Bottle separating device and production line

Through the innovative design of the support assembly and the bottle separation assembly, the cooperation of the moving part and the diverter plate is used to solve the problems of low accuracy and poor coherence of the bottle separation device, and the rapid and accurate diverting and conveying of the bottle are achieved, and the efficiency and stability of the production line are improved.

CN223149554UActive Publication Date: 2025-07-25GUANGZHOU TECH LONG PACKAGING MACHINERY CO LTD
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Patent Information

Application Number
CN202421651246.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-12
Publication Date
2025-07-25
Estimated Expiration
2034-07-12

AI Technical Summary

Technical Problem

The existing bottle separation devices have low accuracy and poor consistency, resulting in low production efficiency. The bottles are prone to stay or adjust during the channel separation process, which affects the stability and efficiency of the production process.

Method used

The design of support components and bottle splitting components is adopted, including a moving part, a shunt plate and an output channel. The moving part drives the shunt plate to change the output end of the shunt channel, ensuring that the bottle enters the designated channel in a predetermined order, and using the dual-stroke cylinder and guide rail to provide stable driving force, combined with the guide ball to protect the bottle body.

Benefits of technology

It realizes fast and precise diversion and transportation of bottles, improves the overall efficiency of the production line, reduces production cycle and bottle losses, and ensures the consistency and stability of the production process.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223149554U_ABST
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Abstract

The utility model discloses a bottle separating device and a production line, and belongs to the field of automatic packaging equipment, and the bottle separating device comprises a supporting assembly and a bottle separating assembly. Wherein the supporting assembly is provided with an input channel; the bottle separating assembly is connected with the supporting assembly and comprises a moving part, two splitter plates and at least two output channels, the input ends of the multiple output channels are arranged in the first linear direction, the moving part is connected with the splitter plates, the two splitter plates are oppositely arranged and arranged at intervals, and a splitter channel is formed between the two splitter plates; the input end of the flow dividing channel always communicates with the output end of the input channel, the moving part can drive the flow dividing plate to move, the output end of the flow dividing channel selectively communicates with the input ends of different output channels, and bottles can sequentially pass through the input channel, the flow dividing channel and the output channels and flow out of the output ends of the output channels. The utility model further discloses a production line which comprises a processing line and the bottle separating device and has high bottle separating efficiency.
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Description

Technical Field

[0001] The utility model relates to the field of automatic packaging equipment, in particular to a bottle separating device and a production line. Background Art

[0002] In modern automated production lines, efficient and accurate bottle separation of bottled products is a key link to ensure smooth production processes and improve production efficiency. During the packaging process of bottled products, it is usually necessary to divide a single conveying channel into multiple channels through a lane separation device to improve conveying efficiency and facilitate subsequent box distribution or packaging and palletizing operations. Lane separation devices are widely used in production lines in the food, beverage, pharmaceutical and other industries. By orderly separating bottles, efficient automated production and packaging can be achieved.

[0003] Existing bottle separation devices usually use a relatively simple mechanical structure to perform bottle separation operations, generally guiding the bottles to flow in a preset direction through a fixed channel, or using an intermittent blocking mechanism to achieve bottle separation.

[0004] However, on the one hand, the existing bottle sorting device has difficulty in ensuring the operating accuracy, and cannot ensure that each bottle can enter the designated channel accurately in strict accordance with the predetermined order, which can easily cause confusion in the production process and affect efficiency. In addition, during the sorting process, the bottles often need to stay or adjust additionally, resulting in the lack of consistency and efficiency in the entire production process, which not only increases the production cycle, but also limits the increase in output. Utility Model Content

[0005] The utility model aims to provide a bottle separation device and a production line to solve the technical problems existing in the prior art that the bottle separation device has low bottle separation accuracy and poor consistency, resulting in low bottle separation efficiency.

[0006] As conceived above, the technical solution adopted by the utility model is:

[0007] On the one hand, the utility model provides a bottle separation device, comprising:

[0008] A support assembly, wherein the support assembly is provided with an input channel;

[0009] A bottle dividing assembly is connected to the supporting assembly, the bottle dividing assembly comprises a moving part, two diverter plates and at least two output channels, the input ends of the plurality of output channels are arranged along a first straight line direction, the moving part is connected to the diverter plate, the two diverter plates are arranged opposite to each other and arranged at intervals, a diverter channel is formed therebetween, the input end of the diverter channel is always connected to the output end of the input channel, the moving part can drive the diverter plate to move, so that the output end of the diverter channel selectively connects to the input ends of different output channels, the bottle can pass through the input channel, the diverter channel and the output channel in sequence, and flow out from the output end of the output channel.

[0010] Preferably, the moving part includes a driving member and a connecting mechanism, the supporting assembly includes a fixed plate, the driving member is arranged on the fixed plate, the driving member is transmission-connected to the connecting mechanism, the connecting mechanism is connected to one side of the two diverter plates close to the output end of the diverter channel, and the driving member can drive the connecting mechanism to move along the first straight line direction, thereby driving the output end of the diverter channel to move along the first straight line direction.

[0011] Preferably, the driving member is a two-stroke cylinder, the telescopic end of the two-stroke cylinder is connected to the connecting mechanism, a guide rail is provided at the bottom of the fixed plate, the guide rail extends along a first straight line, and the connecting mechanism is slidably connected to the guide rail.

[0012] Preferably, the connecting mechanism includes a carrying plate and two connecting parts, the telescopic end of the double-stroke cylinder is connected to the carrying plate, the carrying plate is slidably connected to the guide rail, the two connecting parts are respectively arranged on both sides of the carrying plate, and one connecting part is provided for each diverter plate, the connecting parts include a fixed block, a slide plate and a connecting rod, the fixed block is fixedly connected to the carrying plate, the slide plate is slidably connected to the fixed block, the slide plate can slide along the second straight line direction, one end of the connecting rod is connected to the slide plate, and the other end of the connecting rod is connected to the diverter plate.

[0013] Preferably, the slide plate is U-shaped, and a guide rod is provided on the inner side of the slide plate, the guide rod extends along the second straight line direction, the two ends of the guide rod are respectively connected to the inner wall of the slide plate, the guide rod is passed through the fixed block and is slidably connected to the fixed block, and the fixed block can slide along the axial direction of the guide rod, thereby driving the diverter plate to move along the second straight line direction.

[0014] Preferably, the connecting rod is rotatably connected to the slide plate, and the connecting rod can rotate around its own axis.

[0015] Preferably, a guide groove is provided on the fixed plate, and the guide groove extends along the first straight line direction. The connecting mechanism also includes an adapter plate, and the adapter plate extends in an L-shape. The adapter plate includes an integrally formed horizontal plate and a vertical plate, and the two are vertically arranged. The vertical plate is connected to the telescopic end of the two-stroke cylinder and is slidably connected to the guide groove, and the horizontal plate is bolted to the bearing plate.

[0016] Preferably, the support assembly also includes a fixing rod, which is arranged at a position close to the output end of the input channel, and one fixing rod is provided for each diverter plate. The fixing rod is hinged to one end of the diverter plate close to the input end of the diverter channel, and the diverter plate can rotate around the fixing rod.

[0017] Preferably, a plurality of guide balls are respectively arranged on one opposite side of the two diverter plates, and the plurality of guide balls are arranged along the extension direction of the diverter plates.

[0018] On the other hand, the utility model also provides a production line, including a processing line and the above-mentioned bottle separation device, wherein the processing line is used to process the material to be processed into the bottles, the delivery end of the processing line is connected to the input end of the input channel, and the processed bottles can be transported from the delivery end to the input channel.

[0019] Beneficial effects of the utility model:

[0020] The bottle separation device proposed by the utility model, when in use, the processed bottles are conveyed from the delivery end of the processing line to the input channel, and the bottles are conveyed to the diversion channel through the output end of the input channel. At this time, due to the existence of the moving part, the diversion plate is driven by the moving part to move, so that the output end of the diversion channel is sequentially connected to the input ends of different output channels, so that the bottles in the diversion channel are conveyed to different output channels in sequence with the change of the output end, and finally flow out from the output end of the output channel to carry out subsequent processing, thereby realizing the bottle separation process. The cooperation of the moving part and the diversion plate ensures that each bottle can pass through the diversion channel from the input channel and finally enter different output channels in a predetermined order. Compared with the traditional diversion device, this method is more accurate in operation and can ensure the stability and efficiency of the production process. In addition, by effectively controlling the diversion of the bottles, the bottle separation device realizes fast and accurate conveying and distribution, improves the overall efficiency of the production line, and the bottles do not need additional stops or adjustments during the diversion process. The whole process is coherent and efficient, which helps to reduce the production cycle and increase the output. The layout of the support assembly and the bottle distributing assembly makes the overall structure simpler and more compact. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1Schematic structure of the bottle-splitting device provided in the first embodiment of the present utility model Figure 1 ;

[0022] Figure 2 Schematic structure of the bottle-splitting device provided in the first embodiment of the present utility model Figure 2 ;

[0023] Figure 3 Schematic structure of the bottle-splitting assembly provided in the first embodiment of the present utility model Figure 1 ;

[0024] Figure 4 Schematic structure of the bottle-splitting assembly provided in the first embodiment of the present utility model Figure 2 ;

[0025] Figure 5 Top view of the bottle-splitting device provided in the first embodiment of the present utility model;

[0026] Figure 6 Schematic structural diagram of the connecting member provided in the first embodiment of the present utility model.

[0027] In the figure:

[0028] 100, bottle; 101, input channel; 102, output channel;

[0029] 10, support assembly; 11, fixing plate; 111, guiding groove;

[0030] 20, bottle-splitting assembly; 201, shunt channel; 21, double-stroke cylinder; 22, connecting mechanism; 221, bearing plate; 222, connecting member; 2221, fixing block; 2222, sliding plate; 2223, connecting rod; 2224, guiding rod; 2225, transition block; 2226, fixing clip; 223, adapter plate; 224, guiding track; 225, guiding slider; 23, shunt plate; 24, fixing rod; 25, guiding ball. Detailed implementation manners

[0031] The embodiments of the present utility model will be described in detail below. The examples of the embodiments are shown in the accompanying drawings, where the same or similar reference numerals denote the same or similar elements or elements with the same or similar functions from start to finish. The embodiments described below by referring to the accompanying drawings are exemplary and are intended to explain the present utility model, but should not be construed as limiting the present utility model.

[0032] In the description of the present utility model, unless otherwise clearly specified and defined, the terms "connected", "connected to", and "fixed" shall be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or an integral body; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the communication inside two components or the interaction relationship between two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific circumstances.

[0033] In the present utility model, unless otherwise clearly specified and defined, the first feature being "above" or "below" the second feature may include the direct contact between the first and second features, or may include the situation where the first and second features are not in direct contact but in contact through other features therebetween. Moreover, the first feature being "above", "above and over", and "on the top of" the second feature includes the first feature being directly above and obliquely above the second feature, or merely indicating that the horizontal height of the first feature is higher than that of the second feature. The first feature being "below", "below and under", and "under the bottom of" the second feature includes the first feature being directly below and obliquely below the second feature, or merely indicating that the horizontal height of the first feature is lower than that of the second feature.

[0034] The technical solution of the present utility model will be further described below in conjunction with the accompanying drawings and through specific implementation manners.

[0035] Embodiment 1

[0036] The embodiment of the present utility model provides a bottle splitting device, which can realize the conversion of the conveying process of the production line from a single conveying channel to multiple conveying channels, thereby improving the output efficiency.

[0037] See Figures 1 to 6 , the bottle splitting device provided by the embodiment of the present utility model includes a support assembly 10 and a bottle splitting assembly 20. Among them, an input channel 101 is provided on the support assembly 10; the bottle splitting assembly 20 is connected to the support assembly 10. The bottle splitting assembly 20 includes a moving part, two flow splitting plates 23, and at least two output channels 102. The input ends of the multiple output channels 102 are arranged along a first straight line direction. The moving part is connected to the flow splitting plates 23. The two flow splitting plates 23 are arranged opposite to each other and at intervals, and a flow splitting channel 201 is formed therebetween. The input end of the flow splitting channel 201 is always communicated with the output end of the input channel 101. The moving part can drive the flow splitting plates 23 to move, so that the output end of the flow splitting channel 201 selectively communicates with the input ends of different output channels 102. The bottle 100 can sequentially pass through the input channel 101, the flow splitting channel 201, and the output channel 102, and flow out from the output end of the output channel 102.

[0038] The bottle-splitting device proposed in this embodiment, when in use, the processed bottles 100 are conveyed from the shipping end of the processing line into the input channel 101. The bottles 100 pass through the output end of the input channel 101 and are conveyed into the diversion channel 201. At this time, due to the presence of the moving part, the diversion plate 23 is driven by the moving part to move, so that the output end of the diversion channel 201 is sequentially connected to the input ends of different output channels 102. As a result, the bottles 100 in the diversion channel 201 are sequentially conveyed into different output channels 102 as the output end changes, and finally flow out from the output end of the output channel 102 to carry out subsequent processing procedures, thereby realizing the process of diverting the bottles 100. The cooperation of the moving part and the diversion plate 23 ensures that each bottle 100 can pass through the diversion channel 201 from the input channel 101 in a predetermined order and finally enter different output channels 102. Compared with traditional diversion devices, this method is more precise in operation and can ensure the stability and efficiency of the production process. Moreover, by effectively controlling the diversion of the bottles 100, this bottle-splitting device realizes fast and precise conveying and distribution, improves the overall efficiency of the production line. The bottles 100 do not require additional stops or adjustments during the diversion process, and the whole process is coherent and efficient, which helps to reduce the production cycle and increase the output. The layout of the support assembly 10 and the bottle-splitting assembly 20 makes the overall structure simpler and more compact.

[0039] In this embodiment, two input channels 101 are provided. For each conveying channel, three output channels 102 are provided. A bottle-splitting assembly 20 is provided between each input channel 101 and the corresponding output channel 102. The input end of the diversion channel 201 is connected to one input channel 101, and the output end of the diversion channel 201 can selectively communicate with the corresponding three output channels 102. However, in other embodiments, one, three, four or more input channels 101 can also be provided. It is only necessary to provide a bottle-splitting assembly 20 for each input channel 101, and no limitation is made here. In addition, for the number of output channels 102 corresponding to each input channel 101, no limitation is made here either. Each input channel 101 can be correspondingly provided with two, three, four or more output channels 102, and can be adjusted according to the actual on-site requirements, and no limitation is made here.

[0040] It should be noted that in this embodiment, the input channel 101, the diversion channel 201 and the output channel 102 are used to convey the bottles 100. However, in other embodiments, they can also be used to transport other products such as molds and cups. No excessive limitation is made on the use of the bottle-splitting device here.

[0041] See Figure 3 and Figure 4The bottle separation device provided by the utility model realizes the separation effect of the bottle 100 by driving the diverter plate 23 to move through the moving part to change the output position of the output end of the diverter channel 201, thereby realizing the separation effect. Therefore, regarding the specific structure of the moving part. The moving part includes a driving member and a connecting mechanism 22, and the support assembly 10 includes a fixed plate 11. The driving member is arranged on the fixed plate 11, and the driving member is transmission-connected to the connecting mechanism 22. The connecting mechanism 22 is connected to one side of the two diverter plates 23 close to the output end of the diverter channel 201. The driving member can drive the connecting mechanism 22 to move along the first straight line direction, thereby driving the output end of the diverter channel 201 to move along the first straight line direction, so that the driving member can move along the first straight line direction, thereby accurately controlling the position of the output end of the diverter channel 201, ensuring that the bottle 100 can accurately enter the required output channel 102, and improving the accuracy and reliability of the overall operation. By driving the movement of the connecting mechanism 22 through the moving part, the output end of the diversion channel 201 can smoothly switch between different output channels 102. This continuous and seamless movement process ensures the continuous flow of the bottle 100 from the input channel 101 to the output channel 102, avoiding pauses or adjustments caused by imprecise operation in traditional devices, thereby improving the operating efficiency and stability of the production line.

[0042] It is worth noting that the connecting mechanism 22 is connected to one side of the two diverter plates 23 close to the output end of the diverter channel 201, so as to ensure that when the driving member drives the connecting mechanism 22 to move, only the output end of the diverter channel 201 is driven to move, and the input end of the diverter channel 201 is not driven to move, so as to ensure that the input end of the diverter channel 201 is always connected to the output end of the input channel 101, and prevent the movement of the input end of the diverter channel 201 from affecting the movement path of the bottle 100 from the input channel 101, thereby causing blockage or failure of the bottle separation process.

[0043] Therefore, in order to further prevent the driving member from driving the output end of the flow dividing channel 201 to move, and at the same time drive the input end of the flow dividing channel 201 to move as well, the supporting assembly 10 further includes a fixing rod 24. The fixing rod 24 is disposed at a position close to the output end of the input channel 101. A fixing rod 24 is provided corresponding to each flow dividing plate 23. The fixing rod 24 is hinged to one end of the flow dividing plate 23 close to the input end of the flow dividing channel 201, and the flow dividing plate 23 can rotate around the fixing rod 24. The setting position of the fixing rod 24 is close to the output end of the input channel 101, and each flow dividing plate 23 is hinged to the corresponding fixing rod 24, thereby ensuring that the flow dividing plate 23 can freely rotate around the fixing rod 24, and at the same time keeping the input end of the flow dividing channel 201 always communicating with the output end of the input channel 101. Thus, when the driving member drives the output end of the flow dividing channel 201 to move, it effectively prevents the input end of the flow dividing channel 201 from being accidentally driven, thereby ensuring that the bottle 100 can smoothly pass through the flow dividing channel 201 and enter different output channels 102, avoiding the interruption of the transportation path or the risk of blockage of the bottle 100. The design of hinging the flow dividing plate 23 to the fixing plate 11 enables the flow dividing plate 23 to perform a controllable rotational movement under the action of the driving member. In other embodiments, the flow dividing plate 23 and the fixing plate 11 can be arranged to be connected by a bearing, or can be elastically connected by a rubber plate or the like, as long as it is ensured that when the driving member drives the output end of the flow dividing channel 201 to move, the input end of the flow dividing channel 201 can always communicate with the input channel 101. The connection manner between the flow dividing plate 23 and the fixing plate 11 will not be elaborated herein.

[0044] Specifically, the driving member is a double-stroke cylinder 21. The telescopic end of the double-stroke cylinder 21 is connected to the connecting mechanism 22. A guiding track 224 is provided at the bottom of the fixing plate 11. The guiding track 224 extends along a first straight line, and the connecting mechanism 22 is slidably connected to the guiding track 224. The double-stroke cylinder 21 has a telescopic end, and the telescopic end can perform a telescopic movement along the first straight line direction of the guiding track 224 under the action of the double-stroke cylinder 21. This design provides a stable and efficient driving force, ensuring that the output end of the flow dividing channel 201 can accurately move along a predetermined path, thereby realizing the accurate diversion and conveying of the bottle 100. The design of the guiding track 224 on the fixing plate 11 ensures the stability and accuracy of the connecting mechanism 22 during the movement process, enabling the connecting mechanism 22 to slide along the path of the guiding track 224, effectively controlling the movement path of the flow dividing plate 23, and avoiding errors or pauses during the diversion process of the bottle 100 caused by unstable movement. It can be understood that the double-stroke cylinder 21 is a commonly used existing mechanical device in the art, and its working principle and specific structure will not be elaborated herein.

[0045] In this embodiment, since there are two input channels 101 provided, and three output channels 102 are provided corresponding to each conveying channel, two bottle splitting assemblies 20 need to be provided to correspond to the two input channels 101. Therefore, in order to improve the space utilization rate, the two connecting mechanisms 22 share the same guiding track 224 of a fixed plate 11, and the two connecting mechanisms 22 are arranged at intervals along the extending direction of the guiding track 224.

[0046] Specifically, in order to improve the load-bearing capacity and stability of the guiding track 224, two guiding tracks 224 are provided, and the two guiding tracks 224 are arranged at intervals perpendicular to the first straight line direction, and each connecting mechanism 22 is slidably connected to the two guiding tracks 224 together.

[0047] More specifically, the connecting mechanism 22 includes a bearing plate 221 and two connecting pieces 222. The telescopic end of the double-stroke cylinder 21 is connected to the bearing plate 221, and the bearing plate 221 is slidably connected to the guiding track 224. The two connecting pieces 222 are respectively arranged on both sides of the bearing plate 221, and one connecting piece 222 is provided corresponding to each flow splitting plate 23. The design of the bearing plate 221 enables the connecting piece 222 to slide stably on the guiding track 224. At the same time, the structural design of the connecting piece 222 and the flow splitting plate 23 ensures the controllability and stability of the flow splitting plate 23 during the movement process. In this embodiment, two groups of connecting mechanisms 22 are provided in total. Four guiding sliders 225 are respectively arranged at the four corners of the bearing plate 221 of each group of connecting mechanisms 22, and the four guiding sliders 225 are respectively slidably connected to the corresponding two guiding tracks 224. During use, by the telescopic end of the double-stroke cylinder 21 telescoping along the first straight line direction, the bearing plate 221 connected thereto can be driven to move along the guiding track 224, driving the connecting piece 222 connected to the bearing plate 221 to move, thereby driving the flow splitting plate 23 to move, and finally realizing the movement process of the output end of the flow splitting channel 201 along the first straight line direction.

[0048] During the long-term processing, affected by the impact of the bottle body, the flow splitting plate 23 is inevitably offset in the front and rear positions, and the position of the flow splitting plate 23 needs to be finely adjusted in time. Therefore, the connecting piece 222 includes a fixing block 2221, a sliding plate 2222 and a connecting rod 2223. The fixing block 2221 is fixedly connected to the bearing plate 221, the sliding plate 2222 is slidably connected to the fixing block 2221, the sliding plate 2222 can slide along the second straight line direction, and one end of the connecting rod 2223 is connected to the sliding plate 2222, and the other end of the connecting rod 2223 is connected to the flow splitting plate 23. Through the cooperation of the fixing block 2221, the sliding plate 2222 and the connecting rod 2223, the position of the flow splitting plate 23 in the second straight line direction can be accurately adjusted and controlled, and the conveying path of the flow splitting channel 201 can be adjusted and optimized according to production needs, improving the adaptability of the bottle splitting assembly 20.

[0049] Specifically, to facilitate the connection between the connecting rod 2223 and the slide plate 2222, a transition block 2225 is provided between the connecting rod 2223 and the slide plate 2222. One end of the connecting rod 2223 is threadedly connected to the transition block 2225. A threaded hole is formed in the transition block 2225, and the transition block 2225 is bolted to the slide plate 2222. Thus, through the bolt connection, it not only has better stability and load-bearing capacity but also is convenient for disassembly and assembly, improving the efficiency of disassembly, assembly, and transportation.

[0050] Specifically, referring to Figure 6 , in this embodiment, the slide plate 2222 is U-shaped. A guide rod 2224 is provided inside the slide plate 2222. The guide rod 2224 extends along the second straight line direction. Both ends of the guide rod 2224 are connected to the inner wall of the slide plate 2222. The guide rod 2224 passes through the fixed block 2221 and is slidably connected to the fixed block 2221. The fixed block 2221 can slide along the axial direction of the guide rod 2224, thereby driving the diverter plate 23 to move along the second straight line direction. Among them, the U-shaped setting of the slide plate 2222 can better arrange the guide rod 2224, with a higher space utilization rate. In this embodiment, two guide rods 2224 are provided, and the two guide rods 2224 are arranged at intervals along the first straight line direction. A fixed block 2221 is provided corresponding to each guide rod 2224, thereby improving the load-bearing capacity of the slide plate 2222. The fixed block 2221 can move freely along the guide rod 2224. When the double-stroke cylinder 21 drives the diverter plate 23 to swing, the connecting rod 2223 swings in an arc. Therefore, when the diverter plate 23 swings at an angle, it will naturally cause the fixed block 2221 to move along the guide rod 2224 to ensure that the distances of the connecting rod 2223 in the second straight-line movement direction are different.

[0051] To facilitate the connection between the connecting rod 2223 and the diverter plate 23, the connector 222 further includes a fixing clip 2226. The fixing clip 2226 can be detachably connected to the connecting rod 2223, and the fixing clip 2226 can be bolted to the diverter plate. In this embodiment, two fixing clips 2226 are provided, and the two fixing clips 2226 are arranged at intervals along the axial direction of the connecting rod 2223. The two fixing clips 2226 jointly connect a diverter plate, thereby improving the stability and safety of the connection of the diverter plate and reducing the risk of accidental detachment. Since the fixing clip 2226 and the connecting rod 2223 are detachably connected, the positions between the two fixing clips 2226 can be adaptively adjusted according to the size of the diverter plate, so as to reach the nearest fixing position, with higher adaptability.

[0052] During the long processing, the diverter plate 23 is hit by the bottle body, and the front and rear positions of the diverter plate 23 are offset, which affects the process of the diverter channel 201. In addition to the need to fine-tune the front and rear positions of the diverter plate 23 in time, the angle of the diverter plate 23 may also be deflected due to the impact of the bottle body, thereby causing the path of the diverter channel 201 to be distorted, affecting the conveying process of the bottle 100. Therefore, it is also necessary to adjust the angle of the diverter plate 23 in time to correct the path of the diverter channel 201.

[0053] Specifically, the connecting rod 2223 is rotatably connected to the slide plate 2222, and the connecting rod 2223 can rotate around its own axis, so that when the diverter plate 23 is hit by the bottle body and causes position displacement or angle deflection, the impact of the diverter plate 23 drives the connecting rod 2223 to rotate freely around the axis, thereby automatically and timely correcting the position and angle of the diverter plate 23 to ensure that the path of the diverter channel 201 is normally connected, ensuring the smooth transportation process of the bottle 100.

[0054] In order to facilitate the connection between the telescopic end of the two-stroke cylinder 21 and the bearing plate 221, a guide groove 111 is provided on the fixed plate 11, and the guide groove 111 extends along the first straight line direction. The connecting mechanism 22 also includes an adapter plate 223, which extends in an L shape. The adapter plate 223 includes an integrally formed horizontal plate and a vertical plate, which are vertically arranged. The vertical plate is connected to the telescopic end of the two-stroke cylinder 21 and is slidably connected to the guide groove 111, and the horizontal plate is bolted to the bearing plate 221. The vertical plate is connected to the telescopic end of the two-stroke cylinder 21 and is slidably connected to the guide groove 111, so that the adapter plate 223 can firmly support and guide the movement of the two-stroke cylinder 21, while maintaining the precise position of the telescopic end of the two-stroke cylinder 21 in the guide groove 111. The horizontal plate is bolted to the bearing plate 221. This structural design is simple and compact, and can effectively transmit the power of the two-stroke cylinder 21 to the bearing plate 221. At the same time, the bolt connection ensures the firmness and reliability of the connection, and it is not easy to loosen or fail during long-term operation. In addition, the arrangement of the guide groove 111 and the coordinated cooperation with the guide rail 224 ensure the stability and accuracy of the connecting mechanism 22 during the movement.

[0055] In order to protect the bottle body during the transportation of the bottle 100 and prevent the bottle 100 from colliding with the inner wall of the diversion channel 201, which may cause damage to the bottle body, a plurality of guiding balls 25 are provided on each of the opposite surfaces of the two diversion plates 23, and the plurality of guiding balls 25 are arranged along the extending direction of the diversion plate 23. The arrangement of the guiding balls 25 along the extending direction of the diversion plate 23 effectively reduces the direct contact between the bottle 100 and the inner wall of the diversion channel 201. When the bottle 100 passes through the diversion process, the guiding balls 25 provide a smooth surface, reducing the friction and collision between the bottle body and the channel wall, thereby effectively preventing damage to the bottle body and surface scratches. The loss rate of the bottle 100 during the production process is reduced, and the overall quality and production efficiency of the product are improved. Specifically, multiple groups of guiding balls 25 are provided, each group having a plurality of guiding balls 25 arranged along the extending direction of the diversion plate 23, and the multiple groups of guiding balls 25 are arranged at intervals along the height direction of the diversion plate 23. The specific number of the guiding balls 25 will not be elaborated here.

[0056] Furthermore, a rubber layer is provided on the outer surface of each guiding ball 25. The rubber material has high elasticity, which can reduce the rigid contact between the bottle 100 and the guiding ball 25, thereby further improving the protection effect on the bottle body.

[0057] Regarding the support assembly 10, in this embodiment, the support assembly 10 includes a plurality of support crossbars and a plurality of support longitudinal bars, which are connected to each other to form a rectangular accommodating space. The bottle separating assembly 20 is arranged in the accommodating space, and the fixing plate 11 is arranged at the top of the accommodating space. This arrangement can not only prevent mutual interference between devices and affect the processing process, but also improve the space utilization rate, reduce the floor area, and save costs. In other embodiments, the support assembly 10 can also be set to an irregular shape by columns, rods, etc. The specific structure and shape of the support assembly 10 will not be limited here.

[0058] Embodiment Two

[0059] An embodiment of the present utility model further provides a production line, which includes the bottle sorting device described above on the processing line. The processing line is used to process the material to be processed into bottles 100. The output end of the processing line is connected to the input end of the input channel 101. The processed bottles 100 can be conveyed from the output end to the inside of the input channel 101. The processing line and the bottle sorting device in the production line achieve seamless connection. The processed bottles 100 can be directly conveyed from the output end of the processing line to the input channel 101 of the bottle sorting device. This direct connection simplifies the production process, reduces intermediate links and possible bottlenecks, and improves production efficiency and the overall processing speed. By closely integrating the processing line and the bottle sorting device, the automation level of the production line is improved. The processed bottles 100 can be quickly and continuously conveyed to the bottle sorting device for splitting processing, reducing manual intervention and processing time, and effectively improving production efficiency and output. Since the processed bottles 100 directly enter the bottle sorting device for processing, the production line can ensure the stability and consistency of the products during the conveying and splitting processes. This uninterrupted production process helps to reduce errors and quality fluctuations caused by human operations, and improves the overall quality and standardization level of the products. In addition, production site and equipment resources are saved. This compact layout not only improves the overall efficiency of the production line, but also reduces production costs and energy consumption.

[0060] The above embodiments only illustrate the basic principles and characteristics of the present utility model. The present utility model is not limited by the above embodiments. Without departing from the spirit and scope of the present utility model, there are various changes and modifications to the present utility model, and these changes and modifications all fall within the scope of the present utility model claimed. The scope of protection claimed by the present utility model is defined by the appended claims and their equivalents.

Claims

1. A bottle-splitting device, characterized in that, include: A support assembly (10), wherein the support assembly (10) is provided with an input channel (101); A bottle dividing assembly (20), the bottle dividing assembly (20) being connected to the supporting assembly (10), the bottle dividing assembly (20) comprising a moving part, two diverter plates (23) and at least two output channels (102), the input ends of the plurality of output channels (102) being arranged along a first straight line direction, the moving part being connected to the diverter plates (23), the two diverter plates (23) being arranged opposite to each other and spaced apart, forming a diverter channel (201) therebetween, the input end of the diverter channel (201) always being connected to the output end of the input channel (101), the moving part being able to drive the diverter plates (23) to move, so that the output end of the diverter channel (201) is selectively connected to the input ends of different output channels (102), and the bottle (100) is able to sequentially pass through the input channel (101), the diverter channel (201) and the output channel (102), and flow out from the output end of the output channel (102).

2. The bottle splitting device according to claim 1, wherein, The moving part comprises a driving member and a connecting mechanism (22); the supporting assembly (10) comprises a fixing plate (11); the driving member is arranged on the fixing plate (11); the driving member is transmission-connected to the connecting mechanism (22); the connecting mechanism (22) is connected to one side of the two diverter plates (23) close to the output end of the diverter channel (201); the driving member can drive the connecting mechanism (22) to move along a first straight line direction, thereby driving the output end of the diverter channel (201) to move along the first straight line direction.

3. The bottle splitting device according to claim 2, wherein, The driving member is a double-stroke cylinder (21), the telescopic end of the double-stroke cylinder (21) is connected to the connecting mechanism (22), a guide rail (224) is provided at the bottom of the fixed plate (11), the guide rail (224) extends along a first straight line, and the connecting mechanism (22) is slidably connected to the guide rail (224).

4. The bottle-dividing device according to claim 3, wherein, The connecting mechanism (22) comprises a bearing plate (221) and two connecting members (222); the telescopic end of the double-stroke cylinder (21) is connected to the bearing plate (221); the bearing plate (221) is slidably connected to the guide rail (224); the two connecting members (222) are respectively arranged on both sides of the bearing plate (221); one connecting member (222) is arranged corresponding to each diverter plate (23); the connecting member (222) comprises a fixed block (2221), a slide plate (2222) and a connecting rod (2223); the fixed block (2221) is fixedly connected to the bearing plate (221); the slide plate (2222) is slidably connected to the fixed block (2221); the slide plate (2222) can slide along the second straight line direction; one end of the connecting rod (2223) is connected to the slide plate (2222); and the other end of the connecting rod (2223) is connected to the diverter plate (23).

5. The bottle-dividing device according to claim 4, characterized in that The skateboard (2222) is U-shaped. A guide rod (2224) is arranged inside the skateboard (2222). The guide rod (2224) extends along the second straight line direction. Two ends of the guide rod (2224) are respectively connected to the inner wall of the skateboard (2222). The guide rod (2224) passes through the fixed block (2221) and is slidably connected to the fixed block (2221). The fixed block (2221) can slide axially along the guide rod (2224), thereby driving the diverter plate (23) to move along the second straight line direction.

6. The bottle separating device according to claim 4, characterized in that, The connecting rod (2223) is rotatably connected to the skateboard (2222). The connecting rod (2223) can rotate about its own axis.

7. The bottle splitting device according to claim 4, wherein A guide groove (111) is formed in the fixed plate (11). The guide groove (111) extends along the first straight line direction. The connecting mechanism (22) further includes a transfer plate (223). The transfer plate (223) extends in an L shape. The transfer plate (223) includes a horizontally arranged plate and a vertically arranged plate which are integrally formed and are perpendicular to each other. The vertical plate is connected to the telescopic end of the double-acting cylinder (21) and is slidably connected to the guide groove (111). The horizontal plate is bolted to the carrier plate (221).

8. The bottle-dividing device according to any one of claims 1-7, characterized in that, The support assembly (10) further includes a fixed rod (24). The fixed rod (24) is arranged at a position close to the output end of the input channel (101). One fixed rod (24) is provided corresponding to each diverter plate (23). The fixed rod (24) is hinged to one end of the diverter plate (23) close to the input end of the diversion channel (201). The diverter plate (23) can rotate about the fixed rod (24).

9. The bottle splitting device according to claim 1, characterized in that, A plurality of guide balls (25) are respectively arranged on opposite surfaces of the two diverter plates (23). The plurality of guide balls (25) are arranged along the extending direction of the diverter plate (23).

10. A production line, characterized in that, It includes a processing line and the bottle separating device according to any one of claims 1-9. The processing line is used to process the material to be processed into the bottle (100). The output end of the processing line is communicated with the input end of the input channel (101). The processed bottle (100) can be conveyed from the output end into the input channel (101).