Conveying mechanism of shaft core detection equipment

By adopting an inclined belt and gear meshing structure in the shaft core detection equipment, the instability problem caused by height differences in shaft core materials during transportation is solved, achieving smooth transition and efficient storage of electrical energy, thus achieving the effects of resource recycling and carbon emission reduction.

CN121493512APending Publication Date: 2026-02-10NEW ZHAOEN (XIAMEN) MATERIAL TECH CO LTD
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Patent Information

Application Number
CN202511895007.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-16
Publication Date
2026-02-10

AI Technical Summary

Technical Problem

When the core material is conveyed by the vibratory feeder, it is difficult to seamlessly connect the various conveying mechanisms, resulting in height differences. This causes the core material to be subjected to uneven forces and unstable support during the transition, making it easy to lose balance and collapse.

Method used

The system uses an inclined belt to connect transmission section one and transmission section two. The rack and gear on the edge of the belt mesh with the gear, and the generator drives the shaft to generate electricity. The gravitational potential energy of the shaft core on the belt is converted into electrical energy and stored, realizing resource recycling and reducing carbon emissions.

Benefits of technology

It effectively avoids impact during transmission, ensures a smooth transition of the shaft core, and converts gravitational potential energy into electrical energy storage, realizing the recycling of emergency energy and reducing carbon emissions.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of shaft core detection equipment, in particular to a conveying mechanism of shaft core detection equipment, which comprises a transmission section I and a transmission section II, a belt for stable transition of a shaft core is obliquely arranged between the transmission section I and the transmission section II, and a rack is arranged at the edge of the belt. The first conveying section and the conveying belt which are connected through the conveying belt avoid the situation that impact force is generated when materials fall due to the height difference between the first conveying section and the conveying belt of a conventional connection structure, the impact force is too large or the direction is improper, and therefore a shaft core is prone to losing balance and collapsing. Gravitational potential energy of the shaft core sliding on the belt is efficiently converted into electric energy to be stored in the power storage module, the belt drives the rack to rotate, the rack is meshed with the gear and drives the rotating shaft to rotate, the rotating shaft rotates to enable the generator to generate power, and the generator converts rotation kinetic energy of the gear into electric energy to be stored as emergency energy. The method has the advantages of recycling resources and reducing carbon emission.
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Description

Technical Field

[0001] This application relates to the field of shaft core testing equipment technology, and in particular to a conveying mechanism for shaft core testing equipment. Background Technology

[0002] During the process of conveying the core material through a vibratory feeder and several conveying mechanisms, it is difficult to achieve seamless and indiscriminate connection at the junctions of the various conveying mechanisms. The different conveying mechanisms have differences in height, which causes the core material to be subjected to uneven forces and unstable support when transitioning from one conveying mechanism to another.

[0003] Therefore, in response to the above problems, the applicant provides a conveying mechanism for a shaft core testing device. Summary of the Invention

[0004] In order to solve the problems mentioned in the background art, this application provides a conveying mechanism for a shaft core detection device.

[0005] The conveying mechanism of the shaft core testing equipment provided in this application adopts the following technical solution:

[0006] A conveying mechanism for a shaft core testing device includes a first transmission section and a second transmission section, wherein a belt is inclinedly arranged between the first transmission section and the second transmission section for smooth transition of the shaft core.

[0007] A rack is provided at the edge of the belt, the rack meshes with a gear, the gear is provided with a shaft, and the shaft is fixed to the shaft of the generator.

[0008] Optionally, it also includes a vibratory feeder, the top of which is connected to multiple transmission belts and multiple transmission segments. The bottom of the transmission belts and transmission segments are respectively provided with a rotating shaft and a hole, and the rotating shaft and the hole are together engaged with a belt.

[0009] Optionally, the bottom of the second transmission section is fixedly connected to multiple support legs, with two support legs near the pivot being fixedly connected to connecting frames. Protective plates are fixedly connected to the side baffles of the second transmission section, and the protective plates are located on the surface of the belt.

[0010] Optionally, the two connecting frames are fixedly connected to the side guards of the belt, and a rotating shaft is rotatably connected between the side guards. The belt is sleeved onto the rotating shaft, and the rotating shaft and the belt are combined to form a transmission belt.

[0011] Optionally, multiple racks are fixedly connected to both sides of the belt edge, and two racks mesh with two gears respectively, and the two gears are fixedly connected to a rotating shaft.

[0012] Optionally, the generator base is fixedly connected to the connecting frame, and an energy storage module is bolted to the connecting frame.

[0013] In summary, this application includes the following beneficial technical effects:

[0014] 1. The present invention avoids the situation where the height difference between the transmission section 1 and the transmission belt in conventional connection structures causes the material to generate impact force when falling. If the impact force is too large or the direction is incorrect, the shaft core may easily lose balance and collapse.

[0015] 2. In this invention, the gravitational potential energy of the shaft sliding down the belt is efficiently converted into electrical energy and stored in the energy storage module. The belt drives the rack to rotate, and the rack meshes with the gear to drive the shaft to rotate. The rotation of the shaft causes the generator to generate electricity. The generator converts the rotational kinetic energy of the gear into electrical energy, thus serving as an emergency energy reserve. The advantages are resource recycling and reduced carbon emissions. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the overall structure in an embodiment of this application;

[0017] Figure 2 This is a schematic diagram of the structure of transmission segment one, transmission belt and transmission segment two in the embodiments of this application;

[0018] Figure 3 This is a schematic diagram of the split structure of transmission segment one, transmission band and transmission segment two in the embodiments of this application;

[0019] Figure 4 This is a bottom-view structural diagram of transmission segment one, transmission belt and transmission segment two in the embodiments of this application.

[0020] Reference numerals: 1. Vibratory feeder; 2. Transmission section one; 20. Hole one; 3. Conveyor belt; 30. Rotating shaft; 31. Belt; 4. Transmission section two; 40. Support leg; 41. Connecting frame; 43. Hole two; 5. Protective plate; 6. Generator; 7. Rotating shaft; 8. Gear; 9. Rack; 10. Energy storage module. Detailed Implementation

[0021] The following is in conjunction with the appendix Figure 1-4 This application will be described in further detail.

[0022] This application discloses a conveying mechanism for a shaft core testing device.

[0023] like Figure 1-4 As shown, a conveying mechanism for a shaft core testing device includes a first transmission section 2 and a second transmission section 4, with a belt 31 inclinedly arranged between the first transmission section 2 and the second transmission section 4 for smooth transition of the shaft core.

[0024] A rack 9 is provided at the edge of the belt 31, the rack 9 meshes with a gear 8, the gear 8 is provided with a rotating shaft 7, and the rotating shaft 7 is fixed on the rotating shaft of the generator 6.

[0025] Please see Figure 1 It also includes a vibratory plate 1, the top of which is connected to multiple transmission belts 3 and multiple transmission segments 4. The bottom of the transmission belts 3 and the transmission segments 4 are respectively provided with a rotating shaft 30 and a hole 43. The rotating shaft 30 and the hole 43 are together engaged with a belt 31.

[0026] It should be noted that the vibrating plate 1 has a vibrating shaft. The shaft flows through the first transmission section 2 into the second transmission section 4 and passes through the belt 31. The belt 31 is horizontal and inclined downward at an angle between 10° and 15°. The belt 31 connects the first transmission section 2 and the transmission belt 3 to avoid the impact force that would occur when the material falls due to the height difference between the first transmission section 2 and the transmission belt 3 in a conventional connection structure. If the impact force is too large or the direction is incorrect, the material is likely to lose balance and collapse.

[0027] Please see Figure 2 and Figure 3 The bottom of the second transmission section 4 is fixedly connected with multiple support legs 40, and two support legs 40 near the pivot 30 are fixedly connected with connecting frames 41. The two side baffles of the second transmission section 4 are fixedly connected with protective plates 5. The protective plates 5 are located on the surface of the belt 31. The protective plates 5 are mainly used to facilitate the stable sliding of the shaft core and prevent deviation during the sliding process.

[0028] Please see Figure 2 and Figure 3 The two connecting frames 41 are fixedly connected to the two side guards of the belt 31. A rotating shaft 30 is rotatably connected between the two side guards. The belt 31 is sleeved onto the rotating shaft 30. The rotating shaft 30 and the belt 31 are combined to form the transmission belt 3.

[0029] It should be noted that the material drives the rotating shaft 30 to rotate via the belt 31, and the belt 31 rotates synchronously at the same time.

[0030] Please see Figure 3 Multiple racks 9 are fixedly connected to both sides of the belt 31. Two racks 9 mesh with two gears 8, and the two gears 8 are fixedly connected to a rotating shaft 7.

[0031] It should be noted that belt 31 drives rack 9 to rotate, rack 9 meshes with gear 8 and drives shaft 7 to rotate, and the rotation of shaft 7 causes generator 6 to generate electricity.

[0032] Please see Figure 3The generator 6 base is fixedly connected to the connecting frame 41, and the energy storage module 10 is bolted to the connecting frame 41.

[0033] It should be noted that the generator 6 converts the rotational kinetic energy of the gear 8 into electrical energy, which is then output to the energy storage module 10 for storage.

[0034] The implementation principle of the conveying mechanism of the shaft core detection equipment in this application embodiment is as follows:

[0035] Vibrating plate 1 vibrates and flows through a shaft core. The shaft core flows through transmission section 2 into transmission section 4 and passes through belt 31. Belt 31 is horizontal and inclined downward at an angle between 10° and 15°. The transmission section 2 and transmission belt 3 are connected by belt 31 to avoid the impact force that would occur when the material falls due to the height difference between transmission section 2 and transmission belt 3 in conventional connection structures. If the impact force is too large or the direction is incorrect, the shaft core may easily lose balance and collapse.

[0036] The shaft core drives the rotating shaft 30 and the belt 31 to rotate synchronously via the belt 31. The belt 31 drives the rack 9 to rotate. The rack 9 meshes with the gear 8 and drives the rotating shaft 7 to rotate. The rotation of the rotating shaft 7 causes the generator 6 to generate electricity. The generator 6 converts the rotational kinetic energy of the gear into electrical energy. The gravitational potential energy of the shaft core sliding down the belt 31 is efficiently converted into electrical energy and stored in the energy storage module 10, thus serving as an emergency energy reserve. The advantages are resource recycling and carbon emission reduction.

[0037] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A conveying mechanism for a shaft core testing device, characterized in that: It includes a first transmission segment (2) and a second transmission segment (4), and a belt (31) for smooth transition of the shaft core is inclinedly arranged between the first transmission segment (2) and the second transmission segment (4). A rack (9) is provided at the edge of the belt (31), the rack (9) meshes with a gear (8), the gear (8) is provided with a shaft (7), and the shaft (7) is fixed on the shaft of the generator (6).

2. The conveying mechanism of the shaft core testing equipment according to claim 1, characterized in that: It also includes a vibratory plate (1), the top of which is connected to multiple transmission belts (3) and multiple transmission segments (4), and the bottom of the transmission belts (3) and transmission segments (4) are respectively provided with a rotating shaft (30) and a hole (43), and the rotating shaft (30) and the hole (43) are together secured with a belt (31).

3. The conveying mechanism of the shaft core testing equipment according to claim 1, characterized in that: The bottom of the second transmission section (4) is fixedly connected to multiple legs (40), and two legs (40) near the pivot (30) are fixedly connected to a connecting frame (41). The two side baffles of the second transmission section (4) are fixedly connected to protective plates (5), which are located on the surface of the belt (31).

4. The conveying mechanism of the shaft core testing equipment according to claim 3, characterized in that: The two connecting frames (41) are fixedly connected to the two side guards of the belt (31), and a rotating shaft (30) is rotatably connected between the two side guards. The belt (31) is sleeved onto the rotating shaft (30), and the rotating shaft (30) and the belt (31) are combined to form a transmission belt (3).

5. The conveying mechanism of the shaft core testing equipment according to claim 1, characterized in that: Multiple racks (9) are fixedly connected to both sides of the belt (31), and two racks (9) mesh with two gears (8), and the two gears (8) are fixedly connected to a rotating shaft (7).

6. The conveying mechanism of the shaft core testing equipment according to claim 1, characterized in that: The generator (6) base is fixedly connected to the connecting frame (41), and the energy storage module (10) is bolted to the connecting frame (41).