Logistics sorting equipment

By using a rotary sorting system, the problem of low sorting efficiency for large packages has been solved, achieving efficient sorting, extending equipment lifespan, and reducing operating costs.

CN119549407BActive Publication Date: 2025-11-14SUZHOU TONGGUANG LOGISTICS CO LTD
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Patent Information

Application Number
CN202411888142.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-12-20
Publication Date
2025-11-14
Estimated Expiration
2044-12-20

AI Technical Summary

Technical Problem

Existing sorting equipment is unable to efficiently handle large packages with significant weight differences, resulting in low sorting efficiency and equipment damage. Furthermore, specialized equipment is expensive and requires manual operation.

Method used

Logistics sorting equipment that adopts a rotary sorting method reduces the force of the sorting process and uses conveyor belts and feeding components to separate packages according to their weight, thus achieving the sorting of light and heavy packages.

Benefits of technology

It improved sorting efficiency, extended equipment lifespan, reduced operating costs, and decreased reliance on specialized equipment and manpower.

✦ Generated by Eureka AI based on patent content.

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Abstract

This invention discloses a logistics sorting device, including a frame, an outer baffle, a conveying assembly, a feeding assembly, an outer fixing plate, and an upper conveying assembly. The outer baffle is mounted on the frame, and the conveying assembly is also mounted on the frame. The conveying assembly is used to transport packages to be sorted. The conveying assembly includes a conveyor shaft, a conveyor belt, a separating mechanism, and stops. The conveyor shaft is rotatably mounted on the frame, the conveyor belt is mounted on the conveyor shaft, multiple sets of separating mechanisms are movably mounted on the conveyor belt, and multiple sets of stops are linearly arrayed on the conveyor belt. The feeding assembly is rotatably mounted on the outer baffle, the outer fixing plate is mounted on the outer baffle, and the upper conveying assembly is movably mounted on the outer fixing plate. Therefore, a rotary sorting method is used to sort heavier packages. Rotary sorting reduces stress and extends service life, speeds up sorting efficiency, and reduces operating costs.
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Description

Technical Field

[0001] This invention relates to the technical field of logistics, and more particularly to a logistics sorting device. Background Technology

[0002] Logistics is a comprehensive process designed to meet customer needs at the most economical cost, encompassing the planning, implementation, and management of everything from raw materials and semi-finished products to finished products and related information from the point of origin to the point of consumption. This process includes not only the transportation, warehousing, packaging, handling, and distribution processing of goods, but also complex logistics information management.

[0003] Logistics sorting is a crucial step in this process, involving the classification, organization, and stacking of various items according to established rules and requirements. Sorting is the cornerstone of a sound distribution system and supports efficient delivery, and it is also an indispensable part of improving service quality and economic efficiency for distribution companies.

[0004] In traditional sorting equipment applications, all packages are initially transported centrally. However, for packages with significant weight variations, especially large and difficult-to-handle items, their size and weight often exceed the processing capacity of ordinary sorting equipment. This can lead to not only low sorting efficiency but also damage to the equipment. Therefore, large packages typically require manual sorting or the use of specially designed sorting equipment, such as heavy-duty cross-belt sorting systems or narrow-belt sorters. However, these specialized equipment are not only expensive but also require dedicated space and professional operators, increasing the overall operational investment. Summary of the Invention

[0005] The present invention aims to at least partially solve one of the technical problems in the related art.

[0006] Therefore, the purpose of this invention is to provide a logistics sorting device that uses a rotary sorting method to sort heavier packages. The rotary sorting method reduces the stress and extends the service life, speeds up the sorting efficiency, and reduces operating costs.

[0007] To achieve the above objectives, the present invention proposes a logistics sorting device, comprising a frame, an outer baffle, a conveying assembly, a feeding assembly, an outer fixing plate, and an upper conveying assembly. The outer baffle is mounted on the frame; the conveying assembly is mounted on the frame and is used to convey packages to be sorted. The conveying assembly includes a conveyor shaft, a conveyor belt, a separating mechanism, and stops. The conveyor shaft is rotatably mounted on the frame; the conveyor belt is mounted on the conveyor shaft; multiple sets of separating mechanisms are movably mounted on the conveyor belt; multiple sets of stops are linearly arrayed on the conveyor belt; the feeding assembly is rotatably mounted on the outer baffle and is used to convey goods of different weights to different heights for separate transport; the outer fixing plate is mounted on the outer baffle; and the upper conveying assembly is movably mounted on the outer fixing plate.

[0008] The logistics sorting equipment of the present invention adopts a rotary sorting method to sort heavier packages. Rotary sorting reduces the stress and extends the service life, speeds up sorting efficiency, and reduces operating costs.

[0009] In addition, the logistics sorting equipment proposed in the application may also have the following additional technical features:

[0010] Specifically, the feeding assembly includes a transmission mechanism, a feeding mechanism, a support plate, and an outer convex pressure plate, wherein the transmission mechanism is rotatably mounted on the outer baffle; the feeding mechanism is in multiple sets, and the multiple sets of feeding mechanisms are arranged in a circular array on the transmission mechanism; the support plate is mounted on the feeding mechanism; and the outer convex pressure plate is mounted on the support plate.

[0011] Specifically, the feeding mechanism includes a conveyor roller, a conveyor belt, and a driven member. The conveyor roller is rotatably mounted on the frame; the conveyor belt is sleeved on the conveyor roller; the driven member is mounted on the conveyor roller and includes an outer frame, a top plate, a driving component, a pressure sensor, a base plate, a buffer component, a connecting frame, and a receiving plate. The outer frame is mounted on the conveyor roller; the top plate is movably mounted on the outer frame; the driving component is mounted inside the outer frame; the base plate is mounted on the top wall of the fixed end of the driving component; the pressure sensor is mounted on the base plate; the two ends of the buffer component are respectively connected to the base plate and the top plate; the connecting frame is mounted at the output end of the driving component; and the receiving plate is mounted on the connecting frame.

[0012] Specifically, the upper conveying assembly includes an upper feeding mechanism, a fixed shaft, a support rod, and a limiting mechanism. The upper feeding mechanism is rotatably mounted on the frame; the fixed shaft is mounted on the upper feeding mechanism; the support rod is mounted on the fixed shaft and is in contact with the outer convex pressure plate; the limiting mechanism is mounted on the upper feeding mechanism and is movably mounted on the outer fixed plate.

[0013] Specifically, the limiting mechanism includes a fixed plate, a reset component, and a partition plate, wherein the fixed plate is disposed on the fixed shaft and is movably disposed on the outer fixed plate; the partition plate is disposed on the outer fixed plate; and the two ends of the reset component are respectively connected to the fixed plate and the partition plate.

[0014] Specifically, the transmission mechanism includes a second driving component, a rotating shaft, an outer ring, and an inner guide member, wherein the second driving component is disposed on the outer baffle; the rotating shaft is disposed at the output end of the second driving component; the outer ring is disposed on the rotating shaft; and the inner guide member is rotatably disposed on the outer ring.

[0015] Specifically, the inner guide includes an inner collar, a guide component, and an outer layer, wherein the inner collar is rotatably disposed on the outer collar; the guide component is disposed on the inner collar; and the outer layer is disposed covering the inner collar.

[0016] Specifically, the separating mechanism includes a hollow frame, a bottom frame, a buffer rod, an elastic component, and a movable partition. The hollow frame is disposed on the conveyor belt; the bottom frame is disposed on the bottom wall of the hollow frame; the buffer rod is movably disposed within the bottom frame; the two ends of the elastic component are respectively connected to the buffer rod and the bottom frame; the movable partition is disposed on the top wall of the buffer rod and is movably disposed within the hollow frame.

[0017] Additional aspects and advantages of the invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0018] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the following description of the embodiments taken in conjunction with the accompanying drawings, wherein:

[0019] Figure 1 This is a schematic diagram of the structure of the present invention;

[0020] Figure 2 This is a schematic diagram of the upper conveying component structure of the present invention;

[0021] Figure 3This is a schematic diagram of the feeding mechanism of the present invention;

[0022] Figure 4 This is a schematic diagram of the driven component structure of the present invention;

[0023] Figure 5 This is a schematic diagram of the transmission mechanism structure of the present invention;

[0024] Figure 6 This is a schematic diagram of the internal guide structure of the present invention;

[0025] Figure 7 This is a schematic diagram of the conveying component structure of the present invention;

[0026] Figure 8 This is a schematic diagram of the separation mechanism of the present invention.

[0027] As shown in the figure: 10. Outer baffle; 20. Conveying assembly; 201. Conveying shaft; 202. Conveyor belt; 203. Separating mechanism; 2031. Hollow frame; 2032. Bottom frame; 2033. Buffer rod; 2034. Elastic component; 2035. Movable partition; 204. Stop block; 30. Feeding assembly; 301. Conduction mechanism; 3011. Drive component two; 3012. Rotating shaft; 3013. Outer ring; 3014. Inner guide component; 30141. Inner ring; 30142. Guide component; 30143. Outer layer; 302. Feeding mechanism; 3021. 3022 Conveyor roller; 3023 Driven component; 30231 Outer frame; 30232 Top plate; 30233 Drive component; 30234 Pressure sensor; 30235 Base plate; 30236 Buffer component; 30237 Connecting frame; 30238 Receiving plate; 303 Support plate; 304 Outer convex pressure plate; 40 Outer fixing plate; 50 Upper conveying assembly; 501 Upper feeding mechanism; 502 Fixed shaft; 503 Support rod; 504 Limiting mechanism; 5041 Fixed plate; 5042 Reset component; 5043 Partition plate. Detailed Implementation

[0028] Embodiments of the present invention are described in detail below, examples of which are illustrated in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the invention, and should not be construed as limiting the invention. Rather, embodiments of the invention include all variations, modifications, and equivalents falling within the spirit and scope of the appended claims.

[0029] The logistics sorting equipment of the present invention will now be described with reference to the accompanying drawings.

[0030] like Figure 1-8As shown, the logistics sorting equipment of this embodiment includes a frame, an outer baffle 10, a conveying assembly 20, a feeding assembly 30, an outer fixing plate 40, and an upper conveying assembly 50.

[0031] The outer baffle 10 is mounted on the frame, and the conveying assembly 20 is mounted on the frame. The conveying assembly 20 is used to convey packages to be sorted. The conveying assembly 20 includes a conveying shaft 201, a conveyor belt 202, a separating mechanism 203, and a stop block 204.

[0032] It should be noted that the racks are installed in the logistics sorting plant, and the rack setup is determined based on the size of the plant and the direction of the logistics during sorting and conveying.

[0033] The conveyor shaft 201 is rotatably mounted on the frame, the conveyor belt 202 is mounted on the conveyor shaft 201, there are multiple sets of separating mechanisms 203, which are movably mounted on the conveyor belt 202 respectively, and there are multiple sets of stop blocks 204, which are linearly arrayed on the conveyor belt 202.

[0034] It should be noted that stepper motors are installed at the positions of each conveying assembly 20 and upper conveying assembly 50 on the frame. The output end of the stepper motor is connected to the conveyor shaft 201 via a reducer. By connecting the stepper motor to the power supply via a control switch, the stepper motor is operated, which in turn drives the conveyor belt 202 to rotate via the conveyor shaft 201, thereby moving the packages to be sorted on the conveyor belt 202. The materials on the conveyor belt 202 are separated and transported by the separating mechanism 203, while heavy and large materials are transported as a whole.

[0035] The feeding assembly 30 is rotatably mounted on the outer baffle 10. The feeding assembly 30 is used to transport goods of different weights to different heights for separate transport. The outer fixed plate 40 is mounted on the outer baffle 10, and the upper conveying assembly 50 is movably mounted on the outer fixed plate 40.

[0036] It should be noted that if the feeding component 30 is located close to the conveying component 20, the logistics will fall onto the feeding component 30 during the conveying process, and the feeding component 30 will convey the package to the conveying component 20 and the upper conveying component 50 respectively according to the weight of the package.

[0037] Specifically, the sorting process for logistics is as follows: Packages are conveyed on conveyor assembly 20, where smaller, lighter packages are separated by a separating mechanism 203, while heavier, larger packages are pressed together on the separating mechanism 203 and conveyed as a whole. When a package is conveyed to feeding assembly 30, the feeding assembly 30 rotates, and during this rotation, the material is conveyed to conveyor assembly 20 on the other side and upper conveyor assembly 50 according to the weight of the package, thereby sorting and outputting packages of different weights.

[0038] In one embodiment of the present invention, such as Figure 2 As shown, the feeding assembly 30 includes a transmission mechanism 301, a feeding mechanism 302, a support plate 303, and an outer convex pressure plate 304.

[0039] The transmission mechanism 301 is rotatably mounted on the outer baffle 10. Multiple sets of feeding mechanisms 302 are arranged in a circular array on the transmission mechanism 301. A support plate 303 is mounted on the feeding mechanism 302, and an outer convex pressure plate 304 is mounted on the support plate 303.

[0040] It should be noted that the transmission mechanism 301 described in this embodiment rotates on the outer baffle 10, causing the feeding mechanism 302 to rotate accordingly. The package rotates with the feeding mechanism 302, and during the rotation, the package is transferred to and transported to the conveying components at different heights according to its different weight.

[0041] In one embodiment of the present invention, such as Figure 3 and Figure 4 As shown, the feeding mechanism 302 includes a conveyor roller 3021, a conveyor belt 3022, and a driven member 3023.

[0042] The conveyor roller 3021 is rotatably mounted on the frame, the conveyor belt 3022 is sleeved on the conveyor roller 3021, and the driven member 3023 is mounted on the conveyor roller 3021.

[0043] It should be noted that the conveyor roller 3021 is equipped with rollers that cooperate with the conveyor belt 3022. The conveyor belt 3022 is fitted onto the surface of the rollers and is kept taut. There are two sets of conveyor belts 3022, and the size of the two sets of conveyor belts 3022 is equal to half that of the conveyor belt 202. Light and small goods are moved and continue to be conveyed on the conveyor belts 3022.

[0044] The driven component 3023 includes an outer frame 30231, a top plate 30232, a drive component 30233, a pressure sensor 30234, a base plate 30235, a buffer component 30236, a connecting frame 30237, and a receiving plate 30238.

[0045] The outer frame 30231 is mounted on the conveying roller 3021, the top plate 30232 is movably mounted on the outer frame 30231, the driving component 30233 is mounted inside the outer frame 30231, and the base plate 30235 is mounted on the top wall of the fixed end of the driving component 30233. A pressure sensor 30234 is mounted on the base plate 30235, the two ends of the buffer component 30236 are respectively connected to the base plate 30235 and the top plate 30232, the connecting frame 30237 is mounted on the output end of the driving component 30233, and the receiving plate 30238 is mounted on the connecting frame 30237.

[0046] It should be noted that when a small, lightweight package moves onto the top plate 30232, its light weight prevents it from pressing down on the top plate 30232. However, a heavier package, exceeding the preset support capacity of the top plate 30232, will press against the pressure sensor 30234 during its downward movement. At this time, the drive unit 30233, a hydraulic cylinder connected to a control switch and power supply, moves the connecting frame 30237 downward. During the downward movement of the connecting frame 30237, the receiving plate 30238 also moves downward. As the subsequent transmission mechanism 301 rotates, the heavy object falls onto the front feeding mechanism 302.

[0047] In one embodiment of the present invention, such as Figure 2 As shown, the upper conveying assembly 50 includes an upper feeding mechanism 501, a fixed shaft 502, a support rod 503, and a limiting mechanism 504.

[0048] The upper feeding mechanism 501 is rotatably mounted on the frame, and the fixed shaft 502 is mounted on the upper feeding mechanism 501. The support rod 503 is mounted on the fixed shaft 502, and the support rod 503 is in contact with the outer convex pressure plate 304. The limiting mechanism 504 is mounted on the upper feeding mechanism 501, and the limiting mechanism 504 is movably mounted on the outer fixed plate 40.

[0049] It should be noted that the upper feeding mechanism 501 and the conveying assembly 20 have the same structure, while the support rod 503 is inclined, and the inclination angle of the support rod 503 is set according to the length of the conveyor belt 3022 on the feeding mechanism 302. During the rotation of the conveying assembly 20, the support rod 503 is connected by the outer convex pressure plate 304, and the limiting mechanism 504 moves at the upper limit of the outer fixed plate 40, thus pushing the upper feeding mechanism 501 to move. This ensures that the feeding mechanism 302 will not collide with the upper feeding mechanism 501 when it rotates.

[0050] In one embodiment of the present invention, such as Figure 2 As shown, the limiting mechanism 504 includes a fixed plate 5041, a reset component 5042, and a partition 5043.

[0051] The fixed plate 5041 is mounted on the fixed shaft 502 and is movably mounted on the outer fixed plate 40. The partition plate 5043 is mounted on the outer fixed plate 40. The two ends of the reset component 5042 are respectively connected to the fixed plate 5041 and the partition plate 5043.

[0052] It should be noted that the fixed plate 5041 is equipped with a slider, while the outer fixed plate 40 is equipped with a groove. The slider slides within the groove, thus limiting the movement of the fixed plate 5041 on the outer fixed plate 40, facilitating the limited movement of the upper feeding mechanism 501. The reset component 5042 is a reset spring. After the support rod 503 and the outer convex pressure plate 304 disengage, the upper feeding mechanism 501 is reset via the reset component 5042.

[0053] In one embodiment of the present invention, such as Figure 5 and Figure 6 As shown, the transmission mechanism 301 includes a drive component 3011, a rotating shaft 3012, an outer ring 3013, and an inner guide component 3014.

[0054] Among them, the second driving component 3011 is disposed on the outer baffle 10, the rotating shaft 3012 is disposed on the output end of the second driving component 3011, the outer ring 3013 is disposed on the rotating shaft 3012, and the inner guide 3014 is rotatably disposed on the outer ring 3013.

[0055] It should be noted that the second drive component 3011 is a drive motor. The output end of the second drive component 3011 is connected to the rotating shaft 3012 through a reducer. When the second drive component 3011 is running, it drives the outer ring 3013 to rotate through the rotating shaft 3012. The inner guide 3014 rotates on the outer ring 3013, so the heavy object slides onto the feeding mechanism 302 in front through the inner guide 3014 during the conveying process.

[0056] In one embodiment of the present invention, such as Figure 6 As shown, the inner guide 3014 includes an inner collar 30141, a guide component 30142, and an outer layer 30143.

[0057] The inner collar 30141 is rotatably mounted on the outer collar 3013, the guide component 30142 is mounted on the inner collar 30141, and the outer layer 30143 is mounted on the inner collar 30141.

[0058] It should be noted that the inner ring 30141 described in this embodiment has a through hole, through which the rotating shaft 3012 passes. The guide component 30142 is a cylindrical slide rod, and an annular groove is provided on the outer ring 3013, in which the guide component 30142 slides in a limited manner. The outer layer 30143 is a rubber sleeve, so when a heavier package slips, it slides stably onto the feeding mechanism 302 through the rubber sleeve.

[0059] In one embodiment of the present invention, such as Figure 7 and Figure 8 As shown, the partition mechanism 203 includes a hollow frame 2031, a bottom frame 2032, a buffer rod 2033, an elastic component 2034, and a movable partition 2035.

[0060] The hollow frame 2031 is mounted on the conveyor belt 202, the bottom frame 2032 is mounted on the bottom wall of the hollow frame 2031, and the buffer rod 2033 is movably mounted inside the bottom frame 2032. The two ends of the elastic component 2034 are connected to the buffer rod 2033 and the bottom frame 2032 respectively, and the movable partition 2035 is mounted on the top wall of the buffer rod 2033 and is movably mounted inside the hollow frame 2031.

[0061] It should be noted that the hollow frame 2031 is located on the conveyor belt 202, and the opening of the hollow frame 2031 and the top wall of the conveyor belt 202 are at the same horizontal plane. When a heavy package is placed on the conveyor belt 202, the buffer rod 2033 is pressed down and pressed into the hollow frame 2031, thus ensuring that the package placed flat on the conveyor belt 202 is transported smoothly.

[0062] Specifically, the sorting process for logistics parcels is as follows: Parcels to be sorted are placed on conveyor belt 202. Lighter and smaller parcels are separated by the separating mechanism 203, while heavier and larger parcels are pressed onto conveyor belt 202. The weight of the parcels presses the movable partition 2035 into the hollow frame 2031, allowing the heavier parcels to lie flat on conveyor belt 202 and ensuring stable transport. Subsequently, the parcels move onto conveyor belt 3022 during transport, triggering the second drive component 3011. Drive component 3011 rotates the outer ring 3013, simultaneously rotating the support plate 303 and conveyor belt 3022, causing the parcels to rotate accordingly. Lighter and smaller parcels fall onto receiving plate 30238 during rotation. After rotation, receiving plate 30238 cooperates with the upper conveying assembly 50, and the lighter and smaller parcels move onto the upper feeding mechanism 501 for continued transport.

[0063] During the conveying process, when the heavy and large package is conveyed onto the conveyor belt 3022, it is pressed against the driven member 3023. Then, the top plate 30232 is pressed down and pushed into the outer frame 30231. When the top plate 30232 moves down, it presses against the top wall of the pressure sensor 30234. Subsequently, the drive component 30233 runs and drives the connecting frame 30237 to move down. The connecting frame 30237 drives the receiving plate 30238 to retract. During the rotation of the heavy and large package, it slides onto the feeding mechanism 302 in front through the inner guide member 3014.

[0064] Subsequently, during continuous rotation, the outwardly protruding pressure plate 304 on the feeding mechanism 302 abuts against the support rod 503. As the feeding mechanism 302 rotates, it pushes the upper feeding mechanism 501, preventing the feeding mechanism 302 from colliding with it. Then, the feeding mechanism 302 rotates and cooperates with the conveying assembly 20 on the other side, allowing heavy and large packages to be conveyed on the other side's conveying assembly 20. This separates and conveys light and small packages from heavy ones, effectively improving sorting efficiency.

[0065] In summary, the logistics sorting equipment of this invention adopts a rotary sorting method to sort heavier packages. Rotary sorting reduces stress and extends service life, speeds up sorting efficiency, and reduces operating costs.

[0066] Although embodiments of the present invention have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of the present invention.

Claims

1. A logistics sorting device, characterized in that, It includes a frame, an outer baffle (10), a conveying assembly (20), a feeding assembly (30), an outer fixing plate (40), and an upper conveying assembly (50), wherein, The outer baffle (10) is disposed on the frame; The conveying assembly (20) is mounted on the frame and is used to convey packages to be sorted. The conveying assembly (20) includes a conveyor shaft (201), a conveyor belt (202), a separating mechanism (203), and stops (204). The transmission shaft (201) is rotatably mounted on the frame; The conveyor belt (202) is mounted on the transmission shaft (201); The separating mechanism (203) is in multiple sets, and the multiple sets of the separating mechanism (203) are respectively movably arranged on the conveyor belt (202); The stop blocks (204) are in multiple sets, and the multiple sets of stop blocks (204) are arranged in a linear array on the conveyor belt (202); The feeding assembly (30) is rotatably mounted on the outer baffle (10), and the feeding assembly (30) is used to transport goods of different weights to different heights for separate transport; The feeding assembly (30) includes a feeding mechanism (302) mounted on the frame. The feeding mechanism (302) includes a conveyor roller (3021), a conveyor belt (3022), and a driven member (3023). The conveying roller (3021) is rotatably mounted on the frame; The conveyor belt (3022) is fitted onto the conveyor roller (3021); The driven member (3023) is disposed on the conveying roller (3021), and the driven member (3023) includes an outer frame (30231), a top plate (30232), a driving component (30233), a pressure sensor (30234), a base plate (30235), a buffer component (30236), a connecting frame (30237), and a receiving plate (30238), wherein, The outer frame (30231) is mounted on the conveying roller (3021); The top plate (30232) is movably mounted on the outer frame (30231); The drive component (30233) is disposed within the outer frame (30231); The substrate (30235) is disposed on the top wall of the fixed end of the driving component (30233); The pressure sensor (30234) is disposed on the substrate (30235); The buffer component (30236) is connected to the base plate (30235) and the top plate (30232) at its two ends respectively. The connecting frame (30237) is disposed at the output end of the driving component (30233); The receiving plate (30238) is disposed on the connecting frame (30237); The outer fixing plate (40) is disposed on the outer baffle (10); The upper conveying assembly (50) is movably mounted on the outer fixing plate (40).

2. The logistics sorting equipment according to claim 1, characterized in that, The feeding assembly (30) includes a transmission mechanism (301), a feeding mechanism (302), a support plate (303), and an outer convex pressure plate (304), wherein, The transmission mechanism (301) is rotatably mounted on the outer baffle (10); The feeding mechanism (302) is in multiple sets, and the multiple sets of feeding mechanisms (302) are arranged in a ring array on the transmission mechanism (301); The support plate (303) is disposed on the feeding mechanism (302); The external convex pressure plate (304) is disposed on the support plate (303).

3. The logistics sorting equipment according to claim 2, characterized in that, The upper conveying assembly (50) includes an upper feeding mechanism (501), a fixed shaft (502), a support rod (503), and a limiting mechanism (504), wherein, The upper feeding mechanism (501) is rotatably mounted on the frame; The fixed shaft (502) is mounted on the upper feeding mechanism (501); The support rod (503) is mounted on the fixed shaft (502), and the support rod (503) and the outer convex pressure plate (304) are in abutting connection. The limiting mechanism (504) is disposed on the upper feeding mechanism (501), and the limiting mechanism (504) is movably disposed on the outer fixing plate (40).

4. The logistics sorting equipment according to claim 3, characterized in that, The limiting mechanism (504) includes a fixed plate (5041), a reset component (5042), and a partition (5043), wherein, The fixed plate (5041) is disposed on the fixed shaft (502), and the fixed plate (5041) is movably disposed on the outer fixed plate (40); The partition (5043) is disposed on the outer fixing plate (40); The two ends of the reset component (5042) are respectively connected to the fixed plate (5041) and the partition plate (5043).

5. The logistics sorting equipment according to claim 2, characterized in that, The transmission mechanism (301) includes a second drive component (3011), a rotating shaft (3012), an outer ring (3013), and an inner guide component (3014), wherein, The second driving component (3011) is disposed on the outer baffle (10); The rotating shaft (3012) is located at the output end of the second drive component (3011); The outer ring (3013) is disposed on the rotating shaft (3012); The inner guide (3014) is rotatably disposed on the outer ring (3013).

6. The logistics sorting equipment according to claim 5, characterized in that, The inner guide (3014) includes an inner collar (30141), a guide component (30142), and an outer layer (30143), wherein, The inner collar (30141) is rotatably disposed on the outer collar (3013); The guide component (30142) is disposed on the inner collar (30141); The outer layer (30143) is disposed on the inner collar (30141).

7. The logistics sorting equipment according to claim 1, characterized in that, The partition mechanism (203) includes a hollow frame (2031), a bottom frame (2032), a buffer rod (2033), an elastic component (2034), and a movable partition (2035), wherein, The hollow frame (2031) is disposed on the conveyor belt (202); The bottom frame (2032) is disposed on the bottom wall of the hollow frame (2031); The buffer rod (2033) is movably disposed within the bottom frame (2032); The two ends of the elastic component (2034) are respectively connected to the buffer rod (2033) and the bottom frame (2032). The movable partition (2035) is disposed on the top wall of the buffer rod (2033), and the movable partition (2035) is movably disposed within the hollow frame (2031).

Citation Information

Patent Citations

  • Shell screening device

    CN110732486A

  • Mechanical device for material conveying

    CN209631562U