Steel belt conveying structure for steel cable tie production
By introducing adjustment components and connection components into the steel belt conveying structure, the problem of insufficient adaptability of the steel belt conveying structure in the prior art is solved, and stable conveying and efficient production of steel tie ties of different widths is achieved.
Patent Information
- Application Number
- CN202422469191.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-12
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2034-10-12
AI Technical Summary
The existing steel belt conveying structure has low adaptability and it is difficult to effectively limit the conveying of steel cable tie of different widths and sizes, which affects production efficiency and adaptability.
A steel belt conveyor including a servo motor, a conveying roller, a fixed roller and a moving roller are designed. The position adjustment of the moving roller is realized through the adjustment component and the connecting component, and adapted to the conveying of steel cable ties of different widths.
It realizes stable transportation of steel cable ties of different widths, improves production efficiency and structural adaptability, and enhances the flexibility of steel cable ties production.
Smart Images

Figure CN223117722U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of steel tie production, in particular to a steel belt conveying structure for steel tie production. Background Technique
[0002] Steel ties are stainless steel products mainly used for industrial bundling and fixing. They have super-strong fastening force and are very convenient to use. They are mainly applicable to bundling cables, ground wires, brackets, nameplates, etc. on utility poles, and are also applicable to departments such as electrified railways, telegraph poles of telecommunications bureaus, traffic lights and sign poles. Steel ties, also known as stainless steel belt hoops or clamps, are designed and made of materials to ensure their firmness, durability and reusable, making them an efficient and economical industrial bundling solution.
[0003] For example, a conveying and fixing mechanism of a steel belt flower-tying machine provided by a Chinese utility model patent with the publication number of CN214768451U includes a main body. An adhesive pad is arranged on the outer surface of the front end of the main body. A plug rod is arranged at the lower end of the adhesive pad. A stable clamping rod is arranged at the lower end of the plug rod. A fixed shaft is arranged on one side of the main body. A support column is arranged on the other side of the main body. A chuck is arranged on one side of the support column. A thickened plate is arranged at the lower end of the chuck. The conveying and fixing mechanism of the steel belt flower-tying machine of the utility model can firmly clamp one side of the steel belt during the conveying process under the action of the chuck, making it not easy to shake and having strong stability. Under the action of the stable clamping rod, it can prevent the steel belt from swinging back and forth during the conveying process due to the vibration generated when the flower-tying machine works, preventing its dislocation. The shock-absorbing spring rod can reduce the influence of vibration on the steel belt conveying, bringing a better application prospect.
[0004] During the production process of steel ties, a steel belt conveying structure is needed to convey the steel ties. However, in the existing technology, most steel belt conveying structures have fixed structures and single functions. They can only limit the conveying of steel ties with the same width size, and it is difficult to limit the conveying of steel ties with different width sizes. This will not only reduce the production efficiency of steel ties, but also affect the adaptability of the steel belt conveying structure. Content of the Utility Model
[0005] The purpose of the utility model is to provide a steel belt conveying structure for steel tie production to solve the problem of low adaptability of the steel belt conveying structure proposed in the above background technique.
[0006] To achieve the above object, the present utility model provides the following technical solutions: A steel strip conveying structure for steel tie production, comprising a steel strip conveyor for steel tie production and an adjusting component; the steel strip conveyor includes a support table, a servo motor, a conveying roller for steel strip conveying, a support plate, a fixed roller for steel strip conveying limit, and a movable roller; the servo motor is connected to the support table through a fixing plate; several of the conveying rollers are connected to the output shaft of the servo motor through a belt transmission mechanism; the support plate is fixedly arranged on the belt transmission mechanism; the fixed roller is fixedly arranged on the support plate; the movable roller is connected to the support plate through the adjusting component; the adjusting component includes an adjusting groove and an adjusting block; the support plate is provided with an adjusting groove; the adjusting block is fixedly connected to the end of the roller shaft of the movable roller; the adjusting block is slidably matched with the adjusting groove.
[0007] Preferably, the adjusting block is of an L-shaped structure, and the size of the side of the adjusting block close to the movable roller is smaller than the size of the side of the adjusting block far from the movable roller.
[0008] Preferably, it further includes a connecting component; the connecting component is arranged on the adjusting block.
[0009] Preferably, the connecting component includes an L-shaped empty groove and a screw; an L-shaped empty groove is opened in the adjusting block; the screw penetrates through the roller shaft of the movable roller, and the end of the screw passes through the adjusting block and extends into the L-shaped empty groove; the screw is threadedly connected to the movable roller.
[0010] Preferably, the screw includes a rod body and a hemispherical body, and the diameter size of the hemispherical body is larger than the diameter size of the rod body.
[0011] Preferably, the connecting component includes a connecting plate, a connecting rod, a sliding block, a spring, a connecting block, and a connecting groove; the connecting plate is fixedly arranged in the horizontal groove of the L-shaped empty groove; the connecting rod slidably penetrates through the connecting plate; the sliding block is slidably arranged in the horizontal groove of the L-shaped empty groove and is fixedly connected to one end of the connecting rod; the spring is sleeved on the connecting rod, and both ends of the spring are fixedly connected to the connecting plate and the sliding block respectively; the connecting block is slidably arranged in the horizontal groove of the L-shaped empty groove and is fixedly connected to the other end of the connecting rod, and the end of the connecting block passes through the horizontal groove of the L-shaped empty groove and extends to the outside; several connecting grooves are linearly arranged in the adjusting groove in an array; the connecting block is inserted and matched with the connecting groove.
[0012] Preferably, the connecting block is provided with an inclined surface, and the inclined surface of the connecting block is in sliding contact with the spherical surface of the hemispherical body.
[0013] Compared with the prior art, the beneficial effects of the present utility model are:
[0014] 1. By setting up the adjusting component, during use, according to the width dimension of the steel strapping to be conveyed as needed, move the moving roller so that the adjusting block slides in the adjusting groove, gradually increasing or decreasing the distance dimension between the fixed roller and the moving roller until the moving roller moves to a suitable position. Then, start the rotation of the output shaft of the servo motor, causing the upper and lower conveying rollers to rotate towards each other. Pass the steel strapping through between the fixed roller and the moving roller and through between the upper and lower conveying rollers to achieve the conveyance of the steel strapping. Compared with the prior art, the structure of the present utility model is simple and reasonable, ingeniously designed, can adapt to steel strappings of different width dimensions, has strong adaptability, and high production efficiency.
[0015] 2. By setting up the connecting component, by turning the knob on the rod body, thread the rod body onto the moving roller, causing the rod body to drive the hemispherical body to move upward, so that the spherical surface of the hemispherical body no longer presses against the inclined surface of the connecting block, the spring is no longer stressed and starts to stretch, causing the sliding block to slide in the horizontal groove of the L-shaped empty groove, the connecting rod to slide on the connecting plate, and the connecting block to slide in the horizontal groove of the L-shaped empty groove until the side surface of the hemispherical body contacts the inner wall of the L-shaped empty groove. At this time, the spring returns to its original shape, and the connecting block disengages from the insertion into the connecting groove. Then, after moving the moving roller to a suitable position, turn the knob on the rod body in the opposite direction, thread the rod body onto the moving roller, causing the rod body to drive the hemispherical body to move downward, so that the spherical surface of the hemispherical body presses against the inclined surface of the connecting block, causing the sliding block to slide in the horizontal groove of the L-shaped empty groove in the opposite direction, the connecting rod to slide on the connecting plate in the opposite direction, the spring to be stressed and contract, and the connecting block to slide in the horizontal groove of the L-shaped empty groove in the opposite direction until the spherical surface of the hemispherical body contacts the inner wall of the L-shaped empty groove. At this time, the connecting block is inserted into the connecting groove to fix the position of the moving roller. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 is a schematic diagram of the overall structure of the present utility model;
[0017] Figure 2 is a cross-sectional view of the overall structure of the present utility model;
[0018] Figure 3 is a cross-sectional view of the support plate structure of the present utility model;
[0019] Figure 4 is a partially disassembled cross-sectional view of the structure of the present utility model;
[0020] Figure 5 is of the present utility model Figure 2 enlarged schematic view of part A.
[0021] In the figure:
[0022] 1. Steel belt conveyor; 2. Adjusting component; 3. Connecting component;
[0023] 101, Support platform; 102, Servo motor; 103, Conveyor roller; 104, Support plate; 105, Fixed roller; 106, Movable roller;
[0024] 201, Adjustment slot; 202, Adjustment block;
[0025] 301, L-shaped empty slot; 302, Screw; 303, Connection plate; 304, Connecting rod; 305, Sliding block; 306, Spring; 307, Connecting block; 308, Connection slot;
[0026] 3021, Rod body; 3022, Hemisphere. Detailed implementation
[0027] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.
[0028] Please refer to Figures 1 to 5, the present utility model provides a technical solution: a steel belt conveying structure for steel tie production, including a steel belt conveyor 1 for steel tie production and an adjustment assembly 2; the steel belt conveyor 1 includes a support table 101, a servo motor 102, a conveying roller 103 for steel tie conveying, a support plate 104, a fixed roller 105 for steel tie conveying limit, and a moving roller 106; the servo motor 102 is connected to the support table 101 through a fixing plate; eight conveying rollers 103 are connected to the output shaft of the servo motor 102 through a belt transmission mechanism, and the rotation directions of the upper conveying roller 103 and the lower conveying roller 103 are opposite; the support plate 104 is fixedly arranged on the belt transmission mechanism; the fixed roller 105 is fixedly arranged on the support plate 104; the moving roller 106 is connected to the support plate 104 through the adjustment assembly 2; the adjustment assembly 2 includes an adjustment groove 201 and an adjustment block 202; the adjustment groove 201 is opened on the support plate 104; the adjustment block 202 is fixedly connected to the end of the roller shaft of the moving roller 106; the adjustment block 202 is slidably matched with the adjustment groove 201; the adjustment block 202 is of an L-shaped structure, and the dimension of the adjustment block 202 on the side close to the moving roller 106 is smaller than the dimension of the adjustment block 202 on the side far from the moving roller 106, so as to limit the position of the adjustment block 202. According to the width dimension of the steel tie to be conveyed, move the moving roller 106 to make the adjustment block 202 slide in the adjustment groove 201, so that the distance dimension between the fixed roller 105 and the moving roller 106 gradually increases or decreases until the moving roller 106 moves to a suitable position. Then, start the rotation of the output shaft of the servo motor 102 to make the upper and lower conveying rollers 103 rotate in opposite directions, pass the steel tie through between the fixed roller 105 and the moving roller 106, and pass through between the upper and lower conveying rollers 103 to realize the conveying of the steel tie.
[0029] As a preferred embodiment, it further includes a connecting component 3; the connecting component 3 is arranged on the adjusting block 202; the connecting component 3 includes an L-shaped empty groove 301, a screw 302, a connecting plate 303, a connecting rod 304, a sliding block 305, a spring 306, a connecting block 307 and a connecting groove 308; an L-shaped empty groove 301 is formed in the adjusting block 202; the screw 302 passes through the roller shaft of the moving roller 106, and the end of the screw 302 passes through the adjusting block 202 and extends into the L-shaped empty groove 301; the screw 302 is threadedly connected to the moving roller 106; the screw 302 includes a rod body 3021 and a hemispherical body 3022, and the diameter of the hemispherical body 3022 is larger than the diameter of the rod body 3021 to limit the position of the screw 302; the connecting plate 303 is fixedly arranged in the horizontal groove of the L-shaped empty groove 301; the connecting rod 304 slidably passes through the connecting plate 303; the sliding block 305 is slidably arranged in the horizontal groove of the L-shaped empty groove 301 and is fixedly connected to one end of the connecting rod 304; the spring 306 is sleeved on the connecting rod 304, and both ends of the spring 306 are fixedly connected to the connecting plate 303 and the sliding block 305 respectively; the connecting block 307 is slidably arranged in the horizontal groove of the L-shaped empty groove 301 and is fixedly connected to the other end of the connecting rod 304, and the end of the connecting block 307 passes through the horizontal groove of the L-shaped empty groove 301 and extends to the outside; a plurality of connecting grooves 308 are linearly arrayed in the adjusting groove 201; the connecting block 307 is in plug-in fit with the connecting groove 308; the connecting block 307 is provided with an inclined surface, and the inclined surface of the connecting block 307 is in sliding contact with the spherical surface of the hemispherical body 3022; when the side surface of the hemispherical body 3022 contacts the inner wall of the L-shaped empty groove 301, the spring 306 returns to its original shape, and the connecting block 307 disengages from the plug-in connection with the connecting groove 308; when the spherical surface of the hemispherical body 3022 contacts the inner wall of the L-shaped empty groove 301, the connecting block 307 is in plug-in connection with the connecting groove 308.By turning the knob on the rod body 3021, the rod body 3021 is threadedly connected to the moving roller 106, causing the rod body 3021 to drive the hemispherical body 3022 to move upward, so that the spherical surface of the hemispherical body 3022 no longer presses against the inclined surface of the connecting block 307, the spring 306 is no longer stressed and begins to stretch, causing the sliding block 305 to slide in the horizontal groove of the L-shaped empty groove 301, the connecting rod 304 to slide on the connecting plate 303, and the connecting block 307 to slide in the horizontal groove of the L-shaped empty groove 301 until the side surface of the hemispherical body 3022 contacts the inner wall of the L-shaped empty groove 301. At this time, the spring 306 returns to its original shape, and the connecting block 307 disengages from the insertion into the connecting groove 308. Then, after moving the moving roller 106 to a suitable position, turn the knob on the rod body 3021 in the opposite direction, so that the rod body 3021 is threadedly connected to the moving roller 106, causing the rod body 3021 to drive the hemispherical body 3022 to move downward, so that the spherical surface of the hemispherical body 3022 presses against the inclined surface of the connecting block 307, causing the sliding block 305 to slide in the horizontal groove of the L-shaped empty groove 301 in the opposite direction, the connecting rod 304 to slide on the connecting plate 303 in the opposite direction, the spring 306 to be stressed and contract, and the connecting block 307 to slide in the horizontal groove of the L-shaped empty groove 301 in the opposite direction until the spherical surface of the hemispherical body 3022 contacts the inner wall of the L-shaped empty groove 301. At this time, the connecting block 307 is inserted into the connecting groove 308 to fix the position of the moving roller 106.
[0030] Working principle: When in use, first, according to the width dimension of the steel strapping to be conveyed, turn the knob on the rod body 3021 to thread the rod body 3021 with the moving roller 106, so that the rod body 3021 drives the hemispherical body 3022 to move upward, making the spherical surface of the hemispherical body 3022 no longer squeeze the inclined surface of the connecting block 307, so that the spring 306 is no longer stressed and starts to expand. Then, the sliding block 305 slides in the horizontal groove of the L-shaped slot 301, the connecting rod 304 slides on the connecting plate 303, and the connecting block 307 slides in the horizontal groove of the L-shaped slot 301 until the side surface of the hemispherical body 3022 contacts the inner wall of the L-shaped slot 301. At this time, the spring 306 returns to its original shape, and the connecting block 307 disengages from the plug-in connection with the connecting groove 308. Then, move the moving roller 106 to make the adjusting block 202 slide in the adjusting groove 201, so that the distance between the fixed roller 105 and the moving roller 106 gradually increases or decreases until the moving roller 106 moves to a suitable position. At this time, turn the knob on the rod body 3021 in the opposite direction to thread the rod body 3021 with the moving roller 106, so that the rod body 3021 drives the hemispherical body 3022 to move downward, making the spherical surface of the hemispherical body 3022 squeeze the inclined surface of the connecting block 307, so that the sliding block 305 slides in the horizontal groove of the L-shaped slot 301 in the opposite direction, the connecting rod 304 slides on the connecting plate 303 in the opposite direction, the spring 306 is stressed and contracts, and the connecting block 307 slides in the horizontal groove of the L-shaped slot 301 in the opposite direction until the spherical surface of the hemispherical body 3022 contacts the inner wall of the L-shaped slot 301. At this time, the connecting block 307 is plugged into the connecting groove 308 to fix the position of the moving roller 106. Then, start the servo motor 102 to make the output shaft rotate, so that the upper and lower conveying rollers 103 rotate towards each other, and pass the steel strapping through between the fixed roller 105 and the moving roller 106 and through between the upper and lower conveying rollers 103 to realize the conveying of the steel strapping.
[0031] The above is the working process of the whole device, and the content not described in detail in this specification belongs to the prior art well-known to those skilled in the art.
[0032] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principle and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A steel belt conveying structure for steel tie production, characterized in that, It includes a steel strip conveyor (1) and an adjustment component (2) for the production of steel cable ties; the steel strip conveyor (1) includes a support table (101), a servo motor (102), a conveying roller (103) for conveying the steel cable ties, a support plate (104), a fixed roller (105) for limiting the conveying of the steel cable ties, and a movable roller (106); the servo motor (102) is connected to the support table (101) through a fixing plate; a plurality of the conveying rollers (103) are connected to the output shaft of the servo motor (102) through a belt transmission mechanism; the support plate (104) is fixedly arranged on the belt transmission mechanism; the fixed roller (105) is fixedly arranged on the support plate (104); the movable roller (106) is connected to the support plate (104) through the adjustment component (2); the adjustment component (2) includes an adjustment groove (201) and an adjustment block (202); an adjustment groove (201) is formed on the support plate (104); the adjustment block (202) is fixedly connected to the end of the roller shaft of the movable roller (106); the adjustment block (202) is slidably matched with the adjustment groove (201).
2. The steel belt conveying structure for steel tie production according to claim 1, characterized in that, The adjustment block (202) has an L-shaped structure, and the size of the adjustment block (202) on the side close to the movable roller (106) is smaller than the size of the adjustment block (202) on the side far from the movable roller (106).
3. A steel belt conveying structure for steel tie production according to claim 2, characterized in that, It further includes a connection component (3); the connection component (3) is arranged on the adjustment block (202).
4. A steel belt conveying structure for steel tie production according to claim 3, characterized in that, The connection component (3) includes an L-shaped empty groove (301) and a screw (302); an L-shaped empty groove (301) is formed in the adjustment block (202); the screw (302) passes through the roller shaft of the movable roller (106), and the end of the screw (302) passes through the adjustment block (202) and extends into the L-shaped empty groove (301); the screw (302) is threadedly connected to the movable roller (106).
5. The steel belt conveying structure for steel tie production according to claim 4, characterized in that, The screw (302) includes a rod body (3021) and a hemispherical body (3022), and the diameter of the hemispherical body (3022) is larger than the diameter of the rod body (3021).
6. The steel belt conveying structure for steel tie production according to claim 5, characterized in that, The connecting component (3) includes a connecting plate (303), a connecting rod (304), a sliding block (305), a spring (306), a connecting block (307) and a connecting groove (308); the connecting plate (303) is fixedly arranged in the horizontal groove of the L-shaped empty groove (301); the connecting rod (304) is slidably penetrated through the connecting plate (303); the sliding block (305) is slidably arranged in the horizontal groove of the L-shaped empty groove (301) and is fixedly connected with one end of the connecting rod (304); the spring (306) is sleeved on the connecting rod (304), and both ends of the spring (306) are fixedly connected with the connecting plate (303) and the sliding block (305) respectively; the connecting block (307) is slidably arranged in the horizontal groove of the L-shaped empty groove (301) and is fixedly connected with the other end of the connecting rod (304), and the end of the connecting block (307) extends to the outside through the horizontal groove of the L-shaped empty groove (301); a plurality of connecting grooves (308) are linearly arrayed in the adjusting groove (201); the connecting block (307) is in plug-in fit with the connecting groove (308).
7. A steel belt conveying structure for steel tie production according to claim 6, characterized in that, The connecting block (307) is provided with an inclined surface, and the inclined surface of the connecting block (307) is in sliding contact with the spherical surface of the hemispherical body (3022).
Citation Information
Patent Citations
Conveying and fixing mechanism of steel belt embossing machine
CN214768451U