Graphite particle directional conveying device

By designing a directional conveying device for graphite particles and using technical means such as bevel gear systems and elastic baffles, the problem of disorderly conveying graphite particles is solved, and directional conveying and uniform distribution are achieved, which improves the conveying efficiency and product quality.

CN222906833UActive Publication Date: 2025-05-27JIANGXI JIUNENG NEW MATERIALS CO LTD
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Patent Information

Application Number
CN202421853711.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-01
Publication Date
2025-05-27
Estimated Expiration
2034-08-01

AI Technical Summary

Technical Problem

In the prior art, graphite particles lack an effective orientation mechanism during the transportation process, resulting in disordered particle flow, affecting the delivery efficiency and product quality.

Method used

A directional conveying device for graphite particles is designed, including a cutting slope protection, a rack, a conveyor belt, a directional classification device and a rotational anti-blocking device. The bevel gear system is driven by the motor to drive the elastic baffle and extrusion plate to rotate, and the directional control and classified transportation of graphite particles are realized.

Benefits of technology

The directional conveying and uniform distribution of graphite particles is achieved, the friction and collision between particles is reduced, and the conveying efficiency and product quality are improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model belongs to the technical field of graphite, and particularly relates to a graphite particle directional conveying device which comprises a discharging protection slope, the discharging protection slope is fixedly connected with a machine frame, and a directional classifying device is arranged on the outer wall of the machine frame. According to the graphite particle directional conveying device, a directional classification device is arranged, a motor works to drive a first bevel gear to rotate and move and drive a second bevel gear to rotate on a fixing plate, the second bevel gear rotates to drive a connecting rod and an elastic baffle, and the rotation of the elastic baffle conducts directional control over conveying of graphite particles; in the rotating connection process of the connecting rod, the extrusion plate rotates along with the connecting rod to drive the movable baffle to rotate in the rack, after the extrusion plate rotates to a certain angle, limiting between the extrusion plate and the movable baffle is relieved, the movable baffle resets to knock the knocking block, part of the adsorbed graphite particles are shaken off, and conveying continues; graphite particles are directionally conveyed while classified control is conducted, and it is guaranteed that the graphite particles are evenly distributed at the target position.
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Description

Technical Field

[0001] The utility model relates to the technical field of graphite, and specifically relates to a device for directionally conveying graphite particles. Background Technique

[0002] Graphite particles can work stably in high-temperature environments, which enables them to be used in high-temperature equipment such as oxygen generators. Graphite can resist corrosion by various gases and liquids, so it is often used to make utensils, pipes, and equipment, such as heat exchangers, reaction tanks, pickling tanks, etc.

[0003] Currently, in the prior art, during the conveying process of graphite particles, due to the lack of an effective directional mechanism, the flow direction of the particles is often disordered, which not only affects the conveying efficiency but also may lead to uneven distribution of graphite particles at the target position, thereby affecting the quality and performance of the product. In view of this, we propose a device for directionally conveying graphite particles. Content of the Utility Model

[0004] The main purpose of the utility model is to provide a device for directionally conveying graphite particles, which can solve the problems raised in the above background technique.

[0005] To achieve the above purpose, the device for directionally conveying graphite particles proposed by the utility model includes a blanking slope, the blanking slope is fixedly connected to a frame, a conveyor belt is rotatably connected to the frame, a directional classification device is arranged on the outer wall of the frame, a rotating anti-blocking device is arranged in the frame, and the directional classification device includes:

[0006] A motor, the motor is arranged outside the frame, and the output shaft of the motor is fixedly connected to a bevel gear one;

[0007] A bevel gear two, the bevel gear one meshes with the bevel gear two, the bevel gear two is rotatably connected to a fixing plate, and the bevel gear two is fixedly connected to a connecting rod;

[0008] An elastic baffle, the outer wall of the connecting rod is fixedly connected to the elastic baffle, the elastic baffle is slidably connected to the conveyor belt, and the outer wall of the connecting rod is fixedly connected to a pressing plate;

[0009] A rotating shaft, the frame is rotatably connected to the rotating shaft, the rotating shaft is arranged in the inner cavity of the frame, the rotating shaft is elastically connected to a movable baffle, a sliding column is slidably connected to the outside of the frame, the sliding column is fixedly connected to a knocking block, and the knocking block is elastically connected to the frame through a spring.

[0010] Preferably, the rotating anti-blocking device includes a rotating column, the rotating shaft is fixedly connected to the rotating column, the rotating column is arranged in the inner cavity of the frame, and the rotation of the rotating column is driven by the operation of the rotating shaft.

[0011] Preferably, a limiting block is fixedly connected to the outside of the rotating column, and a transmission belt is sleeved on the rotating column. The rotation of the rotating column drives the transmission effect of the transmission belt. To prevent the transmission belt from moving and deviating, a limiting block is provided to block the movement.

[0012] Preferably, an auxiliary column is rotatably connected to the inner cavity of the frame, and an activity groove is formed in the outer wall of the auxiliary column.

[0013] Preferably, a positioning column is fixedly connected to the activity groove, and the positioning column is sleeved with a transmission belt. The movement of the transmission belt sleeved on the positioning column on the auxiliary column drives the positioning column to rotate. With the stable rotation of the auxiliary column, other drums also work together. The graphite particles remaining on the frame after classification move along a predetermined path under the drive of the drums. This kind of flow helps to reduce the friction and collision between the particles, further ensuring the quality and integrity of the graphite particles.

[0014] Preferably, when the pressing plate rotates, it contacts and presses against the movable baffle, and the movable baffle is arranged in front of the knocking block.

[0015] The utility model provides a graphite particle directional conveying device. It has the following beneficial effects:

[0016] (1). Through the provided directional classification device of the graphite particle directional conveying device, the rotation of the first bevel gear is driven by the work of the motor. The first bevel gear meshes with the second bevel gear, and the rotation of the second bevel gear drives the connecting rod and the elastic baffle. The rotation of the elastic baffle controls the direction of the conveyance of the graphite particles. The pressing plate rotates accordingly, driving the movable baffle contacted by the pressing plate to rotate in the frame. After the pressing plate rotates to a certain angle, the limit with the movable baffle is released, and during the reset process of the movable baffle, it knocks on the knocking block, shaking off some adsorbed graphite particles. This operation controls the classification and at the same time enables the directional conveyance of the graphite particles, ensuring the uniform distribution of the graphite particles at the target position.

[0017] (2). Through the provided rotation anti-blocking device of the graphite particle directional conveying device, while the movable baffle is working, the rotating shaft rotates accordingly, driving the rotation of the rotating column. The transmission belt sleeved on the positioning column of the auxiliary column moves accordingly, driving the positioning column to rotate, and other drums also work together. The graphite particles remaining on the frame after classification move along a predetermined path under the drive of the drums. This kind of flow helps to reduce the friction and collision between the particles, ensuring the quality and integrity of the graphite particles, being able to ensure the stable flow of the graphite particles, and improving the use effect of the subsequent directional conveying device. Description of the Drawings

[0018] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can be obtained based on the structures shown in these drawings.

[0019] Figure 1 Schematic diagram of the overall structure of the present invention Figure 1 ;

[0020] Figure 2 Schematic diagram of the overall structure of the present invention Figure 2 ;

[0021] Figure 3 For the present utility Figure 2 Schematic diagram of structure A therein;

[0022] Figure 4 Schematic diagram of partial structure of the orientation classification device of the present invention;

[0023] Figure 5 Schematic diagram of the structure of the rotation anti-blocking device of the present invention.

[0024] Explanation of the reference numerals of the drawings:

[0025] 1. Feeding slope protection; 2. Frame; 3. Conveyor belt; 4. Orientation classification device; 41. Motor; 42. First bevel gear; 43. Second bevel gear; 44. Fixed plate; 45. Connecting rod; 46. Elastic baffle; 47. Extrusion plate; 48. Rotating shaft; 49. Movable baffle; 410. Sliding column; 411. Spring; 412. Knocking block; 5. Rotation anti-blocking device; 51. Rotating column; 52. Limiting block; 53. Transmission belt; 54. Auxiliary column; 55. Movable groove; 56. Positioning column.

[0026] The realization of the purpose, functional features and advantages of the present invention will be further described in conjunction with the embodiments with reference to the drawings. Specific embodiments

[0027] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, rather than all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.

[0028] Please refer to Figures 1 - 5, the present utility model proposes a graphite particle directional conveying device, which includes a blanking slope protection 1. The blanking slope protection 1 is fixedly connected to a frame 2. A conveyor belt 3 is rotatably connected to the frame 2. A directional classification device 4 is arranged on the outer wall of the frame 2. A rotating anti-blocking device 5 is arranged in the frame 2. The directional classification device 4 includes a motor 41.

[0029] In the embodiment of the present utility model, in order to enable the directional conveying of graphite particles and ensure the uniform distribution of graphite particles at the target position. Specifically, a motor 41 is arranged outside the frame 2. The output shaft of the motor 41 is fixedly connected to a first bevel gear 42. The rotation of the first bevel gear 42 is driven by the operation of the motor 41. The first bevel gear 42 meshes with a second bevel gear 43. The second bevel gear 43 is rotatably connected to a fixed plate 44. The second bevel gear 43 is fixedly connected to a connecting rod 45. Through the meshing of the first bevel gear 42 and the second bevel gear 43, the second bevel gear 43 is driven to rotate on the fixed plate 44. An elastic baffle 46 is fixedly connected to the outer wall of the connecting rod 45. The elastic baffle 46 is slidably connected to the conveyor belt 3. An extrusion plate 47 is fixedly connected to the outer wall of the connecting rod 45. The rotation of the second bevel gear 43 drives the connecting rod 45 and the elastic baffle 46. The rotation of the elastic baffle 46 controls the direction of the conveying of graphite particles. A rotating shaft 48 is rotatably connected to the frame 2. The rotating shaft 48 is arranged in the inner cavity of the frame 2. An active baffle 49 is elastically connected to the rotating shaft 48. A sliding column 410 is slidably connected to the outside of the frame 2. A knocking block 412 is fixedly connected to the sliding column 410. The knocking block 412 is elastically connected to the frame 2 through a spring 411. When the extrusion plate 47 rotates, it contacts and presses the active baffle 49. The active baffle 49 is arranged in front of the knocking block 412. During the rotation connection of the connecting rod 45, the extrusion plate 47 rotates along with it, driving the active baffle 49 contacted by the extrusion plate 47 to rotate in the frame 2. After the extrusion plate 47 rotates to a certain angle, the limit with the active baffle 49 is released, and the active baffle 49 elastically resets. During the reset process, the knocking block 412 is knocked, and then the frame 2 vibrates, shaking off some adsorbed graphite particles and continuing the conveying.

[0030] Furthermore, in order to ensure the continuous and stable flow of graphite particles and improve the use effect of the subsequent directional conveying device, specifically, the rotating anti-blocking device 5 includes a rotating column 51. The rotating shaft 48 is fixedly connected to the rotating column 51. The rotating column 51 is arranged in the inner cavity of the frame 2. The rotation of the rotating column 51 is driven by the operation of the rotating shaft 48. A limiting block 52 is fixedly connected to the outside of the rotating column 51. A transmission belt 53 is sleeved on the rotating column 51. The rotation of the rotating column 51 drives the transmission effect of the transmission belt 53. To prevent the movement deviation of the transmission belt 53, the limiting block 52 is provided to block the movement. An auxiliary column 54 is rotatably connected in the inner cavity of the frame 2. An activity groove 55 is opened on the outer wall of the auxiliary column 54. A positioning column 56 is fixedly connected in the activity groove 55. The transmission belt 53 is sleeved on the positioning column 56. The movement of the transmission belt 53 sleeved on the positioning column 56 on the auxiliary column 54 drives the rotation of the positioning column 56. With the stable rotation of the auxiliary column 54, other drums also work cooperatively. The graphite particles remaining on the frame 2 after classification move along a predetermined path under the drive of the drums. This kind of flow helps to reduce the friction and collision between the particles, and further ensures the quality and integrity of the graphite particles.

[0031] In the present utility model, during use, the rotation of the bevel gear one 42 is driven by the operation of the motor 41. The meshing of the bevel gear one 42 and the bevel gear two 43 drives the rotation of the bevel gear two 43 on the fixed plate 44. The rotation of the bevel gear two 43 drives the connecting rod 45 and the elastic baffle 46. The rotation of the elastic baffle 46 conducts directional control on the conveying of graphite particles. During the rotational connection of the connecting rod 45, the pressing plate 47 rotates along with it, driving the rotation of the movable baffle 49 in contact with the pressing plate 47 in the frame 2. After the pressing plate 47 rotates to a certain angle, the limit with the movable baffle 49 is released, and the movable baffle 49 elastically resets. During the reset process, the movable baffle 49 strikes the knocking block 412, and then vibrates the frame 2, shaking off some adsorbed graphite particles and continuing the conveying. This operation enables the directional conveying of graphite particles, ensuring the uniform distribution of graphite particles at the target position. While the movable baffle 49 is working, the rotating shaft 48 rotates along with it. The rotation of the rotating shaft 48 drives the rotation of the rotating column 51. The transmission belt 53 sleeved on the positioning column 56 on the auxiliary column 54 moves accordingly, driving the rotation of the positioning column 56. With the stable rotation of the auxiliary column 54, other drums also work cooperatively. The graphite particles remaining on the frame 2 after classification move along a predetermined path under the drive of the drums. This kind of flow helps to reduce the friction and collision between the particles, and further ensures the quality and integrity of the graphite particles, and can ensure the continuous and stable flow of graphite particles, improving the use effect of the subsequent directional conveying device.

[0032] The above are only the preferred embodiments of the present utility model, and do not thereby limit the patent scope of the present utility model. Any equivalent structural transformation made under the inventive concept of the present utility model by using the content of the specification and drawings of the present utility model, or any direct / indirect application in other related technical fields shall be included within the patent protection scope of the present utility model.

Claims

1. A graphite particle directional conveying device, comprising a material discharge slope protection (1), characterized in that: The material discharge slope protection (1) is fixedly connected to a frame (2), a conveyor belt (3) is rotatably connected to the frame (2), a directional sorting device (4) is provided on the outer wall of the frame (2), a rotating anti-blocking device (5) is provided in the frame (2), and the directional sorting device (4) comprises: A motor (41), wherein the motor (41) is disposed outside the frame (2), and an output shaft of the motor (41) is fixedly connected to a bevel gear 1 (42); Bevel gear 2 (43), the bevel gear 1 (42) is meshed with bevel gear 2 (43), the bevel gear 2 (43) is rotatably connected to a fixed plate (44), and the bevel gear 2 (43) is fixedly connected to a connecting rod (45); An elastic baffle (46), the outer wall of the connecting rod (45) being fixedly connected to the elastic baffle (46), the elastic baffle (46) being slidably connected to the conveyor belt (3), and the outer wall of the connecting rod (45) being fixedly connected to the extrusion plate (47); A rotating shaft (48), the frame (2) is rotatably connected to the rotating shaft (48), the rotating shaft (48) is arranged in the inner cavity of the frame (2), the rotating shaft (48) is elastically connected to a movable baffle (49), the outside of the frame (2) is slidably connected to a sliding column (410), the sliding column (410) is fixedly connected to a knocking block (412), and the knocking block (412) is elastically connected to the frame (2) via a spring (411).

2. A graphite particle directional conveying device according to claim 1, characterized in that: The rotating anti-blocking device (5) comprises a rotating column (51), the rotating shaft (48) is fixedly connected to the rotating column (51), and the rotating column (51) is arranged in the inner cavity of the frame (2).

3. A graphite particle directional conveying device according to claim 2, characterized in that: The outside of the rotating column (51) is fixedly connected to a limiting block (52), and a transmission belt (53) is sleeved on the rotating column (51).

4. A graphite particle directional conveying device according to claim 3, characterized in that: An auxiliary column (54) is rotatably connected in the inner cavity of the frame (2), and a movable groove (55) is formed on the outer wall of the auxiliary column (54).

5. A graphite particle directional conveying device according to claim 4, characterized in that: A positioning column (56) is fixedly connected in the movable groove (55), and a transmission belt (53) is sleeved on the positioning column (56).

6. A graphite particle directional conveying device according to claim 1, characterized in that: When the extrusion plate (47) rotates, it contacts and extrudes the movable baffle (49), and the movable baffle (49) is arranged in front of the knocking block (412).