Conveying and guiding device for production of methylbenzotriazole

By designing a conveying flow guide device including a bottom plate, a split disc, a conveying plate, a deflector, a baffle, a telescopic assembly and a down pressure member, the problem of easy blockage and uneven splitting of the partition port is solved, and the uniform splitting and anti-blocking effect of the solution is achieved.

CN223087595UActive Publication Date: 2025-07-11NANTONG BOTAO CHEM
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Patent Information

Application Number
CN202421718630.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-19
Publication Date
2025-07-11
Estimated Expiration
2034-07-19

AI Technical Summary

Technical Problem

During the existing methylbenzotriazole production process, the diversion port is prone to clogging and the amount of diversion discharge is uneven, which affects the diversion efficiency.

Method used

A conveying flow guide device including a bottom plate, a shunt plate, a conveying plate, a deflector, a baffle, a telescopic assembly and a downpressure member is adopted. The shunt plate is driven by a motor to rotate, and combined with the design of the baffle and a downpressure member, the uniform flow of the solution is achieved and blocked.

Benefits of technology

Effectively prevent the solution in the shunt pan, achieve uniform shunt of the solution, and improve the shunt efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a conveying and guiding device for methylbenzotriazole production, which belongs to the technical field of methylbenzotriazole production, and comprises a bottom plate, a shunting disc is rotatably embedded in the top surface of the bottom plate, a support cylinder is fixedly connected to the bottom surface of the bottom plate, a motor connected with the shunting disc is arranged in the support cylinder, the shunting disc is driven to rotate by the motor, and the shunting disc is driven to rotate by the motor. A flow dividing disc is arranged on the bottom plate, three flow dividing grooves are formed in the flow dividing disc in an annular array mode, a conveying plate and two flow guiding plates are installed on the outer side of the bottom plate in an annular array mode, a support is arranged on the bottom face of the conveying plate, and conveying grooves matched with the flow dividing grooves are formed in the top face of the conveying plate. The solution in the flow dividing groove is divided through the flow dividing plate, the solution in the flow dividing groove is divided to the flow guide plate through rotation of the flow dividing plate, flow dividing of the solution is achieved, and meanwhile blockage of the solution in the flow dividing plate is prevented through rotation of the flow dividing plate.
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Description

Technical Field

[0001] The utility model belongs to the technical field of methyl benzotriazole production, and particularly relates to a conveying and guiding device for methyl benzotriazole production. Background Art

[0002] Methyl benzotriazole is abbreviated as TTA. The pure product is white particles or powder, which is a mixture of 4-methyl benzotriazole and 5-methyl benzotriazole, with a melting point of 80-86°C. It is insoluble in water, soluble in organic solvents such as alcohol, benzene, toluene, and chloroform, soluble in dilute alkali solution, and easy to absorb moisture. It is mainly an anti-rust agent and corrosion inhibitor for metals (such as silver, copper, lead, nickel, zinc, etc.). During the production and processing of methyl benzotriazole, it needs to be divided and transported.

[0003] The existing conveying device is prone to blockage at the diversion port, and the amount of methyl benzotriazole discharged by the diversion is uneven, affecting the diversion efficiency.

[0004] Therefore, we propose a conveying and guiding device for methyl benzotriazole production to solve the above problems. Summary of the Utility Model

[0005] The purpose of the utility model is to solve the problem of blockage at the diversion port in the prior art, and to propose a conveying and guiding device for methyl benzotriazole production.

[0006] In order to achieve the above purpose, the utility model adopts the following technical scheme:

[0007] A conveying and guiding device for methyl benzotriazole production, including a bottom plate. A diversion plate is rotationally embedded in the top surface of the bottom plate, and a support cylinder is fixedly connected to the bottom surface of the bottom plate. A motor connected to the diversion plate is arranged in the support cylinder. Three diversion grooves are annularly arranged on the diversion plate. A conveying plate and two guiding plates are annularly arranged on the outside of the bottom plate. A bracket is arranged on the bottom surface of the conveying plate, and a conveying groove adapted to the diversion groove is arranged on the top surface of the conveying plate. Each guiding plate is provided with a guiding groove adapted to the diversion groove. A baffle is arranged between the bottom plate and one of the guiding plates, and a telescopic component for telescoping the baffle is arranged in the support cylinder. A pressing component for lowering the telescopic component is arranged at the bottom of the diversion plate and extends into the support cylinder.

[0008] Preferably, the telescopic component includes a telescopic rod and a spring sleeved outside the telescopic rod. The bottom of the baffle is fixedly connected with a connecting rod arranged in the support cylinder. The bottom of the connecting rod is horizontally and fixedly connected with a connecting plate. The telescopic rod is fixedly connected between the connecting plate and the inner bottom wall of the support cylinder, and the spring is fixed between the connecting plate and the inner bottom wall of the support cylinder.

[0009] Preferably, the pressing member includes an arc-shaped pressing plate which penetrates through the bottom plate and extends into the support cylinder, and the bottom end of the arc-shaped pressing plate is lower than the bottom end of the connecting plate.

[0010] Preferably, the sides of the arc-shaped pressing plate adjacent to the connecting plate are both arc-shaped.

[0011] Preferably, the distance between the two ends of the baffle is greater than the distance between the diversion grooves.

[0012] Preferably, a cover plate covering the top surface of the diversion plate is provided above the bottom plate.

[0013] In summary, the technical effects and advantages of the present utility model are as follows: Through the provided bottom plate, diversion plate, diversion grooves, conveying plate, motor, and guide plate, baffle assembly and pressing assembly, the solution on the conveying plate is divided through the diversion plate and the rotation of the motor, and the solution in the diversion grooves is divided. Moreover, by setting the rotation of the diversion plate, the solution in the diversion grooves is diverted to the guide plate to achieve the diversion of the solution. At the same time, through the rotation of the diversion plate, the solution in the diversion plate is prevented from being blocked; by setting the baffle, telescopic assembly, and pressing member, as the diversion plate rotates with the motor, the first diversion groove on the diversion plate is blocked by the baffle, so that the solution in the diversion groove is guided to the other diversion plate through rotation. And with the continuous rotation of the diversion plate, the pressing member at the bottom of the diversion plate presses down the telescopic assembly, causing the baffle to descend. At this time, the solution in the diversion grooves on the diversion plate will flow into the guide plate, achieving the uniform diversion of the solution. Description of the Drawings

[0014] Figure 1 It is a schematic structural diagram of a conveying and guiding device for methylbenzotriazole production;

[0015] Figure 2 It is a schematic diagram of the internal connection structure of a conveying and guiding device for methylbenzotriazole production;

[0016] Figure 3 It is a schematic diagram of the telescopic assembly and pressing member in a conveying and guiding device for methylbenzotriazole production.

[0017] In the figure: 1, bottom plate; 2, support cylinder; 3, conveying plate; 4, conveying groove; 5, guide plate; 6, diversion groove; 7, baffle; 8, bracket; 9, cover plate; 10, diversion plate; 11, diversion groove; 12, connecting rod; 13, connecting plate; 14, telescopic rod; 15, spring; 16, arc-shaped pressing plate; 17, motor. Detailed Embodiments

[0018] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all of the embodiments.

[0019] To better understand the above technical solution, the above technical solution will be described in detail below in conjunction with the accompanying drawings of the specification and specific implementation manners.

[0020] Refer to Figures 1 - 3 , a conveying and guiding device for methylbenzotriazole production, including a bottom plate 1. A shunt plate 10 is rotatably embedded in the top surface of the bottom plate 1. A support cylinder 2 is fixedly connected to the bottom surface of the bottom plate 1. A motor 17 connected to the shunt plate 10 is provided in the support cylinder 2. The shunt plate 10 is rotated by the motor 17. Three shunt grooves 11 are annularly arranged on the shunt plate 10. One conveying plate 3 and two guiding plates 5 are annularly arranged outside the bottom plate 1. A support 8 is provided on the bottom surface of the conveying plate 3. A conveying groove 4 adapted to the shunt groove 11 is provided on the top surface of the conveying plate 3. A guiding groove 6 adapted to the shunt groove 11 is provided on each guiding plate 5. The shunt groove 11 and the conveying groove 4 are respectively communicated with the shunt groove 11. A baffle 7 is provided between the bottom plate 1 and one of the guiding plates 5. The solution in the shunt groove 11 on the shunt plate 10 is blocked by the baffle 7, so that it flows to the next shunt plate. An expansion and contraction component for expanding and contracting the baffle 7 is provided in the support cylinder 2. A pressing component for lowering the expansion and contraction component is provided at the bottom of the shunt plate 10 and extends into the support cylinder 2. By rotating the solution on the conveying plate 3 through the shunt plate 10 and the motor 17, the solution in the shunt groove 11 is shunted, and the rotation of the shunt plate 10 is set to shunt the solution in the shunt groove 11 to the guiding plate 5, realizing the shunting of the solution. At the same time, by rotating the shunt plate 10, the solution in the shunt plate 10 is prevented from being blocked.

[0021] Refer to Figure 3 , the expansion and contraction component includes a telescopic rod 14 and a spring 15 sleeved outside the telescopic rod 14. The bottom of the baffle 7 is fixedly connected to a connecting rod 12 in the support cylinder 2. A connecting plate 13 is horizontally and fixedly connected to the bottom of the connecting rod 12. The telescopic rod 14 is fixedly connected between the connecting plate 13 and the inner bottom wall of the support cylinder 2. The spring 15 is fixed between the connecting plate 13 and the inner bottom wall of the support cylinder 2. When the connecting plate 13 descends, the spring 15 sleeved outside the telescopic rod 14 contracts under the compression of the connecting plate 13. At the same time, the baffle 7 will descend synchronously, so that the gap between the baffle 7 and the guiding plate 5 is opened, and the solution in the shunt groove 11 is divided into the guiding plate 5.

[0022] Refer to Figure 3 , the pressing component includes an arc-shaped pressing plate 16. The arc-shaped pressing plate 16 penetrates through the bottom plate 1 and extends into the support cylinder 2, and the bottom end of the arc-shaped pressing plate 16 is lower than the bottom end of the connecting plate 13. By driving the shunt plate 10 to rotate through the motor 17, the arc-shaped pressing plate 16 at the bottom of the shunt plate 10 is pressed down by the connecting plate 13, realizing the contraction of the baffle 7.

[0023] Refer to Figure 3, one side of the arc-shaped pressing plate 16 adjacent to the connecting plate 13 is arc-shaped, which is convenient for pressing down the connecting plate 13 when the arc-shaped pressing plate 16 contacts the connecting plate 13. At the same time, the length of the arc-shaped pressing plate 16 is greater than that of the connecting plate 13. After the flow dividing groove 11 completely passes by, the baffle 7 will reset and rise.

[0024] Refer to Figure 2 , the distance between the two ends of the baffle 7 is greater than the distance between the flow dividing grooves 11, so that the baffle 7 completely blocks the excess solution in the flow dividing grooves 11.

[0025] Refer to Figures 1 - 2 , above the bottom plate 1, there is a cover plate 9 covering the top surface of the flow dividing plate 10. When the flow dividing plate 10 rotates driven by the motor 17, the cover plate 9 is used to prevent the solution in the flow dividing groove 11 from being thrown out.

[0026] Working principle:

[0027] By rotating the flow dividing plate 10 and the motor 17, the solution on the conveying plate 3 is used to divide the solution in the flow dividing groove 11. When the flow dividing plate 10 rotates, the arc-shaped pressing plate 16 at the bottom of the flow dividing plate 10 presses down the connecting plate 13 through rotation. Due to the pressing down of the connecting plate 13, the connecting plate 13 descends. When the connecting plate 13 descends, the spring 15 sleeved outside the telescopic rod 14 will contract, and at the same time, the baffle 7 will descend synchronously, so that the gap between the baffle 7 and the guide plate 5 is opened, and the solution in the flow dividing groove 11 is divided into the guide plate 5, and the solution in the flow dividing groove 11 is diverted to the guide plate 5, realizing the diversion of the solution. At the same time, by rotating the flow dividing plate 10, the solution in the flow dividing plate 10 is prevented from being blocked.

[0028] The above is only the preferred specific implementation manner of the present invention, but the protection scope of the present invention is not limited thereto. Any person skilled in the art within the technical scope disclosed by the present invention, according to the technical solution and the inventive concept of the present invention, makes equivalent substitutions or changes, and all should be covered within the protection scope of the present invention.

Claims

1. A conveying and guiding device for methyl benzotriazole production, comprising a bottom plate (1), characterized in that, The top surface of the bottom plate (1) is rotatably embedded with a flow dividing plate (10), and the bottom surface of the bottom plate (1) is fixedly connected with a support cylinder (2). A motor (17) connected to the flow dividing plate (10) is arranged in the support cylinder (2). Three flow dividing grooves (11) are annularly and arrayedly arranged on the flow dividing plate (10). One conveying plate (3) and two guide plates (5) are annularly and arrayedly installed on the outer side of the bottom plate (1). A support (8) is arranged on the bottom surface of the conveying plate (3), and a conveying groove (4) adapted to the flow dividing groove (11) is arranged on the top surface of the conveying plate (3). A guide groove (6) adapted to the flow dividing groove (11) is arranged on each guide plate (5). A baffle (7) is arranged between the bottom plate (1) and one of the guide plates (5). A telescopic component for telescoping the baffle (7) is arranged in the support cylinder (2). A pressing component for lowering the telescopic component is arranged at the bottom of the flow dividing plate (10) and extends into the support cylinder (2).

2. The conveying and guiding device for methylbenzotriazole production according to claim 1, characterized in that, The telescopic component includes a telescopic rod (14) and a spring (15) sleeved outside the telescopic rod (14). The bottom of the baffle (7) is fixedly connected with a connecting rod (12) arranged in the support cylinder (2). The bottom of the connecting rod (12) is horizontally and fixedly connected with a connecting plate (13). The telescopic rod (14) is fixedly connected between the connecting plate (13) and the inner bottom wall of the support cylinder (2). The spring (15) is fixedly connected between the connecting plate (13) and the inner bottom wall of the support cylinder (2).

3. The conveying and guiding device for methylbenzotriazole production according to claim 2, characterized in that, The pressing component includes an arc-shaped pressing plate (16). The arc-shaped pressing plate (16) penetrates through the bottom plate (1) and extends into the support cylinder (2), and the bottom end of the arc-shaped pressing plate (16) is lower than the bottom end of the connecting plate (13).

4. The conveying and guiding device for methylbenzotriazole production according to claim 3, characterized in that, One side of the arc-shaped pressing plate (16) adjacent to the connecting plate (13) is arc-shaped.

5. The conveying and guiding device for methyl benzotriazole production according to claim 1, wherein, The distance between the two ends of the baffle (7) is greater than the distance between the flow dividing grooves (11).

6. The conveying and guiding device for methyl benzotriazole production according to claim 1, wherein, A cover plate (9) covering the top surface of the flow dividing plate (10) is arranged above the bottom plate (1).