A corrosion-resistant reflective film and its corrosion-resistant coating spraying processing mechanism
By designing a corrosion-resistant reflective film spraying mechanism, and using drive and sealing components to prevent paint dripping and drifting, the problems of paint residue and drifting were solved, achieving stable spraying results and worker safety.
Patent Information
- Application Number
- CN202411475175.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-22
- Publication Date
- 2025-12-02
- Estimated Expiration
- 2044-10-22
AI Technical Summary
After the existing reflective film is coated with anti-corrosion paint, residual paint at the spray nozzle may drip down and affect the effect, and the paint drift is harmful to the health of workers.
Design a corrosion-resistant reflective film and its corrosion-resistant coating spraying processing mechanism. The mechanism uses a drive component to move the spraying component and the placement plate, and uses a sealing component and a cleaning component to prevent paint from dripping and scattering, thus ensuring the spraying effect and worker safety.
It effectively prevents paint from dripping and scattering, ensuring that the spraying effect is not affected and protecting the health of workers.
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Figure CN119076267B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of reflective film technology, specifically to a corrosion-resistant reflective film and its corrosion-resistant coating spraying processing mechanism. Background Technology
[0002] Reflective film is a type of retroreflective material that has been made into a thin film for direct application. It is made using glass bead technology, microprism technology, synthetic resin technology, thin film technology, coating technology, and micro-replication technology. However, when used outdoors, reflective film will face various harsh environments and chemical corrosion. Therefore, it must have good corrosion resistance to ensure its reflective effect and service life.
[0003] However, current anti-corrosion reflective films are generally made by spraying anti-corrosion coatings onto the reflective film. However, coating residue may remain at the spray nozzles after spraying. If the residual coating drips onto the finished reflective film, it may affect the spraying effect. Furthermore, the sprayed coating may cause harm to workers if it floats in the air. Summary of the Invention
[0004] The purpose of this invention is to provide a corrosion-resistant reflective film and a corrosion-resistant coating spraying mechanism to overcome the shortcomings of the prior art.
[0005] To achieve the above objectives, the present invention provides the following technical solution: including a mounting shell, including a driving component disposed inside the mounting shell, the driving component being able to drive a spraying component slidably connected inside the mounting shell to slide, and the driving component being able to drive a placement plate slidably connected inside the mounting shell to move while driving the spraying component to slide;
[0006] The mounting housing is provided with a sealing component, which includes four first spring telescopic members fixedly disposed inside the mounting housing. Two of the first spring telescopic members are provided with a first sealing member at their output ends, and the other two first spring telescopic members are provided with a second sealing member at their output ends. The second sealing member is provided with a slot, and a second spring telescopic member is provided on the slot. The output end of the second spring telescopic member is provided with an arc member.
[0007] An arc-shaped plate is provided on each side of the placement plate, and the two arc-shaped plates correspond to the positions of the first closure member and the second closure member.
[0008] Furthermore, a partition is provided inside the mounting housing, and the drive assembly includes a motor mounted on the partition. A first gear component is provided at the output end of the motor, and a first helical gear is provided on the first gear component. The first helical gear meshes with a second helical gear. The second helical gear is connected to one end of a rotating shaft, and a third helical gear is provided at the other end of the rotating shaft. The third helical gear meshes with a fourth helical gear, and the fourth helical gear is mounted on a second gear component. The second gear component is rotatably connected to the partition.
[0009] Furthermore, the first gear engages with a first tooth condition, which is slidably connected within the mounting housing; the second gear engages with a second tooth condition, which is slidably connected to two fixing plates, which are disposed within the mounting housing; and the second tooth condition is fixedly connected to the placement plate.
[0010] Furthermore, the spraying assembly includes a crossbar slidably connected within the mounting housing, a plurality of spray nozzles fixedly connected below the crossbar, a plurality of fixing members provided on the crossbar, and a portion of each fixing member away from the crossbar being rotatably connected to a baffle plate. A first torsion spring is provided on the crossbar, and the output ends of two first torsion springs are respectively connected to one end of two first wires, the other ends of the two first wires being connected to the baffle plate. A sliding groove is provided on the baffle plate, an arc-shaped surface is provided on the baffle plate, and two snap-fit members are provided on the baffle plate.
[0011] Furthermore, the spraying assembly also includes two connecting rods disposed on the crossbar, the other ends of the two connecting rods being connected to the two fixed shells respectively, and one end of each of the two fixed shells being fixedly connected to two spring members, the other ends of the four spring members being fixedly connected to two sliding plates, and a limiting block being disposed on each of the two sliding plates, the two limiting blocks being respectively engaged with two snap-fit members.
[0012] Furthermore, the spraying assembly also includes two abutment blocks disposed on the partition plate, the two abutment blocks respectively corresponding to the positions of the two sliding plates, and the spraying assembly also includes a limiting plate disposed on the mounting shell, the limiting plate corresponding to the position of the shielding plate.
[0013] Furthermore, the spraying assembly also includes two telescopic rods disposed within the mounting housing, the output ends of both telescopic rods being fixedly connected to the crossbar, and the crossbar being fixedly connected to the first tooth condition.
[0014] Furthermore, the system includes a cleaning assembly disposed inside the mounting housing. The cleaning assembly includes a first slide rail disposed on the partition, on which a scraper is slidably connected. One end of the scraper is fixedly connected to a section of a second wire, and the other end of the second wire is connected to a winding shaft. The winding shaft is disposed on the output end of a second torsion spring, which is fixedly disposed on the partition.
[0015] Furthermore, one end of a third wire is fixedly connected to the side of the scraper away from the second wire, and the other end of the third wire is fixedly connected to a push plate. The push plate is slidably connected inside the mounting housing and corresponds to the position of the crossbar. The third wire is connected to a pulley component, which is slidably connected to a second slide rail. The second slide rail is fixedly connected inside the mounting housing, and the scraper can correspond to the position of the slide groove.
[0016] Furthermore, the cleaning assembly also includes a third spring telescopic member disposed within the mounting housing. The output end of the third spring telescopic member is provided with an abutment rod, which corresponds to the position of the crossbar. A blocking member is provided on the abutment rod, which corresponds to the position of the scraper. The blocking member is provided with an arc surface.
[0017] In the above technical solution, the present invention provides a corrosion-resistant reflective film and its corrosion-resistant coating spraying processing mechanism. The drive component moves the spraying component and the placement plate, so that several spray nozzles spray the reflective film. At the same time, the setting of the shielding plate and the limiting block allows the shielding plate to block the spray nozzles, preventing the paint residue in the spray nozzles from dripping onto the reflective film after spraying and affecting the spraying effect. Meanwhile, the cleaning component can clean the paint on the shielding plate, preventing the paint on the shielding plate from being too much or too dry. This ensures that the shielding plate will not fail to block the spray nozzles due to excessive or dry paint, and prevents paint dripping from the shielding plate from affecting the spraying effect. Furthermore, the setting of the sealing component prevents the paint from spilling out of the mounting shell during the spraying of the reflective film, preventing the paint from drifting in the air and causing injury to workers. Attached Figure Description
[0018] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this invention. For those skilled in the art, other drawings can be obtained based on these drawings.
[0019] Figure 1 This is a schematic diagram of the overall structure provided in an embodiment of the present invention;
[0020] Figure 2This is one of the internal structure diagrams provided in the embodiments of the present invention;
[0021] Figure 3 Provided for embodiments of the present invention Figure 3 A magnified structural diagram at point A;
[0022] Figure 4 Provided for embodiments of the present invention Figure 3 A magnified structural diagram at point B;
[0023] Figure 5 This is a second schematic diagram of the internal structure provided in an embodiment of the present invention;
[0024] Figure 6 Provided for embodiments of the present invention Figure 5 A magnified structural diagram at point C;
[0025] Figure 7 This is a partial structural schematic diagram provided for an embodiment of the present invention;
[0026] Figure 8 This is one of the partial structural cross-sectional schematic diagrams provided in the embodiments of the present invention;
[0027] Figure 9 This is the second schematic diagram of a partial structural cross-section provided in an embodiment of the present invention;
[0028] Figure 10 The third internal structure diagram provided for an embodiment of the present invention.
[0029] Explanation of reference numerals in the attached figures:
[0030] 1. Mounting housing; 11. Partition plate; 2. Drive assembly; 21. Motor; 22. First gear component; 23. First helical gear; 24. Second helical gear; 25. Rotating shaft; 26. Third helical gear; 27. Fourth helical gear; 28. Second gear component; 29. First tooth condition; 210. Second tooth condition; 211. Fixing plate; 3. Spraying assembly; 31. Crossbar; 32. Spray nozzle; 33. Fixing component; 34. Baffle plate; 35. First torsion spring component; 36. First wire; 37. Slide groove; 38. Snap-fit component; 39. Connecting rod; 310. Fixing housing; 311. Spring component; 312. 313. Slide board; 314. Limiting block; 315. Abutting block; 316. Limiting plate; 317. Telescopic rod; 4. Enclosure assembly; 41. First spring telescopic component; 42. First enclosure component; 43. Second enclosure component; 44. Second spring telescopic component; 45. Arc component; 5. Cleaning assembly; 51. First slide rail; 52. Scraper; 53. Second guide wire; 54. Winding spool; 55. Second torsion spring component; 56. Third guide wire; 57. Push plate; 58. Pulley component; 59. Second slide rail; 510. Third spring telescopic component; 511. Abutting rod; 512. Blocking component; 6. Placement plate; 61. Arc plate. Detailed Implementation
[0031] To enable those skilled in the art to better understand the technical solution of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings.
[0032] Please see Figure 1-10 The present invention provides a corrosion-resistant reflective film and its corrosion-resistant coating spraying processing mechanism, including a mounting shell 1 and a driving component 2 disposed inside the mounting shell 1. The driving component 2 can drive the spraying component 3 slidably connected inside the mounting shell 1 to slide. While the driving component 2 drives the spraying component 3 to slide, it can also drive the placement plate 6 slidably connected inside the mounting shell 1 to move.
[0033] The mounting housing 1 is provided with a sealing component 4. The sealing component 4 includes four first spring telescopic members 41 fixedly installed inside the mounting housing 1. Two of the first spring telescopic members 41 are provided with a first sealing member 42 at their output ends. The other two first spring members 311 are provided with a second sealing member 43 at their output ends. The second sealing member 43 is provided with a slot. The slot is provided with a second spring telescopic member 44. The output end of the second spring telescopic member 44 is provided with an arc member 45.
[0034] An arc-shaped plate 61 is provided on each side of the placement plate 6. The two arc-shaped plates 61 correspond to the positions of the first sealing member 42 and the second sealing member 43. The sealing component 4 is used to seal the spraying environment during the spraying process, preventing the paint from being dispersed into the air and affecting the health of the workers. Furthermore, the second spring telescopic member 44 and the arc member 45 ensure that the movement of the second rack does not affect the sealing of the inside of the mounting shell 1 by the first sealing member 42 and the second sealing member 43.
[0035] Preferably, a partition 11 is provided inside the mounting housing 1, and the drive assembly 2 includes a motor 21 mounted on the partition 11. A first gear component 22 is provided at the output end of the motor 21. A first helical gear 23 is provided on the first gear component 22. The first helical gear 23 meshes with a second helical gear 24. The second helical gear 24 is connected to one end of a rotating shaft 25. A third helical gear 26 is provided at the other end of the rotating shaft 25. The third helical gear 26 meshes with a fourth helical gear 27. The fourth helical gear 27 is mounted on a second gear component 28. The second gear component 28 is rotatably connected to the partition 11. By setting the size of the first gear component 22 and the second gear component 28, the moving lengths of the first gear component 22 and the second gear component 210 are not synchronized, so that after the placement plate 6 enters the mounting housing 1, the several spray nozzles 32 can still spray the entire area of the reflective film.
[0036] Preferably, the first gear component 22 meshes with a first tooth condition 29, which is slidably connected within the mounting housing 1; the second gear component 28 meshes with a second tooth condition 210, which is slidably connected with two fixing plates 211, which are disposed within the mounting housing 1; and the second tooth condition 210 is fixedly connected to the placement plate 6.
[0037] Preferably, the spraying assembly 3 includes a crossbar 31 slidably connected within the mounting housing 1. Several spray nozzles 32 are fixedly connected below the crossbar 31. Several fixing members 33 are provided on the crossbar 31. The ends of the fixing members 33 away from the crossbar 31 are rotatably connected to a baffle plate 34. A first torsion spring 35 is provided on the crossbar 31. The output ends of the two first torsion springs 35 are respectively connected to one end of two first wires 36. The other ends of the two first wires 36 are connected to the baffle plate 34. A sliding groove 37 is provided on the baffle plate 34. An arc-shaped surface is provided on the baffle plate 34. Two snap-fit members 38 are provided on the baffle plate 34. The baffle plate 34 can block the spray nozzles 32, preventing residual paint in the spray nozzles 32 from dripping onto the reflective film and affecting the spraying effect. The arc-shaped surface on the baffle plate 34 can be flipped after contact with the limiting position.
[0038] Preferably, the spraying assembly 3 further includes two connecting rods 39 disposed on the crossbar 31. The other ends of the two connecting rods 39 are respectively connected to two fixed shells 310. Two spring members 311 are fixedly connected to one end of each of the two fixed shells 310. The other ends of the four spring members 311 are fixedly connected to two sliding plates 312. Each of the two sliding plates 312 is provided with a limiting block 313. The two limiting blocks 313 are respectively connected to two snap-fit members 38. The snap-fit members 38 and the limiting blocks 313 are provided so that the shielding plate 34 can be limited after flipping, preventing the shielding plate 34 from not returning to its original position after not contacting the limiting plate 315.
[0039] Preferably, the spraying assembly 3 further includes two abutment blocks 314 disposed on the partition plate 11, the two abutment blocks 314 respectively corresponding to the positions of the two sliding plates. The spraying assembly 3 also includes a limiting plate 315 disposed on the mounting shell 1, the limiting plate 315 corresponding to the position of the shielding plate 34. The setting of the abutment blocks 314 enables the shielding plate 34 to be released from its limiting position and reset, so that a number of spray nozzles 32 can be opened, and the number of spray nozzles 32 can be sprayed again.
[0040] Preferably, the spraying assembly 3 further includes two telescopic rods 316 disposed in the mounting housing 1, the output ends of the two telescopic rods 316 being fixedly connected to the crossbar 31, and the crossbar 31 being fixedly connected to the first tooth condition 29.
[0041] Preferably, a cleaning component 5 is disposed inside the mounting housing 1. The cleaning component 5 includes a first slide rail 51 disposed on the partition 11. A scraper 52 is slidably connected to the first slide rail 51. One end of the scraper 52 is fixedly connected to a section of a second wire 53. The other end of the second wire 53 is connected to a winding shaft 54. The winding shaft 54 is disposed on the output end of a second torsion spring 55. The second torsion spring 55 is fixedly disposed on the partition 11. The scraper 52 is used to clean the paint on the masking plate 34, preventing excessive paint or dryness on the masking plate 34. This ensures that the masking plate 34 will not fail to seal the spray nozzles 32 due to excessive or dry paint, and also prevents paint dripping from the masking plate 34 from affecting the spraying effect.
[0042] Preferably, one end of a third wire 56 is fixedly connected to the side of the scraper 52 away from the second wire 53. The other end of the third wire 56 is fixedly connected to a push plate 57. The push plate 57 is slidably connected inside the mounting housing 1 and corresponds to the position of the crossbar 31. The third wire 56 is connected to a pulley 58, which is slidably connected inside a second slide rail 59. The second slide rail 59 is fixedly connected inside the mounting housing 1. The scraper 52 can correspond to the position of the slide groove 37. The push plate 57 allows the scraper 52 to be reset after cleaning the baffle 34 for the next cleaning. The sliding component prevents the third wire 56 from becoming scattered and keeps it tightened and limited by the weight of the pulley 58.
[0043] Preferably, the cleaning component 5 further includes a third spring telescopic member 510 disposed in the mounting housing 1. The output end of the third spring telescopic member 510 is provided with an abutment rod 511, which corresponds to the position of the crossbar 31. A blocking member 512 is provided on the abutment rod 511, which corresponds to the position of the scraper 52. The blocking member 512 is provided with an arc surface.
[0044] Working principle: By placing the reflective film on the placement plate 6, the motor 21 is started to drive the first gear component 22 to rotate, which causes the first helical gear 23 to rotate, which in turn drives the second helical gear 24 to rotate, which causes the rotating shaft 25 to rotate, which in turn drives the third helical gear 26 to rotate, which in turn drives the fourth helical gear 27 to rotate, which in turn drives the second gear component 28 to rotate.
[0045] When the second gear 28 rotates, it drives the second gear 28 to move, causing the placement plate 6 to move toward the inside of the mounting shell 1, which in turn drives the two arc-shaped plates 61 to move. The two arc-shaped plates 61 are in contact with the positions where the first sealing member 42 and the second sealing member 43 are mutually attached, causing the first sealing member 42 and the second sealing member 43 to move away from each other, causing the first spring telescopic members 41 to retract, so that the placement plate 6 enters the inside of the mounting shell 1, so that the two arc-shaped plates 61 no longer contact the first sealing member and the second sealing member. At the same time, the second gear condition 210 is insufficient to contact the arc member 45, so that the arc member 45 is reset, so that the inside of the mounting shell 1 is sealed after the placement plate 6 enters the inside of the mounting shell 1.
[0046] When the first gear 22 rotates, it drives the first gear condition 29 to move, causing the crossbar 31 to move, which in turn drives several spray nozzles 32 to move. When the placement plate 6 is completely moved into the mounting shell 1, the several spray nozzles 32 spray an anti-corrosion coating onto the reflective film. At the same time, when the crossbar 31 moves, it drives the push plate 57 to slide, causing the third guide wire 56 to be pulled, which in turn drives the scraper 52 to move, causing the scraper 52 to contact the arc surface of the blocking member 512, causing the blocking member 512 to move, which in turn drives the third spring telescopic member 510 to retract. When the scraper 52 moves to the point where it no longer contacts the blocking member 512, the third spring telescopic member 510 resets, which in turn drives the blocking member 512 to reset, thus limiting the scraper 52.
[0047] After the spraying is completed, the horizontal bar 31 continues to move, which can drive several fixed parts 33 to move, causing the shielding plate 34 to move. This causes the arc surface of the shielding plate 34 to contact the limiting plate 315, causing the shielding plate 34 to flip. This causes the two snap-fit parts 38 to flip. By setting an inclined block on each of the two snap-fit parts 38, the two inclined blocks contact the two limiting blocks 313 respectively, causing the two sliding plates 312 to move. This causes several spring parts 311 to retract. When the two inclined blocks move to the point where they no longer contact the two limiting blocks 313, the four spring extension parts are released, causing the two sliding plates 312 to reset, causing the two limiting blocks 313 to reset, and causing the two snap-fit parts 38 to be snapped. At this time, the shielding plate 34 is limited and blocks several spray nozzles 32.
[0048] Then, motor 21 reverses, driving the first gear component 22 and the second gear component 28 to reverse as well;
[0049] When the first gear 22 reverses, it drives the first gear condition 29 to move in the opposite direction, causing the crossbar 31 to slide in the opposite direction. Since several spray nozzles 32 are blocked at this time, when the spray nozzles 32 pass over the reflective film again, the paint remaining in the spray nozzles 32 will not drip onto the reflective film and affect the spraying effect. When the crossbar 31 moves, it drives the two connecting rods 39 to move, causing the two fixed shells 310 to move, which in turn drives several spring components 311 to move, causing the two sliding plates 312 to move. The two sliding plates 312 then contact the two abutment blocks 314 respectively, causing the two sliding plates 312 to move. This movement of the two sliding plates 312 drives the two limiting blocks 313 to move, causing the two limiting blocks to move. 313 is not due to the two snap-fit pieces 38 snapping together, so that the baffle plate 34 is no longer limited. At this time, the two first torsion spring pieces 35 rotate and reset, causing the two first wires 36 to be wound, causing the baffle plate 34 to rotate, so that the baffle plate 34 no longer limits the several spray nozzles 32. Then, because the crossbar 31 contacts the abutment rod 511 and drives the abutment rod 511 to move, the third spring telescopic piece 510 retracts, driving the blocking piece 512 to move, so that the scraper 52 is no longer limited, causing the second torsion spring piece 55 to drive the winding shaft 54 to rotate, causing the second wire 53 to be wound, causing the scraper 52 to move to scrape the paint in the groove 37.
[0050] The foregoing has only described certain exemplary embodiments of the present invention by way of illustration. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the foregoing drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.
Claims
1. A corrosion-resistant reflective film and its corrosion-resistant coating spraying processing mechanism, comprising a mounting shell (1), characterized in that, It includes a drive assembly (2) disposed inside the mounting housing (1), the drive assembly (2) being able to drive the spraying assembly (3) slidably connected inside the mounting housing (1) to slide, and the drive assembly (2) being able to drive the placement plate (6) slidably connected inside the mounting housing (1) to move while the spraying assembly (3) is sliding. The mounting housing (1) is provided with a sealing component (4). The sealing component (4) includes four first spring telescopic members (41) fixedly disposed inside the mounting housing (1). Two of the first spring telescopic members (41) are provided with a first sealing member (42) at their output ends. The other two first spring telescopic members (41) are provided with a second sealing member (43) at their output ends. The second sealing member (43) is provided with a slot. The slot is provided with a second spring telescopic member (44). The output end of the second spring telescopic member (44) is provided with an arc member (45). An arc-shaped plate (61) is provided on each side of the placement plate (6), and the two arc-shaped plates (61) correspond to the positions of the first closure member (42) and the second closure member (43); A partition (11) is provided inside the mounting housing (1); The spraying assembly (3) includes a crossbar (31) slidably connected in the mounting housing (1), a plurality of spray nozzles (32) fixedly connected below the crossbar (31), a plurality of fixing parts (33) provided on the crossbar (31), a section of the fixing parts (33) away from the crossbar (31) being rotatably connected to a baffle plate (34), two first torsion springs (35) provided on the crossbar (31), the output ends of the two first torsion springs (35) being respectively connected to one end of two first wires (36), the other ends of the two first wires (36) being connected to the baffle plate (34), a sliding groove (37) provided on the baffle plate (34), an arc-shaped surface provided on the baffle plate (34), and two snap-fit parts (38) provided on the baffle plate (34). The spraying assembly (3) also includes two connecting rods (39) set on the crossbar (31). The other ends of the two connecting rods (39) are respectively connected to two fixed shells (310). Two springs (311) are fixedly connected to one end of each of the two fixed shells (310). The other ends of the four springs (311) are fixedly connected to two sliding plates (312). Each of the two sliding plates (312) is provided with a limiting block (313). The two limiting blocks (313) are respectively connected to two snap-fit pieces (38). The spraying assembly (3) further includes two abutment blocks (314) disposed on the partition plate (11), the two abutment blocks (314) respectively corresponding to the positions of the two shielding plates (34), and the spraying assembly (3) further includes a limiting plate (315) disposed on the mounting shell (1), the limiting plate (315) corresponding to the position of the shielding plate (34).
2. The corrosion-resistant reflective film and its corrosion-resistant coating spraying processing mechanism according to claim 1, characterized in that, The drive assembly (2) includes a motor (21) mounted on the partition (11). The output end of the motor (21) is provided with a first gear component (22). The first gear component (22) is provided with a first helical gear (23). The first helical gear (23) meshes with a second helical gear (24). The second helical gear (24) is connected to one end of a rotating shaft (25). The other end of the rotating shaft (25) is provided with a third helical gear (26). The third helical gear (26) meshes with a fourth helical gear (27). The fourth helical gear (27) is mounted on a second gear component (28). The second gear component (28) is rotatably connected to the partition (11).
3. The corrosion-resistant reflective film and its corrosion-resistant coating spraying processing mechanism according to claim 2, characterized in that, The first gear component (22) meshes with a first tooth condition (29), which is slidably connected inside the mounting housing (1). The second gear component (28) meshes with a second tooth condition (210), which is slidably connected to two fixing plates (211), which are disposed inside the mounting housing (1). The second tooth condition (210) is fixedly connected to the placement plate (6).
4. The corrosion-resistant reflective film and its corrosion-resistant coating spraying processing mechanism according to claim 3, characterized in that, The spraying assembly (3) also includes two telescopic rods (316) disposed in the mounting housing (1). The output ends of the two telescopic rods (316) are fixedly connected to the crossbar (31), and the crossbar (31) is fixedly connected to the first tooth condition (29).
5. The corrosion-resistant reflective film and its corrosion-resistant coating spraying processing mechanism according to claim 4, characterized in that, The cleaning assembly (5) is disposed inside the mounting housing (1). The cleaning assembly (5) includes a first slide rail (51) disposed on the partition (11). A scraper (52) is slidably connected on the first slide rail (51). One end of the scraper (52) is fixedly connected to a section of a second wire (53). The other end of the second wire (53) is connected to a winding shaft (54). The winding shaft (54) is disposed on the output end of a second torsion spring (55). The second torsion spring (55) is fixedly disposed on the partition (11).
6. The corrosion-resistant reflective film and its corrosion-resistant coating spraying processing mechanism according to claim 5, characterized in that, One end of a third wire (56) is fixedly connected to the side of the scraper (52) away from the second wire (53). The other end of the third wire (56) is fixedly connected to a push plate (57). The push plate (57) is slidably connected inside the mounting housing (1). The push plate (57) corresponds to the position of the crossbar (31). The third wire (56) is connected to a pulley (58). The pulley (58) is slidably connected inside a second slide rail (59). The second slide rail (59) is fixedly connected inside the mounting housing (1). The scraper (52) can correspond to the position of the slide groove (37).
7. The corrosion-resistant reflective film and its corrosion-resistant coating spraying processing mechanism according to claim 5, characterized in that, The cleaning assembly (5) further includes a third spring telescopic member (510) disposed in the mounting housing (1). The output end of the third spring telescopic member (510) is provided with an abutment rod (511). The abutment rod (511) is positioned corresponding to the crossbar (31). A blocking member (512) is disposed on the abutment rod (511). The blocking member (512) is positioned corresponding to the scraper (52). The blocking member (512) is provided with an arc surface.
Citation Information
Patent Citations
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CN116174273A
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CN117065983A