A highly compatible inter-equipment transfer roller assembly

By designing a highly compatible material transfer roller assembly between equipment, and adopting an X-link structure and telescopic and lifting mechanisms, the problem of low material transfer efficiency between production lines was solved, achieving stability and compatibility in material transmission and adapting to differences in the interfaces of different equipment.

CN224577291UActive Publication Date: 2026-07-31GUANGDONG YUEDIANZHIXING FOOD CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
GUANGDONG YUEDIANZHIXING FOOD CO LTD
Filing Date
2025-10-09
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

Existing material transfer methods between production lines are inefficient, and traditional roller sets are difficult to adapt to the differences in equipment interfaces across different production lines, resulting in poor compatibility.

Method used

Design a highly compatible material transfer roller assembly between equipment, employing an X-link structure combined with telescopic and lifting mechanisms to achieve flexible deformation and adapt to differences in spacing and height between different equipment. The assembly includes a telescopic mechanism, a lifting mechanism, stabilizing components, and side roller assemblies, ensuring the stability and smoothness of material transfer.

Benefits of technology

It improves the compatibility and efficiency of material handling, avoids jamming and dropping, ensures stable material transport along the preset path, and adapts to the differences in interfaces of different equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses a highly compatible inter-equipment transfer roller assembly, relating to the field of food production technology. It includes multiple X-links, with telescopic mechanisms on both sides of each X-link for telescopic conveying. Lifting mechanisms are located on both sides of the outer walls of each X-link for adjusting the equipment height. Each telescopic mechanism includes a connecting shaft, with multiple connecting shafts rotatably connected between the upper ends of two adjacent connecting shafts. A transverse roller is rotatably connected to the middle of each connecting shaft. Side roller assemblies are located at both ends of each connecting shaft, and stabilizing components are located at both ends of the outer walls of each connecting shaft. End assemblies are located on both sides of the multiple X-links. In this utility model, the multiple X-links form a flexible and deformable frame body, allowing the product to be pushed and pushed back and forth. The product is then transferred by the driven rolling of the transverse rollers, reducing friction, while the side roller assemblies prevent material deviation.
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Description

Technical Field

[0001] This utility model relates to the field of food production technology, and in particular to a highly compatible inter-equipment transfer roller assembly. Background Technology

[0002] With the general trend of modern industrial production gradually transforming towards automation and mechanization, more and more companies are choosing to set up multiple production lines on a floor to improve production efficiency and output. In such a complex and compact production layout, the flow of materials between different production lines becomes particularly critical. Finished or semi-finished products that have completed some processes on production line one often need to be temporarily transferred to production line two next door for further processing due to adjustments in production plans, equipment failures, and some special circumstances.

[0003] Currently, traditional material transfer methods between production lines have many drawbacks. Most factories use manual handling, which requires workers to spend a lot of physical strength and time to move materials from one production line to another. This method is extremely inefficient and prone to human error. With the advancement of technology, current transportation uses conveyor belts and ordinary roller sets. However, current roller sets are designed for material transfer within a single production line, and their height and width parameters are fixed, making it difficult to adapt to the differences in the interfaces of different production line equipment, resulting in poor compatibility. Utility Model Content

[0004] To overcome the above shortcomings, this utility model provides a highly compatible inter-equipment transfer roller assembly, which aims to improve the problem that current roller assemblies are designed for material transfer within a single production line, with fixed height and width parameters, making it difficult to adapt to the differences in equipment interfaces of different production lines, resulting in poor compatibility.

[0005] To achieve the above objectives, the present invention adopts the following technical solution: a highly compatible inter-equipment transfer roller group, comprising multiple X-links, wherein telescopic mechanisms are provided on both sides of the X-links for telescopic conveying, and lifting mechanisms are provided on both sides of the outer wall of the X-links for adjusting the equipment height; The telescopic mechanism includes a connecting shaft, with multiple connecting shafts rotatably connected to the upper ends of two adjacent connecting shafts. A transverse roller is rotatably connected to the middle of the connecting shaft. Side roller assemblies are provided at both ends of the connecting shaft. Stabilizing assemblies are provided at both ends of the outer wall of the connecting shaft. End assemblies are provided on both sides of the multiple X-links. A structural rod is fixedly connected between adjacent two end assemblies. A reinforcing rod is rotatably connected between adjacent lower ends of two X-links.

[0006] Through the above technical solution: the X-link, as the core support frame component of the entire transfer roller assembly, provides stable foundation support for the roller assembly through its cross-shaped structure. Simultaneously, it can cooperate with the telescopic mechanism to achieve flexible deformation of the overall structure, ensuring that the roller assembly maintains structural stability under different equipment spacings. Telescopic mechanisms are provided on both sides of the X-link, which are used to flexibly extend and retract the conveying length according to the spacing requirements between different equipment, thereby adapting to equipment of different specifications and spacings and improving the compatibility of the roller assembly. Lifting mechanisms are provided on both sides of the outer wall of the X-link, which are used to adjust the equipment height of the entire transfer roller assembly according to the height difference of the docking equipment, ensuring that the roller assembly is aligned with the docking equipment. The conveying surfaces of upstream and downstream equipment are kept flush to prevent material from jamming or falling during transmission. The telescopic mechanism includes connecting shafts, which are key connecting and supporting components. On one hand, they connect various transverse rollers and side roller assemblies, providing them with a mounting platform. On the other hand, the telescopic mechanism's extension and retraction are achieved through the rotational connection between adjacent connecting shafts. Multiple connecting shafts are rotatably connected to the upper ends of two adjacent connecting shafts. Through the rotational connection of multiple sets of connecting shafts, a flexible and retractable transmission channel frame is formed to meet the conveying needs of different equipment spacings. Transverse rollers are rotatably connected to the middle of the connecting shafts, serving as material conveyors. The main actuator, through its own rotation, smoothly conveys materials along the length of the roller assembly, reducing friction between the material and the rollers and ensuring smooth material transport. Side roller assemblies are installed at both ends of the connecting shaft to laterally limit material movement during transport, preventing deviation and ensuring the material always moves along the preset conveying path. Stabilizing components are installed at both ends of the outer wall of the connecting shaft to enhance the structural stability of the telescopic mechanism during telescopic movement, preventing shaking or deviation of the connecting shaft due to telescopic action and ensuring the flatness of the entire transport channel. End assemblies are installed on both sides of multiple X-links. The end components serve as a connecting transition between the telescopic mechanism and the lifting mechanism. On the one hand, they provide fixed support for the end of the telescopic mechanism, and on the other hand, they provide installation and sliding space for the reinforcing rods. Structural rods are fixedly connected between adjacent end components. These structural rods connect the end components on both sides, enhancing the overall structural strength of the end of the telescopic mechanism and preventing deformation of the end components under stress. Reinforcing rods are rotatably connected between adjacent lower ends of the two X-links. These reinforcing rods enhance the connection stability between the X-links. When the roller group extends or carries materials, the X-links can be balanced by their own sliding and rotation adjustments to prevent damage due to uneven stress.

[0007] As a further description of the above technical solution: The lifting mechanism includes a sleeve rod, which is fixed to the outer wall of the end assembly. A fixing pin is fixedly connected to the middle of the outer wall of the sleeve rod, and the other end of the fixing pin is fixedly connected to the bottom of the knob. An internal assembly is slidably connected to the inner wall of the sleeve rod, and a pulley is fixedly connected to the bottom of the internal assembly. A locking assembly is provided at the lower end of the outer wall of the sleeve rod. A locking block is rotatably connected to one end of the locking assembly, and a knob is fixedly connected to the other end of the locking assembly.

[0008] Through the above technical solution: the sleeve rod is the external fixed frame component of the lifting mechanism, providing a sliding guide channel for the internal components, while bearing the weight of the entire roller group and transferring the weight to the pulley. The sleeve rod is fixed to the outer wall of the end component, and through the fixed connection with the end component, the lifting mechanism and the telescopic mechanism are integrated. A fixing pin is fixedly connected to the middle of the outer wall of the sleeve rod. The fixing pin is used to connect the sleeve rod and the knob, providing a fixed support point for the knob and ensuring that the knob will not shift during rotation adjustment. The other end of the fixing pin is fixedly connected to the bottom of the knob. The knob, as the operating component of the lifting mechanism, can drive the threaded rod in the locking component to rotate by rotating the knob, thereby locking or unlocking the internal components, facilitating the operator to adjust the height of the roller group. The inner wall of the sleeve rod is slidably connected to the internal components, which can slide up and down along the inner wall of the sleeve rod, thereby changing the lifting mechanism. The overall height is adjustable, allowing for the adjustment of the entire transfer roller assembly. A pulley is fixedly connected to the bottom of the internal components. The pulley reduces friction between the roller assembly and the ground, facilitating position adjustment by the operator and improving the roller assembly's mobility. A locking component is located at the lower end of the outer wall of the sleeve rod. This component secures the internal components to the sleeve rod after they are adjusted to the appropriate height, preventing them from sliding while the roller assembly is carrying material and ensuring the stability of the roller assembly's height. A locking block is rotatably connected to one end of the locking component. This block, pushed by the threaded rod, tightly engages with the anti-slip groove of the internal component, increasing friction to lock the internal component. Its rotatable connection adapts to the shape of the anti-slip groove, ensuring effective locking. A knob is fixedly connected to the other end of the locking component, allowing for switching between locking and unlocking.

[0009] As a further description of the above technical solution: The side roller assembly includes a mounting plate, which is fixed to both ends of the connecting shaft, and a side roller is rotatably connected to the top of the mounting plate.

[0010] Through the above technical solution: the mounting plate serves as the mounting carrier for the side roller assembly, used to fix the side rollers to both ends of the connecting shaft, providing stable support for the side rollers. The mounting plate is fixed to both ends of the connecting shaft to ensure the firm connection between the side roller assembly and the connecting shaft. The top of the mounting plate is rotatably connected to the side rollers, which can rotate with the movement of the material. While limiting the material on the side, it reduces the friction between the material and the side roller assembly, preventing the side of the material from being damaged due to friction.

[0011] As a further description of the above technical solution: The stabilizing component includes a stabilizing rod, the upper end of which is rotatably connected to one end of a connecting shaft, and a sliding groove is provided at the bottom of the stabilizing rod, the inner wall of which is slidably connected to the outer wall of a fixing pin.

[0012] The above technical solution includes a stabilizing rod, which is the core supporting component of the stabilizing assembly. Through its connection with the connecting shaft and a fixing pin, it limits the range of motion of the connecting shaft during extension and retraction. The upper end of the stabilizing rod is rotatably connected to one end of the connecting shaft, allowing it to rotate and adjust with the extension and retraction of the connecting shaft, ensuring that the stabilizing rod always provides stability to the connecting shaft. A groove is provided at the bottom of the stabilizing rod, providing sliding space for the fixing pin, allowing the stabilizing rod to slide along the fixing pin during rotation, preventing damage due to rigid connection. The inner wall of the groove is slidably connected to the outer wall of the fixing pin. The fixing pin is used to fix the bottom position of the stabilizing rod and also provides guidance for its sliding.

[0013] As a further description of the above technical solution: The end assembly includes an end rod, the upper end of which is rotatably connected to one end of a connecting shaft. A second sliding groove is provided at the lower end of the outer wall of the end rod, and the inner wall of the second sliding groove is slidably connected to the outer wall of the reinforcing rod.

[0014] The above technical solution involves an end rod, which is the main structural component of the end assembly. It connects the connecting shaft and the reinforcing rod, and provides space for the second sliding groove. The upper end of the end rod is rotatably connected to one end of the connecting shaft, allowing it to rotate with the extension and retraction of the connecting shaft, ensuring synchronization between the end assembly and the telescopic mechanism. The lower end of the outer wall of the end rod has a second sliding groove, which provides a sliding channel for the reinforcing rod, allowing it to slide along the second groove during the extension and retraction of the roller assembly. This adjusts the distance between the X-links. The inner wall of the second sliding groove is slidably connected to the outer wall of the reinforcing rod, ensuring that the reinforcing rod does not detach from the end assembly during sliding, thus guaranteeing the reinforcement effect.

[0015] As a further description of the above technical solution: The internal component includes an inner slide rod, the outer wall of which is slidably connected to the inner wall of the sleeve rod, and the outer wall of the inner slide rod is provided with multiple anti-slip grooves.

[0016] The above technical solution includes an inner slide rod, which is the main component of the internal assembly. It can slide along the inner wall of the sleeve rod. The height of the lifting mechanism can be adjusted by changing the length of the slide rod extending out of the sleeve rod. The outer wall of the inner slide rod is slidably connected to the inner wall of the sleeve rod to ensure the smoothness and stability of the sliding process of the inner slide rod. The outer wall of the inner slide rod is provided with multiple anti-slip grooves. The anti-slip grooves are used to increase the friction between the locking block and the inner slide rod. When the locking block is embedded in the anti-slip groove, it can effectively prevent the inner slide rod from sliding on its own and ensure that the height of the roller group is fixed.

[0017] As a further description of the above technical solution: The locking assembly includes a threaded sleeve fixed to the outer wall of the sleeve rod, and a threaded rod threadedly connected to the inner wall of the threaded sleeve.

[0018] Through the above technical solution: the locking component includes a threaded sleeve, which is used to fix to the outer wall of the sleeve rod, providing a threaded connection carrier for the threaded rod, ensuring that the threaded rod can move along the axial direction of the threaded sleeve when rotating. The threaded sleeve is fixed to the outer wall of the sleeve rod, ensuring the connection between the locking component and the sleeve rod. The inner wall of the threaded sleeve is threadedly connected to a threaded rod, which can rotate and move along the inner wall of the threaded sleeve under the action of the knob, thereby pushing the locking block to engage or disengage from the anti-slip groove of the inner slide rod, realizing the locking and unlocking functions.

[0019] As a further description of the above technical solution: The multiple X-links are connected sequentially at both ends, and the X-links on both sides are symmetrically arranged.

[0020] The above technical solution involves multiple X-links connected sequentially at both ends, with symmetrical arrangement of X-links on both sides. This symmetrical and multi-layered connection method further enhances the overall load-bearing capacity and structural balance of the roller assembly.

[0021] This utility model has the following beneficial effects: 1. In this utility model, multiple X-links are connected at both ends in sequence to form a flexible and deformable frame body. The transverse roller can rotate around the connecting shaft. A large number of products can be pushed back and forth. After the transverse roller rolls, the friction is reduced, thereby transferring the products. The side roller assemblies at both ends of the connecting shaft play a guiding role and prevent the material from deviating. At the same time, the rotation reduces the friction between the material and the side roller assembly. It can be stretched as needed and can also bend at multiple angles to adapt to different paths and ensure that the material is stably conveyed along the preset direction.

[0022] 2. In this utility model, by rotating the knob at one end of the threaded rod, the threaded rod is pushed into the sleeve rod by the threaded transmission until the end of the threaded rod is embedded in the anti-slip groove of the internal component, which restricts the relative sliding between the sleeve rod and the inner slide rod and achieves height locking. Attached Figure Description

[0023] Figure 1 This is a perspective view of a highly compatible inter-equipment transfer roller assembly proposed in this utility model.

[0024] Figure 2 This is a partial structural diagram of the X-link of a highly compatible inter-equipment transfer roller group proposed in this utility model.

[0025] Figure 3 This is a partial structural diagram of the end component of a highly compatible inter-equipment transfer roller group proposed in this utility model.

[0026] Figure 4 This is a partial structural breakdown diagram of the internal components of a highly compatible inter-equipment transfer roller group proposed in this utility model.

[0027] Figure 5 This is a partial structural diagram of a locking component for a highly compatible inter-equipment transfer roller group proposed in this utility model.

[0028] Explanation of reference numerals in the attached figures: 1. X-link; 2. Telescopic mechanism; 201. Connecting shaft; 202. Transverse roller; 203. Side roller assembly; 2031. Mounting plate; 2032. Side roller; 204. Stabilizing assembly; 2041. Stabilizing bar; 2042. Slide groove one; 205. Fixing pin one; 206. End assembly; 2061. End rod; 2062. Slide groove two; 207. Structural rod; 208. Reinforcing rod; 3. Lifting mechanism; 301. Sleeve rod; 302. Fixing pin two; 303. Internal assembly; 3031. Inner slide rod; 3032. Anti-slip groove; 304. Pulley; 305. Locking assembly; 3051. Threaded sleeve; 3052. Threaded rod; 306. Knob; 307. Locking block. Detailed Implementation

[0029] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0030] Reference Figure 1 - Figure 3 The present invention provides an embodiment of a highly compatible inter-equipment transfer roller group, comprising multiple X-links 1, telescopic mechanisms 2 on both sides of the X-links 1 for telescopic conveying, and lifting mechanisms 3 on both sides of the outer wall of the X-links 1 for adjusting the equipment height. The telescopic mechanism 2 includes a connecting shaft 201, multiple connecting shafts 201 are rotatably connected to the upper ends of two adjacent connecting shafts 201, a transverse roller 202 is rotatably connected to the middle of the connecting shaft 201, side roller assemblies 203 are provided at both ends of the connecting shaft 201, stabilizing assemblies 204 are provided at both ends of the outer wall of the connecting shaft 201, end assemblies 206 are provided on both sides of multiple X-links 1, structural rods 207 are fixedly connected between adjacent two end assemblies 206, and reinforcing rods 208 are rotatably connected between adjacent lower ends of two X-links 1. Specifically, the X-link 1, as the core support frame component of the entire transfer roller assembly, provides stable foundation support for the roller assembly through its cross-shaped structure. Simultaneously, it can work with the telescopic mechanism 2 to achieve flexible deformation of the overall structure, ensuring that the roller assembly maintains structural stability even with different equipment spacing. Telescopic mechanisms 2 are installed on both sides of the X-link 1, allowing for flexible extension and retraction of the conveying length according to the spacing requirements between different equipment, thus adapting to equipment of different specifications and spacings and improving the compatibility of the roller assembly. Lifting mechanisms 3 are installed on both sides of the outer wall of the X-link 1, adjusting the overall height of the transfer roller assembly according to the height differences of the docking equipment, ensuring that the roller assembly remains flush with the conveying surfaces of the upstream and downstream equipment, and preventing material from being transported incorrectly. In case of jamming or falling during the process, the telescopic mechanism 2 includes a connecting shaft 201. The connecting shaft 201 is a key connecting and supporting component of the telescopic mechanism 2. On the one hand, it is used to connect each transverse roller 202 and the side roller assembly 203, providing them with a mounting carrier. On the other hand, through the rotational connection between adjacent connecting shafts 201, the telescopic mechanism 2 can achieve telescopic movement. Multiple connecting shafts 201 are rotatably connected between the upper ends of two adjacent connecting shafts 201. Through the rotational connection of multiple sets of connecting shafts 201, a flexible telescopic transmission channel frame is formed to meet the conveying needs under different equipment spacing. The transverse roller 202 is rotatably connected to the middle of the connecting shaft 201. The transverse roller 202 is the main actuator for material conveying. The rotation of the body smoothly conveys the material along the length of the roller assembly, reducing friction between the material and the roller assembly and ensuring smooth material transmission. Side roller assemblies 203 are provided at both ends of the connecting shaft 201. These side roller assemblies 203 are used to laterally limit the material during transmission, preventing deviation and ensuring the material always moves along the preset conveying path. Stabilizing components 204 are provided at both ends of the outer wall of the connecting shaft 201. These stabilizing components 204 enhance the structural stability of the telescopic mechanism 2 during telescopic movement, preventing shaking or deviation of the connecting shaft 201 due to telescopic action and ensuring the flatness of the entire transmission channel. End assemblies 206 are provided on both sides of the multiple X-links 1. The end assemblies 206 serve as… The connecting transition component between the telescopic mechanism 2 and the lifting mechanism 3 provides fixed support for the end of the telescopic mechanism 2 on the one hand, and provides installation and sliding space for the reinforcing rod 208 on the other hand. A structural rod 207 is fixedly connected between the adjacent end components 206. The structural rod 207 is used to connect the end components 206 on both sides, enhance the overall structural strength of the end of the telescopic mechanism 2, and prevent the end components 206 from deforming under force. A reinforcing rod 208 is rotatably connected between the lower ends of the two X-links 1. The reinforcing rod 208 is used to enhance the connection stability between the X-links 1. When the roller group is telescopic or carrying materials, it can adjust its own sliding and rotation to balance the external force on the X-links 1 and avoid damage to the X-links 1 due to uneven force.

[0031] Reference Figure 4 - Figure 5 The lifting mechanism 3 includes a sleeve rod 301, which is fixed to the outer wall of the end component 206. A fixing pin 302 is fixedly connected to the middle of the outer wall of the sleeve rod 301. The other end of the fixing pin 302 is fixedly connected to the bottom of the knob 306. An inner component 303 is slidably connected to the inner wall of the sleeve rod 301. A pulley 304 is fixedly connected to the bottom of the inner component 303. A locking component 305 is provided at the lower end of the outer wall of the sleeve rod 301. A locking block 307 is rotatably connected to one end of the locking component 305. A knob 306 is fixedly connected to the other end of the locking component 305. Specifically, the sleeve rod 301 is the external fixed frame component of the lifting mechanism 3, providing a sliding guide channel for the internal component 303, while bearing the weight of the entire roller assembly and transferring the weight to the pulley 304. The sleeve rod 301 is fixed to the outer wall of the end component 206, and through the fixed connection with the end component 206, the lifting mechanism 3 and the telescopic mechanism 2 are integrated. A fixing pin 302 is fixedly connected to the middle of the outer wall of the sleeve rod 301. The fixing pin 302 is used to connect the sleeve rod 301 and the knob 306, providing a fixed support for the knob 306. A support point ensures that the knob 306 will not shift during rotation adjustment. The other end of the fixing pin 302 is fixedly connected to the bottom of the knob 306. The knob 306 serves as the operating component of the lifting mechanism 3. Rotating the knob 306 can drive the threaded rod 3052 in the locking assembly 305 to rotate, thereby locking or unlocking the internal component 303. This facilitates the operator's adjustment of the roller height. The inner wall of the sleeve rod 301 is slidably connected to the internal component 303. The internal component 303 can slide up and down along the inner wall of the sleeve rod 301, thereby changing the lifting mechanism. The overall height of component 303 is adjusted to allow for height adjustment of the entire transfer roller assembly. A pulley 304 is fixedly connected to the bottom of the internal component 303. The pulley 304 reduces friction between the roller assembly and the ground, facilitating position adjustment by the operator and improving the roller assembly's mobility. A locking component 305 is provided at the lower end of the outer wall of the sleeve rod 301. The locking component 305 secures the internal component 303 relative to the sleeve rod 301 after the internal component 303 is adjusted to a suitable height, preventing the internal component 303 from shifting when the roller assembly is carrying material. The self-sliding mechanism ensures the stability of the roller group height. One end of the locking component 305 is rotatably connected to a locking block 307. The locking block 307 can be pushed by the threaded rod 3052 to fit tightly against the anti-slip groove 3032 of the internal component 303, thereby increasing the friction to lock the internal component 303. At the same time, its rotatable connection method can adapt to the shape of the anti-slip groove 3032 to ensure the locking effect. The other end of the locking component 305 is fixedly connected to a knob 306. The knob 306 drives the locking component 305 to move, realizing the switching between locking and unlocking.

[0032] Reference Figure 1 - Figure 3The side roller assembly 203 includes a mounting plate 2031, which is fixed to both ends of the connecting shaft 201. The top of the mounting plate 2031 is rotatably connected to a side roller 2032. The stabilizing assembly 204 includes a stabilizing rod 2041, the upper end of which is rotatably connected to one end of the connecting shaft 201. The bottom of the stabilizing rod 2041 is provided with a first groove 2042, the inner wall of which is slidably connected to the outer wall of a first fixing pin 205. The end assembly 206 includes an end rod 2061, the upper end of which is rotatably connected to one end of the connecting shaft 201. The lower end of the outer wall of the end rod 2061 is provided with a second groove 2062, the inner wall of which is slidably connected to the outer wall of a reinforcing rod 208. Specifically, the mounting plate 2031 serves as the mounting carrier for the side roller assembly 203, used to fix the side roller 2032 to both ends of the connecting shaft 201, providing stable support for the side roller 2032. The mounting plate 2031 is fixed to both ends of the connecting shaft 201, ensuring a secure connection between the side roller assembly 203 and the connecting shaft 201. The side roller 2032 is rotatably connected to the top of the mounting plate 2031, and can rotate with the movement of the material. While providing lateral restraint for the material, it reduces the friction between the material and the side roller assembly 203, preventing damage to the material's sides due to friction. The stabilizing component 204 includes a stabilizing rod 2041, which is the core supporting component of the stabilizing component 204. Through its connection with the connecting shaft 201 and the fixing pin 205, it limits the sway range of the connecting shaft 201 during extension and retraction. The upper end of the stabilizing rod 2041 is rotatably connected to one end of the connecting shaft 201, allowing it to rotate and adjust with the extension and retraction of the connecting shaft 201, ensuring that the stabilizing rod 2041 always provides stability to the connecting shaft 201. A groove 2042 is provided at the bottom of the stabilizing rod 2041, providing sliding space for the fixing pin 205. This allows the stabilizer bar 2041 to slide along the fixing pin 205 during rotation, preventing damage to the stabilizer bar 2041 due to rigid connection. The inner wall of the slide groove 2042 is slidably connected to the outer wall of the fixing pin 205. The fixing pin 205 is used to fix the bottom position of the stabilizer bar 2041 and provide guidance for the sliding of the stabilizer bar 2041. The end assembly 206 includes an end rod 2061, which is the main structural component of the end assembly 206. It is used to connect the connecting shaft 201 and the reinforcing rod 208, and also provides space for the slide groove 2062. The end rod 2061... The upper end is rotatably connected to one end of the connecting shaft 201, and can rotate with the extension and retraction of the connecting shaft 201 to ensure that the end component 206 moves synchronously with the telescopic mechanism 2. The lower end of the outer wall of the end rod 2061 is provided with a second sliding groove 2062, which provides a sliding channel for the reinforcing rod 208, so that the reinforcing rod 208 can slide along the second sliding groove 2062 when the roller group extends and retracts, thereby adjusting the distance between the X connecting rods 1. The inner wall of the second sliding groove 2062 is slidably connected to the outer wall of the reinforcing rod 208 to ensure that the reinforcing rod 208 will not detach from the end component 206 during the sliding process, thus ensuring the reinforcement effect.

[0033] Reference Figure 3 - Figure 5 The internal component 303 includes an inner slide rod 3031, the outer wall of which is slidably connected to the inner wall of the sleeve rod 301. The outer wall of the inner slide rod 3031 is provided with multiple anti-slip grooves 3032. The locking component 305 includes a threaded sleeve 3051, which is fixed to the outer wall of the sleeve rod 301. The inner wall of the threaded sleeve 3051 is threadedly connected to a threaded rod 3052. Multiple X-links 1 are connected at both ends in sequence, and the X-links 1 on both sides are symmetrically arranged. Specifically, the internal component 303 includes an inner slide rod 3031, which is the main component of the internal component 303. The inner slide rod 3031 can slide along the inner wall of the sleeve rod 301. The height of the lifting mechanism 3 can be adjusted by changing the length of the inner slide rod extending beyond the sleeve rod 301. The outer wall of the inner slide rod 3031 is slidably connected to the inner wall of the sleeve rod 301, ensuring the smoothness and stability of the sliding process. Multiple anti-slip grooves 3032 are provided on the outer wall of the inner slide rod 3031. These anti-slip grooves 3032 increase the friction between the locking block 307 and the inner slide rod 3031. When the locking block 307 is embedded in the anti-slip groove 3032, it effectively prevents the inner slide rod 3031 from sliding on its own, ensuring a fixed roller height. The locking component 305 includes a threaded sleeve 3051, which is used to fix the inner slide rod 3031 to the inner wall. The outer wall of the sleeve rod 301 provides a threaded connection carrier for the threaded rod 3052, ensuring that the threaded rod 3052 can move along the axis of the threaded sleeve 3051 when rotating. The threaded sleeve 3051 is fixed to the outer wall of the sleeve rod 301, ensuring the connection between the locking component 305 and the sleeve rod 301. The inner wall of the threaded sleeve 3051 is threadedly connected to the threaded rod 3052. The threaded rod 3052 can rotate and move along the inner wall of the threaded sleeve 3051 under the drive of the knob 306, thereby pushing the locking block 307 to engage or disengage from the anti-slip groove 3032 of the inner slide rod 3031, realizing the locking and unlocking functions. Multiple X-links 1 are connected sequentially at both ends, and the X-links 1 on both sides are symmetrically arranged. This symmetrical and multi-layered connection method further enhances the overall load-bearing capacity and structural balance of the roller group.

[0034] Working principle: Multiple X-links 1 are connected at both ends in sequence, and the X-links 1 on both sides are symmetrically arranged to form a flexible and deformable frame. When it is necessary to adjust the conveying length of the transfer roller group, since the upper ends of the two connecting shafts 201 are rotatably connected, and multiple connecting shafts 201 are linked in sequence, the connecting shafts 201 will extend and retract synchronously with the expansion and contraction of the X-links 1, thereby changing the conveying length of the entire roller group. The upper end of the stabilizing rod 2041 is rotatably connected to one end of the connecting shaft 201, and the bottom slide groove 2042 slides along the outer wall of the fixing pin 205 to limit the offset direction of the connecting shaft 201 and avoid lateral swaying during extension and contraction. The two ends of the reinforcing rod 208 are rotatably connected to the lower ends of the two X-links 1 respectively, and its outer wall slides along the slide groove 2062 of the end component 206. To further enhance the structural rigidity of the frame during the expansion and contraction process and prevent excessive deformation of the frame, the structural rods 207 fixed between the two end components 206 ensure the synchronous movement of the two end components 206 and avoid tilting of the conveying surface due to unilateral offset. The material contacts the transverse roller 202 in the middle of the connecting shaft 201. The transverse roller 202 can rotate around the connecting shaft 201. A large number of products can be pushed back and forth and rolled by the transverse roller 202 to reduce friction and transfer the products. The side roller components 203 at both ends of the connecting shaft 201 play a guiding role and prevent the material from deviating. At the same time, the rotation reduces the friction between the material and the side roller components 203. It can be stretched as needed and can also bend at multiple angles to adapt to different paths and ensure that the material is stably conveyed along the preset direction. When it is necessary to raise the transfer roller assembly, first release the locking component 305 from fixing the internal component 303, then push the sleeve 301 upward. The sleeve 301 slides upward along the outer wall of the internal component 303, driving the end component 206 and the X-link 1 frame to rise synchronously until the conveying surface of the transverse roller 202 is aligned with the height of the target equipment. The threaded sleeve 3051 of the locking component 305 is fixed to the outer wall of the sleeve 301, and its inner wall is threadedly connected to the threaded rod 3052. When the knob 306 at one end of the threaded rod 3052 is rotated, the threaded rod 3052 is pushed into the sleeve 301 by the threaded transmission until the end of the threaded rod 3052 is embedded in the anti-slip groove 3032 of the internal component 303, restricting the relative sliding between the sleeve 301 and the inner sliding rod 3031, thus achieving height locking. To readjust the height, rotate the knob 306 in the opposite direction to disengage the threaded rod 3052 from the anti-slip groove 3032, thereby releasing the lock and allowing for height adjustment again.

[0035] Finally, it should be noted that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A highly compatible inter-equipment transfer roller assembly, comprising multiple X-links (1), characterized in that: The X-link (1) is provided with telescopic mechanisms (2) on both sides, which are used for telescopic conveying. The X-link (1) is provided with lifting mechanisms (3) on both sides of its outer wall, which are used to adjust the height of the equipment. The telescopic mechanism (2) includes a connecting shaft (201), with multiple connecting shafts (201) rotatably connected to the upper ends of two adjacent connecting shafts (201), a transverse roller (202) rotatably connected to the middle of the connecting shaft (201), side roller assemblies (203) provided at both ends of the connecting shaft (201), stabilizing assemblies (204) provided at both ends of the outer wall of the connecting shaft (201), end assemblies (206) provided on both sides of multiple X-links (1), a structural rod (207) fixedly connected between adjacent two end assemblies (206), and a reinforcing rod (208) rotatably connected between adjacent lower ends of two X-links (1).

2. The high compatibility inter-device transfer roller set of claim 1, wherein: The lifting mechanism (3) includes a sleeve rod (301), which is fixed to the outer wall of the end component (206). A fixing pin (302) is fixedly connected to the middle of the outer wall of the sleeve rod (301). The other end of the fixing pin (302) is fixedly connected to the bottom of the knob (306). An internal component (303) is slidably connected to the inner wall of the sleeve rod (301). A pulley (304) is fixedly connected to the bottom of the internal component (303). A locking component (305) is provided at the lower end of the outer wall of the sleeve rod (301). A locking block (307) is rotatably connected to one end of the locking component (305). A knob (306) is fixedly connected to the other end of the locking component (305).

3. The high compatibility inter-device transfer roller set of claim 1, wherein: The side roller assembly (203) includes a mounting plate (2031), which is fixed at both ends of the connecting shaft (201), and a side roller (2032) is rotatably connected to the top of the mounting plate (2031).

4. The high compatibility inter-device transfer roller set of claim 1, wherein: The stabilizing component (204) includes a stabilizing rod (2041), the upper end of which is rotatably connected to one end of the connecting shaft (201), and a sliding groove (2042) is provided at the bottom of the stabilizing rod (2041), the inner wall of which is slidably connected to the outer wall of the fixing pin (205).

5. The high compatibility inter-device transfer roller set of claim 1, wherein: The end assembly (206) includes an end rod (2061), the upper end of which is rotatably connected to one end of the connecting shaft (201), and a second sliding groove (2062) is provided at the lower end of the outer wall of the end rod (2061), and the inner wall of the second sliding groove (2062) is slidably connected to the outer wall of the reinforcing rod (208).

6. The high compatibility inter-device transfer roller set of claim 2, wherein: The internal component (303) includes an inner slide rod (3031), the outer wall of which is slidably connected to the inner wall of the sleeve rod (301), and the outer wall of the inner slide rod (3031) is provided with a plurality of anti-slip grooves (3032).

7. The high compatibility inter-device transfer roller set of claim 2, wherein: The locking assembly (305) comprises a threaded sleeve (3051) fixed to the outer wall of the sleeve rod (301), and the inner wall of the threaded sleeve (3051) is threadedly connected with a threaded rod (3052).

8. The high compatibility inter-device transfer roller set of claim 1, wherein: A plurality of X connecting rods (1) are sequentially connected at the upper and lower ends, and the X connecting rods (1) on both sides are symmetrically arranged.