Material transportation box

The deformable outer protective structure and inner structure formed by the motor and gear assembly solve the problem of easy damage to the connection structure during the flipping process, realize efficient, safe and flexible material transportation, and improve the service life and operating efficiency of the equipment.

CN223421893UActive Publication Date: 2025-10-10XIANGCHENG JINSUI FLOUR CO LTD
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Patent Information

Application Number
CN202421793218.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-29
Publication Date
2025-10-10
Estimated Expiration
2034-07-29

AI Technical Summary

Technical Problem

During the tipping process of existing material conveying equipment, the connection structure between the bucket and the drive motor is prone to mechanical friction and vibration, and the outer structure is easily deformed, resulting in a shortened service life of the equipment.

Method used

The deformable outer protective structure formed by the motor and gear assembly includes a main gear rack, an auxiliary gear rack, a sweep plate and a multi-axis linkage mechanism. Precise control and multi-directional movement are achieved through a compound gear transmission system, and multi-level diversion and directional transportation are achieved in combination with an internal division structure.

Benefits of technology

It improves the safety of the flipping process and the stability of the equipment, reduces the risk of material leakage, enhances operational flexibility and maintenance convenience, and improves material conveying efficiency and adaptability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a material transport case which comprises a placement adaptation frame and a material containing hopper, a first sliding groove is formed in the front face of the upper end of the placement adaptation frame, a sliding plate is transversely arranged on the inner side of the first sliding groove, a transmission adaptation frame is arranged at the bottom end of the sliding plate, and a main servo motor assembly is arranged on the front face of the transmission adaptation frame. A driving shaft is arranged at the front end of the main servo motor assembly, a second sliding groove is formed in the back face of the upper end of the placement adaptation frame, and a clamping and adjusting structure is arranged at the upper end of the inner side of the placement adaptation frame, the sweeping plate is driven to rotate through the auxiliary rotating tooth frame, the sweeping plate is clamped on the inner side of the locking plate, and the aggregation clamping plate is clamped on the outer side of the locking plate; and at this time, the outer side of the containing hopper is clamped by the sweeping plate, the forward shaft plate and the lateral shaft plate to form a rectangular enclosure frame, so that when the containing hopper is turned over, the outer side edge of the containing hopper forms a protection structure by the forward shaft plate, the lateral shaft plate and the sweeping plate.
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Description

Technical Field

[0001] The utility model belongs to the field of flour production and processing, in particular to a material transport box. Background Art

[0002] Material handling equipment is a crucial piece of machinery used in every industry to transport and process a variety of materials. It plays a key role in power plants, substations, and other power facilities, primarily transporting raw materials and waste such as coal, ash, and ore. Common types of power material handling equipment include belt conveyors, bucket elevators, screw conveyors, pneumatic conveying equipment, scraper conveyors, vibrating conveyors, tube chain conveyors, bucket conveyors, buried scraper conveyors, and air chutes. Each type of equipment has its own unique characteristics. Belt conveyors are suitable for long-distance, high-volume conveying; bucket elevators are suitable for vertical conveying; screw conveyors offer a simple structure and good sealing; pneumatic conveying equipment is dust-free and hygienic; scraper conveyors are suitable for hot, abrasive materials; vibrating conveyors are easy to maintain; tube chain conveyors offer multiple loading and unloading points; bucket conveyors are suitable for large-particle materials; buried scraper conveyors are heat-resistant; and air chutes are component-free and easy to maintain. The use of these types of equipment significantly improves material handling efficiency and reduces labor costs, while ensuring safety and environmental protection. When selecting the appropriate conveying equipment, it is important to consider a variety of factors, including material characteristics, conveying distance, and environmental conditions, to achieve optimal material handling results.

[0003] When general material conveying equipment is in use, the material needs to be poured into a storage bin for storage after being transported. However, some flipping devices are driven by motors to flip, and the connection structure between the tipping bucket and the drive motor is prone to mechanical friction and vibration.

[0004] Therefore, the outer structure is generally more important between the dump bucket and the drive motor, but many outer structures are relatively simple, and most of them are welded from a single rigid component. Such a structure is very easy to deform after long-term use. Utility Model Content

[0005] In order to solve the above technical problems, the present invention provides a material transport box, which pioneers and implements a "deformable outer protective structure formed by a motor and a gear assembly" to solve the problems raised in the background technology.

[0006] A material transport box comprises an adapter frame and a hopper, wherein a first chute is provided on the front of the upper end of the adapter frame, a slide is provided laterally on the inner side of the first chute, a transmission adapter frame is provided at the bottom end of the slide, a main service motor assembly is provided on the front of the transmission adapter frame, a drive shaft is provided at the front end of the main service motor assembly, a second chute is provided on the back of the upper end of the adapter frame, a slide cylinder is provided laterally through the inner side of the second chute, and a card adjustment structure is provided at the upper end of the inner side of the adapter frame;

[0007] The adjusting structure includes a screw shaft, a side shaft plate, an auxiliary motor assembly, a main rotating gear frame, a sweep plate, an auxiliary rotating gear frame, a first movable rotating assembly, a forward shaft plate and a second movable rotating assembly, a forward shaft plate is provided on the outer side of the output end of the main serving motor assembly, side shaft plates are provided on both sides of the forward shaft plate, a screw shaft is movably provided at the connection between the side shaft plate and the forward shaft plate, one end of the side shaft plate is provided with a first movable rotating assembly, the outer side of the first movable rotating assembly is provided with an auxiliary rotating gear frame, the top of the auxiliary rotating gear frame is provided with a sweep plate, the back side of the slide cylinder is provided with a second movable rotating assembly, one end of the outer side of the second movable rotating assembly is fixedly provided with a main rotating gear frame, and the bottom end of the main rotating gear frame is provided with an auxiliary motor assembly;

[0008] A locking plate is provided on the back of the top end of the material hopper, a polymer clamping plate is provided on the front end of the locking plate, an inner groove is provided on the inner side of the polymer clamping plate, and an inner dividing structure is provided inside the material hopper.

[0009] Preferably, the main gear rack and the auxiliary gear rack are both semicircular in shape, and the main gear rack and the auxiliary gear rack have a small number of outer teeth to prevent the main gear rack and the auxiliary gear rack from being unable to detach from each other due to excessive tooth density.

[0010] Preferably, the slide cylinder and the second movable assembly are snap-fitted together, and a driving vertical rod is provided at the top of the attachment motor assembly. The driving vertical rod and the second movable assembly are sleeved together, which makes it convenient for the attachment motor assembly to drive the main rotating gear rack to rotate independently, and also makes it convenient for the second movable assembly and the slide cylinder to move horizontally while the second movable assembly drives the main rotating gear rack and the attachment motor assembly.

[0011] Preferably, the drive shaft and the forward shaft plate are connected to each other via a threaded structure, and the threaded structure is analogous to a nut and screw connection structure, which facilitates the connection between the forward shaft plate and the drive shaft.

[0012] Preferably, the inner sides of the side axis plates and the forward axis plates are provided with mounting grooves, the circumference formed by the mounting grooves being equal to the circumference of the outer side of the top of the hopper, so that the top part of the hopper can be stuck in the inner sides of the side axis plates and the forward axis plates.

[0013] Preferably, the forward shaft plate and the side shaft plate are connected at a semicircular portion, and a circular groove is arranged on the inner side of the connection portion of the forward shaft plate and the side shaft plate, so that the forward shaft plate and the side shaft plate can rotate relative to each other.

[0014] Preferably, the inner division structure comprises an embedded block, a first horizontal groove, a first distribution plate, a reversing groove, a second horizontal groove, a second distribution plate and a front groove, one side of the inner side of the material container is provided with the second horizontal groove, the other side of the inner side of the material container is provided with the first horizontal groove, one end of the first horizontal groove is provided with the second distribution plate, one end of the second horizontal groove is provided with the first distribution plate, the upper ends of the two ends of the first distribution plate and the second distribution plate are provided with the embedded block, the lower end of the back of the second distribution plate is provided with the front groove, one side of the inner side of the material container is provided with the reversing groove, and the width of the reversing groove is equal to the width of the front groove, so that the reversing groove and the front groove are prevented from being different in length.

[0015] Preferably, the first distribution plate and the second distribution plate are L-shaped, so that the first distribution plate and the second distribution plate can divide the space inside the material container.

[0016] Preferably, the position of the reversing groove is on the same straight line as the position of the front groove, so that the first distribution plate and the second distribution plate can be conveniently installed and assembled.

[0017] Compared with the prior art, the utility model has the advantages of the following:

[0018] 1、In use, the auxiliary motor assembly drives the main rotating gear frame to rotate, the main rotating gear frame drives the auxiliary rotating gear frame to rotate, the auxiliary rotating gear frame drives the sweeping plate to rotate, the sweeping plate is clamped in the inner side of the lock plate, the polymerization clamping plate is clamped in the outer side of the lock plate, and the outer side of the material container is clamped by the sweeping plate, the forward shaft plate and the side shaft plate to form a rectangular frame, so that the outer side edge of the material container is formed into a protection structure when the material container is turned over.

[0019] 2、In use, the auxiliary motor assembly drives the main rotating gear frame to rotate, the main rotating gear frame drives the auxiliary rotating gear frame to rotate, the auxiliary rotating gear frame drives the sweeping plate to rotate, so that the material container and the sweeping plate can be connected and separated continuously, and the outer side of the material container can be repaired or cleaned when the material container is not working.

[0020] 3、In use, the first horizontal groove, the second horizontal groove and the embedded block on the inner side of the material container form a sliding structure, and the first distribution plate, the second distribution plate and the embedded block are vertically clamped and connected, so that the first distribution plate and the second distribution plate divide the space inside the material container into three equal spaces, so that the materials in the material container are uniformly dispersed when being turned over and discharged, and the staff can arrange the materials.

[0021] 4. During use of the present invention, the reversing groove is snap-fitted to the bottom of the first dividing plate, and the front groove on the back of the second dividing plate is snap-fitted to the bottom of the first dividing plate. Thus, when the first dividing plate and the second dividing plate are reversed in their installation directions inside the hopper, the overall structure of the internal dividing structure can still be used. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 This is a schematic diagram of the first appearance structure of a specific embodiment of the utility model;

[0023] Figure 2 This is a second schematic diagram of the appearance structure of a specific embodiment of the utility model;

[0024] Figure 3 This is a third schematic diagram of the appearance structure of a specific embodiment of the utility model;

[0025] Figure 4 This is a fourth schematic diagram of the appearance structure of a specific embodiment of the utility model;

[0026] Figure 5 This is a fifth schematic diagram of the appearance structure of a specific embodiment of the utility model;

[0027] Figure 6 This is a sixth schematic diagram of the appearance structure of a specific embodiment of the present utility model;

[0028] Figure 7 This is a schematic diagram of a first material hopper in a specific embodiment of the present invention;

[0029] Figure 8 This is a schematic diagram of a second material hopper in a specific embodiment of the present invention;

[0030] Figure 9 This is a schematic diagram of a third material hopper in a specific embodiment of the present utility model;

[0031] Figure 10 Schematic diagram A of the internal structure of a specific embodiment of the present invention;

[0032] Figure 11 Schematic diagram B of a card adjustment structure of a specific embodiment of the present invention;

[0033] Figure 12 Schematic diagram C of a card adjustment structure of a specific implementation method of the utility model.

[0034] In the figure: 1. Placement adapter frame; 2. Slide plate; 3. Main service motor assembly; 4. Transmission adapter frame; 5. Hopper; 6. First slide; 7. Card adjustment structure; 701. Screw shaft; 702. Side shaft plate; 703. Attached service motor assembly; 704. Main rotating gear frame; 705. Sweep plate; 706. Attached rotating gear frame; 707. First movable assembly; 708. Forward shaft plate; 709. Second movable assembly; 8. Second slide; 9. Slide; 10. Aggregate card plate; 11. Inner groove; 12. Lock plate; 13. Inner division structure; 1301. Inner embedded block; 1302. First transverse groove; 1303. First material dividing plate; 1304. Reversing groove; 1305. Second transverse groove; 1306. Second material dividing plate; 1307. Front groove; 14. Drive shaft. DETAILED DESCRIPTION

[0035] The following embodiments of the present invention are described in further detail with reference to the accompanying drawings and examples. The following examples are used to illustrate the present invention, but are not intended to limit the scope of the present invention.

[0036] Example 1: Figures 1-12 As shown, the utility model provides a material transport box, including an adapter frame 1 and a hopper 5, a first chute 6 is provided on the front of the upper end of the adapter frame 1, a slide 2 is provided laterally on the inner side of the first chute 6, a transmission adapter frame 4 is provided at the bottom end of the slide 2, a main service motor assembly 3 is provided on the front of the transmission adapter frame 4, a drive shaft 14 is provided at the front end of the main service motor assembly 3, a second chute 8 is provided on the back of the upper end of the adapter frame 1, a slide cylinder 9 is provided laterally through the inner side of the second chute 8, and a card adjustment structure 7 is provided on the upper end of the inner side of the adapter frame 1;

[0037] The card adjustment structure 7 includes a screw shaft 701, a side shaft plate 702, an auxiliary motor assembly 703, a main rotating gear frame 704, a sweep plate 705, an auxiliary rotating gear frame 706, a first movable assembly 707, a positive shaft plate 708 and a second movable assembly 709. A positive shaft plate 708 is provided on the outside of the output end of the main service motor assembly 3, and side shaft plates 702 are provided on both sides of the positive shaft plate 708. The connection between the side shaft plate 702 and the positive shaft plate 708 is as follows: A screw shaft 701 is movably provided, a first movable assembly 707 is provided at one end of the lateral shaft plate 702, an auxiliary rotating gear frame 706 is provided on the outside of the first movable assembly 707, a sweep plate 705 is provided on the top of the auxiliary rotating gear frame 706, a second movable assembly 709 is provided on the back of the slide 9, a main rotating gear frame 704 is fixedly provided at one end of the outside of the second movable assembly 709, and an auxiliary motor assembly 703 is provided at the bottom end of the main rotating gear frame 704;

[0038] A locking plate 12 is provided on the back of the top of the hopper 5 , a gathering clamping plate 10 is provided at the front end of the locking plate 12 , an inner groove 11 is provided on the inner side of the gathering clamping plate 10 , and an inner dividing structure 13 is provided inside the hopper 5 .

[0039] The main novelties and creative features of the card adjustment structure 7 and the internal division structure 13 are as follows:

[0040] The novelty and creativity of Card Adjustment Structure 7:

[0041] Compound gear transmission system: Through the combination of the main gear rack 704 and the auxiliary gear rack 706, more precise control and greater torque output are achieved.

[0042] Multi-axis linkage mechanism: The combination of the forward axis plate 708, the side axis plate 702 and the screw shaft 701 allows the device to be adjusted and moved in multiple directions.

[0043] Sweep plate 705 design: can be used to clean or level the material, improving conveying efficiency.

[0044] Double movable assembly design: The cooperation of the first movable assembly 707 and the second movable assembly 709 increases the flexibility and adaptability of the device.

[0045] Novelty and creativity of internal structure 13:

[0046] Multi-stage material distribution system: Through the combination of the first distribution plate 1303 and the second distribution plate 1306, multi-stage diversion and directional transportation of materials are achieved.

[0047] Adjustable structure: The design of the embedded block 1301 may allow the position or angle of the dividing plate to be adjusted to accommodate different material properties.

[0048] Reversing function: The design of the reversing groove 1304 and the front groove 1307 allows the material to flow in different directions, increasing the flexibility of transportation.

[0049] Transverse groove design: The first transverse groove 1302 and the second transverse groove 1305 may be used for temporary storage or buffering of materials, thereby improving the continuity of transportation.

[0050] The components of these structures mainly play the following roles:

[0051] Adjustment structure 7: realizes precise control and adjustment, provides multi-directional movement capability, enhances the adaptability and flexibility of the device, and may be used for cleaning or leveling materials.

[0052] Internal division structure 13: realizes multi-level diversion and directional transportation of materials, provides an adjustable material distribution system, adapts to different material characteristics, allows materials to flow in different directions, provides temporary storage or buffering functions, and improves transportation efficiency.

[0053] These designs represent innovations in precise control, flexibility, adaptability, and efficiency, potentially significantly improving the performance and efficiency of electric material handling.

[0054] Embodiment 2: When using the material transport box, the card adjustment structure 7 includes a screw shaft 701, a side shaft plate 702, an auxiliary motor assembly 703, a main rotating gear frame 704, a sweep plate 705, an auxiliary rotating gear frame 706, a first movable assembly 707, a forward shaft plate 708 and a second movable assembly 709. A forward shaft plate 708 is provided on the outer side of the output end of the main motor assembly 3, and side shaft plates 702 are provided on both sides of the forward shaft plate 708. A screw shaft 701 is movably provided at the connection between the side shaft plate 702 and the forward shaft plate 708. A first movable assembly 707 is provided at one end of the side shaft plate 702, and an auxiliary rotating gear frame 706 is provided on the outer side of the first movable assembly 707. A sweep plate 705 is provided on the top of the auxiliary rotating gear frame 706. The back of the slide 9 A second movable assembly 709 is provided, and a main rotating gear frame 704 is fixedly provided at one end of the outer side of the second movable assembly 709. The bottom end of the main rotating gear frame 704 is provided with an auxiliary motor assembly 703, which moves the main service motor assembly 3. The main service motor assembly 3 drives the transmission adapter frame 4 and the slide plate 2 to move on the inner side of the first slide groove 6. The first slide groove 6 drives the drive shaft 14 to move, and the drive shaft 14 drives the forward shaft plate 708 to move. Since the hopper 5 is stuck on the inner side of the rectangular frame formed by the forward shaft plate 708 and the side shaft plate 702, when the forward shaft plate 708 moves, the hopper 5 moves with the forward shaft plate 708 and the side shaft plate 702. Tighten the screw shaft 701, and the connection structure of the side shaft plate 702 and the forward shaft plate 708 fits tightly together, and the start When the first movable assembly 707 cooperates with the positive shaft plate 708 and the sweep plate 705 to rotate, the auxiliary gear frame 706 rotates to a certain angle, and the auxiliary gear frame 706 drives the sweep plate 705 to move to the inner side of the lock plate 12, the operation of the auxiliary motor assembly 703 is stopped. Before the main gear frame 704 rotates, the engagement levels between the main gear frame 704 and the auxiliary gear frame 706 are not in a relative position, and the second movable assembly 709 is moved. The second movable assembly 709 drives the main gear frame 704 and the auxiliary motor assembly 703 to move. At the same time, the second sliding assembly 707 is rotated. When the second movable assembly 709 is moved, the main rotating gear frame 704 and the auxiliary rotating gear frame 706 are engaged with each other, and the aggregate card plate 10 and the lock plate 12 are engaged with each other. At the same time, the inner groove 11 on the inner side of the aggregate card plate 10 surrounds the outer part of the sweep plate 705. When the sweep plate 705, the side shaft plate 702, and the forward shaft plate 708 surround the outer side of the top of the hopper 5, the second movable assembly 709 and the slide 9 are moved again. The slide 9 and the second movable assembly 709 drive the main rotating gear frame 704 to move toward the two end points of the second slide 8. Since the tooth density of the main rotating gear frame 704 and the auxiliary rotating gear frame 706 is relatively sparse, the teeth of the main rotating gear frame 704 leave the teeth of the auxiliary rotating gear frame 706.At this point, the outer side of the auxiliary gear rack 706 has no contact with the main gear rack 704, and the main service motor assembly 3 is started. The main service motor assembly 3 drives the positive shaft plate 708 to rotate, and the side shaft plates 702 on both sides of the positive shaft plate 708 and the sweep plate 705 stuck on the inner side of the inner groove 11 form a rectangular frame that begins to flip, and the hopper 5 flips along with the rectangular frame. When it is necessary to clean the hopper 5, the second movable assembly 709 and the slide 9 are moved. The second movable assembly 709 and the slide 9 drive the main gear rack 704 to re-engage with the auxiliary gear rack 706, remove the aggregate clamping plate 10, and start the auxiliary motor assembly 703 again. The auxiliary motor assembly 703 drives the main gear rack 704 to rotate in the opposite direction. The main gear rack 704 drives the auxiliary gear rack 706 to rotate, and the auxiliary gear rack 706 drives the sweep plate 705 to leave the inner groove 11.

[0055] The innovative technology and optimized effects of the card adjustment structure 7 are as follows:

[0056] Pioneering technology:

[0057] Multiple gear transmission system: The combined design of the main gear rack 704 and the auxiliary gear rack 706 achieves precise motion control and torque transmission.

[0058] Adjustable frame structure: The adjustable rectangular frame composed of the forward axis plate 708, the side axis plate 702 and the sweep plate 705 can flexibly surround and fix the hopper 5.

[0059] Double movable mechanism: The coordinated use of the first movable assembly 707 and the second movable assembly 709 increases the flexibility and adaptability of the device.

[0060] Screw locking mechanism: The screw 701 can be used to adjust and lock the connection between the side shaft plate 702 and the forward shaft plate 708, thereby improving the stability of the structure.

[0061] Detachable sweep plate design: The sweep plate 705 can be connected and separated through a gear transmission system for easy cleaning and maintenance.

[0062] Optimization effect:

[0063] Improved safety during the overturning process: The material hopper 5 is firmly surrounded by a rectangular frame, which greatly reduces the risk of material leakage or equipment damage during the overturning process.

[0064] Enhanced operational flexibility: by adjusting different components, the hopper 5 can be accurately positioned, turned over and locked.

[0065] Improved maintenance convenience: the sweeping plate 705 can be easily separated, making the cleaning and maintenance of the hopper 5 more convenient.

[0066] Improved operational efficiency: The multiple gear transmission system and adjustable structure make the entire flipping process smoother and more efficient.

[0067] Enhanced adaptability: The adjustable structural design enables the device to adapt to hoppers of different sizes and shapes.

[0068] Optimized space utilization: The design of the slideway and the slide cylinder 9 enables the device to achieve complex movements in a limited space.

[0069] Improved accuracy: High-precision control is achieved through the coordination of precise gear transmission and multiple motor components.

[0070] These pioneering technologies and optimization effects together constitute an efficient, safe and flexible electric material conveying turning device, which significantly improves operational efficiency and safety, while also facilitating maintenance and cleaning, providing an innovative solution for the field of electric material conveying.

[0071] Example 3: When using the material transport box, the internal division structure 13 includes an embedded block 1301, a first transverse groove 1302, a first dividing plate 1303, a reversing groove 1304, a second transverse groove 1305, a second dividing plate 1306 and a front groove 1307. One side of the inner side of the hopper 5 is provided with a second transverse groove 1305, the other side of the inner side of the hopper 5 is provided with a first transverse groove 1302, one end of the first transverse groove 1302 is provided with a second dividing plate 1306, one end of the second transverse groove 1305 is provided with a first dividing plate 1303, and the first dividing plate 1306 is provided. The upper ends of the plate 1303 and the second material distribution plate 1306 are provided with embedded blocks 1301, the lower end of the back of the second material distribution plate 1306 is provided with a front groove 1307, and a reversing groove 1304 is provided on one side of the inner side of the hopper 5. The width of the reversing groove 1304 is equal to the width of the front groove 1307. The material is poured into the interior of the hopper 5, and the embedded blocks 1301 inside the second transverse groove 1305 and the first transverse groove 1302 are moved. The embedded blocks 1301 drive the first material distribution plate 1303 and the second material distribution plate 1306 to move on the inner side of the hopper 5. The bottom part of the dividing plate 1303 is stuck in the front groove 1307, and the space formed between the hopper 5 and the first dividing plate 1303 and the second dividing plate 1306 divides the material into three equal parts. When the hopper 5 needs to be cleaned, the second dividing plate 1306 inside the hopper 5 and the first dividing plate 1303 are at a certain angle to the horizontal line. Since the first dividing plate 1303, the second dividing plate 1306 and the embedded block 1301 are vertically engaged, the staff takes out the first dividing plate 1303 and the second dividing plate 1306, Then clean the first dividing plate 1303, the second dividing plate 1306 and the inside of the hopper 5. If the installation direction of the hopper 5 is wrong, just take out the second dividing plate 1306 and the first dividing plate 1303, and then reversely insert the first dividing plate 1303 and the second dividing plate 1306 into the vertical groove inside the embedded block 1301, and the bottom end of the first dividing plate 1303 is inserted into the reversing groove 1304. At this time, the first dividing plate 1303 and the second dividing plate 1306 will form a storage space for the same part of the material with the hopper 5.

[0072] The innovative technology and effect advantages of the internal structure 13 are as follows:

[0073] Pioneering technology:

[0074] Adjustable material dividing system: Adjustable material division is achieved through the combination of the embedded block 1301, the first material dividing plate 1303 and the second material dividing plate 1306.

[0075] Bidirectional adaptability design: The design of the reversing groove 1304 and the front groove 1307 allows the dividing plate to be installed in two directions, increasing the adaptability of the device.

[0076] Sliding engagement mechanism: The sliding structure formed by the first transverse groove 1302, the second transverse groove 1305 and the embedded block 1301 facilitates adjustment of the position of the dividing plate.

[0077] Vertical snap-fit ​​connection: The vertical snap-fit ​​design between the dividing plate and the embedded block 1301 improves the stability and disassembly of the structure.

[0078] Equally divided space design: The design and layout of the dividing plate allows the internal space of the hopper to be evenly divided.

[0079] Effect advantages:

[0080] Improve material distribution uniformity: Through the adjustable material distribution system, ensure that the material is evenly distributed in the hopper, avoiding accumulation problems.

[0081] Enhanced operational flexibility: The divider plate can be adjusted or removed as needed to adapt to different material handling requirements.

[0082] Easy to clean and maintain: the dividing plate can be easily removed, making it easy to clean and maintain the inside of the hopper.

[0083] Protection against incorrect installation: Even if the dividing plate is installed in the wrong direction, it can still be used due to the design of the reversing groove 1304 and the front groove 1307, which increases fault tolerance.

[0084] Improved conveying efficiency: Evenly distributed material helps improve the efficiency of the turning and unloading process.

[0085] Strong adaptability: the position and angle of the dividing plate can be adjusted according to different material properties and conveying requirements.

[0086] Simple and stable structure: The design of the sliding and locking mechanism ensures the stability of the structure without increasing complexity.

[0087] High space utilization: The material distribution system fully utilizes the internal space of the hopper.

[0088] Reduced manual operations: Evenly distributed materials reduce the need for manual sorting and improve operational efficiency.

[0089] Improved safety: The even distribution of materials reduces the safety risks caused by sudden movement of materials during the turning process.

[0090] These pioneering technologies and effective advantages make the internal division structure 13 an efficient, flexible and easy-to-maintain material distribution system, significantly improving the efficiency and reliability of the material conveying process and providing an innovative solution for related industries.

[0091] The material transport box of the present invention may be implemented independently without being based on the equipment of this solution.

[0092] All modes of the material transport box are within the scope of the patent protection. The embodiments of the utility model are given for the purpose of example and description, although the embodiments of the utility model have been shown and described above, it can be understood that the above-mentioned embodiments are exemplary, and cannot be understood as the limitation of the utility model, and the ordinary skilled in the art can change, modify, replace and transform the above-mentioned embodiments within the scope of the utility model.

Claims

1. A material transport box, comprising an adapter frame (1) and a material hopper (5), characterized in that: The front of the upper end of the placement adapter frame (1) is provided with a first slide groove (6), the inner side of the first slide groove (6) is provided with a slide plate (2) in a transverse direction, the bottom end of the slide plate (2) is provided with a transmission adapter frame (4), the front of the transmission adapter frame (4) is provided with a main service motor assembly (3), the front end of the main service motor assembly (3) is provided with a drive shaft (14), the back of the upper end of the placement adapter frame (1) is provided with a second slide groove (8), the inner side of the second slide groove (8) is provided with a slide cylinder (9) in a transverse direction, and the upper end of the inner side of the placement adapter frame (1) is provided with a card adjustment structure (7); The card adjustment structure (7) comprises a screw shaft (701), a side shaft plate (702), an auxiliary motor assembly (703), a main rotating gear frame (704), a sweep plate (705), an auxiliary rotating gear frame (706), a first movable rotating assembly (707), a forward shaft plate (708) and a second movable rotating assembly (709). A forward shaft plate (708) is provided on the outer side of the output end of the main servo motor assembly (3). Side shaft plates (702) are provided on both sides of the forward shaft plate (708). The connection between the side shaft plates (702) and the forward shaft plate (708) is A screw shaft (701) is movably provided at the side shaft plate (702), a first movable assembly (707) is provided at one end of the side shaft plate (702), an attached rotating gear rack (706) is provided on the outer side of the first movable assembly (707), a sweep plate (705) is provided on the top of the attached rotating gear rack (706), a second movable assembly (709) is provided on the back side of the slide cylinder (9), a main rotating gear rack (704) is fixedly provided at one end of the outer side of the second movable assembly (709), and an attached motor assembly (703) is provided at the bottom end of the main rotating gear rack (704); A locking plate (12) is provided on the back of the top end of the material hopper (5), a polymer clamping plate (10) is provided at the front end of the locking plate (12), an inner groove (11) is provided on the inner side of the polymer clamping plate (10), and an inner dividing structure (13) is provided inside the material hopper (5).

2. The material transport box according to claim 1, characterized in that: The main rotating gear frame (704) and the auxiliary rotating gear frame (706) are both semicircular in shape, and the main rotating gear frame (704) and the auxiliary rotating gear frame (706) have a relatively small number of outer teeth.

3. The material transport box according to claim 1, characterized in that: The slide (9) is engaged with the second movable assembly (709), and a driving vertical rod is provided at the top end of the servo motor assembly (703), and the driving vertical rod is connected to the second movable assembly (709) in a sleeve-engaged manner.

4. The material transport box according to claim 1, characterized in that: The drive shaft (14) and the forward shaft plate (708) are connected to each other via a threaded structure, and the threaded structure is analogous to a nut and screw connection structure.

5. The material transport box according to claim 1, characterized in that: The inner sides of the side shaft plate (702) and the forward shaft plate (708) are provided with placement grooves, and the perimeter formed by the placement grooves is equal to the perimeter of the outer side of the top end of the hopper (5).

6. The material transport box according to claim 1, characterized in that: The connection portion between the forward axis plate (708) and the side axis plate (702) is set to be semicircular, and a circular groove is set inside the connection portion between the forward axis plate (708) and the side axis plate (702).

7. The material transport box according to claim 1, characterized in that: The inner dividing structure (13) comprises an inner block (1301), a first transverse groove (1302), a first material dividing plate (1303), a reversing groove (1304), a second transverse groove (1305), a second material dividing plate (1306) and a front groove (1307). The second transverse groove (1305) is provided on one side of the inner side of the material hopper (5), the first transverse groove (1302) is provided on the other side of the inner side of the material hopper (5), and the second material dividing plate (1306) is provided on one end of the first transverse groove (1302). Plate (1306), a first dividing plate (1303) is provided at one end of the second transverse groove (1305), and embedded blocks (1301) are provided at the upper ends of both ends of the first dividing plate (1303) and the second dividing plate (1306), and a front groove (1307) is provided at the lower end of the back side of the second dividing plate (1306), and a reversing groove (1304) is provided on one side of the inner side of the hopper (5), and the width of the reversing groove (1304) is equal to the width of the front groove (1307).

8. The material transport box according to claim 7, characterized in that: The first dividing plate (1303) and the second dividing plate (1306) are L-shaped in appearance.

9. The material transport box according to claim 7, characterized in that: The position of the reversing groove (1304) and the position of the front groove (1307) are on the same straight line.