Diversion and redirection type bottled water conveying device

By designing a diversion and steering bottled water conveying device, which employs a conveying mechanism, a moving mechanism, and a diversion mechanism, automatic diversion and steering are achieved. This solves the problems of low efficiency and safety hazards in existing technologies when operating at multiple receiving points, and improves loading and unloading efficiency and safety.

CN122403084APending Publication Date: 2026-07-17SHANXI TIANHANG YUNCHAO LOGISTICS CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
SHANXI TIANHANG YUNCHAO LOGISTICS CO LTD
Filing Date
2026-06-05
Publication Date
2026-07-17

AI Technical Summary

Technical Problem

Existing bottled water delivery technology suffers from single-channel straight-line delivery and a single receiving point, which necessitates manual secondary handling when multiple receiving points are operating simultaneously. This results in low efficiency and increases the risk of water barrel collisions, damage, and safety accidents.

Method used

A diversion and steering type bottled water conveying device was designed, including a conveying mechanism, a moving mechanism and a diversion mechanism. Automatic diversion and steering are achieved through fixed-point transmission components, which can meet the needs of multiple receiving points operating at the same time and avoid manual secondary handling.

Benefits of technology

It improves the efficiency of bottled water loading and unloading, reduces labor intensity, reduces collision damage and safety accidents caused by manual operation, and achieves efficient diversion and diversion transportation.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application relates to a diversion and steering bottled water conveying device, belonging to the field of goods conveying technology. It includes a conveying mechanism for conveying bottled water, a moving mechanism for supporting and moving the conveying mechanism, and a diversion mechanism for diverting the bottled water on the conveying mechanism. The conveying mechanism is mounted on the moving mechanism, and multiple diversion mechanisms are mounted on the conveying mechanism. The diversion mechanisms and the conveying mechanism are connected by a fixed-point transmission component to achieve automatic diversion and steering, meeting the needs of simultaneous operation at multiple receiving points, avoiding secondary manual handling, improving the efficiency of bottled water loading and unloading, reducing labor intensity, and minimizing collision damage and safety accidents caused by manual operation. The fixed-point transmission component can assist in the conveying of bottled water while the diversion mechanism is diverting the bottled water, and the power source for this assistance comes from the conveying mechanism, thus making reasonable use of the device's driving force.
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Description

Technical Field

[0001] This application relates to the field of article conveying technology, and in particular to a diversion and redirection type bottled water conveying device. Background Technology

[0002] In modern logistics and commodity distribution, the loading, unloading, and transportation of bottled water is an important and common task. With societal development, the demand for bottled water continues to grow, making its loading, unloading, and transportation efficiency crucial for ensuring market supply and reducing operating costs. Efficient bottled water transportation technology can improve the smoothness of the entire distribution process and promote the development of related industries. Currently, bottled water loading and unloading operations typically employ a simple inclined ladder transportation method, such as the straight ladder structure currently used by customers. One end of the ladder is attached to the truck bed, and the other end rests on the ground, relying on gravity to make the water bottles roll down the ladder. This method is a single-channel straight-line transportation mode, and only one receiving point can be set up at the bottom of the straight ladder. When delivery to multiple pallet trucks or multiple workstations needs to be carried out simultaneously, manual secondary handling is the only option. Furthermore, there are no transportation devices designed specifically for the large-diameter, cylindrical structure of bottled water.

[0003] However, these existing conventional technologies have significant drawbacks. The single-channel linear conveyor and single receiving point setup necessitate manual secondary handling when multiple receiving points are operating simultaneously. This not only leads to low efficiency but also significantly increases the labor intensity for workers. Furthermore, during manual sorting, uneven rolling speeds of the buckets and human error can easily cause collisions and damage, potentially leading to safety accidents. Simultaneously, the lack of automatic diversion and steering gravity conveyor devices makes it impossible to meet the demands of simultaneous operations at multiple receiving points.

[0004] Therefore, in view of the above situation, there is an urgent need to develop a diversion and redirection type bottled water conveying device to overcome the shortcomings in current practical applications. Summary of the Invention

[0005] To address the deficiencies in the aforementioned technology, this application provides a diversion and steering type bottled water conveying device.

[0006] The diversion and steering type bottled water conveying device provided in this application adopts the following technical solution: A diversion and steering type bottled water conveying device includes a conveying mechanism for conveying bottled water, a moving mechanism for supporting and moving the conveying mechanism, and a diversion mechanism for diverting the bottled water on the conveying mechanism. The conveying mechanism is mounted on the moving mechanism, and a plurality of diversion mechanisms are mounted on the conveying mechanism. The diversion mechanisms and the conveying mechanism are connected by a fixed-point transmission assembly.

[0007] Beneficial effects: The conveying mechanism can transport bottled water, the moving mechanism can support and move the conveying mechanism, facilitating flexible adjustment of the device's position, and the diversion mechanism can divert the bottled water on the conveying mechanism. The diversion mechanism and the conveying mechanism are connected by a fixed-point transmission component to achieve automatic diversion and steering functions, meeting the needs of simultaneous operation at multiple receiving points, avoiding secondary manual handling, improving the efficiency of bottled water loading and unloading, reducing labor intensity, and reducing collision damage and safety accidents caused by manual operation. The fixed-point transmission component can assist in the conveying of bottled water while the diversion mechanism is diverting the bottled water, and the power source for the conveying assistance comes from the conveying mechanism, making reasonable use of the device's driving force.

[0008] In one optional embodiment, the conveying mechanism includes a primary conveying component, a secondary conveying component, and a tertiary conveying component. The secondary and tertiary conveying components are respectively disposed on both sides of the primary conveying component. A first diversion port and a second diversion port are respectively opened on both sides of the primary conveying component. The inlet of the secondary conveying component is connected to the primary conveying component through the first diversion port, and the inlet of the tertiary conveying component is connected to the primary conveying component through the second diversion port. The secondary and tertiary conveying components have the same structure.

[0009] Beneficial effects: The conveying mechanism is equipped with a primary conveying component, a secondary conveying component, and a tertiary conveying component. The secondary and tertiary conveying components are located on both sides of the primary conveying component and are connected through the first and second diversion ports. This enables the diversion and conveying of bottled water, meets the needs of multiple receiving points operating simultaneously, avoids secondary manual handling, improves loading and unloading efficiency, reduces labor intensity, and reduces water barrel collision damage and safety accidents caused by manual sorting.

[0010] In one optional embodiment, the primary conveying assembly includes a first limiting plate, a first drive shaft and a plurality of first driven shafts are rotatably disposed between two vertically arranged first limiting plates, a first driving member is disposed at one end of the first limiting plate, the driving end of the first driving member is connected to the first drive shaft, conveying rollers are respectively disposed on the first driven shaft and the first drive shaft, two adjacent first driven shafts are connected by belt drive, the first drive shaft and the first driven shaft are connected by belt drive, and the first diversion port and the second diversion port are respectively opened on the two first limiting plates.

[0011] Beneficial effects: The conveying mechanism can realize the conveying of bottled water. The first driving component of the primary conveying component drives the first active shaft to rotate, which drives the first driven shaft to rotate through belt transmission. The conveying roller can move the bottled water on the primary conveying component. The first and second diversion ports can divert the bottled water to the secondary and tertiary conveying components, meet the needs of multiple receiving points operating at the same time, avoid secondary manual handling, improve loading and unloading efficiency, reduce labor intensity, and reduce collision damage and safety accidents caused by manual operation.

[0012] In one optional embodiment, the secondary conveying assembly includes a second limiting plate, two second limiting plates respectively disposed on the first diversion port, a second drive shaft and a plurality of second driven shafts rotatably disposed between the two vertically disposed second limiting plates, a second driving member disposed at one end of the second limiting plate, the driving end of the second driving member being connected to the second drive shaft, a third limiting plate disposed at one end of the two second limiting plates at the first diversion port, a plurality of third driven shafts disposed between the third limiting plate and the second limiting plate, the second drive shaft and the second driven shaft being connected by belt drive, two adjacent second driven shafts being connected by belt drive, the second driven shaft and the third driven shaft being connected by belt drive, two adjacent third driven shafts being connected by belt drive, and conveying rollers are respectively disposed on the second driven shaft, the second drive shaft, and the third driven shaft.

[0013] Beneficial effects: The secondary conveying component enables the diversion and conveying of bottled water from the primary conveying component. The second drive component drives the second drive shaft to rotate, and then the belt drive drives multiple second and third driven shafts to rotate. The bottled water is conveyed by conveying rollers, which can meet the needs of multiple receiving points operating simultaneously, improve the efficiency of bottled water conveying, and reduce the labor intensity of manual handling and the occurrence of safety accidents.

[0014] In one optional embodiment, the diversion mechanism includes a support platform, which is fixedly mounted on the first limiting plate. The support platform is correspondingly configured with a first diversion port on another first limiting plate. A first fixed seat and a second fixed seat are fixedly mounted on the support platform. A rotating seat is provided on the side of the first fixed seat facing the first diversion port. The rotating seat is hinged to one end of a guide plate. Two limiting blocks are provided on the second fixed seat. A telescopic member is rotatably mounted between the two limiting blocks. The telescopic end of the telescopic member is hinged to the other end of the guide plate. A support plate is horizontally mounted on the guide plate. Multiple rotating shafts are vertically rotatably mounted on the support plate. A guide wheel is provided at the top of each rotating shaft.

[0015] Beneficial effects: The diversion mechanism can use the extension and retraction of the telescopic components to drive the guide plate to rotate, thereby changing the guiding direction of the guide wheel, realizing the diversion of bottled water on the primary conveying component and allowing it to enter the secondary conveying component. This avoids manual sorting, improves the efficiency of bottled water transportation, reduces labor intensity, reduces collision damage and safety accidents caused by manual operation, and meets the needs of simultaneous operation at multiple receiving points.

[0016] In one optional embodiment, a fixed-point transmission assembly is provided at the bottom of the support plate, a first spur gear is provided at the lower part of the rotating shaft, a fixed shaft is provided at the bottom of the support plate, the fixed shaft is disposed between two adjacent rotating shafts, a second spur gear is rotatably disposed at the lower part of the fixed shaft, the second spur gear meshes with two adjacent first spur gears for transmission, and the first spur gear is connected to the first driven shaft for transmission through the fixed-point transmission assembly.

[0017] Beneficial effects: The conveying mechanism can transport bottled water, the moving mechanism can support and move the conveying mechanism, and the diversion mechanism can divert the bottled water on the conveying mechanism. The conveying mechanism includes a primary conveying component, a secondary conveying component, and a tertiary conveying component, with the secondary and tertiary conveying components having the same structure. The primary conveying component is connected to the secondary and tertiary conveying components through a first diversion port and a second diversion port. The secondary conveying component has corresponding transmission components. Based on this, the guide plate of the diversion mechanism can guide the bottled water. The fixed-point transmission component is connected to the first driven shaft through the meshing transmission of the first spur gear and the second spur gear, so that the guide wheel at the top of the rotating shaft on the guide plate can rotate with the rotation of the first driven shaft, thereby better guiding the bottled water for diversion, improving the efficiency and accuracy of bottled water diversion, meeting the needs of simultaneous operation at multiple receiving points, and avoiding collision damage and safety accidents caused by manual sorting.

[0018] In one optional embodiment, the fixed-point transmission assembly includes a support frame fixedly disposed below the support plate. A rotating sleeve is rotatably disposed on the support frame. A third spur gear is fixedly disposed on the top of the rotating sleeve, meshing with a first spur gear. A first transmission shaft is vertically inserted inside the rotating sleeve. Guide blocks are symmetrically disposed on the top of the first transmission shaft. A limiting groove is vertically formed on the inner wall of the rotating sleeve corresponding to the guide blocks. The guide blocks are vertically slidably disposed within the limiting grooves. A fourth spur gear is disposed at the bottom of the first transmission shaft. A limiting frame is fixedly disposed at the bottom of the support frame. A second transmission shaft is vertically rotatably disposed at the bottom of the limiting frame. The top of the second drive shaft is provided with a limiting cylinder, and the top of the limiting cylinder is connected to the bottom of the support frame by a buffer spring. The bottom of the second drive shaft is provided with a wheel frame, and a third drive shaft is rotatably mounted inside the wheel frame. A helical gear is provided on the third drive shaft, and a fifth spur gear is provided at the end of the third drive shaft extending out of the wheel frame. The fourth spur gear meshes with the fifth spur gear for transmission. The first driven shaft has helical teeth, and the helical gear is connected to the first driven shaft for transmission through the helical teeth. A protective cover is provided on the outer sleeve of the first drive shaft, and the protective cover is fixedly mounted on the bottom of the support frame. A clearance groove is provided on the side of the protective cover to avoid the third drive shaft.

[0019] Beneficial effects: The fixed-point transmission component enables the transmission connection between the guide wheel and the first driven shaft, allowing the guide wheel to rotate synchronously with the first driven shaft, which helps guide the diversion of bottled water. The buffer spring can buffer the vibration during the transmission process, and the protective cover protects the first transmission shaft, ensuring the stable and reliable operation of the fixed-point transmission component. This ensures that the entire diversion and steering bottled water conveying device can achieve efficient bottled water diversion and conveying, meet the needs of multiple receiving points operating simultaneously, avoid secondary manual handling, improve conveying efficiency, reduce labor intensity, and reduce collision damage and safety accidents.

[0020] In one optional embodiment, the moving mechanism includes a plurality of support columns, which are respectively disposed at the bottom of the first limiting plate and the second limiting plate, and the bottom of the support columns is provided with casters.

[0021] Beneficial effects: The conveying device includes a conveying mechanism, a moving mechanism, and a diverting mechanism. The conveying mechanism includes a primary conveying component, a secondary conveying component, and a tertiary conveying component. The primary conveying component includes a first limiting plate, a first driving shaft, a first driven shaft, and conveying rollers, etc. The secondary conveying component includes a second limiting plate, a second driving shaft, a second driven shaft, etc. The moving mechanism includes multiple support columns with casters at the bottom of the support columns, which enables flexible movement of the device and facilitates position adjustment to adapt to different bottled water loading and unloading scenarios, improving the device's flexibility and applicability, and avoiding the inconvenience of manual handling.

[0022] In one optional embodiment, the first limiting plate is hinged at its high and low ends with a first mounting plate for connecting with the truck bed and a second mounting plate for connecting with the ground, and the lower end of the second limiting plate is hinged with a second mounting plate for connecting with the ground.

[0023] Beneficial effects: By using the first and second ramps to connect with the truck bed and the ground respectively, the conveying device can be smoothly connected to the truck and the ground, facilitating the smooth transport of bottled water from the truck to the ground. In addition, the hinged ramps can be adjusted in angle according to actual conditions, improving the adaptability and flexibility of the device.

[0024] In summary, this application includes at least one of the following beneficial technical effects: 1. The conveying mechanism, diversion mechanism and moving mechanism work together to realize automatic diversion and diversion of bottled water, meet the needs of multiple receiving points operating at the same time, and avoid manual secondary handling; 2. To avoid collisions or safety accidents caused by uneven rolling speed of water buckets or human error during manual sorting; 3. Improve the efficiency of loading, unloading, and transporting bottled water, and reduce the labor intensity of workers. Attached Figure Description

[0025] Figure 1 This is a schematic diagram of the overall structure provided in the embodiments of this application; Figure 2 yes Figure 1 A magnified view of a section at point A in the middle; Figure 3 yes Figure 1 A magnified view of a section at point B in the middle; Figure 4 This is a schematic diagram of the secondary conveying assembly structure provided in an embodiment of this application; Figure 5 This is a schematic diagram of the diversion mechanism structure provided in the embodiments of this application; Figure 6 This is a schematic cross-sectional view of the fixed-point transmission component provided in the embodiments of this application.

[0026] Explanation of reference numerals in the attached drawings: 1. Conveying mechanism; 11. Primary conveying assembly; 111. First limiting plate; 1111. First diverting port; 1112. Second diverting port; 112. First drive shaft; 113. First driven shaft; 1131. Helical tooth pattern; 114. First driving component; 115. Conveying roller; 116. Belt; 12. Secondary conveying assembly; 121. Second limiting plate; 122. Second drive shaft; 123. Second driven shaft; 124. Second driving component; 125. Third limiting plate; 126. Third driven shaft; 13. Tertiary conveying assembly; 2. Diverting mechanism; 21. Support platform; 22. First fixed seat; 23. Second fixed seat; 24. Rotating seat; 25. Guide plate; 26. 27. Limiting block; 28. Telescopic component; 29. ​​Support plate; 30. Rotating shaft; 31. Guide wheel; 32. First spur gear; 33. Fixed shaft; 4. Second spur gear; 50. Fixed-point transmission assembly; 41. Support frame; 42. Rotating sleeve; 421. Third spur gear; 422. Limiting groove; 43. First transmission shaft; 431. Guide block; 432. Fourth spur gear; 44. Limiting frame; 45. Second transmission shaft; 46. Limiting cylinder; 47. Buffer spring; 48. Wheel frame; 49. Third transmission shaft; 50. Helical gear; 51. Fifth spur gear; 52. Protective cover; 53. Clearance groove; 6. Moving mechanism; 61. Support column; 62. Universal wheel; 63. First mounting plate; 64. Second mounting plate. Detailed Implementation

[0027] The technical solutions of this application will now be clearly and completely described with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this application. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0028] In the description of this application, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are used only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0029] In the description of this application, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this application according to the specific circumstances.

[0030] Furthermore, the technical features involved in the different embodiments of this application described below can be combined with each other as long as they do not conflict with each other.

[0031] The present invention provides the following embodiments: Example 1

[0032] This application discloses a diversion and redirection type bottled water conveying device, referring to... Figure 1 , Figure 2 , Figure 4 The system includes a conveying mechanism 1 for transporting bottled water, a moving mechanism 6 for supporting and moving the conveying mechanism 1, and a diversion mechanism 2 for diverting the bottled water on the conveying mechanism 1. The conveying mechanism 1 is mounted on the moving mechanism 6, and multiple diversion mechanisms 2 are mounted on the conveying mechanism 1. The diversion mechanisms 2 are connected to the conveying mechanism 1 via a fixed-point transmission assembly 4, achieving convenient movement of the device and diversion of bottled water, thus meeting the needs of simultaneous operation at multiple receiving points. The moving mechanism 6 allows the conveying device to be flexibly moved to a suitable position, and the diversion mechanisms 2 guide the bottled water on the conveying mechanism 1 in different directions, realizing diversion and transportation.

[0033] Specifically, the conveying mechanism 1 includes a primary conveying component 11, a secondary conveying component 12, and a tertiary conveying component 13. The secondary conveying component 12 and the tertiary conveying component 13 are respectively disposed on both sides of the primary conveying component 11. The primary conveying component 11 has a first diversion port 1111 and a second diversion port 1112 respectively on both sides. The inlet of the secondary conveying component 12 is connected to the primary conveying component 11 through the first diversion port 1111, and the inlet of the tertiary conveying component 13 is connected to the primary conveying component 11 through the second diversion port 1112. The secondary conveying component 12 and the tertiary conveying component 13 have the same structure.

[0034] The primary conveying assembly 11 includes a first limiting plate 111, which is typically made of metal, such as stainless steel, providing strength and durability. A first drive shaft 112 and multiple first driven shafts 113 are rotatably connected between two vertically positioned first limiting plates 111. A first drive element 114, which can be a motor, is mounted on one end of each first limiting plate 111, driving the first drive shaft 112 to rotate. Conveying rollers 115 are mounted on both the first driven shafts 113 and the first drive shaft 112. These rollers are typically made of rubber to increase friction with the bottled water, improving its transport. Adjacent first driven shafts 113 are connected by a belt 116, as are the first drive shaft 112 and the first driven shafts 113. This ensures that rotation of the first drive shaft 112 drives all the first driven shafts 113, thus achieving the transport of bottled water. The first diversion port 1111 and the second diversion port 1112 are respectively opened on the two first limiting plates 111, which facilitates the diversion of bottled water from the primary conveying component 11 to the secondary conveying component 12 and the tertiary conveying component 13. The first driving component 114 here can also be replaced by a hydraulic motor, which can also achieve the function of driving the first drive shaft 112 to rotate.

[0035] The secondary conveying assembly 12 includes a second limiting plate 121, which is also made of metal. Two second limiting plates 121 are respectively disposed on the first diversion port 1111. A second drive shaft 122 and multiple second driven shafts 123 are rotatably disposed between the two vertically disposed second limiting plates 121. A second drive member 124 is disposed at one end of the second limiting plate 121. The second drive member 124 can also be a motor, and its drive end is connected to the second drive shaft 122. A third limiting plate 125 is disposed at one end of the two second limiting plates 121 at the first diversion port 1111. Multiple third driven shafts 126 are rotatably disposed between the third limiting plate 125 and the second limiting plate 121. The third driven shafts 126 and the second driven shafts 123 are arranged parallel to each other. The second drive shaft 122 and the second driven shaft 123 are connected by a belt 116. Adjacent second driven shafts 123 are also connected by a belt 116. The second driven shaft 123 and the third driven shaft 126 are connected by a belt 116, and adjacent third driven shafts 126 are also connected by a belt 116. Conveying rollers 115 are respectively installed on the second driven shaft 123, the second drive shaft 122, and the third driven shaft 126. This structure allows the secondary conveying assembly 12 to independently convey bottled water diverted from the primary conveying assembly 11. The second drive component 124 can also be replaced by a pneumatic motor, which can also drive the second drive shaft 122.

[0036] Reference Figures 1-3The diversion mechanism 2 includes a support platform 21, which is fixedly mounted on a first limiting plate 111. The support platform 21 is correspondingly positioned with a first diversion port 1111 on another first limiting plate 111. A first fixed seat 22 and a second fixed seat 23 are fixedly mounted on the support platform 21. A rotating seat 24 is mounted on the side of the first fixed seat 22 facing the first diversion port 1111. The rotating seat 24 is hinged to one end of a guide plate 25, allowing the guide plate 25 to rotate around the rotating seat 24. Two limiting blocks 26 are mounted on the second fixed seat 23. A telescopic member 27 is rotatably mounted between the two limiting blocks 26. The telescopic end of the telescopic member 27 is hinged to the other end of the guide plate 25. The rotation angle of the guide plate 25 can be controlled by the extension and retraction of the telescopic member 27, thereby guiding the flow of bottled water. A support plate 28 is horizontally mounted on the guide plate 25. Multiple rotating shafts 29 are vertically mounted on the support plate 28. Guide wheels 30 are mounted on the top of each rotating shaft 29. The guide wheels 30 are typically made of plastic with a smooth surface, which reduces friction with the bottled water and better guides the water. Alternatively, nylon wheels can be used instead of guide wheels 30.

[0037] A fixed-point transmission assembly 4 is provided at the bottom of the support plate 28, a first spur gear 31 is provided at the lower part of the rotating shaft 29, a fixed shaft 32 is provided at the bottom of the support plate 28, the fixed shaft 32 is located between two adjacent rotating shafts 29, a second spur gear 33 is rotatably provided at the lower part of the fixed shaft 32, the second spur gear 33 meshes with the two adjacent first spur gears 31 for transmission, and the first spur gear 31 is connected to the first driven shaft 113 through the fixed-point transmission assembly 4, so that multiple guide wheels 30 guide the bottled water in the same direction.

[0038] Reference Figure 5 , Figure 6The fixed-point transmission assembly 4 includes a support frame 41, which is fixedly mounted below the support plate 28. A rotating sleeve 42 is rotatably mounted on the support frame 41, and a third spur gear 421 is fixedly mounted on the top of the rotating sleeve 42, meshing with a first spur gear 31. A first transmission shaft 43 is vertically inserted inside the rotating sleeve 42, and guide blocks 431 are symmetrically arranged on the top of the first transmission shaft 43. A limiting groove 422 is vertically formed on the inner wall of the rotating sleeve 42 corresponding to the guide blocks 431. The guide blocks 431 are vertically slidably mounted in the limiting groove 422, ensuring that the first transmission shaft 43 can slide up and down within the rotating sleeve 42 while also transmitting torque. A fourth spur gear 432 is provided at the bottom of the first drive shaft 43. A limit frame 44 is fixedly provided at the bottom of the support frame 41. A second drive shaft 45 is vertically rotatable at the bottom of the limit frame 44. A limit cylinder 46 is provided at the top of the second drive shaft 45. The top of the limit cylinder 46 is connected to the bottom of the support frame 41 by a buffer spring 47, which plays a role in buffering and resetting. The buffer spring 47 allows the helical gear 50 to extend and retract up and down to avoid obstructing parts while the guide plate 25 is pushed and rotated above the first driven shaft 113. When the helical gear 50 moves above the helical tooth pattern 1131, the buffer spring 47 presses down the limit cylinder 46, the second drive shaft 45, the wheel frame 48, and the helical gear 50, so that the helical gear 50 meshes with the helical tooth pattern 1131. At the same time, it ensures that the fourth spur gear 432 and the fifth spur gear 51 move up and down synchronously, ensuring the continuous meshing of the fourth spur gear 432 and the fifth spur gear 51. A wheel frame 48 is installed at the bottom of the second drive shaft 45. A third drive shaft 49 is rotatably mounted inside the wheel frame 48. A helical gear 50 is mounted on the third drive shaft 49. A fifth spur gear 51 is mounted at the end of the third drive shaft 49 extending out of the wheel frame 48. A fourth spur gear 432 meshes with the fifth spur gear 51 for transmission. A helical tooth pattern 1131 is provided on the first driven shaft 113. The helical gear 50 is connected to the first driven shaft 113 through the helical tooth pattern 1131. A protective cover 52 is provided on the outer sleeve of the first drive shaft 43. The protective cover 52 is fixedly mounted on the bottom of the support frame 41. A clearance groove 53 is provided on the side of the protective cover 52 to avoid the third drive shaft 49. Through this fixed-point transmission assembly 4, the rotating shaft 29 and the guide wheel 30 can rotate with the rotation of the first driven shaft 113. The multiple guide wheels 30 rotate in the same direction to actively push and guide the passing bottled water, which not only better guides the bottled water but also reduces the conveying pressure of the conveying mechanism 1. The buffer spring 47 here can also be replaced by a rubber buffer block.

[0039] Reference Figure 1The moving mechanism 6 includes multiple support columns 61, which are respectively disposed at the bottom of the first limiting plate 111 and the second limiting plate 121. The support columns 61 are generally made of metal and have a certain strength. The bottom of the support columns 61 is provided with casters 62, which can be casters 62 with brakes to facilitate the movement and fixation of the device.

[0040] The first limiting plate 111 has a first mounting plate 63 for connecting with the truck bed and a second mounting plate 64 for connecting with the ground at its high and low ends, respectively. The second limiting plate 121 has a second mounting plate 64 for connecting with the ground at its low end. The mounting plates are generally made of wood or metal, which facilitates the transfer of bottled water from the truck bed to the conveying mechanism 1, and from the conveying mechanism 1 to the ground.

[0041] The implementation principle of this embodiment is as follows: the moving mechanism 6 can move the entire device to a suitable position, and the first mounting plate 63 and the second mounting plate 64 facilitate the vertical transport of bottled water. Driven by the first driving member 114, the primary conveying assembly 11 rotates the conveying rollers 115 on the first driven shaft 113 and the first driving shaft 112 via the belt 116, thus transporting the bottled water. When diversion is required, the telescopic member 27 of the diversion mechanism 2 extends and retracts to control the rotation of the guide plate 25, guiding the bottled water to the secondary or tertiary conveying assembly 13. The fixed-point transmission assembly 4 allows the guide wheel 30 to rotate with the first driven shaft 113, better guiding the bottled water. This achieves the diversion and transport of bottled water, improving transport efficiency, reducing labor intensity, and minimizing safety accidents, representing a significant improvement over existing technologies. Example 2

[0042] The difference between this embodiment and the above embodiments is that: (Refer to...) Figure 1 , Figure 3 The guide plate 25 of the diversion mechanism 2 can be controlled to rotate by an electric push rod. The electric push rod is fixedly mounted on the support platform 21, and its telescopic end is hinged to the middle of the guide plate 25. The rotation angle of the guide plate 25 is controlled by the extension and retraction of the electric push rod, thereby realizing the diversion of bottled water.

[0043] The implementation principle of this embodiment is as follows: the electric push rod controls the rotation of the guide plate 25 more precisely and stably, which can better guide the flow of bottled water, improve the accuracy and efficiency of diversion, and has a certain improvement in control precision and stability compared with the traditional telescopic component 27 control method. It is a further improvement of the existing technology.

[0044] Obviously, the above embodiments are merely illustrative examples for clear explanation and are not intended to limit the implementation. Those skilled in the art will recognize that other variations or modifications can be made based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations here. However, obvious variations or modifications derived therefrom are still within the scope of protection of this application.

Claims

1. A diversion and redirection type bottled water conveying device, characterized in that: It includes a conveying mechanism (1) for conveying bottled water, a moving mechanism (6) for supporting and moving the conveying mechanism (1), and a diversion mechanism (2) for diverting the bottled water on the conveying mechanism (1). The conveying mechanism (1) is mounted on the moving mechanism (6), and multiple diversion mechanisms (2) are mounted on the conveying mechanism (1). The diversion mechanisms (2) are connected to the conveying mechanism (1) by a fixed-point transmission assembly (4).

2. The diversion and steering type bottled water conveying device according to claim 1, characterized in that: The conveying mechanism (1) includes a primary conveying component (11), a secondary conveying component (12), and a tertiary conveying component (13). The secondary conveying component (12) and the tertiary conveying component (13) are respectively disposed on both sides of the primary conveying component (11). The primary conveying component (11) has a first diversion port (1111) and a second diversion port (1112) respectively on both sides. The inlet of the secondary conveying component (12) is connected to the primary conveying component (11) through the first diversion port (1111), and the inlet of the tertiary conveying component (13) is connected to the primary conveying component (11) through the second diversion port (1112). The secondary conveying component (12) and the tertiary conveying component (13) have the same structure.

3. The diversion and steering type bottled water conveying device according to claim 2, characterized in that: The primary conveying assembly (11) includes a first limiting plate (111). A first drive shaft (112) and a plurality of first driven shafts (113) are rotatably arranged between two vertically arranged first limiting plates (111). A first driving member (114) is provided at one end of the first limiting plate (111). The driving end of the first driving member (114) is connected to the first drive shaft (112) for transmission. Conveying rollers (115) are respectively provided on the first driven shaft (113) and the first drive shaft (112). Two adjacent first driven shafts (113) are connected by a belt (116) for transmission. The first drive shaft (112) and the first driven shaft (113) are connected by a belt (116) for transmission. The first diversion port (1111) and the second diversion port (1112) are respectively opened on the two first limiting plates (111).

4. The diversion and steering type bottled water conveying device according to claim 3, characterized in that: The secondary conveying assembly (12) includes a second limiting plate (121), with two second limiting plates (121) respectively disposed on the first diversion port (1111). A second drive shaft (122) and multiple second driven shafts (123) are rotatably disposed between the two vertically disposed second limiting plates (121). A second driving member (124) is disposed at one end of each second limiting plate (121), and the driving end of the second driving member (124) is connected to the second drive shaft (122). A third limiting plate (125) is disposed at one end of each of the two second limiting plates (121) at the first diversion port (1111). 5) A plurality of third driven shafts (126) are provided between the second driving shaft (122) and the second driven shaft (123). The second driving shaft (122) and the second driven shaft (123) are connected by a belt (116). Two adjacent second driven shafts (123) are connected by a belt (116). The second driven shaft (123) and the third driven shaft (126) are connected by a belt (116). Two adjacent third driven shafts (126) are connected by a belt (116). Conveying rollers (115) are respectively provided on the second driven shaft (123), the second driving shaft (122), and the third driven shaft (126).

5. The diversion and steering type bottled water conveying device according to claim 4, characterized in that: The diversion mechanism (2) includes a support platform (21), which is fixedly mounted on the first limiting plate (111). The support platform (21) is correspondingly mounted to the first diversion port (1111) on the other first limiting plate (111). A first fixing seat (22) and a second fixing seat (23) are fixedly mounted on the support platform (21). A rotating seat (24) is mounted on the side of the first fixing seat (22) facing the first diversion port (1111). (24) is hinged to one end of the guide plate (25). Two limiting blocks (26) are provided on the second fixed seat (23). A telescopic member (27) is rotatably provided between the two limiting blocks (26). The telescopic end of the telescopic member (27) is hinged to the other end of the guide plate (25). A support plate (28) is horizontally provided on the guide plate (25). Multiple rotating shafts (29) are vertically rotatably provided on the support plate (28). A guide wheel (30) is provided at the top of the rotating shaft (29).

6. The diversion and steering type bottled water conveying device according to claim 5, characterized in that: The bottom of the support plate (28) is provided with 3, the lower part of the rotating shaft (29) is provided with a first spur gear (31), the bottom of the support plate (28) is provided with a fixed shaft (32), the fixed shaft (32) is provided between two adjacent rotating shafts (29), the lower part of the fixed shaft (32) is rotatably provided with a second spur gear (33), the second spur gear (33) meshes with two adjacent first spur gears (31) for transmission, and the first spur gear (31) is connected to the first driven shaft (113) through the fixed point transmission assembly (4).

7. The diversion and steering type bottled water conveying device according to claim 6, characterized in that: The fixed-point transmission assembly (4) includes a support frame (41), which is fixedly disposed below the support plate (28). A rotating sleeve (42) is rotatably disposed on the support frame (41). A third spur gear (421) is fixedly disposed on the top of the rotating sleeve (42), and the third spur gear (421) meshes with the first spur gear (31). A first transmission shaft (43) is vertically inserted inside the rotating sleeve (42), and the top of the first transmission shaft (43) is symmetrically arranged. A guide block (431) is provided, and a limiting groove (422) is vertically formed on the inner wall of the rotating sleeve (42) corresponding to the guide block (431). The guide block (431) is vertically slidably disposed in the limiting groove (422). A fourth spur gear (432) is provided at the bottom of the first transmission shaft (43). A limiting frame (44) is fixedly provided at the bottom of the support frame (41). A second transmission shaft (45) is vertically rotatably mounted at the bottom of the limiting frame (44). A limiting cylinder (46) is provided at the top, and the top of the limiting cylinder (46) is connected to the bottom of the support frame (41) by a buffer spring (47). A wheel frame (48) is provided at the bottom of the second transmission shaft (45), and a third transmission shaft (49) is rotatably provided inside the wheel frame (48). A helical gear (50) is provided on the third transmission shaft (49), and a fifth spur gear (51) is provided at one end of the third transmission shaft (49) extending out of the wheel frame (48). A fourth spur gear (43) is provided at the other end of the third transmission shaft (49). 2) It meshes with the fifth spur gear (51) for transmission. The first driven shaft (113) has a useful helical tooth pattern (1131). The helical gear (50) is connected to the first driven shaft (113) through the helical tooth pattern (1131). The first drive shaft (43) is covered with a protective cover (52). The protective cover (52) is fixedly installed at the bottom of the support frame (41). The side of the protective cover (52) is provided with a clearance groove (53) to avoid the third drive shaft (49).

8. The diversion and steering type bottled water conveying device according to claim 4, characterized in that: The moving mechanism (6) includes multiple support columns (61), which are respectively disposed at the bottom of the first limiting plate (111) and the second limiting plate (121), and the bottom of the support column (61) is provided with a caster wheel (62).

9. The diversion and steering type bottled water conveying device according to claim 4, characterized in that: The first limiting plate (111) is hinged at its high and low ends with a first mounting plate (63) for connecting with the truck bed and a second mounting plate (64) for connecting with the ground, and the second limiting plate (121) is hinged at its low end with a second mounting plate (64) for connecting with the ground.