axis, a second pulley 507 arranged on the gear roller 502, and a wide belt 508 sleeved on the first pulley 506 and the second pulley 507.
[0044] The angle adjustment mechanism 6 is arranged on the outer wall of the fixed block 501 , and the absorption and collection mechanism 7 is arranged on the top and the bottom of the fixed block 501 .
[0045] The sleeve capacitor core is passed through the cleaning mechanism 5, the positioning roller assembly 2 and the tensioning adjustment assembly 3 in sequence, and then one end of the sleeve capacitor core is wound around the winding assembly 4. By starting the positioning roller assembly 2, when the positioning roller assembly 2 is working, the roller is driven to move by the large cylinder to adjust the tension of the sleeve capacitor core. When the cleaning mechanism 5 needs to be attached to the surface of the sleeve capacitor core, the angle adjustment mechanism 6 can provide a change in the position of the cleaning mechanism 5, so that the cleaning mechanism 5 can be attached to the surface of the sleeve capacitor core. The cleaning mechanism 5 can clean the dust on the surface of the sleeve capacitor core when it is working. When the dust attached to the cleaning mechanism 5 needs to be cleaned, it can be quickly cleaned and collected by the absorption and collection mechanism 7. At this time, the winding assembly 4 is started, and the winding assembly 4 drives the winding roller to rotate through the motor, thereby realizing the winding of the sleeve capacitor core wound on the winding roller.
[0046] When it is necessary to clean the dust on the surface of the sleeve capacitor core, when the sleeve capacitor core is reeled and displaced by the reeling assembly 4, the annular cleaning block 504 outside the connecting roller 503 can be attached to the surface of the sleeve capacitor core, and the annular cleaning block 504 can absorb the dust attached to the surface through the movement of the sleeve capacitor core. When the annular cleaning block 504 is attached to the surface of the sleeve capacitor core and can no longer absorb the dust, the first pulley 506 connected by the shaft is driven to rotate by starting the bidirectional motor 505. Because the first pulley 506 is connected to the second pulley 507 through the wide belt 508, the gear roller 502 connected to the second pulley 507 can stably rotate inside the fixed block 501. Because the annular cleaning block 504 outside the gear roller 502 is in a meshing state, the annular cleaning block 504 can change its position outside the connecting roller 503, so that the annular cleaning block 504 can change its position to clean the dust on the surface of the sleeve capacitor core.
[0047] Example 2
[0048] See also Figure 1-Figure 7 , This embodiment provides a technical solution: a casing capacitor core winding machine, comprising: a small cylinder 601, a first "U"-shaped block 602, a connecting rod 603 and a second "U"-shaped block 604;
[0049] The angle adjustment mechanism 6 includes a small cylinder 601 horizontally fixed on the outer wall of the fixed block 501 and a first "U"-shaped block 602 arranged on the output end of the small cylinder 601, and two groups of circular shafts are welded on the inner wall of the first "U"-shaped block 602, one end of which is rotatably connected to the circular shaft of the first "U"-shaped block 602 and a second "U"-shaped block 604 rotatably connected to the other end of the connecting rod 603, and the second "U"-shaped block 604 is welded to the connecting roller 503.
[0050] When it is necessary to change the position of the annular cleaning block 504 outside the connecting roller 503 so that it can fit on the surface of the sleeve capacitor cores of different specifications, the small cylinder 601 is started, and the small cylinder 601 drives the first "U"-shaped block 602 on the output end to change its position. The first "U"-shaped block 602 is rotatably connected to the second "U"-shaped block 604 through the connecting rod 603. At this time, the connecting roller 503 connected to the second "U"-shaped block 604 can change its position in the arc hole of the fixed block 501, so that the annular cleaning block 504 outside the connecting roller 503 can stably fit on the surface of the sleeve capacitor cores of different specifications.
[0051] Example 3
[0052] See also Figure 1-Figure 7, This embodiment provides a technical solution: a bushing capacitor core winding machine, including: a guide rod 701, an outer frame 702, a spring 703, a vacuum cleaner 704, a mounting block 705, a rotating roller 706, a scraper 707, an elastic block 708 and a collection box 709;
[0053] The absorption and collection mechanism 7 includes a guide rod 701 with one end vertically welded to the top and bottom of the fixed block 501, and a protrusion is integrally formed at the other end of the guide rod 701, an outer frame 702 vertically slidably connected to the guide rod 701 and a spring 703 sleeved on the guide rod 701, the outer frame 702 is provided with a rectangular hole, and the top of the outer frame 702 is provided with a circular hole, and the two ends of the spring 703 are respectively attached to the outer frame 702 and the outer wall of the fixed block 501.
[0054] A vacuum cleaner 704 is arranged on the fixed base plate 1, and the motor in the vacuum cleaner 704 rotates at a high speed to generate a strong suction force. The motor drives the fan blades to rotate to make the air flow quickly. The vacuum cleaner 704 is a prior art and will not be described in detail below. The output end of the vacuum cleaner 704 is connected to the outer wall of the circular hole of the outer frame 702 through a hose, and the mounting blocks 705 integrally formed on both ends of one side of the rectangular hole of the outer frame 702 and the rotating rollers 706 rotatably connected to the inside of the two groups of mounting blocks 705 are provided with positioning holes on the mounting blocks 705, and a scraper 707 is arranged on the outside of the outer frame 702 and on one side of the mounting block 705.
[0055] The elastic block 708 welded on both sides of the scraper 707 has an "L" shape and is arranged in the positioning hole of the mounting block 705. The collecting box 709 is slidably connected to the rectangular hole of the outer frame 702, and the collecting box 709 is provided with an air vent at the circular hole of the outer frame 702.
[0056] When it is necessary to regularly clean the dust on the surface of the annular cleaning block 504, the outer frame 702 on the guide rod 701 can be pressed by the spring 703 so that the outer frame 702 can fit on the surface of the annular cleaning block 504, and the outer frame 702 can play a role in not affecting the rotation of the annular cleaning block 504 during the process of fitting with the annular cleaning block 504 through the rotating roller 706 inside the mounting block 705. When the annular cleaning block 504 is affected by the rotating gear roller 502 and rotates synchronously, when the annular cleaning block 504 contacts the scraper 707, this The scraper 707 will scrape and separate the dust on the surface of the annular cleaning block 504. At this time, the vacuum cleaner 704 above the fixed base plate 1 is started, and the vacuum cleaner 704 will drive the scraper 707 to absorb the dust scraped by the dust into the collection box 709 of the outer frame 702 for collection. When the scraper 707 is worn out due to long-term use and needs to be replaced, the elastic block 708 is manually pressed to deform the elastic block 708. At this time, the elastic block 708 can be removed from the inside of the mounting block 705 by sliding, and the scraper 707 can be driven to be disassembled and replaced.
[0057] The implementation principle of the bushing capacitor core winding machine of the present application is:
[0058] First, the sleeve capacitor core is passed through the cleaning mechanism 5, the positioning roller assembly 2 and the tensioning adjustment assembly 3 in sequence, and then one end of the sleeve capacitor core is wound on the winding assembly 4. By starting the positioning roller assembly 2, when the positioning roller assembly 2 is working, the roller is driven to move by the large cylinder to adjust the tension of the sleeve capacitor core. When the cleaning mechanism 5 needs to be attached to the surface of the sleeve capacitor core, the angle adjustment mechanism 6 can provide a change in the position of the cleaning mechanism 5, so that the cleaning mechanism 5 can be attached to the surface of the sleeve capacitor core. The cleaning mechanism 5 can clean the dust on the surface of the sleeve capacitor core when it is working. When the dust attached to the cleaning mechanism 5 needs to be cleaned, it can be quickly cleaned and collected by the absorption and collection mechanism 7. At this time, the winding assembly 4 is started, and the winding assembly 4 drives the winding roller to rotate through the motor, thereby realizing the winding of the sleeve capacitor core wound on the winding roller.
[0059] Secondly, when it is necessary to clean the dust on the surface of the sleeve capacitor core, when the sleeve capacitor core is reeled and displaced by the reeling assembly 4, the annular cleaning block 504 on the outside of the connecting roller 503 can fit on the surface of the sleeve capacitor core, and the annular cleaning block 504 absorbs the dust attached to the surface through the movement of the sleeve capacitor core. When the annular cleaning block 504 fits on the surface of the sleeve capacitor core and can no longer absorb the dust, the first pulley 506 connected by the shaft is driven to rotate by starting the bidirectional motor 505. Because the first pulley 506 is connected to the second pulley 507 through the wide belt 508, the gear roller 502 connected to the second pulley 507 can stably rotate inside the fixed block 501, because the annular cleaning block 504 on the outside of the gear roller 502 is in a meshing state. The annular cleaning block 504 can change its position outside the connecting roller 503 so that the annular cleaning block 504 can change its position to clean the dust on the surface of the sleeve capacitor core. When it is necessary to change the position of the annular cleaning block 504 outside the connecting roller 503 so that it can fit the surface of the sleeve capacitor cores of different specifications, the small cylinder 601 is started, and the small cylinder 601 drives the first "U"-shaped block 602 on the output end to change its position. The first "U"-shaped block 602 is rotatably connected to the second "U"-shaped block 604 through the connecting rod 603. At this time, the connecting roller 503 connected to the second "U"-shaped block 604 can change its position in the arc hole of the fixed block 501, so that the annular cleaning block 504 outside the connecting roller 503 can stably fit the surfaces of the sleeve capacitor cores of different specifications.
[0060] Finally, when it is necessary to regularly clean the dust on the surface of the annular cleaning block 504, the outer frame 702 on the guide rod 701 can be pressed by the spring 703 so that the outer frame 702 can fit on the surface of the annular cleaning block 504, and the outer frame 702 can play a role in not affecting the rotation of the annular cleaning block 504 during the process of fitting with the annular cleaning block 504 through the rotating roller 706 inside the mounting block 705. When the annular cleaning block 504 is affected by the rotating gear roller 502 and rotates synchronously, the annular cleaning block 504 contacts the scraper 707. At this time, the scraper 707 will scrape and separate the dust on the surface of the annular cleaning block 504. At this time, the vacuum cleaner 704 above the fixed bottom plate 1 is started, and the vacuum cleaner 704 will drive the scraper 707 to absorb the dust scraped by the dust into the collection box 709 of the outer frame 702 for collection. When the scraper 707 is worn out due to long-term use and needs to be replaced, the elastic block 708 is manually pressed to deform the elastic block 708. At this time, the elastic block 708 can be removed from the inside of the mounting block 705 by sliding, and the scraper 707 can be driven to be disassembled and replaced.
[0061] It is obvious to those skilled in the art that the present application is not limited to the details of the exemplary embodiments described above, and that the present application can be implemented in other specific forms without departing from the spirit or essential features of the present application. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-restrictive, and the scope of the present application is defined by the appended claims rather than the above description, and it is intended that all changes falling within the meaning and scope of the equivalent elements of the claims are included in the present application. Any figure mark in the claims should not be regarded as limiting the claim involved.
Claims
1. The bushing capacitor core winding machine is characterized by: include: The main body of the whole-winding machine is composed of a fixed bottom plate (1), a positioning roller assembly (2) arranged on one side above the fixed bottom plate (1), a tension adjustment assembly (3) arranged at a central position above the fixed bottom plate (1), and a winding assembly (4) arranged on the other side above the fixed bottom plate (1); A cleaning mechanism (5), the cleaning mechanism (5) being arranged above the fixed base plate (1) and located on one side of the positioning roller assembly (2), the cleaning mechanism (5) comprising fixed blocks (501) arranged above the fixed base plate (1) and located on both ends of one side of the positioning roller assembly (2), the number of the fixed blocks (501) being two groups, each group of the fixed blocks (501) being composed of two groups of integrally formed "L"-shaped blocks, and the two ends of the two groups of "L"-shaped blocks of the fixed blocks (501) are respectively provided with through holes and arc-shaped sliding holes; The cleaning mechanism (5) further comprises a gear roller (502) rotatably connected in the through holes of the two groups of the fixed blocks (501), a connecting roller (503) arranged in the arc-shaped sliding holes of the two groups of the fixed blocks (501), an annular cleaning block (504) sleeved on the gear roller (502) and the connecting roller (503), the inner wall of the annular cleaning block (504) being provided with a plastic rack meshing with the gear roller (502), a bidirectional motor (505) arranged in the middle of the outer wall of the fixed block (501), a first belt pulley (506) arranged on the output ends of both sides of the bidirectional motor (505) through an axis, a second belt pulley (507) arranged on the gear roller (502), and a wide belt (508) sleeved on the first belt pulley (506) and the second belt pulley (507); An angle adjustment mechanism (6), wherein the angle adjustment mechanism (6) is arranged on the outer wall of the fixed block (501); An absorption and collection mechanism (7), wherein the absorption and collection mechanism (7) is arranged at the top and bottom of the fixed block (501).
2. The bushing capacitor core winding machine according to claim 1, characterized in that: The angle adjustment mechanism (6) comprises a small cylinder (601) horizontally fixed on the outer wall of the fixed block (501) and a first "U"-shaped block (602) arranged on the output end of the small cylinder (601), and two groups of circular shafts are welded to the inner wall of the first "U"-shaped block (602).
3. The bushing capacitor core winding machine according to claim 2, characterized in that: The angle adjustment mechanism (6) further comprises a connecting rod (603) having one end rotatably connected to the circular axis of the first "U"-shaped block (602) and a second "U"-shaped block (604) rotatably connected to the other end of the connecting rod (603), wherein the second "U"-shaped block (604) is welded to the connecting roller (503).
4. The bushing capacitor core winding machine according to claim 1, characterized in that: The absorption and collection mechanism (7) comprises a guide rod (701) with one end vertically welded to the top and bottom of the fixed block (501), and a protrusion is integrally formed at the other end of the guide rod (701).
5. The bushing capacitor core winding machine according to claim 4, characterized in that: The absorption and collection mechanism (7) further comprises an outer frame (702) vertically slidably connected to the guide rod (701) and a spring (703) sleeved on the guide rod (701); the outer frame (702) is provided with a rectangular hole, and the top of the outer frame (702) is provided with a circular hole; two ends of the spring (703) are respectively attached to the outer wall of the outer frame (702) and the fixed block (501).
6. The bushing capacitor core winding machine according to claim 5, characterized in that: The absorption and collection mechanism (7) also includes a dust collector (704) arranged on the fixed bottom plate (1), and the output end of the dust collector (704) is connected to the outer wall of the circular hole of the outer frame (702) through a hose.
7. The bushing capacitor core winding machine according to claim 6, characterized in that: The absorption and collection mechanism (7) further comprises mounting blocks (705) integrally formed on both ends of one side of the rectangular hole of the outer frame (702) and a rotating roller (706) rotatably connected inside the two groups of mounting blocks (705); a positioning hole is provided on the mounting block (705).
8. The bushing capacitor core winding machine according to claim 7, characterized in that: The absorption and collection mechanism (7) further comprises a scraper (707) arranged outside the outer frame (702) and located on one side of the mounting block (705).
9. The bushing capacitor core winding machine according to claim 8, characterized in that: The absorption and collection mechanism (7) further comprises elastic blocks (708) welded to both sides of the scraper (707); the elastic blocks (708) are in an "L" shape, and the elastic blocks (708) are arranged in the positioning holes of the mounting blocks (705).
10. The bushing capacitor core winding machine according to claim 9, characterized in that: The absorption and collection mechanism (7) further comprises a collection box (709) slidably connected in the rectangular hole of the outer frame (702), and the collection box (709) is provided with an air hole at the circular hole of the outer frame (702).
Citation Information
Patent Citations
Anti-deviation finishing rolling machine
CN217201200U