Combined logistics sorting equipment

By using a dynamic path adjustment design for modular logistics sorting equipment, the problem of traditional equipment being unable to adapt to different package sizes and sorting scenarios is solved, achieving an efficient and accurate sorting process that is suitable for compact warehousing environments.

CN224127912UActive Publication Date: 2026-04-17ANHUI WANHEYOUBANG INTELLIGENT TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ANHUI WANHEYOUBANG INTELLIGENT TECH CO LTD
Filing Date
2025-05-16
Publication Date
2026-04-17

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    Figure CN224127912U_ABST
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Abstract

The utility model discloses combined logistics sorting equipment, and particularly relates to the field of logistics equipment, the combined logistics sorting equipment comprises an equipment support, a conveying belt is arranged at the top end of the equipment support, a high baffle and a low baffle which are used for supporting the conveying belt are respectively arranged on two sides of the conveying belt in the conveying direction, and a hanging flange is arranged on the outer wall of the low baffle. The edge of the hanging baffle extends upwards and then detours towards one side of the lower baffle to form a clamping groove, a plurality of logistics channel pieces matched with the clamping groove are arranged on the outer side of the hanging baffle, the logistics channel pieces move back and forth on the hanging baffle, and the bottom ends of the logistics channel pieces are connected with a collecting box. The logistics channel piece can be rapidly installed, detached and moved through the clamping grooves, the sorting path can be dynamically adjusted, the logistics channel piece is suitable for packages of different specifications and sorting scenes, the sorting efficiency and accuracy are remarkably improved, meanwhile, the pushing mechanism is integrated on the outer side of the support, and the working area of the conveying belt is prevented from being occupied.
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Description

Technical Field

[0001] This utility model relates to the field of logistics equipment, and more specifically, to a combined logistics sorting equipment. Background Technology

[0002] With the rapid development of e-commerce and logistics, the demand for logistics sorting equipment is increasing, especially when handling multi-category, high-throughput parcels, where traditional sorting equipment has certain shortcomings. Existing sorting equipment mostly uses fixed sorting channels, making it difficult to dynamically adjust sorting paths based on parcel size, weight, or destination. Most equipment uses a single baffle or complex support frame, occupying a large vertical space, and the sorting mechanism interferes with the conveyor belt's working area, limiting the flexibility of site layout and making it difficult to adapt to compact warehousing environments. Utility Model Content

[0003] To solve the above-mentioned technical problems, this utility model provides a combined logistics sorting equipment, including an equipment support frame. A conveyor belt is installed at the top of the equipment support frame. A high baffle and a low baffle are respectively provided on both sides of the conveyor belt in the conveying direction. A hanging baffle is installed on the outer wall of the low baffle. The edge of the hanging baffle extends upward and then meanders towards the low baffle to form a locking groove. Several logistics channel components matching the locking groove are arranged on the outer side of the hanging baffle. The logistics channel components move back and forth on the hanging baffle. A collection box is connected to the bottom of the logistics channel components. A support plate is installed on the outer wall of the high baffle. A vertical plate is installed on the surface of each end of the support plate. A position adjustment component is connected between the tops of the vertical plates. The position adjustment component extends downward to the outer side of the high baffle and is equipped with a pushing mechanism that penetrates the high baffle.

[0004] In a preferred embodiment, the logistics channel component includes a hook-shaped connecting plate that is inserted into a snap-fit ​​groove, with the end of the connecting plate extending toward the side away from the low baffle, and an inclined channel tube installed at the end of the connecting plate away from the low baffle.

[0005] In a preferred embodiment, the bottom of the channel tube near the low baffle is in contact with the edge of the top of the low baffle, and a top plate extending toward the high baffle is installed on the top of the channel tube near the low baffle. A grating disk that cooperates with the position adjustment component is installed on the top plate.

[0006] The collection box is fixedly installed at the bottom end of the channel pipe.

[0007] In a preferred embodiment, the position adjusting component includes a first connecting rod and a screw connected between the top ends of the upright plate. The first connecting rod is located above the screw. A plurality of first sleeves are sleeved on the outside of the first connecting rod. The screw is sleeved on the outside of the same number of second sleeves as the first sleeves. A positioning plate is connected between the first sleeves and the second sleeves.

[0008] In a preferred embodiment, the end of the second sleeve is fitted with a bearing that is sleeved on the outside of the screw and does not contact the surface of the screw. The end of the bearing is connected to a threaded tube that is sleeved on the outside of the screw and cooperates with the screw. The outside of the threaded tube is prismatic.

[0009] In a preferred embodiment, the pushing mechanism includes a second connecting rod fixed to the bottom of the second sleeve and a servo push rod installed at the bottom end of the second connecting rod. A position sensor that cooperates with the grating disk is installed on the outer wall of the second connecting rod, and a push plate is installed on the output shaft of the servo push rod.

[0010] In a preferred embodiment, the high baffle plate has a through slot, through which the servo push rod output shaft passes. The push plate is located at the edge above the conveyor belt.

[0011] The technical effects and advantages of this utility model are as follows:

[0012] This practical logistics channel component can be quickly installed, disassembled, and moved via snap-fit ​​slots. It supports dynamic adjustment of sorting paths to adapt to different package sizes and sorting scenarios, significantly improving sorting efficiency and accuracy. Meanwhile, the pushing mechanism is integrated on the outside of the bracket to avoid occupying the conveyor belt's working area. Attached Figure Description

[0013] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0014] Figure 2 This is a schematic diagram of the right-side structure of this utility model;

[0015] Figure 3 This is a schematic diagram of the rear structure of this utility model;

[0016] Figure 4 For the present utility model Figure 1 Detailed structural diagram of point A in the middle.

[0017] Explanation of reference numerals in the attached drawings: 1 Equipment bracket, 2 Conveyor belt, 3 High baffle, 4 Low baffle, 5 Suspension baffle, 6 Card slot, 7 Collection box, 8 Support plate, 9 Vertical plate, 10 Connecting plate, 11 Channel pipe, 12 Top plate, 13 Grating disk, 14 First connecting rod, 15 Screw, 16 First sleeve, 17 Second sleeve, 18 Positioning plate, 19 Bearing, 20 Screw tube, 21 Second connecting rod, 22 Servo push rod, 23 Position sensor, 24 Push plate, 25 Slot. Detailed Implementation

[0018] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments. The embodiments of the present invention are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the present invention to the disclosed forms. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described to better illustrate the principles and practical applications of the present invention, and to enable those skilled in the art to understand the present invention and design various embodiments with various modifications suitable for a particular purpose.

[0019] like Figure 1-4 The illustrated modular logistics sorting equipment includes a support frame 1, a conveyor belt 2 mounted on the top of the support frame 1, a high baffle 3 and a low baffle 4 supporting the conveyor belt 2 on both sides of the conveyor belt 2 in the conveying direction, a hanging baffle 5 is mounted on the outer wall of the low baffle 4, the edge of the hanging baffle 5 extends upward and then meanders toward the low baffle 4 to form a snap-fit ​​groove 6, a plurality of logistics channel components matching the snap-fit ​​groove 6 are arranged on the outer side of the hanging baffle 5, the logistics channel components move back and forth on the hanging baffle 5, the bottom end of the logistics channel components is connected to a collection box 7, a support plate 8 is mounted on the outer wall of the high baffle 3, and a vertical plate 9 is mounted on the surface of each end of the support plate 8, a position adjustment component is connected between the top ends of the vertical plates 9, the position adjustment component extends downward to the outer side of the high baffle 3 and is mounted with a pushing mechanism that penetrates the high baffle 3;

[0020] Based on the above, the conveyor belt 2 is supported by the equipment bracket 1 and is responsible for transporting packages. The high baffle 3 and the low baffle 4 are located on both sides of the conveyor belt 2. The high baffle 3 provides vertical limiting to prevent packages from shifting. The low baffle 4 is lower in height, which facilitates the installation of logistics channel components and the sliding of packages.

[0021] Furthermore, the suspension baffle 5 is connected to the logistics channel component via the snap-fit ​​groove 6. The meandering structure of the snap-fit ​​groove 6 allows the logistics channel component to be inserted and slid horizontally via the hook-shaped connecting plate 10, enabling dynamic adjustment of the sorting path;

[0022] The support plate 8 and the upright plate 9 are fixed position adjustment components. The lateral position of the pushing mechanism is controlled by the position adjustment components to ensure that the push plate 24 is aligned with the target logistics channel.

[0023] The logistics channel component includes a hook-shaped connecting plate 10 that is inserted into a snap-fit ​​groove 6. The end of the connecting plate 10 extends toward the side away from the low baffle 4, and an inclined channel tube 11 is installed at the end of the connecting plate 10 away from the low baffle 4.

[0024] Based on the above, the connecting plate 10 cooperates with the snap-fit ​​groove 6. After the hook-shaped connecting plate 10 is inserted into the snap-fit ​​groove 6, it is fixed by friction or mechanical locking, while allowing horizontal movement along the groove. During movement, the position of the channel tube 11 is adjusted accordingly. Corresponding to different sorting destinations, the channel tube 11 guides the package. The inclined design of the channel tube 11 allows the package to slide naturally into the collection box 7 under the action of the push plate 24. Its bottom fits against the edge of the low baffle 4 to prevent the package from getting stuck when it slides down.

[0025] The bottom of the channel tube 11 near the low baffle 4 is attached to the edge of the top of the low baffle 4. A top plate 12 extending toward the high baffle 3 is installed on the top of the channel tube 11 near the low baffle 4. A grating disk 13 that cooperates with the position adjustment component is installed on the top plate 12. The collection box 7 is fixedly installed at the bottom of the channel tube 11.

[0026] Based on the above, the channel tube 11 is attached to the top edge of the low baffle 4. When the pushing mechanism pushes the package, it can directly push the package into the inside of the channel tube 11. The top plate 12 is located above, preventing the package from flying out of the channel tube 11 under force, thus ensuring accurate sorting of the package.

[0027] The position adjustment component includes a first connecting rod 14 and a screw 15 connected between the top ends of the upright plate 9. The first connecting rod 14 is located above the screw 15. A plurality of first sleeves 16 are sleeved on the outside of the first connecting rod 14. The screw 15 is sleeved on the outside of the same number of second sleeves 17 as the first sleeves 16. A positioning plate 18 is connected between the first sleeves 16 and the second sleeves 17.

[0028] The end of the second sleeve 17 is fitted with a bearing 19 that is sleeved on the outside of the screw 15 and does not contact the surface of the screw 15. The end of the bearing 19 is connected to a screw tube 20 that is sleeved on the outside of the screw 15 and cooperates with the screw 15. The outside of the screw tube 20 is prismatic.

[0029] Based on the above, by rotating the screw tube 20, it moves outside the screw 15 through the bearing 19, thereby driving the second sleeve 17 to move outside the screw 15. The second sleeve 17 pulls the first sleeve 16 to move outside the first connecting rod 14 through the positioning plate 18. The first sleeve 16 and the first connecting rod 14 cooperate to limit the angle of the second sleeve 17. During the movement of the second sleeve 17, it drives the pushing mechanism below it to move, so that the pushing mechanism can be aligned with the logistics channel component on one side of the low baffle 4, and send the pushed package into the different logistics channel components.

[0030] The pushing mechanism includes a second connecting rod 21 fixed at the bottom of the second sleeve 17 and a servo push rod 22 installed at the bottom of the second connecting rod 21. A position sensor 23 that cooperates with the grating disk 13 is installed on the outer wall of the second connecting rod 21, and a push plate 24 is installed on the output shaft of the servo push rod 22.

[0031] The high baffle 3 has a through slot 25, and the output shaft of the servo push rod 22 passes through the high baffle 3 through the slot 25. The push plate 24 is located at the edge above the conveyor belt 2.

[0032] Based on the above, after receiving the command from the control system, the servo push rod 22 drives the push plate 24 to extend and retract in the vertical direction. When the push plate 24 extends, it pushes the package on the conveyor belt 2 laterally into the target channel tube 11. The position sensor 23 monitors the position of the second connecting rod 21 in real time, and together with the grating disk 13, forms a closed-loop feedback to ensure that the alignment accuracy between the push plate 24 and the inlet of the channel tube 11 reaches the millimeter level.

[0033] Furthermore, the slot 25 of the high baffle 3 provides room for the servo push rod 22 and the push plate 24 to move, avoiding interference between the push plate 24 and the baffle when it moves. The push plate 24 is located at the edge of the conveyor belt 2 and can push the package away from the belt with only a short stroke, reducing sorting time and improving efficiency.

[0034] Based on the above, during operation, packages are transported via conveyor belt 2 at the top of equipment bracket 1. Suspension baffle 5 and locking slot 6 on the outer side of low baffle 4 are used to install movable logistics channel components. These components are inserted into the locking slot 6 of suspension baffle 5 via hook-shaped connecting plates 10 and can move horizontally within the slot to adjust their position. Each logistics channel component is connected to an inclined channel tube 11 at its end, with a collection box 7 fixed at its bottom. The channel tube 11 fits snugly against the edge of low baffle 4, ensuring that sorted items slide smoothly into the collection box 7. The position adjustment component adjusts the position of the second sleeve 17, driving the pushing mechanism to move laterally. The grating disk 13, in conjunction with the position sensor 23, provides real-time position feedback, ensuring that the push plate 24 of the servo push rod 22 is precisely aligned with the target logistics channel. When a package reaches the designated position, the servo push rod 22 drives the push plate 24 to push the package laterally into the corresponding channel tube 11, ultimately sliding into the collection box 7 to complete the sorting process.

[0035] The screw 15 of the position adjustment component works in conjunction with the first connecting rod 14. The external prismatic design of the screw tube 20 facilitates rotation. By rotating the screw tube 20, the second sleeve 17 is driven to move along the screw 15, realizing multi-point adjustment of the pushing mechanism to adapt to different sorting needs.

[0036] Furthermore, this practical logistics channel component can be quickly installed, disassembled, and moved via the snap-fit ​​slot 6, supporting dynamic adjustment of the sorting path to adapt to different package sizes and sorting scenarios, significantly improving sorting efficiency and accuracy. At the same time, the pushing mechanism is integrated on the outside of the bracket to avoid occupying the conveyor belt working area.

[0037] Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. All other embodiments obtained by those skilled in the art and related fields based on the embodiments of this utility model without creative effort should fall within the protection scope of this utility model. Structures, devices, and operating methods not specifically described and explained in this utility model, unless otherwise specified or limited, shall be implemented according to conventional means in the art.

Claims

1. A modular logistics sorting device, comprising a device support frame, with a conveyor belt mounted on the top of the device support frame, characterized in that, High baffles and low baffles are respectively provided on both sides of the conveyor belt in the conveying direction. A hanging baffle is installed on the outer wall of the low baffle. The edge of the hanging baffle extends upward and then meanders towards the low baffle to form a locking groove. Several logistics channel components matching the locking groove are provided on the outer side of the hanging baffle. The logistics channel components move back and forth on the hanging baffle. The bottom end of the logistics channel component is connected to a collection box. A support plate is installed on the outer wall of the high baffle. A vertical plate is installed on the surface of each end of the support plate. A position adjustment component is connected between the tops of the vertical plates. The position adjustment component extends downward to the outer side of the high baffle and is equipped with a pushing mechanism that penetrates the high baffle.

2. A modular piece goods sorting system according to claim 1 wherein: The logistics channel component includes a hook-shaped connecting plate that is inserted into a snap-fit ​​groove. The end of the connecting plate extends toward the side away from the low baffle, and an inclined channel tube is installed at the end of the connecting plate away from the low baffle.

3. A modular piece goods sorting system according to claim 2 wherein: The bottom of the channel tube near the low baffle is attached to the edge of the top of the low baffle. The top of the channel tube near the low baffle is equipped with a top plate extending toward the high baffle. A grating disk that cooperates with the position adjustment component is installed on the top plate. The collection box is fixedly installed at the bottom end of the channel pipe.

4. The modular piece sorting system of claim 1 wherein: The position adjustment component includes a first connecting rod and a screw connected between the top ends of the upright plate. The first connecting rod is located above the screw. A plurality of first sleeves are sleeved on the outside of the first connecting rod. The screw is sleeved on the outside of the same number of second sleeves as the first sleeves. A positioning plate is connected between the first sleeves and the second sleeves.

5. A modular piece goods sorting system according to claim 4 wherein: The end of the second sleeve is fitted with a bearing that is sleeved on the outside of the screw and does not contact the surface of the screw. The end of the bearing is connected to a screw tube that is sleeved on the outside of the screw and mates with the screw. The outside of the screw tube is prismatic.

6. A modular piece goods sorting system according to claim 4 wherein: The pushing mechanism includes a second connecting rod fixed to the bottom of the second sleeve and a servo push rod installed at the bottom end of the second connecting rod. A position sensor that cooperates with the grating disk is installed on the outer wall of the second connecting rod, and a push plate is installed on the output shaft of the servo push rod.

7. A modular piece goods sorting system according to claim 6 wherein: The high baffle plate has a through slot, through which the servo push rod output shaft passes. The push plate is located at the edge above the conveyor belt.