Pushing mechanism of high-precision belt conveyor

The pushing mechanism, composed of a support frame, motor, electric push rod, and servo motor, solves the problems of material wear and dispersion, and achieves high-precision material transportation.

CN224212020UActive Publication Date: 2026-05-08LUOYANG NAIRUI MASCH EQUIP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
LUOYANG NAIRUI MASCH EQUIP CO LTD
Filing Date
2025-04-23
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

Existing pushing mechanisms are prone to causing wear on the bottom of materials during use, and dispersed materials are difficult to push effectively.

Method used

The pushing mechanism, composed of components such as a support frame, motor, electric push rod, and servo motor, achieves precise pushing and limiting of materials through various pushing structures and spiral locking structures.

Benefits of technology

It effectively avoids wear on the bottom of the material, ensures that the material is accurately pushed to the position of the belt conveyor, and adapts to different material conditions for precise transportation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a high-precision belt conveyor pushing mechanism which comprises a supporting frame, a motor is arranged in the supporting frame, one end of an output shaft of the motor is connected with a driving wheel through a coupler, a driven wheel is correspondingly arranged on one side of the driving wheel, and the outer wall of the driving wheel and the outer wall of the driven wheel are sleeved with a belt. According to the pushing mechanism of the high-precision belt conveyor, the storage rack and the belt form a horizontal pushing structure through the first telescopic arm under the action of the first electric push rod, the bottom plate and the storage rack form a spiral locking structure through bolts, and therefore the first electric push rod can drive the storage rack to push materials to the belt conveyor; a push plate of the device and a storage rack form a horizontal pushing structure through a second telescopic arm under the action of a second electric push rod, and therefore the materials are prevented from being excessively abraded in the pushing process through the push plate; and the material can be pushed to a proper position of the belt conveyor for transportation through the storage rack and the push plate.
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Description

Technical Field

[0001] This utility model relates to the field of belt conveyor technology, specifically a pushing mechanism for a high-precision belt conveyor. Background Technology

[0002] Belt conveyors, also known as belt conveyors or rubber belt conveyors, are indispensable and economical logistics transportation equipment for forming rhythmic assembly lines. They have advantages such as large conveying capacity, simple structure, convenient maintenance, and standardized components. In the material transportation process, to ensure convenience, an automated pushing mechanism automatically pushes materials onto the belt conveyor for transport, thereby ensuring the automation of the material processing process.

[0003] The existing pushing mechanism, driven by an electric push rod assembly, moves the push plate assembly to push materials onto the belt conveyor for transport. However, directly pushing materials in existing mechanisms can easily cause wear on the bottom of the conveyor, and some scattered materials are difficult to push. Therefore, a high-precision pushing mechanism for a belt conveyor is proposed to solve these problems. Utility Model Content

[0004] The purpose of this utility model is to provide a high-precision conveyor belt pushing mechanism to solve the problems mentioned in the background art, such as the fact that the existing pushing mechanism can easily cause wear on the bottom of the material when it is directly pushed during use, and that some scattered materials are inconvenient to push.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a pushing mechanism for a high-precision belt conveyor, comprising a support frame, wherein a motor is provided inside the support frame, and one end of the motor output shaft is connected to a drive wheel via a coupling, a driven wheel is provided on one side of the drive wheel, and belts are fitted on the outer walls of the drive wheel and the driven wheel, multiple sets of operating tables are provided on the upper end face of the support frame, and support legs are provided on the lower end face of each operating table, multiple sets of first electric push rods are provided on the upper end face of the operating table on one side of the motor, and a first telescopic arm is provided on each of the first electric push rods, the other end of the first telescopic arm is connected to a connecting plate, and the connecting plate is provided on both sides of a shelf, a base plate is placed inside the shelf, and sliders are provided on both sides of the base plate, the sliders are inserted into the shelf, and multiple sets of bolts are inserted into the sliders and the shelf;

[0006] A second electric push rod is provided between the first electric push rods, and a second telescopic arm is provided on one side of the second electric push rod. The other end of the second telescopic arm is connected to a push plate, and the push plate is inserted into the shelf.

[0007] Another set of operating tables on the support frame is provided with a third electric push rod on the upper end face, and a third telescopic arm is provided on the third electric push rod. A motor box is provided on the third telescopic arm, and a servo motor is provided inside the motor box. An output shaft is provided on the servo motor, and the other end of the output shaft is connected to a spiral block. The spiral block is spiraled inside a fixed block, and the fixed block is provided on a baffle. The baffle is provided with locking plates on both sides, and the locking plates are respectively inserted into the shelf.

[0008] Preferably, the belt, under the action of the motor, forms a transmission structure with the driving pulley, the driven pulley, and the support frame.

[0009] Preferably, the shelf is horizontally pushed by the first telescopic arm and belt under the action of the first electric push rod, and the base plate is screwed to the shelf to form a spiral locking structure.

[0010] Preferably, the push plate, under the action of the second electric push rod, forms a horizontal pushing structure with the storage frame through the second telescopic arm.

[0011] Preferably, the servo motor, under the action of the third electric push rod, forms a horizontal pushing structure with the belt through the third telescopic arm, and the spiral block, under the action of the servo motor, forms a spiral locking structure with the fixed block through the output shaft.

[0012] Compared with the prior art, the beneficial effects of this utility model are as follows: The storage rack of the high-precision belt conveyor's pushing mechanism forms a horizontal pushing structure with the belt through the first telescopic arm under the action of the first electric push rod, and the base plate forms a spiral locking structure with the storage rack through bolts. Thus, the first electric push rod can drive the storage rack to push the material onto the belt conveyor, and the corresponding base plate can be selected for spiral installation according to the material conditions. The push plate of this device forms a horizontal pushing structure with the storage rack through the second telescopic arm under the action of the second electric push rod, thus preventing excessive wear on the material during the pushing process, and ensuring that the material can be pushed to the appropriate position on the belt conveyor for transportation through the storage rack and push plate. The servo motor of this device forms a horizontal pushing structure with the belt through the third telescopic arm under the action of the third electric push rod, and the spiral block forms a spiral locking structure with the fixed block through the output shaft under the action of the servo motor. Thus, when pushing dispersed materials, the baffle can limit the placement, and the spiral block assembly facilitates the movement of the baffle. Attached Figure Description

[0013] Figure 1 This is a top view schematic diagram of the pushing mechanism of a high-precision belt conveyor according to the present invention;

[0014] Figure 2 This is a schematic diagram of the pusher plate moving structure of a high-precision belt conveyor according to the present invention;

[0015] Figure 3 This is a front view structural diagram of the push mechanism shelf of a high-precision belt conveyor according to the present invention;

[0016] Figure 4 This is a side view of the storage rack of the pushing mechanism of a high-precision belt conveyor according to the present invention.

[0017] In the diagram: 1. Support frame, 2. Operating table, 3. Motor, 4. Belt, 5. First electric push rod, 6. First telescopic arm, 7. Shelf, 8. Base plate, 9. Bolt, 10. Second electric push rod, 11. Second telescopic arm, 12. Push plate, 13. Third electric push rod, 14. Third telescopic arm, 15. Servo motor, 16. Spiral block, 17. Baffle, 18. Fixing block, 19. Clamping plate. Detailed Implementation

[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0019] Please see Figure 1-4 This utility model provides a technical solution: a high-precision belt conveyor pushing mechanism, including a support frame 1, a motor 3 is provided inside the support frame 1, and one end of the output shaft of the motor 3 is connected to the drive wheel through a coupling. The drive wheel is provided with a driven wheel on one side, and the drive wheel and the driven wheel are fitted with belts 4 on their outer walls.

[0020] Furthermore, under the action of the motor 3, the belt 4 forms a transmission structure with the driving wheel, the driven wheel and the support frame 1, so that the motor 3 can drive the belt 4 to transport materials.

[0021] The support frame 1 has multiple operating platforms 2 on its upper end face, and the operating platforms 2 have supporting legs on their lower end faces. The operating platform 2 on one side of the motor 3 has multiple first electric push rods 5 on its upper end face, and each first electric push rod 5 has a first telescopic arm 6. The other end of the first telescopic arm 6 is connected to a connecting plate, and the connecting plate is located on both sides of the shelf 7. The shelf 7 has a base plate 8 inside, and the base plate 8 has sliders on both sides. The sliders are inserted into the shelf 7, and multiple sets of bolts 9 are inserted into the sliders and the shelf 7.

[0022] Furthermore, under the action of the first electric push rod 5, the shelf 7 forms a horizontal pushing structure with the first telescopic arm 6 and the belt 4, and the base plate 8 forms a spiral locking structure with the shelf 7 through bolts 9. Thus, a suitable base plate 8 can be installed for use according to the state of the material to be pushed, and the shelf 7 can be moved as a whole by the first electric push rod 5.

[0023] A second electric push rod 10 is provided between the first electric push rods 5, and a second telescopic arm 11 is provided on one side of the second electric push rod 10. The other end of the second telescopic arm 11 is connected to a push plate 12, and the push plate 12 is inserted into the shelf 7.

[0024] Furthermore, under the action of the second electric push rod 10, the push plate 12 forms a horizontal pushing structure with the shelf 7 through the second telescopic arm 11, thereby pushing the materials inside the shelf 7 to move, thus avoiding the direct pushing of materials and the easy wear of its bottom.

[0025] Another set of operating tables 2 on the support frame 1 is provided with a third electric push rod 13 on the upper end face, and a third telescopic arm 14 is provided on the third electric push rod 13. A motor box is provided on the third telescopic arm 14, and a servo motor 15 is provided in the motor box. An output shaft is provided on the servo motor 15, and the other end of the output shaft is connected to a spiral block 16. The spiral block 16 is spiraled in a fixed block 18, and the fixed block 18 is provided on a baffle 17. The baffle 17 is provided with locking plates 19 on both sides, and the locking plates 19 are respectively inserted into the shelf 7. It should be noted that multiple sets of electrical equipment in this device are connected to the power supply equipment through power lines, and the working status of the electrical equipment is monitored through sensors, controllers and other equipment to ensure that the electrical equipment in this device can perform normal control work.

[0026] Furthermore, under the action of the third electric push rod 13, the servo motor 15 forms a horizontal pushing structure with the third telescopic arm 14 and the belt 4, thereby driving the baffle 17 to move horizontally through the third electric push rod 13. Under the action of the servo motor 15, the spiral block 16 forms a spiral locking structure with the fixed block 18 through the output shaft, thereby driving the spiral block 16 to spiral into the fixed block 18 through the servo motor 15, so as to drive the baffle 17 to move as a whole.

[0027] Working Principle: Using the high-precision belt conveyor's pushing mechanism, the corresponding base plate 8 is first selected based on the material's state. If the material is dispersed, an inclined base plate 8 is selected; if the material is solid, a parallel base plate 8 is used. The base plate 8 is then screwed in place using bolts 9. After installation, the corresponding material can be placed in the shelf 7. When pushing solid material, the first electric push rod 5 and the second electric push rod 10 can be activated simultaneously. The first electric push rod 5 drives the shelf 7 horizontally via the first telescopic arm 6. The second electric push rod 10 drives the push plate 12 to move synchronously with the shelf 7 via the second telescopic arm 11. This ensures that the material is accurately moved to the corresponding position on the belt 4 through the two sets of electric push rods and the shelf 7. Simultaneously, the shelf 7 prevents excessive wear on the bottom of the material. After the shelf 7 has moved, the first electric push rod 5 can be activated, thereby driving the push plate 12 horizontally via the first telescopic arm 11. 6 drives the storage rack 7 back to its original position, while the push plate 12 pushes the solid material to move, thus moving the solid material to the corresponding position on the belt 4 under the action of the push plate 12. If it is necessary to move the dispersed material, the clamping plate 19 can be inserted into the storage rack 7 so that the material can be limited by the baffle 17. After the storage rack 7 moves above the belt 4, the third electric push rod 13 can be activated. The third electric push rod 13 drives the servo motor 15 to move through the third telescopic arm 14. At the same time, the servo motor 15 can drive the spiral block 16 to rotate so that the spiral block 16 can be spirally installed on the fixed block 18 through the third electric push rod 13 and the servo motor 15. Then, the baffle 17 is moved by the third electric push rod 13, thus unloading the dispersed material in the storage rack 7 in the same way so that the material can be transported by the belt conveyor. This is the usage process of the pushing mechanism of the high-precision belt conveyor.

[0028] Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A pushing mechanism for a high-precision belt conveyor, comprising a support frame (1), wherein a motor (3) is provided inside the support frame (1), and one end of the output shaft of the motor (3) is connected to a drive wheel via a coupling, wherein a driven wheel is provided on one side of the drive wheel, and a belt (4) is fitted on the outer wall of the drive wheel and the driven wheel, characterized in that: The support frame (1) has multiple sets of operating tables (2) on its upper end face, and the operating tables (2) have supporting legs on their lower end faces respectively. The operating table (2) on one side of the motor (3) has multiple sets of first electric push rods (5) on its upper end face, and the first electric push rods (5) have first telescopic arms (6) respectively. The other end of the first telescopic arms (6) is connected to a connecting plate, and the connecting plate is located on both sides of the shelf (7). The shelf (7) has a base plate (8) inside, and the base plate (8) has sliders on both sides respectively. The sliders are inserted into the shelf (7), and multiple sets of bolts (9) are inserted into the sliders and the shelf (7) respectively. A second electric push rod (10) is provided between the first electric push rod (5), and a second telescopic arm (11) is provided on one side of the second electric push rod (10). The other end of the second telescopic arm (11) is connected to a push plate (12), and the push plate (12) is inserted into the shelf (7). The support frame (1) has another set of operating tables (2) with a third electric push rod (13) on the upper end face, and a third telescopic arm (14) on the third electric push rod (13). The third telescopic arm (14) has a motor box, and a servo motor (15) is provided in the motor box. The servo motor (15) has an output shaft, and the other end of the output shaft is connected to a spiral block (16). The spiral block (16) is spiraled in a fixed block (18), and the fixed block (18) is located on a baffle (17). The baffle (17) has locking plates (19) on both sides, and the locking plates (19) are respectively inserted into the shelf (7).

2. The pushing mechanism of a high-precision belt conveyor according to claim 1, characterized in that: The belt (4) forms a transmission structure through the driving wheel, driven wheel and support frame (1) under the action of the motor (3).

3. The pushing mechanism of a high-precision belt conveyor according to claim 1, characterized in that: The shelf (7) is horizontally pushed by the first telescopic arm (6) and the belt (4) under the action of the first electric push rod (5), and the base plate (8) is spirally locked to the shelf (7) by bolts (9).

4. The pushing mechanism of a high-precision belt conveyor according to claim 1, characterized in that: The push plate (12) forms a horizontal pushing structure with the shelf (7) through the second telescopic arm (11) under the action of the second electric push rod (10).

5. The pushing mechanism of a high-precision belt conveyor according to claim 1, characterized in that: The servo motor (15) forms a horizontal pushing structure with the belt (4) through the third telescopic arm (14) under the action of the third electric push rod (13), and the spiral block (16) forms a spiral locking structure with the fixed block (18) through the output shaft under the action of the servo motor (15).