Glass fiber sleeve curling device with reinforcing function and using method thereof
By designing the combined use of slides, shaping plates, drying lamps and cold air ducts, the problems of adaptive adjustment of specifications and incomplete curing of the glue in the fiberglass sleeve curling device were solved, achieving efficient reinforcement and shape maintenance of the fiberglass sleeve.
Patent Information
- Application Number
- CN202510964208.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-14
- Publication Date
- 2025-09-19
AI Technical Summary
During use, the existing fiberglass sleeve curling device is not convenient for adaptively adjusting the use state of the shaping component according to the specific specifications of the fiberglass sleeve, and there may be partially incompletely cured glue on the outside of the fiberglass sleeve, affecting the curling quality.
A fiberglass casing curling device with a reinforcement function is designed. Through the combined use of a slide, a shaping plate, a drying lamp and a cold air duct, the fiberglass casing is shaped, dried and cooled, ensuring that the shape of the fiberglass casing is maintained and the glue is thoroughly solidified.
The use state of the shaping component is adjusted according to the specifications of the glass fiber sleeve, which avoids the influence of the curling quality caused by the uncured local glue, ensures the overall reinforcement effect of the glass fiber sleeve, and maintains the integrity of the shape after curling.
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Figure CN120664392A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of glass fiber sleeve processing, and in particular to a glass fiber sleeve curling device with a reinforcement function and a use method thereof. Background Art
[0002] Fiberglass sleeving, as a tubular material woven from glass fibers, plays a key role in many fields such as electrical, electronic, aerospace, etc., with its excellent high temperature resistance, excellent insulation properties, outstanding corrosion resistance and high mechanical strength. In the production process of fiberglass sleeving, the curling process is an extremely important link. The fiberglass sleeving after weaving needs to be curled into a specific shape for subsequent storage, transportation and use. The existing fiberglass sleeving curling device is inconvenient to maintain the shape of the fiberglass sleeving during use, and then it will cause large deformation when winding, thereby affecting the subsequent processing quality and causing defects when sheathing the wire body.
[0003] In order to solve the above-mentioned defects, the existing technology (Announcement No. CN119797063A, Chinese patent with announcement date of 2025-04-11) provides a finished curling structure of a glass fiber sleeve and a method of using the same. When the adjusting seat is reciprocatingly adjusted, the driving gear on the outside of the fixed ring will engage with the rack, thereby driving the driving gear to rotate. At this time, the guide block on the outside of the driving gear will intermittently contact the top of the telescopic rod, thereby applying pressure to the telescopic rod, so that multiple telescopic rods drive multiple shaping parts to move and adjust synchronously. When the multiple shaping parts gather together, they can apply uniform pressure to the deformed surface of the glass fiber sleeve, so that the cross-section of the glass fiber sleeve can be restored to a circle, thereby realizing the shaping of the glass fiber sleeve and further improving the winding effect of the glass fiber sleeve.
[0004] During use of the above scheme, the shaping component applies pressure to the outer side of the fiberglass sleeve through the intermittent sliding of the telescopic rod to keep it round, and the spacing of each sliding of the telescopic rod is the same. In the actual processing process, the diameters of the fiberglass sleeves are different. Especially for larger-sized fiberglass sleeves, when curling, the squeezing force of the telescopic rod will also cause the fiberglass sleeve to deform, thereby affecting the curling quality, and it is not convenient to adaptively adjust the use status of the shaping component according to the specific specifications of the fiberglass sleeve. At the same time, during the preparation of the fiberglass insulating sleeve, the resin coated on the surface of the fiberglass insulating sleeve needs to be cured. During the curling operation, the cured fiberglass sleeve may have partially incompletely cured glue, and further drying and cooling treatment is required to improve the overall reinforcement effect of the fiberglass sleeve. Summary of the Invention
[0005] The purpose of the present invention is to provide a glass fiber sleeve curling device with a reinforcement function and a method for using the same, so as to solve the problem that the existing glass fiber sleeve curling device proposed in the above background technology is not convenient to adaptively adjust the use state of the shaping component according to the specific specifications of the glass fiber sleeve during use. At the same time, during the curling operation, there may be localized incompletely cured glue on the outside of the glass fiber sleeve, which requires further drying and cooling treatment to improve the overall reinforcement effect of the glass fiber sleeve.
[0006] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a fiberglass sleeve curling device with a reinforcement function, comprising a base, a fixed plate symmetrically installed on the top right side of the base, a mounting seat provided on the opposite side of the fixed plate, a curling roller mounted on the mounting seat, a transverse groove provided in the middle of the base, a first reciprocating screw rod rotatably connected in the transverse groove, a slide for guiding the traction of the fiberglass sleeve is threadedly connected to the first reciprocating screw rod, and the fiberglass sleeve passes through the top of the slide rod to be wound toward the curling roller.
[0007] A carrying plate is symmetrically provided on the left side of the slide, and a drying lamp and a cold air duct for integrally reinforcing the fiberglass casing are provided inside the carrying plate from left to right. A movable plate is symmetrically provided in the middle of the slide, and a mounting frame is symmetrically provided on the right side of the slide. A first slider is symmetrically slidably connected to the mounting frame, and the first slider is hinged with a connecting rod. The outer side of the connecting rod is hingedly connected to the front and rear sides of the shaping plate, and the shaping plate is in contact with the outer side of the fiberglass casing.
[0008] Furthermore, a motor for driving the mounting seat to rotate is installed on the front side of the fixed plate, and the outer side of the shaft of the mounting seat on the rear side is connected to the rear side of the first reciprocating screw through a sprocket mechanism, and the slide forms a front-to-back reciprocating movement structure between the first reciprocating screw and the transverse groove.
[0009] Furthermore, the cross section of the movable plate is set to a "C"-shaped structure, and a rack is fixed to the outer side of the movable plate. The rack is slidably connected to the inner walls of the upper and lower sides of the slide through a first spring.
[0010] Furthermore, the outer side of the rack is meshed with a gear, and the gear is rotatably connected to the inner wall of the slide. A reverse screw is integrally installed in the middle of the gear, and the reverse screw is rotatably connected to the slide groove, and the slide groove is symmetrically opened on the left side outside the slide.
[0011] Furthermore, a slide is threadedly connected to the reverse screw rod, and a supporting plate is fixed to the outside of the slide rod. The front and rear supporting plates form a relatively movable structure through the reverse screw rod and the slide rod. The cold air pipe on the supporting plate is connected to the air pump through a connecting pipe, and the air pump is installed on the top of the slide.
[0012] Furthermore, the right side of the rack is fixedly connected to a mounting frame, the mounting frame is slidably connected to the right side of the slide, a first sleeve and a first slide rod are provided between the slide and the mounting frame, the first sleeve is fixedly connected to the inside of the right side of the slide, the first slide rod is slidably connected in the first sleeve, and the first slide rod is fixed to the outside of the mounting frame.
[0013] Furthermore, the first sleeve is connected to the inner middle part of the second sleeve through a connecting tube, the second sleeve is fixed to the inner middle part of the mounting frame, the front and rear sides of the second sleeve are symmetrically sealed and slidably connected with a second sliding rod, the outer side of the second sliding rod is fixedly connected to the first slider, and the first slider drives the shaping plate through a connecting rod to form a curvature adjustment structure.
[0014] Furthermore, the outer side of the shaft of the front mounting seat is connected to the front side of the second reciprocating screw rod through a sprocket mechanism, the second reciprocating screw rod is rotatably connected between the fixed plates, the second reciprocating screw rod is threadedly connected with a second slider, the bottom of the second slider is in contact with the cross plate, the cross plate is fixed between the fixed plates, the top of the second slider is connected to the extension plate through a telescopic rod, the extension plate is set to a streamlined structure, the extension plate is in contact with the outer side of the fiberglass sleeve, and the extension plate is located below the curling roller.
[0015] Furthermore, the left and right sides of the extension plate are slidably connected to the limit plate, a second spring is installed between the limit plate and the extension plate, the limit plate contacts both sides of the glass fiber sleeve, and the curling roller forms a secondary shaping structure through the extension plate and the limit plate.
[0016] A method for using a glass fiber casing curling device with a reinforcement function comprises the following steps: S1. Pass the curled fiberglass casing through the slide. The movable plate in the slide contacts the outside of the fiberglass casing. The movable plate slides a corresponding distance in the slide according to the size of the fiberglass casing: S2. The drying lamp and cold air duct on the left side of the carriage will dry and cool the outside of the fiberglass sleeve, thereby preventing the presence of uncured glue on the outside of the fiberglass sleeve and affecting the overall curing and reinforcement effect of the fiberglass sleeve; S3. The first slider on the mounting frame on the right side of the slide drives the shaping plate through the connecting rod to shape the glass fiber sleeve so that the glass fiber sleeve maintains its external shape. The shaping plate adjusts the curvature and spacing according to the specifications of the glass fiber sleeve. Regardless of the specifications of the glass fiber sleeve, the shaping effect of the glass fiber sleeve is maintained. The slide guides the glass fiber sleeve by moving back and forth through the first reciprocating screw. S4. The fiberglass sleeve after shaping and reinforcement is curled onto the curling roller. At the same time, the extension plate and the limit plate move back and forth to guide the fiberglass sleeve for the second time to maintain the integrity of the shape of the fiberglass sleeve and avoid deformation that affects subsequent use.
[0017] Compared with the prior art, the present invention has the following beneficial effects: The fiberglass sleeve curling device with a reinforcement function and the method for using the same can, during use, adaptively adjust the use state of the shaping component according to the specifications of the actually processed fiberglass sleeve, so that it always maintains the same contact effect with the outside of the fiberglass sleeve and maintains the shape of the fiberglass sleeve. At the same time, the fiberglass sleeve can also be reinforced to avoid incomplete curing of local glue and its falling off after curling, which affects the production quality of the fiberglass sleeve.
[0018] Furthermore, the slide moves back and forth in the transverse groove, thereby guiding the curled fiberglass sleeve so that it is evenly wound on the winding roller. When the fiberglass sleeve passes through the slide, the movable plate drives the rack to move, and the rack moves and drives the gear to rotate. After the gear rotates, it drives the reverse screw to rotate synchronously. After the reverse screw rotates, it drives the slide plate in the slide groove to move relative to each other, and then drives the supporting plate to move synchronously, so that the supporting plate can adjust the appropriate spacing according to the size of the fiberglass sleeve. The drying lamp on the supporting plate dries the uncured glue on the outer part of the fiberglass sleeve, and the air pump provides air flow for the cold air duct. When the fiberglass sleeve passes through the cold air duct, the glue can be cooled and shaped, thereby keeping the fiberglass sleeve as a whole shaped, strengthening and maintaining the circular shape, and avoiding deformation during winding due to uncured local glue, which affects subsequent use.
[0019] Furthermore, after the shape of the fiberglass sleeve is shaped and solidified, it will be output through the shaping plate on the right side of the slide. The installation frame will move synchronously when the rack moves. After the installation frame moves, the first slide bar will move in the first sleeve, and then the gas in the first sleeve will be transported to the second sleeve. The second slide bars on both sides of the second sleeve slide synchronously, thereby driving the first slider to slide. After the first slider moves, the shaping plate is driven by the connecting rod to adjust, so that the curvature of the shaping plate is adjusted to the same curvature as the outer side of the fiberglass sleeve, thereby reshaping the shape of the fiberglass sleeve.
[0020] Furthermore, after the second reciprocating screw rotates, it will drive the second slider to move front and back on the cross plate. The movement of the second slider is synchronized with the movement of the slide. When the fiberglass sleeve is curled on the curling roller, the extension plate and the limit plate on the top of the second slider will support and guide the bottom and side of the fiberglass sleeve. The outside of the fiberglass sleeve can also be protected again before winding to prevent deformation. When fiberglass sleeves of different specifications are curled, the limit plate will slide on both sides of the extension plate through the second spring, thereby keeping the fiberglass sleeve as a whole from deformation. When the curling thickness increases, the telescopic rod can be contracted, so that the fiberglass sleeve has components that maintain its shape to protect it during the transportation and curling process, thereby preventing the fiberglass sleeve from deformation during the curling process. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] Figure 1 It is a schematic diagram of the overall front view structure of the present invention; Figure 2 This is a schematic diagram of the overall rear view structure of the present invention; Figure 3 This is a schematic diagram of the front cross-sectional structure of the base of the present invention; Figure 4 This is a left-side structural schematic diagram of the carriage of the present invention; Figure 5 This is a schematic diagram of the right side structure of the carriage of the present invention; Figure 6 This is a schematic diagram of the front cross-section structure of the slide of the present invention; Figure 7 This is a schematic diagram of the distribution structure of the movable plate, rack and gear of the present invention; Figure 8 This is a schematic diagram of the front cross-section structure of the installation frame of the present invention; Figure 9 This is a left-side structural diagram of the extension plate, the limiting plate, the second sliding block and the transverse plate of the present invention; Figure 10 It is a schematic diagram of the explosion structure of the extension plate and the limit plate of the present invention.
[0022] In the figure: 1. base; 2. fixed plate; 3. mounting seat; 4. winding roller; 5. transverse groove; 6. first reciprocating screw; 7. slide; 8. movable plate; 9. rack; 10. first spring; 11. gear; 12. reverse screw; 13. slide; 14. slide; 15. load-bearing plate; 16. drying lamp; 17. cold air duct; 18. air pump; 19. mounting frame; 20. first slider; 21. connecting rod; 22. shaping plate; 23. first sleeve; 24. first slide; 25. second sleeve; 26. second slide; 27. second reciprocating screw; 28. second slider; 29. telescopic rod; 30. extension plate; 31. limit plate; 32. second spring; 33. transverse plate. DETAILED DESCRIPTION
[0023] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0024] Example 1: Please refer to Figure 1-Figure 2The present invention provides the following technical solutions: a glass fiber sleeve curling device with a reinforcement function, comprising a base 1, a fixed plate 2 is symmetrically installed on the top right side of the base 1, a mounting seat 3 is provided on the opposite side of the fixed plate 2, a curling roller 4 is mounted on the mounting seat 3, a transverse groove 5 is opened in the middle of the base 1, a first reciprocating screw rod 6 is rotatably connected in the transverse groove 5, a slide 7 for guiding the glass fiber sleeve is threadedly connected to the first reciprocating screw rod 6, and the glass fiber sleeve passes through the top of the slide 7 to be wound toward the curling roller 4 A carrying plate 15 is symmetrically arranged on the left side of the slide 7. A drying lamp 16 and a cold air duct 17 for reinforcing the fiberglass casing as a whole are arranged on the inside of the carrying plate 15 from left to right. A movable plate 8 is symmetrically arranged in the middle of the slide 7. A mounting frame 19 is symmetrically arranged on the right side of the slide 7. A first slider 20 is symmetrically slidably connected to the mounting frame 19. The first slider 20 is hinged with a connecting rod 21. The outer side of the connecting rod 21 is hingedly connected to the front and rear sides of a shaping plate 22. The shaping plate 22 is in contact with the outer side of the fiberglass casing.
[0025] When in use, the winding roller 4 is installed on the mounting seat 3, and the glass fiber sleeve to be processed passes through the slide 7 and is curled and rolled on the winding roller 4 between the fixed plates 2. The motor is started, and the motor drives the mounting seat 3 to rotate, and then drives the winding roller 4 to rotate synchronously to curl and roll the glass fiber sleeve. At this time, the first reciprocating screw rod 6 rotates synchronously with the mounting seat 3 through the sprocket mechanism, and then drives the slide 7 to move back and forth in the transverse groove 5. After the slide 7 moves, it guides the glass fiber sleeve so that it is evenly curled on the winding roller 4. The slide 7 supports The carrier plate 15 further dries the reinforcing glue on the outside of the fiberglass sleeve through the drying lamp 16, and the cold air pipe 17 can accelerate the cooling and solidification of the glue, thereby avoiding the deformation of the fiberglass sleeve due to the presence of locally uncured glue after the fiberglass sleeve is curled and rolled up, which is not conducive to subsequent use. When the fiberglass sleeve comes out from between the installation frames 19, the first slider 20 drives the shaping plate 22 to fit with the outer side of the fiberglass sleeve through the connecting rod 21, thereby maintaining the shape of the fiberglass sleeve, shaping the curled fiberglass sleeve during transportation, and preventing deformation during the curling process. Example
[0026] On the basis of the first embodiment, a mechanism for reinforcing the glass fiber sleeve is also disclosed to prevent the presence of uncured glue from affecting the overall curing effect of the glass fiber sleeve. Please refer to Figure 1-Figure 7As shown, its specific structure is as follows: a motor for driving the mounting seat 3 to rotate is installed on the front side of the fixed plate 2, the outer side of the shaft of the rear mounting seat 3 is connected to the rear side of the first reciprocating screw 6 through a sprocket mechanism, and the slide 7 forms a front-to-back reciprocating movement structure between the first reciprocating screw 6 and the transverse groove 5. The cross section of the movable plate 8 is set to a "C"-shaped structure. A rack 9 is fixed on the outer side of the movable plate 8. The rack 9 is slidably connected to the inner walls of the upper and lower sides of the slide 7 through a first spring 10. The outer side of the rack 9 is meshed with a gear 11, and the gear 11 is meshed with the gear 11. 1 is rotatably connected to the inner wall of the slide 7. A reverse screw rod 12 is integrally installed in the middle of the gear 11. The reverse screw rod 12 is rotatably connected to the slide groove 13. The slide groove 13 is symmetrically opened on the left side of the slide 7. A slide plate 14 is threadedly connected to the reverse screw rod 12. A bearing plate 15 is fixed to the outside of the slide plate 14. The front and rear bearing plates 15 form a relatively movable structure through the reverse screw rod 12 and the slide plate 14. The cold air pipe 17 on the bearing plate 15 is connected to the air pump 18 through a connecting pipe. The air pump 18 is installed on the top of the slide 7.
[0027] During use, after the mounting seat 3 drives the first reciprocating screw 6 to rotate, the slide 7 will reciprocate back and forth in the transverse groove 5, thereby guiding the curled glass fiber sleeve to be evenly wound on the curling roller 4. When the glass fiber sleeve passes through the slide 7, it will push the movable plate 8 to move, causing the movable plate 8 to slide in the slide 7, thereby pushing the rack 9 to compress the first spring 10 to move. After the rack 9 moves, it drives the gear 11 to rotate. After the gear 11 rotates, it drives the reverse screw 12 to rotate synchronously. After the reverse screw 12 rotates, it drives the slide 13 The slide plate 14 moves relative to each other, thereby driving the outer supporting plate 15 to move synchronously, so that the supporting plate 15 can adjust the appropriate spacing according to the size of the fiberglass sleeve. The drying lamp 16 on the supporting plate 15 dries the uncured glue on the outer part of the fiberglass sleeve. The air pump 18 provides air flow for the cold air pipe 17. When the fiberglass sleeve passes through the cold air pipe 17, the glue can be cooled and shaped, thereby keeping the overall shape of the fiberglass sleeve, strengthening and maintaining the circular shape, and avoiding deformation during winding due to uncured local glue, which affects subsequent use. Example
[0028] On the basis of the second embodiment, a shaping adjustment mechanism is also disclosed for maintaining the shape of the glass fiber sleeve. Figure 1-Figure 2 and Figure 5-Figure 8As shown, its specific structure is as follows: the right side of the rack 9 is fixedly connected to the mounting frame 19, and the mounting frame 19 is slidably connected to the right side of the slide 7. A first sleeve 23 and a first slide bar 24 are provided between the slide 7 and the mounting frame 19. The first sleeve 23 is fixedly connected to the right inner side of the slide 7, and the first slide bar 24 is slidably connected in the first sleeve 23. The first slide bar 24 is fixed to the outside of the mounting frame 19. The first sleeve 23 is connected to the inner middle part of the second sleeve 25 through a connecting pipe. The second sleeve 25 is fixed to the inner middle part of the mounting frame 19. The front and rear sides of the second sleeve 25 are symmetrically sealed and slidably connected with the second slide bar 26. The outer side of the second slide bar 26 is fixedly connected to the first slider 20. The first slider 20 drives the shaping plate 22 through the connecting rod 21 to form an arc adjustment structure.
[0029] During use, after the shape of the fiberglass sleeve is shaped and solidified, it will be output through the shaping plate 22 on the right side of the slide 7. The mounting frame 19 will move synchronously when the rack 9 moves. After the mounting frame 19 moves, the first slide bar 24 will move in the first sleeve 23, and then the gas in the first sleeve 23 will be transported to the second sleeve 25. The second slide bars 26 on both sides of the second sleeve 25 slide synchronously, thereby driving the first slider 20 to slide. After the first slider 20 moves, the shaping plate 22 is driven by the connecting rod 21 to adjust, so that the curvature of the shaping plate 22 is adjusted to the same curvature as the outer side of the fiberglass sleeve, thereby reshaping the shape of the fiberglass sleeve. Example
[0030] On the basis of the third embodiment, a secondary auxiliary guiding shaping mechanism is also disclosed. Please refer to Figure 1-Figure 3 and Figure 9-10 As shown, its specific structure is as follows: the outer side of the shaft of the front mounting seat 3 is connected to the front side of the second reciprocating screw rod 27 through a sprocket mechanism, the second reciprocating screw rod 27 is rotatably connected between the fixed plates 2, and the second reciprocating screw rod 27 is threadedly connected to the second slider 28. The bottom of the second slider 28 is in contact with the cross plate 33, and the cross plate 33 is fixed between the fixed plates 2. The top of the second slider 28 is connected to the extension plate 30 through the telescopic rod 29. The extension plate 30 is set to a streamlined structure. The extension plate 30 is in contact with the outer side of the glass fiber sleeve. The extension plate 30 is located below the winding roller 4. The left and right sides of the extension plate 30 are slidably connected to the limit plate 31. A second spring 32 is installed between the limit plate 31 and the extension plate 30. The limit plate 31 is in contact with both sides of the glass fiber sleeve. The winding roller 4 forms a secondary shaping structure through the extension plate 30 and the limit plate 31.
[0031] When the fiberglass sleeve is rolled on the winding roller 4, the extension plate 30 and the limit plate 31 on the top of the second slider 28 will support and guide the bottom and side of the fiberglass sleeve. It can also protect the outside of the fiberglass sleeve again before winding to prevent deformation. When fiberglass sleeves of different specifications are rolled, the limit plate 31 will slide on both sides of the extension plate 30 through the second spring 32, thereby keeping the fiberglass sleeve from being deformed as a whole. When the thickness of the roll increases, the telescopic rod 29 can be retracted, so that the fiberglass sleeve has a component that maintains its shape during transportation and curling to protect it, thereby preventing the fiberglass sleeve from being deformed during the curling process.
[0032] A method for using a glass fiber casing curling device with a reinforcement function comprises the following steps: S1. Pass the curled fiberglass sleeve through the slide 7. The movable plate 8 in the slide 7 contacts the outside of the fiberglass sleeve. The movable plate 8 slides a corresponding distance in the slide 7 according to the size of the fiberglass sleeve. S2. The drying lamp 16 and the cold air duct 17 on the left side of the carriage 7 support plate 15 will dry and cool the outside of the fiberglass sleeve, thereby preventing the presence of uncured glue on the outside of the fiberglass sleeve and affecting the overall curing and reinforcement effect of the fiberglass sleeve; S3, the first slider 20 on the mounting frame 19 on the right side of the slide 7 drives the shaping plate 22 through the connecting rod 21 to shape the glass fiber sleeve so that the glass fiber sleeve maintains its external shape, and the shaping plate 22 adjusts the curvature and spacing according to the specifications of the glass fiber sleeve. Regardless of the specifications of the glass fiber sleeve, the shaping effect of the glass fiber sleeve is maintained. The slide 7 guides the glass fiber sleeve by moving back and forth through the first reciprocating screw 6; S4. The shaped and reinforced glass fiber sleeve is curled onto the curling roller 4. At the same time, the extension plate 30 and the limit plate 31 move back and forth to guide the glass fiber sleeve for the second time to maintain the shape integrity of the glass fiber sleeve and avoid deformation that affects subsequent use.
[0033] The contents not described in detail in this specification belong to the prior art known to those skilled in the art.
[0034] Although the present invention has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.
Claims
1. A fiberglass sleeve curling device with a reinforcement function, comprising a base (1), a fixing plate (2) symmetrically mounted on the top right side of the base (1), a mounting seat (3) provided on the opposite side of the fixing plate (2), a curling roller (4) mounted on the mounting seat (3), a transverse groove (5) provided in the middle of the base (1), a first reciprocating screw (6) rotatably connected in the transverse groove (5), a slide (7) for guiding the fiberglass sleeve through the threaded connection on the first reciprocating screw (6), and the fiberglass sleeve passing through the top of the slide (7) to be wound toward the curling roller (4); Its characteristics are: A bearing plate (15) is symmetrically provided on the left side of the slide (7), and a drying lamp (16) and a cold air duct (17) for reinforcing the fiberglass sleeve as a whole are provided inside the bearing plate (15) from left to right. A movable plate (8) is symmetrically provided in the middle of the slide (7), and a mounting frame (19) is symmetrically provided on the right side of the slide (7). A first slider (20) is symmetrically slidably connected to the mounting frame (19), and the first slider (20) is hinged to a connecting rod (21). The outer side of the connecting rod (21) is hingedly connected to the front and rear sides of the shaping plate (22), and the shaping plate (22) is in contact with the outer side of the fiberglass sleeve.
2. The glass fiber sleeve crimping device with reinforcement function according to claim 1, characterized in that: A motor for driving the mounting seat (3) to rotate is installed on the front side of the fixed plate (2); the outer side of the shaft of the mounting seat (3) on the rear side is connected to the rear side of the first reciprocating screw (6) through a sprocket mechanism; and the slide (7) forms a forward and backward reciprocating movement structure between the first reciprocating screw (6) and the transverse groove (5).
3. The glass fiber casing crimping device with reinforcement function and the method of using the same according to claim 2, characterized in that: The cross section of the movable plate (8) is set to a "C"-shaped structure. A rack (9) is fixed to the outer side of the movable plate (8). The rack (9) is slidably connected to the inner walls of the upper and lower sides of the slide (7) through a first spring (10).
4. The glass fiber sleeve crimping device with reinforcement function according to claim 3, characterized in that: The outer side of the rack (9) is meshed with a gear (11), and the gear (11) is rotatably connected to the inner wall of the slide (7). A reverse screw rod (12) is integrally installed in the middle of the gear (11), and the reverse screw rod (12) is rotatably connected to a slide groove (13). The slide groove (13) is symmetrically opened on the left side of the slide (7).
5. The glass fiber sleeve crimping device with reinforcement function according to claim 4, characterized in that: The reverse screw rod (12) is threadedly connected to a slide plate (14), and a supporting plate (15) is fixed on the outer side of the slide plate (14). The front and rear supporting plates (15) form a relatively movable structure through the reverse screw rod (12) and the slide plate (14). The cold air pipe (17) on the supporting plate (15) is connected to the air pump (18) through a connecting pipe, and the air pump (18) is installed on the top of the slide (7).
6. The glass fiber sleeve crimping device with reinforcement function according to claim 5, characterized in that: The right side of the rack (9) is fixedly connected to a mounting frame (19), and the mounting frame (19) is slidably connected to the right side of the slide (7). A first sleeve (23) and a first slide bar (24) are provided between the slide (7) and the mounting frame (19), and the first sleeve (23) is fixedly connected to the inside of the right side of the slide (7), and the first slide bar (24) is slidably connected to the first sleeve (23). The first slide bar (24) is fixed to the outside of the mounting frame (19).
7. The glass fiber sleeve curling device with reinforcement function according to claim 6, characterized in that: The first sleeve (23) is connected to the inner middle part of the second sleeve (25) through a connecting tube. The second sleeve (25) is fixed to the inner middle part of the mounting frame (19). The front and rear sides of the second sleeve (25) are symmetrically and sealingly connected to a second slide bar (26). The outer side of the second slide bar (26) is fixedly connected to the first slider (20). The first slider (20) drives the shaping plate (22) through the connecting rod (21) to form a curvature adjustment structure.
8. The glass fiber sleeve crimping device with reinforcement function according to claim 7, characterized in that: The outer side of the shaft of the front mounting seat (3) is connected to the front side of the second reciprocating screw (27) through a sprocket mechanism, the second reciprocating screw (27) is rotatably connected between the fixed plates (2), the second reciprocating screw (27) is threadedly connected to a second slider (28), the bottom of the second slider (28) is in contact with a transverse plate (33), the transverse plate (33) is fixed between the fixed plates (2), the top of the second slider (28) is connected to an extension plate (30) through a telescopic rod (29), the extension plate (30) is set to a streamlined structure, the extension plate (30) is in contact with the outer side of the glass fiber sleeve, and the extension plate (30) is located below the winding roller (4).
9. The glass fiber sleeve crimping device with reinforcement function according to claim 8, characterized in that: The left and right sides of the extension plate (30) are slidably connected to the limit plate (31), a second spring (32) is installed between the limit plate (31) and the extension plate (30), the limit plate (31) contacts both sides of the glass fiber sleeve, and the curling roller (4) forms a secondary shaping structure through the extension plate (30) and the limit plate (31).
10. A method for using a fiberglass casing crimping device with a reinforcement function is applied to the fiberglass casing crimping device with a reinforcement function according to claim 9, characterized in that: The steps include: S1. The curled fiberglass sleeve is passed through the slide (7). The movable plate (8) in the slide (7) contacts the outer side of the fiberglass sleeve. The movable plate (8) slides a corresponding distance in the slide (7) according to the size of the fiberglass sleeve: S2, the drying lamp (16) and the cold air duct (17) on the left side bearing plate (15) of the slide (7) will dry and cool the outside of the glass fiber sleeve, thereby preventing the presence of some uncured glue on the outside of the glass fiber sleeve and affecting the overall curing and reinforcement effect of the glass fiber sleeve; S3, the first slider (20) on the mounting frame (19) on the right side of the slide (7) drives the shaping plate (22) to shape the glass fiber sleeve through the connecting rod (21), so that the glass fiber sleeve maintains the external shape, and the shaping plate (22) adjusts the curvature and spacing according to the specifications of the glass fiber sleeve. Regardless of the specifications of the glass fiber sleeve, the shaping effect of the glass fiber sleeve is maintained. The slide (7) guides the glass fiber sleeve by moving back and forth through the first reciprocating screw (6); S4, the shaped and reinforced glass fiber sleeve is curled onto the curling roller (4), and the extension plate (30) and the limit plate (31) move forward and backward to guide the glass fiber sleeve for the second time to maintain the shape integrity of the glass fiber sleeve and avoid deformation that affects subsequent use.