Packaging device for glass fiber production
By designing automated packaging, transportation, and conveying components, the problems of low packaging efficiency and poor operational convenience in glass fiber production have been solved, realizing automated transfer and continuous production, improving overall production efficiency, and reducing labor costs and material losses.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- ZHONGYI (TAIXING) ENVIRONMENTAL PROTECTION TECH CO LTD
- Filing Date
- 2026-03-12
- Publication Date
- 2026-04-10
AI Technical Summary
Existing fiberglass production packaging equipment has significant shortcomings in packaging efficiency and ease of operation. It requires manual transfer, resulting in low production efficiency, easy damage to finished products and waste of materials, and cannot achieve automatic feeding and continuous production.
A device comprising a packaging component, a transport component, and a conveying component was designed. It automatically packages materials by driving a conveyor belt with a servo motor, and achieves automated transfer by utilizing gravity transmission and a magnetic plug-in structure. Combined with components such as fixed pulleys and elastic pallets, it realizes automatic material unloading and continuous conveying.
It improves packaging efficiency, reduces the labor intensity of staff, ensures smooth connection between packaging and transportation processes, avoids damage to finished products and waste of materials, and meets the needs of efficient and continuous operation in glass fiber production.
Smart Images

Figure CN121822951A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of packing devices, in particular to a packing device for glass fiber production. BACKGROUND
[0002] In the scenarios of glass fiber drawing forming, glass fiber product processing, glass fiber filament winding and bundling, glass fiber roll material automatic packing, building material glass fiber material production packaging, etc., a packing device for glass fiber production is often used to control the packing firmness, bundling regularity, packing efficiency, filament bundle edge scattering prevention, equipment running stability and operation convenience.
[0003] The existing glass fiber production packing device has obvious defects in packing efficiency and operation convenience. After packing is completed, the packed glass fiber products usually need to be manually transported by the workers, and the operation process is relatively cumbersome. This not only increases the labor intensity of the workers, but also causes the packing and transportation process to be not smooth, reduces the overall production efficiency, and the manual transportation lacks a professional buffer protection structure, which easily causes the glass fiber products to be knocked, the filament bundle to be scattered, and the products to be placed in disorder after transportation, thereby increasing the arrangement cost for the subsequent production process. In addition, the manual transportation cannot realize the continuous replenishment of the transportation structure, which easily causes the replenishment to lag behind, cannot automatically replenish and drive the delivery structure according to the packing progress through the gravity transmission mode, and cannot realize the automatic unloading effect. The workers need to manually supplement the materials and drive the delivery structure in real time according to the packing progress, which easily causes the materials to be not replenished in time and the unloading to be not properly connected. This not only causes the packing process to be interrupted and affects the production continuity, but also may cause the glass fiber products to be damaged and the materials to be wasted due to the manual operation error, further increases the labor cost and material loss of equipment operation and maintenance, and cannot adapt to the efficient and continuous packing operation requirements in the glass fiber production process. SUMMARY
[0004] This section is intended to summarize some aspects of the embodiments of the present application and briefly introduce some preferred embodiments. Some simplifications or omissions may be made in this section and the abstract and title of the specification of the present application to avoid obscuring the purpose of this section, the abstract and the title, and such simplifications or omissions cannot be used to limit the scope of the present application.
[0005] In view of the above and / or existing problems in the packing device for glass fiber production, the present application is proposed.
[0006] Therefore, the problem to be solved by the present application is the low transportation efficiency after packing.
[0007] To solve the above technical problems, the application provides the following technical scheme: a packing device for glass fiber production, comprising a packing assembly, a conveying belt, a first support frame fixed on the surface of the conveying belt, a second support frame fixed on one side of the first support frame, a servo motor fixed on the top of the second support frame, a rotating piece fixed on the output end of the servo motor, a wrapping piece fixed on the inner wall of the rotating piece, a guide plate fixed on one side of the conveying belt, a conveying assembly arranged on one side of the conveying belt, a conveying piece arranged on the bottom of the conveying belt, a gravity bearing piece slidingly connected to the inner wall of the conveying piece, a primary limiting piece arranged on one side of the conveying piece, a traction piece fixed on the surface of the conveying piece, a fixed plug-in piece fixed on the surface of the conveying piece, a limiting piece arranged on one side of the conveying piece, a balance conveying base fixed on the bottom of the conveying piece, and a conveying assembly arranged on the bottom of the conveying belt, comprising a second support base arranged on the bottom of the conveying belt, a third support base fixed on one side of the second support base, a first support base fixed on the surface of the second support base, and a conveying guide rail fixed on the top of the second support base.
[0008] As a preferred scheme of the packing device for glass fiber production, the conveying piece comprises a conveying vehicle body arranged on one side of the conveying belt, a guide groove is formed in the inner wall of the conveying vehicle body, and a limiting hole is formed in one side of the conveying vehicle body.
[0009] As a preferred scheme of the packing device for glass fiber production, the traction piece comprises a first fixed pulley fixed on the surface of the conveying vehicle body, a connecting roller arranged on one side of the first fixed pulley, a second fixed pulley arranged on the bottom of the first fixed pulley, and a third fixed pulley arranged on one side of the second fixed pulley.
[0010] As a preferred scheme of the packing device for glass fiber production, the gravity bearing piece comprises an elastic tray slidingly connected to the inner wall of the conveying vehicle body, and a guide block fixed on the surface of the elastic tray and matched with the guide groove.
[0011] As a preferred scheme of the packing device for glass fiber production, one side of the elastic tray is fixed with a connecting sliding block matched with the limiting hole, and the connecting sliding block is fixed on one side of the connecting roller.
[0012] As a preferred scheme of the packing device for glass fiber production, a first connecting steel cable is fixed on the surface of the connecting roller, an elastic telescopic rope is fixed on one side of the first connecting steel cable, a second connecting steel cable matched with the third fixed pulley is fixed on one side of the elastic telescopic rope.
[0013] As a preferred scheme of the packing device for glass fiber production, the primary limiting member comprises a support rod fixed on the top of the second support base, the top of the support rod is fixed with an elastic tab, and the top of the elastic tab is fixed with a magnetic plug-in rod.
[0014] As a preferred scheme of the packing device for glass fiber production, the fixed plug-in member comprises a mounting block fixed on the surface of the transport vehicle body, the surface of the mounting block is fixed with a fixed vertical rod, the surface of the fixed vertical rod is sleeved with a connecting ring, the top of the connecting ring is fixed with a magnetic plug-in sleeve matched with the magnetic plug-in rod, the surface of the fixed vertical rod is sleeved with a return spring, and the bottom of the connecting ring and the top of the mounting block are respectively fixed with the return spring.
[0015] As a preferred scheme of the packing device for glass fiber production, the limiting member comprises a transmission gear plate fixed on one side of the transport vehicle body, one side of the transmission gear plate is provided with a rotating vertical rod, the rotating vertical rod is movably connected to the top of the third support base, the top of the rotating vertical rod is fixed with a transmission gear matched with the transmission gear plate, and the surface of the rotating vertical rod is sleeved with a return torsion spring.
[0016] As a preferred scheme of the packing device for glass fiber production, the surface of the rotating vertical rod is sleeved with a first bevel gear, one side of the rotating vertical rod is provided with a rotating spiral rod, one side of the rotating spiral rod is fixed with a second bevel gear matched with the first bevel gear, the surface of the rotating spiral rod is sleeved with a support bearing, the support bearing is fixed on the top of the third support base, the surface of the rotating spiral rod is sleeved with a spiral sleeve, the top of the spiral sleeve is fixed with a special-shaped connecting rod, one side of the special-shaped connecting rod is fixed with a sliding limiting baffle, the surface of the sliding limiting baffle is sleeved with a limiting sleeve, and the limiting sleeve is fixed on the top of the second support base.
[0017] The present application has the beneficial effects that: through the cooperative design of the packaging assembly and the transportation assembly, the defects of low packaging efficiency and poor operation convenience of the existing glass fiber production packaging device are effectively solved, on the one hand, the manual manual transfer mode of finished products after packaging is abandoned, the operation process is simplified, the labor intensity of workers is reduced, the smooth connection of the packaging and transfer process is ensured, the overall production efficiency is improved, through the gravity transmission mode, the delivery structure is automatically driven and supplemented according to the packaging progress, the automatic unloading effect is realized, on the other hand, the packaging and replenishment cooperative performance is strengthened, the overall linkage structure of the equipment is optimized, the manual real-time attention to the packaging progress and the manual replenishment of materials and the driving of the delivery structure are not needed, the problems of untimely material replenishment and improper unloading connection are avoided, the packaging process is ensured to be continuous and uninterrupted, the production continuity is maintained, manual operation errors that cause glass fiber product damage and material waste are avoided, the labor cost and material loss of equipment operation and maintenance are reduced, and the efficient and continuous packaging operation demand in the glass fiber production process is adapted. BRIEF DESCRIPTION OF DRAWINGS
[0018] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings needed in the embodiment description will be briefly introduced as follows. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor.
[0019] Figure 1 The structure diagram of the packaging device for glass fiber production.
[0020] Figure 2 Another perspective view of the packaging device for glass fiber production.
[0021] Figure 3 The structure diagram of the transportation piece of the packaging device for glass fiber production.
[0022] Figure 4 The packaging device for glass fiber production Figure 3 The enlarged view of A in the packaging device for glass fiber production.
[0023] Figure 5 The structure diagram of the limiting piece of the packaging device for glass fiber production.
[0024] Figure 6 The structure diagram of the packaging device for glass fiber production Figure 5 The enlarged view of B in the packaging device for glass fiber production.
[0025] Figure 7 The structure diagram of the guide groove of the packaging device for glass fiber production.
[0026] In the figure: 1, packing assembly; 11, conveying belt; 12, first support frame; 13, second support frame; 14, servo motor; 15, rotating piece; 16, wrapping piece; 17, guide plate; 2, transportation assembly; 21, transportation piece; 211, transportation vehicle body; 212, guide groove; 213, limiting hole; 22, traction piece; 221, connecting roller; 222, first connecting steel cable; 223, first fixed pulley; 224, second fixed pulley; 225, elastic telescopic rope; 226, third fixed pulley; 227, second connecting steel cable; 23, gravity bearing piece; 231, elastic tray; 232, connecting sliding block; 233, guide block; 24, primary limiting piece; 241, elastic tab; 242, support rod; 243, magnetic plug-in rod; 25, fixed plug-in piece; 251, magnetic plug-in sleeve; 252, connecting ring; 253, return spring; 254, mounting block; 255, fixed vertical rod; 26, limiting piece; 261, rotating vertical rod; 262, first bevel gear; 263, return torsional spring; 264, second bevel gear; 265, rotating screw rod; 266, special-shaped connecting rod; 267, screw sleeve; 268, limiting sleeve; 269, sliding limiting baffle; 2610, support bearing; 2611, transmission gear; 2612, transmission toothed plate; 27, balance conveying base; 3, conveying assembly; 31, first support base; 32, conveying guide rail; 33, second support base; 34, third support base. DETAILED DESCRIPTION
[0027] In order to make the above objectives, features and advantages of the present application more obvious and easy to understand, the specific embodiments of the present application will be described in detail below with reference to the accompanying drawings.
[0028] In the following description, a large number of specific details are set forth in order to facilitate a thorough understanding of the present application, but the present application can also be implemented in other ways different from those described herein, and those skilled in the art can make similar generalizations without departing from the concept of the present application, therefore the present application is not limited to the specific embodiments disclosed below.
[0029] Secondly, "one embodiment" or "embodiment" referred to herein means that specific features, structures or characteristics can be included in at least one implementation of the present application. "In one embodiment" appearing in different places in the specification does not mean the same embodiment, nor is it an independent or selective embodiment that excludes other embodiments.
[0030] Embodiment 1, refer to Figure 1 and Figure 2 , the first embodiment of the present application, the embodiment provides a packing device for glass fiber production, the packing device for glass fiber production includes a packing assembly 1 and a transportation assembly 2.
[0031] Through the collaborative design of the packing assembly 1 and the transportation assembly 2, the defects of low packing efficiency and poor operation convenience of the existing glass fiber production packing device are effectively solved. On the one hand, the manual mode of manually transporting the finished product after packing is abandoned, the operation process is simplified, the labor intensity of the workers is reduced, the smooth connection of the packing and transportation processes is ensured, the overall production efficiency is improved, the gravity transmission mode is used to automatically drive and replenish the delivery structure according to the packing progress, the automatic unloading effect is realized, and on the other hand, the packing and replenishment collaborative performance is strengthened, the overall linkage structure of the equipment is optimized, the workers do not need to manually supplement the material and drive the delivery structure in real time according to the packing progress, the problems of untimely material replenishment and improper unloading connection are avoided, the packing process is ensured to be continuous, the production continuity is maintained, the glass fiber product damage and material waste caused by manual operation errors are avoided, the labor cost and material loss of equipment operation and maintenance are reduced, and the efficient and continuous packing operation requirement in the glass fiber production process is met.
[0032] Specifically, the packing assembly 1 comprises a conveying belt 11, a first support frame 12 is fixed to the surface of the conveying belt 11, a second support frame 13 is fixed to one side of the first support frame 12, a servo motor 14 is fixed to the top of the second support frame 13, a rotating part 15 is fixed to the output end of the servo motor 14, a wrapping part 16 is fixed to the inner wall of the rotating part 15, and a guide plate 17 is fixed to one side of the conveying belt 11.
[0033] Specifically, the transportation assembly 2 is arranged on one side of the conveying belt 11 and comprises a transportation part 21 arranged at the bottom of the conveying belt 11, a gravity bearing part 23 slidably connected to the inner wall of the transportation part 21, a primary limiting part 24 arranged on one side of the transportation part 21, a traction part 22 fixed to the surface of the transportation part 21, a fixed plug-in part 25 fixed to the surface of the transportation part 21, a limiting part 26 arranged on one side of the transportation part 21, and a balance conveying base 27 fixed to the bottom of the transportation part 21.
[0034] Specifically, the conveying assembly 3 is arranged at the bottom of the conveying belt 11 and comprises a second support base 33 arranged at the bottom of the conveying belt 11, a third support base 34 fixed to one side of the second support base 33, a first support base 31 fixed to the surface of the second support base 33, and a conveying guide rail 32 fixed to the top of the second support base 33.
[0035] Embodiment 2, refer to Figures 2-7 This is the second embodiment of the present application, which is based on the previous embodiment.
[0036] Specifically, the transportation part 21 comprises a transportation vehicle body 211 arranged on one side of the conveying belt 11, a guide groove 212 is formed in the inner wall of the transportation vehicle body 211, and a limiting hole 213 is formed on one side of the transportation vehicle body 211.
[0037] The conveying part 21 is used to realize the receiving, transferring and positioning of the materials, and provides a mobile carrier for the whole conveying system. Compared with the non-standardized operation of manual transfer, the transport vehicle body 211 moves smoothly along the preset path, which can ensure the regularity of the placement of the finished products during the transfer process, and does not need subsequent manual arrangement, and directly adapts to the material positioning requirements of the next production process. The guide groove 212 provides sliding guidance for the internal bearing components, and ensures stable movement trajectory. The limiting hole 213 is used to cooperate with the external traction component to realize force transmission and position constraint.
[0038] Specifically, the traction part 22 includes a first fixed pulley 223 fixed to the surface of the transport vehicle body 211. The first fixed pulley 223 is provided with a connecting roller 221 on one side. The bottom of the first fixed pulley 223 is provided with a second fixed pulley 224. The second fixed pulley 224 is provided with a third fixed pulley 226 on one side.
[0039] The traction part 22 realizes force steering and transmission through multiple groups of fixed pulleys, converts the gravitational potential energy of the gravity bearing part 23 into traction power, replaces manual traction transfer, realizes automatic supply of transfer power, and greatly reduces the labor intensity of manual labor. The first fixed pulley 223, the second fixed pulley 224 and the third fixed pulley 226 respectively guide and reverse the steel cable, reduce transmission friction, and improve power transmission efficiency. The connecting roller 221 is used to fix the traction steel cable, and ensures the synchronous stability of the traction action.
[0040] Specifically, the gravity bearing part 23 includes an elastic tray 231 slidingly connected to the inner wall of the transport vehicle body 211. The surface of the elastic tray 231 is fixed with a guide block 233 cooperating with the guide groove 212.
[0041] The gravity bearing part 23 is used to receive the materials conveyed by the conveying belt and slide downward under the action of the gravity of the materials, so as to provide power for the traction part 22. The elastic tray 231 has a buffering and damping effect, which can reduce the impact when the materials are placed. Compared with the disadvantages of manual transfer without buffering and protection, the finished product can fundamentally avoid the problems of broken edges of the fiber bundle and deformation of the coiled material caused by bumping, and ensure the integrity of the finished product. The guide block 233 and the guide groove 212 slide together to limit the elastic tray 231 to move smoothly in the vertical direction only, and avoid deviation and jamming.
[0042] Specifically, the elastic tray 231 is fixed on one side with a connecting sliding block 232 cooperating with the limiting hole 213. The connecting sliding block 232 is fixed on one side of the connecting roller 221.
[0043] The connecting slider 232 rigidly connects the elastic tray 231 and the connecting roller 221 through the limiting hole 213, so that the lifting movement of the elastic tray 231 can directly drive the connecting roller 221 to move synchronously, ensuring real-time linkage of gravity driving and traction action, improving mechanism response speed and action consistency, realizing accurate matching of rotation movement and packaging progress, and solving the problem of disconnection between manual rotation rhythm and packaging progress, thereby ensuring seamless connection of the packaging and rotation processes.
[0044] Specifically, the surface of the connecting roller 221 is fixed with the first connecting steel cable 222, one side of the first connecting steel cable 222 is fixed with the elastic expansion rope 225, and one side of the elastic expansion rope 225 is fixed with the second connecting steel cable 227 cooperating with the third fixed pulley 226.
[0045] The first connecting steel cable 222 and the second connecting steel cable 227 form a closed-loop traction structure under the guidance of the fixed pulley; the elastic expansion rope 225 plays a buffering and compensating role, avoiding rigid impact or loosening of the steel cable during transmission, ensuring continuous, stable and impact-free traction transmission, prolonging the service life of the component, and at the same time, buffering and storing energy of the rotation force, making the start and movement of the transport vehicle body 211 more stable, forming power buffering in the rotation process, avoiding inertial shaking of the finished product caused by sudden start of the vehicle body, replacing real-time judgment and rotation triggering operation of manual operation, after the first packed glass fiber is dropped, the first connecting steel cable 222 stretches the elastic expansion rope 225, and when the second packed glass fiber is dropped, the elastic expansion rope 225 will be straightened, thereby pulling the second connecting steel cable 227.
[0046] Specifically, the primary limiting part 24 includes a support rod 242 fixed on the top of the second support base 33, the top of the support rod 242 is fixed with an elastic tab 241, and the top of the elastic tab 241 is fixed with a magnetic plug-in rod 243.
[0047] The primary limiting part 24 is used for preliminary positioning and locking of the transport vehicle body 211 when it reaches the working position; the support rod 242 provides stable support for the elastic tab 241; the elastic tab 241 has elastic deformation capability, which can preliminarily limit the transport vehicle body 211 in daily use, and after the gravitational potential energy of the transport vehicle body 211 reaches a certain degree, the elastic tab 241 is automatically unlocked and locked, and then breaks the limit to start transportation, and at the same time, it can be self-adaptively aligned during plugging; the magnetic plug-in rod 243 is used for magnetic cooperation with the fixed plug-in part 25 to realize quick plug-in positioning, improve alignment accuracy and locking reliability.
[0048] Specifically, the fixed plug-in part 25 comprises a mounting block 254 fixed to the surface of the transport vehicle body 211, the surface of the mounting block 254 is fixed with a fixed vertical rod 255, the surface of the fixed vertical rod 255 is sleeved with a connecting ring 252, the top of the connecting ring 252 is fixed with a magnetic plug-in sleeve 251 matched with the magnetic plug-in rod 243, the surface of the fixed vertical rod 255 is sleeved with a reset spring 253, and the reset spring 253 is respectively fixed to the bottom of the connecting ring 252 and the top of the mounting block 254.
[0049] The fixed plug-in part 25 cooperates with the primary limiting part 24 to realize the locking of the transport vehicle body 211; the magnetic plug-in sleeve 251 is magnetically attracted and plugged with the magnetic plug-in rod 243 to realize automatic alignment and preliminary fixing; the connecting ring 252 slides along the fixed vertical rod 255, and the reset spring 253 provides elastic pre-tightening force to make the plug-in structure keep close cooperation, and meanwhile, the reset spring 253 can quickly reset after unlocking to prepare for the next locking.
[0050] Specifically, the limiting part 26 comprises a transmission tooth plate 2612 fixed to one side of the transport vehicle body 211, one side of the transmission tooth plate 2612 is provided with a rotating vertical rod 261, the rotating vertical rod 261 is movably connected to the top of the third support base 34, the top of the rotating vertical rod 261 is fixed with a transmission gear 2611 matched with the transmission tooth plate 2612, and the surface of the rotating vertical rod 261 is sleeved with a reset torsional spring 263.
[0051] The limiting part 26 is used for limiting the transport vehicle body 211 to be supplemented; the transmission tooth plate 2612 moves with the transport vehicle body 211 and is engaged with the transmission gear 2611 to convert linear motion into rotary motion; a subsequent structure is driven to cancel the limiting of the transport vehicle body 211 to be supplemented, so that the transport vehicle body 211 is automatically supplemented to continue the next stage of packaging, and the reset torsional spring 263 provides reverse torsion to realize damping limiting after the transport vehicle body 211 is positioned, compared with the shaking and positioning deviation of the vehicle body after manual supplement, the reset torsional spring 263 provides a standardized and stable material placing basis for the next production process.
[0052] Embodiment 3, refer to Figures 2-7 This is the third embodiment of the present application, which is based on the previous two embodiments.
[0053] Specifically, the surface of the rotating vertical rod 261 is sleeved with a first bevel gear 262, one side of the rotating vertical rod 261 is provided with a rotating screw rod 265, one side of the rotating screw rod 265 is fixedly connected with a second bevel gear 264 matched with the first bevel gear 262, the surface of the rotating screw rod 265 is sleeved with a supporting bearing 2610, the supporting bearing 2610 is fixed to the top of the third supporting base 34, the surface of the rotating screw rod 265 is sleeved with a spiral sleeve 267, the top of the spiral sleeve 267 is fixedly connected with a special-shaped connecting rod 266, one side of the special-shaped connecting rod 266 is fixedly connected with a sliding limiting baffle 269, the surface of the sliding limiting baffle 269 is sleeved with a limiting sleeve 268, and the limiting sleeve 268 is fixed to the top of the second supporting base 33.
[0054] In use, the operator starts the conveying belt 11 and the servo motor 14, the glass fiber finished product is conveyed to the lower side of the first supporting frame 12 and the second supporting frame 13 through the conveying belt 11, the servo motor 14 drives the rotating piece 15 to rotate, and drives the wrapping piece 16 to automatically package the glass fiber, and the packaged glass fiber finished product falls into the transportation assembly 2 through the guide plate 17.
[0055] The glass fiber finished product falls into the transportation car body 211 of the transportation piece 21, and is received by the elastic tray 231 of the gravity bearing piece 23. Under the action of the gravity of the glass fiber, the elastic tray 231 stably slides downward along the guide groove 212 through the guide block 233, the connecting sliding block 232 moves downward synchronously with the elastic tray 231, the connecting roller 221 of the traction piece 22 is pulled to move downward, and the first connecting steel cable 222 is stretched.
[0056] When the first glass fiber finished product falls, only the elastic stretchable rope 225 is stretched, and the transportation car body 211 remains stationary; when the second glass fiber finished product continues to fall, the elastic tray 231 further moves downward, so that the elastic stretchable rope 225 is completely stretched, thereby pulling the second connecting steel cable 227, and the second connecting steel cable 227 is reversed through the third fixed pulley 226, thereby forming a continuous traction force.
[0057] At this time, the fixed plug-in piece 25 on the surface of the transportation car body 211 is magnetically attracted to the magnetic plug-in rod 243 of the primary limiting piece 24, thereby achieving preliminary positioning; as the gravity continues to increase, the traction force overcomes the attraction force between the magnetic plug-in sleeve 251 and the magnetic plug-in rod 243, and breaks through the limit of the elastic push piece 241, so that the primary limiting is released, and the transportation car body 211 starts to move along the balance conveying base 27.
[0058] During the transportation of the transport vehicle body 211, the transmission tooth plate 2612 on one side is engaged with the transmission gear 2611 of the limiting member 26, which drives the rotating vertical rod 261 to rotate and accumulates the torsion of the reset torsion spring 263; the rotating vertical rod 261 drives the first bevel gear 262 to rotate, the first bevel gear 262 is engaged with the second bevel gear 264, which drives the rotating spiral rod 265 to rotate, the rotating spiral rod 265 drives the spiral sleeve 267 to move through the thread cooperation, the spiral sleeve 267 pulls the sliding limiting baffle 269 to slide along the limiting sleeve 268 through the special-shaped connecting rod 266, which releases the limiting of the next transport vehicle body 211 to be repositioned, so that the next empty vehicle body is automatically repositioned to one side of the conveying belt 11 to wait for the next batch of packaged finished products.
[0059] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present application but not limit the present application. Although the present application has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present application can be modified or replaced equivalently without departing from the spirit and scope of the technical solutions of the present application, which should be covered in the scope of the claims of the present application.
Claims
1. A packaging device for glass fiber production, characterized in that: include, The packaging assembly (1) includes a conveyor belt (11), a first support frame (12) fixed to the surface of the conveyor belt (11), a second support frame (13) fixed to one side of the first support frame (12), a servo motor (14) fixed to the top of the second support frame (13), a rotating component (15) fixed to the output end of the servo motor (14), a wrapping component (16) fixed to the inner wall of the rotating component (15), a guide plate (17) fixed to one side of the conveyor belt (11), and; A transport component (2) is disposed on one side of a conveyor belt (11), including a transport component (21) disposed at the bottom of the conveyor belt (11), a gravity bearing component (23) is slidably connected to the inner wall of the transport component (21), a primary limiting component (24) is disposed on one side of the transport component (21), a traction component (22) is fixed to the surface of the transport component (21), a fixed plug-in component (25) is fixed to the surface of the transport component (21), a limiting component (26) is disposed on one side of the transport component (21), a balance transport base (27) is fixed to the bottom of the transport component (21), and; The conveying assembly (3) is located at the bottom of the conveyor belt (11) and includes a second support base (33) located at the bottom of the conveyor belt (11). A third support base (34) is fixed on one side of the second support base (33). A first support base (31) is fixed on the surface of the second support base (33). A conveying guide rail (32) is fixed on the top of the second support base (33).
2. The packaging device for glass fiber production as described in claim 1, characterized in that: The transport component (21) includes a transport vehicle body (211) disposed on one side of the conveyor belt (11), the inner wall of the transport vehicle body (211) is provided with a guide groove (212), and a limit hole (213) is provided on one side of the transport vehicle body (211).
3. The packaging device for glass fiber production as described in claim 2, characterized in that: The traction component (22) includes a first fixed pulley (223) fixed to the surface of the transport vehicle body (211), a connecting roller (221) is provided on one side of the first fixed pulley (223), a second fixed pulley (224) is provided at the bottom of the first fixed pulley (223), and a third fixed pulley (226) is provided on one side of the second fixed pulley (224).
4. The packaging device for glass fiber production as described in claim 1 or 3, characterized in that: The gravity support component (23) includes an elastic tray (231) that is slidably connected to the inner wall of the transport vehicle body (211), and the surface of the elastic tray (231) is fixed with a guide block (233) that cooperates with the guide groove (212).
5. The packaging device for glass fiber production as described in claim 4, characterized in that: One side of the elastic tray (231) is fixed with a connecting slider (232) that mates with the limiting hole (213), and the connecting slider (232) is fixed to one side of the connecting roller (221).
6. The packaging device for glass fiber production as described in claim 5, characterized in that: The surface of the connecting roller (221) is fixed with a first connecting steel cable (222), and an elastic telescopic rope (225) is fixed on one side of the first connecting steel cable (222). A second connecting steel cable (227) that cooperates with the third fixed pulley (226) is fixed on one side of the elastic telescopic rope (225).
7. The packaging device for glass fiber production as described in claim 6, characterized in that: The primary limiting member (24) includes a support rod (242) fixed to the top of the second support base (33), and an elastic paddle (241) is fixed to the top of the support rod (242), and a magnetic plug rod (243) is fixed to the top of the elastic paddle (241).
8. The packaging device for glass fiber production as described in claim 7, characterized in that: The fixed connector (25) includes a mounting block (254) fixed to the surface of the transport vehicle body (211). A fixed vertical rod (255) is fixed to the surface of the mounting block (254). A connecting ring (252) is sleeved on the surface of the fixed vertical rod (255). A magnetic plug sleeve (251) that cooperates with the magnetic plug rod (243) is fixed to the top of the connecting ring (252). A return spring (253) is sleeved on the surface of the fixed vertical rod (255). The return spring (253) is fixed to the bottom of the connecting ring (252) and the top of the mounting block (254).
9. The packaging device for glass fiber production as described in claim 8, characterized in that: The limiting member (26) includes a transmission gear plate (2612) fixed to one side of the transport vehicle body (211). A rotating vertical rod (261) is provided on one side of the transmission gear plate (2612). The rotating vertical rod (261) is movably connected to the top of the third support base (34). A transmission gear (2611) that cooperates with the transmission gear plate (2612) is fixed on the top of the rotating vertical rod (261). A reset torsion spring (263) is sleeved on the surface of the rotating vertical rod (261).
10. The packaging device for glass fiber production as described in claim 9, characterized in that: The surface of the rotating vertical rod (261) is fitted with a first bevel gear (262). A rotating screw rod (265) is provided on one side of the rotating vertical rod (261). A second bevel gear (264) that cooperates with the first bevel gear (262) is fixed on one side of the rotating screw rod (265). A support bearing (2610) is fitted on the surface of the rotating screw rod (265). The support bearing (2610) is fixed to the top of the third support base (34). A screw sleeve (267) is fitted on the surface of the rotating screw rod (265). A non-circular connecting rod (266) is fixed to the top of the screw sleeve (267). A sliding limit baffle (269) is fixed to one side of the non-circular connecting rod (266). A limit sleeve (268) is fitted on the surface of the sliding limit baffle (269). The limit sleeve (268) is fixed to the top of the second support base (33).
Citation Information
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