Beverage bottle conveying device with guiding function
By introducing a guiding mechanism and linkage components into the beverage bottle conveying device, the width of the conveying channel can be flexibly adjusted and irregularly shaped bottles can be pushed flexibly, solving the problems of adapting to different sized bottles and causing accumulation and blockage, thus improving the stability and efficiency of the conveying process.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2026-02-06
- Publication Date
- 2026-03-13
AI Technical Summary
Existing beverage bottle guiding and conveying devices cannot adapt to beverage bottles of different sizes and specifications, resulting in rotational deviations during the conveying of irregularly shaped bottles, which can easily cause bottle accumulation and blockage, affecting conveying efficiency.
The guide mechanism at the top end of the transmission belt, combined with the linkage of the lead screw, moving block, linkage arm and drive motor, enables flexible adjustment of the width of the conveying channel. The combination of push box, push plate and actuating plate enables flexible pushing and actuation of irregularly shaped bottles to prevent accumulation.
The device has improved its versatility and conveying stability, optimized the conveying and alignment of irregularly shaped bottles, prevented bottle accumulation and blockage, and improved transportation efficiency and the pass rate of subsequent processing.
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Figure CN121651091A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of conveying equipment technology, specifically to a beverage bottle conveying device with guiding function. Background Technology
[0002] Beverage bottle conveying devices with guiding functions are core material conveying equipment in beverage production and processing lines. They mainly rely on transmission belts to achieve basic conveying of beverage bottles, and with the help of various guiding structures, they limit and divert the conveying path of beverage bottles, so that the bottles move along a preset trajectory, providing a pre-positioning guarantee for subsequent filling, labeling and other processing operations. They are widely used in the automated conveying process of beverage production.
[0003] Existing beverage bottle guiding and conveying devices have many defects. Their conveying channel width is mostly fixed and cannot be adapted to beverage bottles of different sizes and specifications. Irregularly shaped bottles are prone to rotational deviation during transportation, which is not conducive to subsequent labeling and filling processes. In addition, bottles are prone to accumulation and blockage at the conveying inlet, which requires manual handling, which is cumbersome and can easily affect the conveying efficiency of beverage bottles. Summary of the Invention
[0004] The purpose of this invention is to provide a beverage bottle conveying device with a guiding function to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, the present invention adopts the following technical solution: a beverage bottle conveying device with guiding function, comprising a transmission belt, wherein a set of guiding mechanisms is provided at the top end of the transmission belt; The guiding mechanism includes side walls, a horizontal plate, an adjustment mechanism, and a partition. The top surface of the transmission belt is provided with a set of side walls at both the left and right ends. The top ends of the two sets of side walls are respectively connected to the left and right ends of the bottom surface of the horizontal plate. A partition is provided at the middle of the bottom surface of the horizontal plate. An adjustment mechanism is provided at both the left and right ends of the partition. The horizontal plate has a set of working chambers at its middle end. A set of lead screws is connected to the middle end of the working chambers. A drive motor corresponding to the lead screws is provided at the middle rear end of the horizontal plate. A set of moving blocks is connected to the outside of the lead screws. A set of moving blocks is provided at both the front left and right ends of the working chambers. The left and right ends of the moving blocks are connected to the two sets of moving blocks via linkage arms. The bottom surface of the working chambers is provided with through slots corresponding to the moving blocks.
[0006] By adopting the above technical solution, the basic conveying of beverage bottles is achieved by relying on the transmission belt. At the same time, a guide mechanism is set at the top end of the transmission belt to facilitate the guidance of the beverage bottles. Within the working chamber, the linkage between the lead screw, moving block one, moving block two, and the linkage arm can convert the rotational power of the drive motor one into the synchronous linear motion of the two sets of moving blocks two. This enables the position adjustment of the two sets of adjustment mechanisms. The through groove provides guidance for the movement of the adjustment mechanism and moving block two. The overall structure is compact and provides a solid foundation for subsequent guidance and interval adjustment. It can realize the linkage and synchronous adjustment of the adjustment mechanism and effectively improve the stability of the beverage bottle conveying process.
[0007] Preferably, the components of both sets of adjustment mechanisms are the same. The adjustment mechanism at the left end includes a connecting block, a connecting arm and a guide plate. The top surface of the connecting block is provided with no less than two sets of connecting arms. The top of the connecting arm extends through a through groove into the working cavity and connects to the bottom surface of the left moving block. A set of guide plates is provided on the right side of the connecting block.
[0008] By adopting the above technical solution, when the second movable block moves, the connecting arm can drive the connecting block and the guide plate to be in the same position synchronously, realizing the synchronous position adjustment of the two sets of guide plates, which facilitates the adjustment of the width of the conveying channel and adapts to beverage bottles of different sizes. The connection between the adjustment mechanism and the second movable block is simple and stable, and the adjustment is smooth, which can meet the conveying and guiding needs of beverage bottles of different widths and improves the versatility of the device.
[0009] Preferably, the inner end of the connecting block is provided with a set of working chambers II, the left end of the top surface of the working chambers II is provided with a set of turntables, the top center of the turntables is provided with a set of drive motors II, the outer end of the bottom surface of the turntables is provided with a set of rotating shafts, and the bottom end of the rotating shafts is connected to the push box.
[0010] By adopting the above technical solution, the second drive motor can provide continuous rotational power to the turntable, and the rotating shaft drives the push box to move back and forth, which is beneficial for pushing and limiting the beverage bottles in the conveying channel, and facilitates the subsequent processing of the beverage bottles.
[0011] Preferably, the top left end of the push box is provided with a guide groove corresponding to the rotating shaft, the left side of the push box is provided with no less than two sets of springs, the other end of the springs is connected to a push plate, and the right side of the push plate is provided with no less than two sets of push plates at equal intervals.
[0012] By adopting the above technical solution, the guide channel can realize the connection and drive between the rotating shaft and the push box. After the push box moves, multiple sets of push plates can be pushed outward by the push plate. When the push plate is obstructed, it can squeeze the spring to keep it still, so as to avoid damage to the beverage bottle and form a flexible pushing force that adapts to beverage bottles of different sizes and appearances.
[0013] Preferably, at least two sets of recycling troughs are provided on the right side of the guide plate, and each recycling trough is provided with a set of push plates. The other end of each push plate passes through the recycling trough and is connected to the push plate.
[0014] By adopting the above technical solution, the second pusher plate can drive the third pusher plate to move into the conveying channel, pushing and squeezing the beverage bottles in the conveying channel. It can squeeze irregularly shaped bottles, such as square ones, to make them rotate and move neatly in the conveying channel, so as to facilitate the subsequent processing of the beverage bottles.
[0015] Preferably, a set of recycling troughs is provided at the front end of both the left and right sides of the partition, and a set of rotating shafts is connected to the rear end of each recycling trough. A toggle plate is provided on the outside of the rotating shafts, and a linkage cavity corresponding to the rotating shafts is provided at the top of the partition.
[0016] By adopting the above technical solution, the rotation of the rotating shaft can drive the actuating plate to rotate at an angle within the second recycling tank, thereby actuating the beverage bottles on both sides of the partition to prevent the beverage bottles from accumulating at the entrance of the conveying channel, causing blockage and affecting the transportation effect of the beverage bottles. The linkage cavity provides installation and driving space for the synchronous movement of the two sets of rotating shafts.
[0017] Preferably, the top ends of the two sets of rotating shafts extend into the linkage cavity and are connected to a set of gears, a rack is provided between the two sets of gears, and a drive motor is provided at the rear end of the rack.
[0018] By adopting the above technical solution, the drive motor can drive the rack to move back and forth. With the help of the meshing linkage between the rack and two sets of gears, the linear motion of the rack can be converted into the synchronous rotation of two sets of rotating shafts, which can then drive the two sets of actuating plates to rotate synchronously. The synchronous drive of the actuating plates on both sides can be achieved with a single drive source, which not only reduces the manufacturing and maintenance costs of the equipment, but also improves the overall coordination of the device.
[0019] Preferably, the rack has a set of linkage grooves at its inner rear end, and a set of fixed shafts is provided at the middle of both the left and right sides of the linkage grooves.
[0020] Preferably, the front end of the drive shaft of the drive motor three is connected to a set of rotating columns, the rotating columns extend into the linkage groove, and the outer side of the rotating columns is provided with a guide groove two corresponding to the fixed shaft.
[0021] By adopting the above technical solution, the drive motor three can drive the rotating column to rotate, and by utilizing the sliding cooperation between the guide groove two and the fixed shaft, the rotational motion of the rotating column is converted into the reciprocating linear motion of the rack, thereby driving the gear and the rotating shaft to reciprocate, realizing the reciprocating guiding of the toggle plate. The structure design is simple, the transmission efficiency is high, the smoothness of motion conversion is guaranteed, there is no hard collision, the wear of components is reduced, the service life of the equipment is extended, and the reciprocating toggle of the toggle plate is realized, which improves the flexibility of guiding the middle of the beverage bottle.
[0022] Preferably, the partition has at least two sets of flanges on both the left and right sides.
[0023] By adopting the above technical solution, the outer side of the flange can contact the beverage bottle, effectively reducing the contact area between the partition and the beverage bottle, reducing the friction when the beverage bottle moves, and improving transportation efficiency.
[0024] Compared with the prior art, the beneficial effects of the present invention are: 1. This invention utilizes a working chamber 1 located within a horizontal plate. The working chamber 1 contains components such as a lead screw, a drive motor, a moving block 1, a linkage arm, and two moving blocks 2. These components work together to allow the lead screw to drive the moving blocks 1 to move back and forth, while the linkage arm drives the two sets of moving blocks 2 on the left and right sides to move horizontally. This linkage mechanism enables flexible adjustment of the conveying channel width. Compared to existing conveying devices that are only available in a single size, this structure can accommodate beverage bottles of different diameters or specifications without requiring replacement of equipment components, significantly improving the device's versatility, reducing production adaptation costs, and ensuring consistent guide center alignment, thus enhancing conveying stability. 2. This invention, through components such as the working chamber two, turntable, drive motor two, rotating shaft and push box set in the connecting block, and in conjunction with the spring, push plate one and push plate two in the push box, can realize the flexible pushing of push plate three on the guide plate, thereby aligning irregularly shaped bottles in the conveying channel, optimizing the problem of unevenness of square and other non-circular bottles during the conveying process, providing accurate positioning for subsequent labeling, filling and other processes, and improving the subsequent processing qualification rate; 3. This invention utilizes a linkage cavity located at the top of the partition, which contains components such as gears, racks, and drive motors. The racks and drive motors are linked to a fixed shaft via a rotating column, enabling synchronous driving of the left and right sets of actuating plates. This effectively prevents beverage bottles from accumulating at the entrance of the conveying channel, thus addressing the problem of bottle accumulation and blockage in existing technologies. It avoids blockage at the entrance, and the flanges on both sides of the partition reduce contact friction with the beverage bottles, improving transport efficiency and achieving both anti-blockage and high-efficiency conveying. Attached Figure Description
[0025] Figure 1 This is a schematic diagram of the structure of the present invention; Figure 2 This is a top view of the internal structure of the horizontal plate of the present invention; Figure 3 This is a schematic diagram of the left-end adjustment mechanism of the present invention; Figure 4 This is a bottom view of the internal structure of the adjustment mechanism of the present invention; Figure 5 This is a schematic diagram of the internal structure of the push box of the present invention; Figure 6 This is a schematic diagram of the partition structure from the right side; Figure 7 This is a top view of the front end of the partition of the present invention; Figure 8 This is a top view of the internal structure of the linkage cavity of the present invention; Figure 9 This is a schematic diagram of the internal structure of the linkage groove of the present invention.
[0026] In the diagram: Belt-1, Guide Mechanism-2, Side Wall-21, Horizontal Plate-22, Adjustment Mechanism-23, Partition-24, Working Chamber 1-221, Lead Screw-222, Drive Motor 1-223, Moving Block 1-224, Moving Block 2-225, Linkage Arm-226, Through Slot-227, Connecting Block-231, Connecting Arm-232, Guide Plate-233, Working Chamber 2-2311, Turntable-2312, Drive Motor 2-2313, Rotating Shaft-2314, Push Box -2315, Guide groove 1 -23151, Spring -23152, Push plate 1 -23153, Push plate 2 -23154, Recycling groove 1 -2331, Push plate 3 -2332, Recycling groove 2 -241, Rotating shaft -242, Actuating plate -243, Linkage cavity -244, Gear -2441, Rack -2442, Drive motor 3 -2443, Linkage groove -24421, Fixed shaft -24422, Rotating column -24431, Guide groove 2 -24432. Detailed Implementation
[0027] To further explain the technical solution of the present invention, a detailed description is provided below through specific embodiments.
[0028] Please see Figure 1This invention provides a beverage bottle conveying device with guiding function, including a transmission belt 1. The top end of the transmission belt 1 is provided with a set of guiding mechanisms 2 for diverting and guiding beverage bottles. The guiding mechanism 2 includes side walls 21, a horizontal plate 22, an adjusting mechanism 23, and a partition 24. The top and left ends of the top surface of the transmission belt 1 are provided with a set of side walls 21. The top ends of the two sets of side walls 21 are respectively connected to the left and right ends of the bottom surface of the horizontal plate 22. A partition 24 is connected to the middle of the bottom surface of the horizontal plate 22. Two conveying channels can be separated by the partition 24. An adjusting mechanism 23 is provided at both the left and right ends of the partition 24. The adjusting mechanism 23 can adjust the width of the conveying channel to accommodate beverage bottles of different sizes and improve the flexibility of use.
[0029] Specifically, the basic conveying of beverage bottles is achieved by the transmission belt 1, the guiding mechanism 2 realizes the diversion and guidance of beverage bottles, the two sets of side walls 21 provide stable support for the horizontal plate 22, the partition 24 divides into two independent conveying channels, and the adjustment mechanism 23 at both ends of the partition 24 realizes the flexible adjustment of the width of the conveying channel. The guiding mechanism 2 integrates the functions of diversion, limiting and width adjustment, adapts to the conveying needs of beverage bottles of different sizes, greatly improves the flexibility of the device and ensures the stability of the beverage bottle conveying process.
[0030] Please see Figure 2 A set of working chambers 221 is provided in the middle of the horizontal plate 22. A set of lead screws 222 is installed in the middle of the working chamber 221. A drive motor 223 corresponding to the lead screws 222 is provided in the middle of the rear of the horizontal plate 22. The drive shaft of the drive motor 223 extends through the working chamber 221 and is fixedly connected to the rear end of the lead screws 222, which can drive the lead screws 222 to rotate. A set of moving blocks 224 is connected to the outside of the lead screws 222. The middle of the moving block 224 is provided with an internal thread hole corresponding to the lead screws 222. Rotating the lead screw 222 can drive the first movable block 224 to move back and forth along the lead screw 222. A set of second movable blocks 225 are slidably connected to both the front and left sides of the working chamber 221. The left and right sides of the first movable block 224 are connected to the two sets of second movable blocks 225 through the linkage arm 226. When the first movable block 224 moves back and forth, the linkage arm 226 can drive the two sets of second movable blocks 225 to move left and right synchronously. The bottom surface of the working chamber 221 is provided with a through groove 227 corresponding to the second movable block 225.
[0031] Specifically, through the linkage of the lead screw 222, moving block 224, moving block 225 and linkage arm 226 in the working chamber 221, the rotational power of the drive motor 223 can be converted into the synchronous linear motion of the two sets of moving blocks 225, thereby realizing the position adjustment of the two sets of adjustment mechanisms 23. The through slot 227 provides guidance for the movement of the adjustment mechanism 23 and the moving block 225. The overall structure is compact and provides a solid foundation for subsequent guidance and interval adjustment, which can realize the linkage and synchronous adjustment of the adjustment mechanism 23 and effectively improve the stability of the beverage bottle conveying process.
[0032] Please see Figures 2-3 Both sets of adjustment mechanisms 23 have the same components. The left adjustment mechanism 23 includes a connecting block 231, a connecting arm 232 and a guide plate 233. The top surface of the connecting block 231 is provided with no less than two sets of connecting arms 232. The top of the connecting arm 232 extends through the through groove 227 into the working chamber 1 221 and connects with the bottom surface of the left moving block 225. The right side of the connecting block 231 is provided with a set of guide plates 233. When the moving block 225 moves, the connecting arm 232 can drive the connecting block 231 and the guide plate 233 to move synchronously.
[0033] Specifically, when the second movable block 225 moves, the connecting arm 232 can drive the connecting block 231 and the guide plate 233 to be positioned synchronously, realizing the synchronous position adjustment of the two sets of guide plates 233, which facilitates the adjustment of the width of the conveying channel and adapts to beverage bottles of different sizes. The connection between the adjustment mechanism 23 and the second movable block 225 is simple and stable, and the adjustment is smooth, which can meet the conveying and guiding requirements of beverage bottles of different widths and improves the versatility of the device.
[0034] Please see Figure 4 The connecting block 231 has a set of working chambers 2311 at its inner end. A set of turntables 2312 is installed on the left end of the top surface of the working chamber 2311. A set of drive motors 2313 is installed at the top center of the turntables 2312. The bottom end of the drive shaft of the drive motors 2313 is connected to the top center of the turntables 2312, which can drive the turntables 2312 to rotate. A set of rotating shafts 2314 is connected to the outer end of the bottom surface of the turntables 2312. The bottom end of the rotating shafts 2314 is connected to the push box 2315.
[0035] Specifically, the drive motor 2313 provides continuous rotational power to the turntable 2312, and the rotating shaft 2314 drives the push box 2315 to move back and forth, which is beneficial for pushing and limiting the beverage bottles in the conveying channel, and facilitates the subsequent processing of the beverage bottles.
[0036] Please see Figure 5The top left end of the push box 2315 is provided with a guide groove 23151 corresponding to the rotating shaft 2314. When the turntable 2312 rotates, it can drive the rotating shaft 2314 to move in the guide groove 23151 and drive the push box 2315 to move. The left side of the push box 2315 is provided with no less than two sets of springs 23152. The other end of the springs 23152 is connected to the push plate 23153. The right side of the push plate 23153 is provided with no less than two sets of push plates 23154 at equal intervals.
[0037] Specifically, the guide groove 23151 can drive the connection between the rotating shaft 2314 and the push box 2315. After the push box 2315 moves, multiple sets of push plates 23154 can be pushed outward by the push plate 23153. When the push plate 23154 is obstructed, it can compress the spring 23152 to keep it still, so as to avoid damage to the beverage bottle and form a flexible pushing force that adapts to beverage bottles of different sizes and shapes.
[0038] Please see Figures 3-4 On the right side of the guide plate 233, there are at least two sets of recycling troughs 2331. Each recycling trough 2331 is equipped with a set of push plates 2332. The other end of each push plate 23154 passes through the recycling trough 2331 and is connected to the push plate 2332. When the push box 2315 moves, the push plate 23153 can drive the push plate 23154 to push the push plate 2332 outward, thereby pressurizing and aligning the beverage bottles in the conveying channel.
[0039] Specifically, pusher plate 23154 can drive pusher plate 2332 to move into the conveying channel, pushing and squeezing the beverage bottles in the conveying channel. It can squeeze irregularly shaped bottles, such as square ones, to make them rotate and move neatly in the conveying channel, so as to facilitate subsequent processing of the beverage bottles.
[0040] Please see Figures 6-8Each of the left and right sides of the partition 24 has a set of recycling troughs 241 at its front end. A set of rotating shafts 242 is connected to the rear end of each recycling trough 241. A toggle plate 243 is installed on the outside of each rotating shaft 242. The top of the partition 24 has a corresponding linkage cavity 244 for each rotating shaft 242. The tops of both sets of rotating shafts 242 extend into the linkage cavity 244 and are connected to a set of gears 2441. Rotation of the gears 2441 causes the rotating shafts 242 to drive the toggle plate 243 to rotate. The two sets of gears 2441... A rack 2442 is provided between the partitions. The rack 2442 has teeth on both sides and meshes with two gears 2441. When the rack 2442 moves back and forth, it can drive the two gears 2441 to rotate synchronously. A drive motor 2443 is provided at the rear end of the rack 2442. Furthermore, the partition 24 has no less than two sets of flanges on both sides. The outer side of the flanges can contact the beverage bottle, effectively reducing the contact area between the partition 24 and the beverage bottle, reducing the friction when the beverage bottle moves, and improving the transportation efficiency.
[0041] Specifically, the rotation of the rotating shaft 242 can drive the actuating plate 243 to rotate at an angle within the second recycling tank 241, thereby actuating the beverage bottles on both sides of the partition 24 to prevent them from accumulating at the entrance of the conveying channel, causing blockage and affecting the transportation effect of the beverage bottles. The linkage cavity 244 provides installation and driving space for the synchronous movement of the two sets of rotating shafts 242. The drive motor 2443 can drive the rack 2442 to move back and forth. With the meshing linkage between the rack 2442 and the two sets of gears 2441, the linear motion of the rack 2442 can be converted into the synchronous rotation of the two sets of rotating shafts 242, which in turn can drive the two sets of actuating plates 243 to rotate synchronously. The synchronous drive of the actuating plates 243 on both sides can be achieved with a single drive source, which not only reduces the manufacturing and maintenance costs of the equipment, but also improves the overall coordination of the device.
[0042] Please see Figure 9 A set of linkage grooves 24421 is provided at the rear end of the rack 2442. A set of fixed shafts 24422 are fixedly connected to the middle of the left and right sides of the linkage grooves 24421. A set of rotating columns 24431 is fixedly connected to the front end of the drive shaft of the drive motor 2443. The rotation of the drive shaft of the drive motor 2443 can drive the rotating columns 24431 to rotate. The rotating columns 24431 extend into the linkage grooves 24421. The outer side of the rotating columns 24431 is provided with guide grooves 24432 corresponding to the fixed shafts 24422. During the rotation of the rotating columns 24431, the fixed shafts 24422 can move along the guide grooves 24432, thereby driving the rack 2442 to move back and forth.
[0043] Specifically, the drive motor 2443 can drive the rotating column 24431 to rotate, and by utilizing the sliding engagement between the guide groove 24432 and the fixed shaft 24422, the rotational motion of the rotating column 24431 is converted into the reciprocating linear motion of the rack 2442, thereby driving the gear 2441 and the rotating shaft 242 to reciprocate, realizing the reciprocating guiding of the actuating plate 243. The structure is simple, the transmission efficiency is high, the smoothness of motion conversion is guaranteed, there is no hard collision, the wear of components is reduced, the service life of the equipment is extended, and the reciprocating actuation of the actuating plate 243 is realized, which improves the flexibility of guiding the middle of the beverage bottle.
[0044] This invention provides a beverage bottle conveying device with a guiding function. A working chamber 221 is set within a horizontal plate 22. The working chamber 221 contains components such as a lead screw 222, a drive motor 223, a moving block 224, a linkage arm 226, and two moving blocks 225. These components work together to allow the lead screw 222 to drive the moving block 224 to move back and forth, while the linkage arm 226 drives the two sets of moving blocks 225 to move horizontally. This, in turn, links the adjustment mechanism 23, enabling flexible adjustment of the conveying channel width. Compared to existing conveying devices that only accommodate a single size, this structure can adapt to beverage bottles of different diameters or specifications without requiring replacement of equipment components, significantly improving the device's versatility, reducing production adaptation costs, and ensuring consistent guiding center, thus improving conveying stability. Furthermore, the working chamber 2311, turntable 2312, drive motor 2313, rotating shaft 2314, and push box 2315 are set within a connecting block 231, and springs within the push box 2315 work in conjunction with these components. 3152, Pusher plate one 23153 and pusher plate two 23154 can flexibly push pusher plate three 2332 on guide plate 233, thereby aligning irregularly shaped bottles in the conveying channel, optimizing the problem of unevenness of non-circular bottles such as square ones during the conveying process, providing precise positioning for subsequent labeling, filling and other processes, and improving the subsequent processing qualification rate; through the linkage cavity 244 set at the top of the partition plate 24, the linkage cavity 244 is equipped with gear 2441, rack 2442 and drive motor. The components, such as the rack 2443, and the drive motor 2443 are linked through the rotating column 24431 and the fixed shaft 24422, which can realize the synchronous drive of the left and right sets of actuating plates 243. This can effectively prevent beverage bottles from accumulating at the entrance of the conveying channel, optimize the problem of bottle accumulation and blockage in the existing technology, avoid blockage at the entrance, and the flanges on the left and right sides of the partition 24 can also reduce the contact friction with the beverage bottle, improve the transportation efficiency, and achieve anti-blockage and efficient conveying.
[0045] The above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention 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 invention should be included within the protection scope of the present invention.
Claims
1. A beverage bottle conveying device with guiding function, characterized in that: Includes a transmission belt (1), and a set of guide mechanisms (2) is provided at the top end of the transmission belt (1); The guiding mechanism (2) includes a side wall (21), a horizontal plate (22), an adjustment mechanism (23), and a partition (24). The top surface of the transmission belt (1) is provided with a set of side walls (21) at both the left and right ends. The top ends of the two sets of side walls (21) are respectively connected to the bottom surface of the horizontal plate (22) at the left and right ends. The bottom surface of the horizontal plate (22) is provided with a set of partitions (24) at the middle. The left and right ends of the partitions (24) are provided with a set of adjustment mechanisms (23). The horizontal plate (22) has a set of working chamber 1 (221) in the middle. A set of lead screws (222) is connected to the middle of the working chamber 1 (221). The horizontal plate (22) has a drive motor 1 (223) corresponding to the lead screws (222) in the middle of the rear. A set of moving blocks 1 (224) is connected to the outside of the lead screws (222). A set of moving blocks 2 (225) is provided at both the front left and right ends of the working chamber 1 (221). The left and right ends of the moving blocks 1 (224) are connected to the two sets of moving blocks 2 (225) on the left and right through the linkage arm (226). The bottom surface of the working chamber 1 (221) is provided with a through groove (227) corresponding to the moving blocks 2 (225).
2. The beverage bottle conveying device with guiding function according to claim 1, characterized in that: The components of the two sets of adjustment mechanisms (23) are the same. The adjustment mechanism (23) at the left end includes a connecting block (231), a connecting arm (232) and a guide plate (233). The top surface of the connecting block (231) is provided with no less than two sets of connecting arms (232). The top of the connecting arm (232) extends through the through groove (227) into the working chamber (221) and connects with the bottom surface of the left moving block (225). The right side of the connecting block (231) is provided with a set of guide plates (233).
3. The beverage bottle conveying device with guiding function according to claim 2, characterized in that: The inner end of the connecting block (231) is provided with a set of working chambers (2311), the left end of the top surface of the working chamber (2311) is provided with a set of turntables (2312), the top middle end of the turntables (2312) is provided with a set of drive motors (2313), the outer end of the bottom surface of the turntables (2312) is provided with a set of rotating shafts (2314), and the bottom end of the rotating shafts (2314) is connected to the push box (2315).
4. The beverage bottle conveying device with guiding function according to claim 3, characterized in that: The push box (2315) has a guide groove (23151) corresponding to the rotating shaft (2314) on the left side of the top surface. The push box (2315) has no less than two sets of springs (23152) on the left side. The other end of the spring (23152) is connected to a push plate (23153). The push plate (23153) has no less than two sets of push plates (23154) at equal intervals on the right side.
5. The beverage bottle conveying device with guiding function according to claim 4, characterized in that: The guide plate (233) has at least two sets of recycling troughs (2331) on its right side. Each recycling trough (2331) is provided with a set of push plates (2332), and the other end of each push plate (23154) passes through the recycling trough (2331) and is connected to the push plate (2332).
6. The beverage bottle conveying device with guiding function according to claim 1, characterized in that: The front ends of the left and right sides of the partition (24) are provided with a set of recycling troughs (241), and the rear ends of the recycling troughs (241) are connected to a set of rotating shafts (242). The outer side of the rotating shafts (242) is provided with a toggle plate (243), and the top end of the partition (24) is provided with a linkage cavity (244) corresponding to the rotating shafts (242).
7. The beverage bottle conveying device with guiding function according to claim 6, characterized in that: The top ends of the two sets of rotating shafts (242) extend into the linkage cavity (244) and are connected to a set of gears (2441). A set of racks (2442) is provided between the two sets of gears (2441), and a set of drive motors (2443) is provided at the rear end of the racks (2442).
8. The beverage bottle conveying device with guiding function according to claim 7, characterized in that: The rack (2442) has a set of linkage grooves (24421) at its rear end, and a set of fixed shafts (24422) are provided at the middle of both the left and right sides of the linkage grooves (24421).
9. The beverage bottle conveying device with guiding function according to claim 8, characterized in that: The drive shaft of the third drive motor (2443) is connected to a set of rotating columns (24431). The rotating columns (24431) extend into the linkage groove (24421), and the outer side of the rotating columns (24431) is provided with a guide groove (24432) corresponding to the fixed shaft (24422).
10. A beverage bottle conveying device with guiding function according to claim 6, characterized in that: The partition (24) has at least two sets of flanges on both the left and right sides.
Citation Information
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