A corrosion inhibitor preparation device for anti-corrosion pipeline pipe production

By designing the material shaking and dehydration mechanism of the corrosion inhibitor preparation device, the problem of inconvenient crystal dehydration is solved, efficient dehydration treatment of the crystals is achieved, and the processing convenience and effect of batch crystals are improved.

CN117308530BActive Publication Date: 2025-09-30NANJING WEIZHEN INTELLIGENT PIPE NETWORK TECH RES INST CO LTD
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Patent Information

Application Number
CN202211181307.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-09-27
Publication Date
2025-09-30
Estimated Expiration
2042-09-27

AI Technical Summary

Technical Problem

In the prior art, the dehydration of crystals produced during the preparation of corrosion inhibitors is inconvenient and has a poor effect, especially when batches of crystals are accumulated.

Method used

A corrosion inhibitor preparation device for the production of anti-corrosion pipelines is designed, which includes a shaking mechanism and a dehydration mechanism. The shaking mechanism shakes the crystals and separates water droplets through the drainage holes. The crystals are dried by a heating fan and the moisture in the absorbent sponge is processed by a squeezing component.

Benefits of technology

It realizes the convenient dehydration of batch crystals, improves the separation efficiency and dehydration effect of water on the surface of the crystals, and facilitates the subsequent processing of the crystals.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention discloses a corrosion inhibitor preparation device for the production of anti-corrosion pipeline pipes, relating to the technical field of corrosion inhibitor preparation; the present invention comprises a preparation box, an upper cover is rotatably installed on the upper surface of the preparation box, a handle is fixedly installed on the side of the upper cover away from the preparation box, a visual window is fixedly installed on one side of the preparation box, a feed hopper is fixedly installed on one side of the preparation box, a drain pipe is fixedly installed on the side of the preparation box away from the upper cover, and a sealing plug is movably inserted at one end of the drain pipe away from the preparation box; by placing a batch of crystals in a material box, and driving a push seat and a push rod to reciprocate, the push seat and the push rod make the material box move back and forth horizontally, the crystals in the material box reciprocate synchronously and generate vibration, and at the same time, water droplets on the surface of the crystals drip onto the bottom of the preparation box through the drainage holes, thereby conveniently realizing the vibration of the batch crystals and the separation of water droplets on the surface of the crystals and the crystals, thereby effectively improving the convenience of dehydration of the batch crystals.
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Description

Technical Field

[0001] The invention relates to the technical field of corrosion inhibitor preparation, in particular to a corrosion inhibitor preparation device for the production of anti-corrosion pipelines and pipes. Background Art

[0002] Corrosion-resistant pipes: Corrosion-resistant pipes, also known as corrosion-resistant steel pipes, are steel pipes that have undergone an anti-corrosion process to effectively prevent or slow down corrosion caused by chemical or electrochemical reactions during transportation and use. According to Chinese statistics, direct economic losses from steel pipe corrosion in China exceed 280 billion yuan annually, and global losses from steel pipe corrosion currently reach as much as 500 billion US dollars annually. Corrosion-resistant pipes can effectively prevent or slow down corrosion. The corrosion inhibitors used in the production of corrosion-resistant pipes in existing technologies have the following problems during their preparation:

[0003] In the existing technology, a large amount of crystals are generated during the preparation of corrosion inhibitors, and the crystals need to be dehydrated before further processing. However, the existing technology directly places the batches of crystals under a heating fan for drying and dehydration. Since a large number of crystals are generated and the batches of crystals are piled together, the dehydration of the batches of crystals is relatively inconvenient and the dehydration effect is poor. In response to the above problems, the inventors proposed a corrosion inhibitor preparation device for the production of anti-corrosion pipes to solve the above problems. Summary of the Invention

[0004] In order to solve the problem that dehydration of batch crystals is relatively inconvenient and the dehydration effect is poor; the purpose of the present invention is to provide a corrosion inhibitor preparation device for the production of anti-corrosion pipelines.

[0005] In order to solve the above technical problems, the present invention adopts the following technical solutions: a corrosion inhibitor preparation device for the production of anti-corrosion pipelines, comprising a preparation box, an upper cover plate is rotatably installed on the upper surface of the preparation box, a handle is fixedly installed on the side of the upper cover plate away from the preparation box, a visual window is fixedly installed on one side of the preparation box, a material feed hopper is fixedly installed on one side of the preparation box, a drainage pipe is fixedly installed on the side of the preparation box away from the upper cover plate, a sealing plug is movably connected to the end of the drainage pipe away from the preparation box, uniformly distributed support legs are fixedly installed on the side of the preparation box away from the upper cover plate, uniformly distributed heat dissipation slots are provided on the side of the preparation box away from the visual window, a material box is provided inside the preparation box, and uniformly distributed drainage holes are provided on the inner wall of the material box, a material shaking mechanism is provided inside the preparation box, and a dehydration mechanism is also provided inside the preparation box, and a squeezing component is provided on the surface of the dehydration mechanism.

[0006] Preferably, the material shaking mechanism includes two guide blocks, the inner wall of the preparation box is provided with two guide grooves, the guide block and the inner wall of the guide groove are slidably connected, two connecting rods are fixedly installed on the opposite sides of the two guide blocks, one end of the connecting rod away from the guide block is fixedly connected to the outer wall of the material box, a push rod is fixedly installed on one side of the material box, a fixed seat is fixedly provided inside the preparation box, two first support rods are fixedly installed on the inner wall of the preparation box, one end of the two first support rods is fixedly connected to the fixed seat, the end of the push rod close to the material box passes through the fixed seat and is movably plugged with the fixed seat, and the push rod is away from the material box. A pushing seat is fixedly installed at one end, and the pushing seat is in movably contact with one side of the preparation box. An arc groove is provided on the side of the pushing seat away from the push rod, and a pushing spring is movably sleeved on the outer wall of the push rod, one end of the pushing spring is fixedly connected to one side of the pushing seat, and the end of the pushing spring away from the pushing seat is fixedly connected to one side of the fixed seat. A servo motor is fixedly provided on one side of the preparation box, and a fixed block is fixedly connected to the outer wall of the servo motor, and one side of the fixed block is fixedly connected to one side of the preparation box. A rotating rod is fixedly installed on the driving output end of the servo motor, and a cam is fixedly installed on the end of the rotating rod away from the servo motor.

[0007] Preferably, the dehydration mechanism includes a movable seat, the movable seat is in movably contact with the inner wall of the material box, the lower surface of the movable seat is provided with a water-absorbing sponge, the upper surface of the material box is provided with two guide rods, the two guide rods pass through the movable seat and are movably plugged into the movable seat, the upper surface of the material box is provided with a screw, the screw passes through the movable seat and is threadably connected to the movable seat, a transmission rod is provided on one side of the material box, one end of the transmission rod and one end of the screw are fixedly installed with a bevel gear, the two bevel gears mesh with each other, the end of the transmission rod away from the bevel gear is fixedly installed with a driving gear, the inner wall of the preparation box is fixedly installed with a tooth plate, the tooth plate is meshed with the driving gear, and the lower surface of the upper cover plate is fixedly installed with a uniformly distributed heating fan.

[0008] Preferably, a uniformly distributed first support plate is fixedly mounted on the upper surface of the material box, two ends of one guide rod are fixedly connected to the opposite sides of the two first support plates, a second support plate is fixedly mounted on the upper surface of the material box, one end of the lead screw away from the movable seat is rotatably connected to one side of the second support plate, a second support rod is fixedly mounted on one side of the material box, a rotating sleeve is fixedly mounted on the end of the second support rod away from the material box, and the transmission rod passes through the rotating sleeve and is rotatably connected to the rotating sleeve.

[0009] Preferably, the squeezing assembly includes a U-shaped pressure rod, which passes through the movable seat and is fixedly connected to the upper surface of the water-absorbing sponge. The movable seat has two cavities on one side close to the water-absorbing sponge. Two telescopic rods are fixedly installed on the inner walls of the two cavities. The piston end of the telescopic rod is fixedly connected to the upper surface of the water-absorbing sponge. A telescopic spring is provided on the outer wall of the telescopic rod. One end of the telescopic spring is fixedly connected to the inner wall of the cavity, and the other end of the telescopic spring is fixedly connected to the upper surface of the water-absorbing sponge.

[0010] Compared with the prior art, the present invention has the following beneficial effects:

[0011] 1. By placing a batch of crystals in a material box and driving the push seat and the push rod to reciprocate, the push seat and the push rod make the material box move back and forth horizontally, and the crystals in the material box reciprocate synchronously and generate vibrations. At the same time, the water droplets on the surface of the crystals drip through the drainage holes to the bottom of the preparation box, thereby conveniently achieving the vibration of the batch crystals and the separation of the water droplets on the surface of the crystals from the crystals, thereby effectively improving the convenience of batch crystal dehydration;

[0012] 2. By driving the lead screw to rotate back and forth, the lead screw drives the moving seat and the water-absorbing sponge to move back and forth horizontally. When the water-absorbing sponge contacts the crystals in the material box, the water-absorbing sponge absorbs the water droplets on the surface of the crystals. At the same time, by starting the heating fan, the heating fan generates high temperature during operation and dries the moisture on the surface of the batch crystals in the material box, thereby conveniently realizing the dehydration of the batch crystals, thereby effectively improving the dehydration effect of the crystals;

[0013] 3. By pressing the U-shaped pressure rod downward, the U-shaped pressure rod moves the water-absorbing sponge downward, and at the same time the telescopic rod and the telescopic spring expand and contract. When the lower surface of the water-absorbing sponge contacts the inner wall of the material box, the water in the water-absorbing sponge is squeezed out and discharged through the drainage hole, thereby conveniently squeezing out the water in the water-absorbing sponge and facilitating the secondary use of the water-absorbing sponge. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0015] Figure 1 This is a schematic diagram of the external structure of the preparation box of the present invention.

[0016] Figure 2 This is a schematic diagram of the cross-section structure of the preparation box of the present invention.

[0017] Figure 3 This is another schematic cross-sectional view of the preparation box of the present invention.

[0018] Figure 4 For the present invention Figure 3 A magnified schematic diagram of part A in FIG.

[0019] Figure 5 For the present invention Figure 3 An enlarged schematic diagram of part B in FIG.

[0020] Figure 6 It is a schematic diagram of the connection between the material shaking mechanism and the dehydration mechanism of the present invention.

[0021] Figure 7 For the present invention Figure 6 Enlarged schematic diagram of part C in .

[0022] Figure 8 It is a schematic diagram of the cross-section structure of the movable seat of the present invention.

[0023] In the figure: 1. Preparation box; 11. Upper cover; 12. Handle; 13. Viewing window; 14. Feed hopper; 15. Drain pipe; 16. Sealing plug; 17. Support leg; 18. Heat dissipation slot; 19. Material box; 191. Drain hole; 2. Material shaking mechanism; 21. Guide block; 22. Guide slot; 23. Connecting rod; 24. Push rod; 25. First support rod; 26. Fixed seat; 27. Push seat; 28. Arc slot; 29. ​​Push spring; 3. Servo motor; 3 1. Fixed block; 32. Rotating rod; 33. Cam; 4. Dehydration mechanism; 41. Moving seat; 42. Water-absorbing sponge; 43. First support plate; 44. Guide rod; 45. Lead screw; 46. Second support plate; 47. Transmission rod; 48. Second support rod; 49. Rotating sleeve; 5. Bevel gear; 51. Drive gear; 52. Tooth plate; 53. Heating fan; 6. Squeeze assembly; 61. U-shaped pressure rod; 62. Cavity; 63. Telescopic rod; 64. Telescopic spring. DETAILED DESCRIPTION

[0024] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0025] Example: Figure 1-8As shown, the present invention provides a corrosion inhibitor preparation device for the production of anti-corrosion pipes, including a preparation box 1, an upper cover plate 11 is rotatably installed on the upper surface of the preparation box 1, a feed hopper 14 is fixedly installed on one side of the preparation box 1, and a drainage pipe 15 is fixedly installed on the side of the preparation box 1 away from the upper cover plate 11. A material box 19 is provided inside the preparation box 1, and the crystals to be dehydrated can be conveniently added to the material box 19 through the feed hopper 14. The inner wall of the material box 19 is provided with evenly distributed drainage holes 191, and the water on the surface of the crystals is discharged. The water droplets can drip to the bottom of the preparation box 1 through the drainage hole 191 and be discharged through the drainage pipe 15. The interior of the preparation box 1 is provided with a shaking mechanism 2, which can shake the crystals in the material box 19 through the material box 19. The interior of the preparation box 1 is also provided with a dehydration mechanism 4, which can absorb water droplets passing through the surface of the crystal and dry the crystal, thereby achieving dehydration of the crystal. The surface of the dehydration mechanism 4 is provided with a squeezing component 6, which can squeeze out the water adsorbed by the absorbent sponge 42 through the squeezing component 6.

[0026] By adopting the above technical solution, the crystals to be dehydrated are added into the material box 19 through the feed hopper 14, and the shaking mechanism 2 shakes the crystals in the material box 19 through the material box 19, so that the crystals in the material box 19 are continuously shaken, which is convenient for the subsequent dehydration operation of batches of crystals. The dehydration mechanism 4 absorbs the water droplets on the surface of the crystals and dries the crystals, thereby realizing the dehydration of the crystals. The squeezing component 6 squeezes out the water adsorbed by the absorbent sponge 42.

[0027] A handle 12 is fixedly installed on the side of the upper cover 11 away from the preparation box 1. By pulling the handle 12, the staff can open the upper cover 11. A visual window 13 is fixedly installed on one side of the preparation box 1. Through the visual window 13, the staff can observe the working conditions in the preparation box 1. A sealing plug 16 is movably connected to the end of the drain pipe 15 away from the preparation box 1. By setting the sealing plug 16, it is convenient to control the opening and closing of the drain pipe 15.

[0028] By adopting the above technical solution, the staff can open the upper cover 11 by pulling the handle 12, and observe the working conditions in the preparation box 1 through the visual window 13. By setting the sealing plug 16, the opening and closing of the drain pipe 15 can be controlled.

[0029] The side of the preparation box 1 away from the upper cover 11 is fixedly installed with evenly distributed support legs 17, which can improve the stability of the preparation box 1. The side of the preparation box 1 away from the visual window 13 is provided with evenly distributed heat dissipation grooves 18. When high-temperature airflow is generated in the preparation box 1, the high-temperature airflow in the preparation box 1 can be discharged through the heat dissipation grooves 18.

[0030] By adopting the above technical solution, by setting the support legs 17, the support legs 17 improve the stability of the preparation box 1, and by opening the heat dissipation grooves 18, when high-temperature airflow is generated in the preparation box 1, the high-temperature airflow in the preparation box 1 is discharged through the heat dissipation grooves 18.

[0031] The material shaking mechanism 2 includes two guide blocks 21, and two guide grooves 22 are provided on the inner wall of the preparation box 1. The guide blocks 21 and the inner walls of the guide grooves 22 are slidably connected, and the guide blocks 21 can slide horizontally along the inner walls of the guide grooves 22. Two connecting rods 23 are fixedly installed on the opposite sides of the two guide blocks 21. The end of the connecting rod 23 away from the guide block 21 is fixedly connected to the outer wall of the material box 19. The guide block 21 can keep the material box 19 moving in the horizontal direction through the connecting rod 23. A push rod 24 is fixedly installed on one side of the material box 19, and the push rod 24 can push the material box 19 to move in the horizontal direction.

[0032] By adopting the above technical solution, by setting the guide block 21, the guide groove 22 and the connecting rod 23, the guide block 21 keeps the material box 19 moving in the horizontal direction through the connecting rod 23, and by driving the push rod 24 to work reciprocatingly, the push rod 24 pushes the material box 19 to move reciprocatingly in the horizontal direction.

[0033] A fixed seat 26 is fixed inside the preparation box 1, and one end of the push rod 24 close to the material box 19 passes through the fixed seat 26 and is movably plugged into the fixed seat 26. The end of the push rod 24 away from the material box 19 is fixedly installed with a pushing seat 27. The pushing seat 27 can push the material box 19 to move horizontally through the push rod 24. The pushing seat 27 is in movably contact with one side of the preparation box 1. An arc groove 28 is provided on the side of the pushing seat 27 away from the push rod 24. By providing the arc groove 28, it is convenient to make the pushing seat 27 move horizontally. A pushing spring 29 is movably sleeved on the outer wall of the push rod 24. One end of the pushing spring 29 is fixedly connected to one side of the pushing seat 27. The pushing spring 29 One end away from the pushing seat 27 is fixedly connected to one side of the fixed seat 26. When the pushing spring 29 is reset, the pushing spring 29 can make the pushing seat 27 move horizontally in the opposite direction. A servo motor 3 is fixedly installed on one side of the preparation box 1. A rotating rod 32 is fixedly installed on the driving output end of the servo motor 3. A cam 33 is fixedly installed on the end of the rotating rod 32 away from the servo motor 3. By turning on the servo motor 3, the driving shaft of the servo motor 3 can rotate the cam 33 through the rotating rod 32. When the raised position of the cam 33 contacts the inner wall of the arc groove 28, the cam 33 can push the pushing seat 27 to move horizontally. At the same time, the pushing spring 29 is compressed.

[0034] By adopting the above technical solution, by turning on the servo motor 3, the driving shaft of the servo motor 3 rotates the cam 33 through the rotating rod 32. When the raised position of the cam 33 contacts the inner wall of the arc groove 28, the cam 33 pushes the pushing seat 27 to move horizontally. At the same time, the pushing seat 27 compresses the pushing spring 29, and the pushing seat 27 moves the material box 19 horizontally through the push rod 24. When the cam 33 is disengaged from the inner wall of the arc groove 28, the pushing spring 29 is reset and pushes the pushing seat 27 to move horizontally in the opposite direction. At this time, the pushing seat 27 moves the material box 19 in the opposite direction horizontally through the push rod 24, thereby realizing the reciprocating motion of the material box 19. The crystals in the material box 19 reciprocate synchronously and generate vibrations. At the same time, water droplets on the surface of the crystals drip onto the bottom of the preparation box 1 through multiple drainage holes 191.

[0035] Two first support rods 25 are fixedly installed on the inner wall of the preparation box 1, and one end of the two first support rods 25 is fixedly connected to the fixed seat 26. The first support rods 25 can support and fix the fixed seat 26. The outer wall of the servo motor 3 is fixedly connected with a fixed block 31, and one side of the fixed block 31 is fixedly connected to one side of the preparation box 1. The fixed block 31 can support and fix the servo motor 3.

[0036] By adopting the above technical solution, by providing the first support rod 25 , the first support rod 25 supports and fixes the fixing seat 26 , and by providing the fixing block 31 , the fixing block 31 supports and fixes the servo motor 3 .

[0037] The dehydration mechanism 4 includes a movable seat 41, which is in movable contact with the inner wall of the material box 19. The lower surface of the movable seat 41 is provided with a water-absorbing sponge 42. The movable seat 41 can move the water-absorbing sponge 42 horizontally. While the water-absorbing sponge 42 moves horizontally, it contacts multiple crystals in the material box 19 and absorbs water droplets on the surface of the crystals. The upper surface of the material box 19 is provided with two guide rods 44. The two guide rods 44 pass through the movable seat 41 and are movably connected to the movable seat 41. The guide rods 44 can guide the movable seat 41 so that the movable seat 41 keeps moving horizontally. The upper surface of the material box 19 is provided with a screw 45. The screw 45 passes through the movable seat 41 and is threadedly connected to the movable seat 41. The screw 45 can drive the movable seat 41 to move horizontally.

[0038] By adopting the above technical solution, a guide rod 44 is set up, which guides the movable seat 41 so that the movable seat 41 keeps moving in the horizontal direction. By driving the lead screw 45 to rotate, the lead screw 45 drives the movable seat 41 to move in the horizontal direction. The movable seat 41 causes the water-absorbing sponge 42 to move in the horizontal direction. While the water-absorbing sponge 42 moves horizontally, it contacts multiple crystals in the material box 19 and absorbs water droplets on the surface of the crystals.

[0039] A transmission rod 47 is provided on one side of the material box 19, and one end of the transmission rod 47 and one end of the lead screw 45 are fixedly installed with a bevel gear 5. The two bevel gears 5 mesh with each other, and the transmission rod 47 can rotate the lead screw 45 through the two meshing bevel gears 5. The end of the transmission rod 47 away from the bevel gear 5 is fixedly installed with a driving gear 51, and the driving gear 51 can rotate the transmission rod 47. The inner wall of the preparation box 1 is fixedly installed with a toothed plate 52, which is meshed with the driving gear 51. When the transmission rod 47 and the driving gear 51 move synchronously with the material box 19, the toothed plate 52 can rotate the driving gear 51. The lower surface of the upper cover plate 11 is fixedly installed with a uniformly distributed heating fan 53. By turning on the heating fan 53, the heating fan 53 generates high temperature and dries the moisture on the surfaces of multiple crystals in the material box 19.

[0040] By adopting the above technical solution, when the transmission rod 47 and the drive gear 51 move synchronously with the material box 19, the tooth plate 52 causes the drive gear 51 to rotate, and the drive gear 51 causes the transmission rod 47 to rotate. The transmission rod 47 rotates the lead screw 45 through two mutually meshing bevel gears 5. By turning on the heating fan 53, the heating fan 53 generates high temperature and dries the moisture on the surface of multiple crystals in the material box 19.

[0041] A uniformly distributed first support plate 43 is fixedly installed on the upper surface of the material box 19, and both ends of a guide rod 44 are fixedly connected to the opposite sides of the two first support plates 43. The first support plate 43 can support and fix the guide rod 44. A second support plate 46 is fixedly installed on the upper surface of the material box 19, and the end of the screw 45 away from the moving seat 41 is rotatably connected to one side of the second support plate 46. The second support plate 46 can support the screw 45 to improve the stability of the screw 45. A second support rod 48 is fixedly installed on one side of the material box 19, and a rotating sleeve 49 is fixedly installed on the end of the second support rod 48 away from the material box 19. The transmission rod 47 passes through the rotating sleeve 49 and is rotatably connected to the rotating sleeve 49. When the material box 19 moves horizontally, the material box 19 can make the transmission rod 47 move horizontally synchronously through the second support rod 48 and the rotating sleeve 49.

[0042] By adopting the above technical solution, a first support plate 43 is provided to support and fix the guide rod 44, and a second support plate 46 is provided to support the lead screw 45, thereby improving the stability of the lead screw 45. When the material box 19 moves horizontally, the material box 19 causes the transmission rod 47 to move horizontally synchronously through the second support rod 48 and the rotating sleeve 49.

[0043] When the U-shaped pressure rod 61 is pressed downward, the U-shaped pressure rod 61 can move the water-absorbing sponge 42 downward. When the lower surface of the water-absorbing sponge 42 contacts the inner wall of the material box 19, the water in the water-absorbing sponge 42 is squeezed out and discharged through multiple drainage holes 191. The movable seat 41 is provided with two cavities 62 on one side close to the water-absorbing sponge 42. The inner walls of the two cavities 62 are fixedly installed with two telescopic rods 63. The piston end of the telescopic rod 63 is fixedly connected to the upper surface of the water-absorbing sponge 42. The outer wall of the telescopic rod 63 is movably sleeved with a telescopic spring 64. One end of the telescopic spring 64 is fixedly connected to the inner wall of the cavity 62, and the other end of the telescopic spring 64 is fixedly connected to the upper surface of the water-absorbing sponge 42. When the U-shaped pressure rod 61 is stopped from being pressed downward, the telescopic rod 63 and the telescopic spring 64 are contracted, and the water-absorbing sponge 42 returns to its initial position.

[0044] By adopting the above technical solution, by pressing the U-shaped pressure rod 61 downward, the U-shaped pressure rod 61 causes the water-absorbing sponge 42 to move downward. When the lower surface of the water-absorbing sponge 42 contacts the inner wall of the material box 19, the moisture in the water-absorbing sponge 42 is squeezed out and discharged through multiple drainage holes 191. When the U-shaped pressure rod 61 stops being pressed downward, the telescopic rod 63 and the telescopic spring 64 contract and the water-absorbing sponge 42 returns to its initial position.

[0045] Working principle: When it is necessary to dehydrate the crystals generated in the solution, the staff first puts the batch of crystals through the feed hopper 14, so that the crystals fall into the material box 19;

[0046] At this time, by turning on the servo motor 3 and the multiple heating fans 53, the driving shaft of the servo motor 3 rotates the cam 33 through the rotating rod 32. When the raised position of the cam 33 contacts the inner wall of the arc groove 28, the cam 33 pushes the pushing seat 27 to move horizontally. At the same time, the pushing seat 27 compresses the pushing spring 29, and the pushing seat 27 moves the material box 19 horizontally through the push rod 24. The material box 19 slides the two guide blocks 21 along the inner walls of the two guide grooves 22 in the horizontal direction through the four connecting rods 23. When the cam 33 contacts the inner wall of the arc groove 28, the pushing spring 29 is compressed, and the pushing seat 27 moves the material box 19 horizontally. After the inner wall of 28 is detached, the push spring 29 is reset and pushes the push seat 27 to move horizontally in the opposite direction. At this time, the push seat 27 causes the material box 19 to move horizontally in the opposite direction through the push rod 24, thereby realizing the reciprocating motion of the material box 19. The crystals in the material box 19 reciprocate synchronously and vibrate. At the same time, water droplets on the surface of the crystals drip onto the bottom of the preparation box 1 through multiple drainage holes 191, thereby conveniently realizing the shaking of batch crystals and the separation of water droplets on the surface of the crystals from the crystals, thereby effectively improving the convenience of dehydrating batch crystals.

[0047] At the same time, the material box 19 makes the transmission rod 47 and the driving gear 51 move horizontally synchronously through the second support rod 48 and the rotating sleeve 49, the gear plate 52 makes the driving gear 51 rotate back and forth, the driving gear 51 makes the transmission rod 47 rotate back and forth, the transmission rod 47 makes the lead screw 45 rotate back and forth through two mutually meshing bevel gears 5, the lead screw 45 drives the moving seat 41 to move back and forth horizontally, the moving seat 41 makes the water-absorbing sponge 42 move back and forth horizontally, and the water-absorbing sponge 42 contacts the batch crystals in the material box 19 while moving back and forth horizontally, and absorbs water droplets on the surface of the batch crystals. At the same time, multiple heating fans 53 generate high temperature when operating, and dry the moisture on the surface of the batch crystals in the material box 19, thereby conveniently realizing the dehydration of the batch crystals, thereby effectively improving the dehydration effect of the crystals;

[0048] When the dehydration treatment of the crystals in the material box 19 is completed, the crystals in the material box 19 are taken out by opening the upper cover 11, and the U-shaped pressure rod 61 is pressed downward. The U-shaped pressure rod 61 moves the water-absorbing sponge 42 downward, and at the same time, multiple telescopic rods 63 and multiple telescopic springs 64 are extended and retracted. When the lower surface of the water-absorbing sponge 42 contacts the inner wall of the material box 19, the water in the water-absorbing sponge 42 is squeezed out and discharged through multiple drainage holes 191, thereby conveniently realizing the squeezing treatment of the water in the water-absorbing sponge 42, and then facilitating the secondary use of the water-absorbing sponge 42.

[0049] Obviously, those skilled in the art may make various changes and modifications to the present invention without departing from the spirit and scope of the present invention. Thus, if such changes and modifications fall within the scope of the claims and their equivalents, the present invention is intended to include such changes and modifications.

Claims

1. A corrosion inhibitor preparation device for the production of anti-corrosion pipelines, comprising a preparation box (1), characterized in that: An upper cover plate (11) is rotatably mounted on the upper surface of the preparation box (1), a material feed hopper (14) is fixedly mounted on one side of the preparation box (1), a drainage pipe (15) is fixedly mounted on the side of the preparation box (1) away from the upper cover plate (11), a material box (19) is provided inside the preparation box (1), and drainage holes (191) are evenly distributed on the inner wall of the material box (19), a material shaking mechanism (2) is provided inside the preparation box (1), and a dehydration mechanism (4) is further provided inside the preparation box (1), and a squeezing component (6) is provided on the surface of the dehydration mechanism (4); The dehydration mechanism (4) includes a movable seat (41), the movable seat (41) and the inner wall of the material box (19) are in movable contact, the lower surface of the movable seat (41) is provided with a water-absorbing sponge (42), the upper surface of the material box (19) is provided with two guide rods (44), the two guide rods (44) pass through the movable seat (41) and are movably connected to the movable seat (41), the upper surface of the material box (19) is provided with a screw (45), the screw (45) passes through the movable seat (41) and is threadedly connected to the movable seat (41); A transmission rod (47) is provided on one side of the material box (19), and one end of the transmission rod (47) and one end of the lead screw (45) are fixedly mounted with a bevel gear (5), and the two bevel gears (5) are meshed with each other. A driving gear (51) is fixedly mounted on the end of the transmission rod (47) away from the bevel gear (5), and a tooth plate (52) is fixedly mounted on the inner wall of the preparation box (1), and the tooth plate (52) and the driving gear (51) are meshed and connected. A uniformly distributed heating fan (53) is fixedly mounted on the lower surface of the upper cover plate (11); The upper surface of the material box (19) is fixedly mounted with uniformly distributed first support plates (43), the two ends of one guide rod (44) are fixedly connected to the opposite sides of the two first support plates (43), the upper surface of the material box (19) is fixedly mounted with a second support plate (46), one end of the lead screw (45) away from the movable seat (41) is rotatably connected to one side of the second support plate (46), one side of the material box (19) is fixedly mounted with a second support rod (48), the end of the second support rod (48) away from the material box (19) is fixedly mounted with a rotating sleeve (49), and the transmission rod (47) passes through the rotating sleeve (49) and is rotatably connected to the rotating sleeve (49); The squeezing assembly (6) includes a U-shaped pressure rod (61), which passes through the movable seat (41) and is fixedly connected to the upper surface of the water-absorbing sponge (42). Two cavities (62) are provided on a side of the movable seat (41) close to the water-absorbing sponge (42). Two telescopic rods (63) are fixedly installed on the inner walls of the two cavities (62). The piston end of the telescopic rod (63) is fixedly connected to the upper surface of the water-absorbing sponge (42). A telescopic spring (64) is movably sleeved on the outer wall of the telescopic rod (63). One end of the telescopic spring (64) is fixedly connected to the inner wall of the cavity (62), and the other end of the telescopic spring (64) is fixedly connected to the upper surface of the water-absorbing sponge (42).

2. A corrosion inhibitor preparation device for anti-corrosion pipeline pipe production according to claim 1, characterized in that: A handle (12) is fixedly mounted on one side of the upper cover plate (11) away from the preparation box (1), a visual window (13) is fixedly mounted on one side of the preparation box (1), and a sealing plug (16) is movably plugged into one end of the drain pipe (15) away from the preparation box (1).

3. A corrosion inhibitor preparation device for anti-corrosion pipeline pipe production according to claim 2, characterized in that: Evenly distributed support legs (17) are fixedly mounted on a side of the preparation box (1) away from the upper cover plate (11), and evenly distributed heat dissipation slots (18) are opened on a side of the preparation box (1) away from the viewing window (13).

4. The corrosion inhibitor preparation device for anti-corrosion pipeline pipe production according to claim 1, characterized in that: The material shaking mechanism (2) includes two guide blocks (21), and the inner wall of the preparation box (1) is provided with two guide grooves (22). The guide blocks (21) and the inner walls of the guide grooves (22) are slidably connected. Two connecting rods (23) are fixedly installed on opposite sides of the two guide blocks (21). One end of the connecting rod (23) away from the guide block (21) is fixedly connected to the outer wall of the material box (19), and a push rod (24) is fixedly installed on one side of the material box (19).

5. The corrosion inhibitor preparation device for the production of anti-corrosion pipelines and pipes according to claim 4, characterized in that: The interior of the preparation box (1) is fixed with a fixed seat (26), the end of the push rod (24) close to the material box (19) passes through the fixed seat (26) and is movably connected to the fixed seat (26), the end of the push rod (24) away from the material box (19) is fixed with a push seat (27), the push seat (27) is in movably contact with one side of the preparation box (1), the push seat (27) is provided with an arc groove (28) on the side away from the push rod (24), and the outer wall of the push rod (24) is movably connected. The movable sleeve is provided with a pushing spring (29), one end of the pushing spring (29) is fixedly connected to one side of the pushing seat (27), and the end of the pushing spring (29) away from the pushing seat (27) is fixedly connected to one side of the fixed seat (26). A servo motor (3) is fixedly provided on one side of the preparation box (1), a rotating rod (32) is fixedly installed on the driving output end of the servo motor (3), and a cam (33) is fixedly installed on the end of the rotating rod (32) away from the servo motor (3).

6. A corrosion inhibitor preparation device for anti-corrosion pipeline pipe production according to claim 5, characterized in that: Two first support rods (25) are fixedly installed on the inner wall of the preparation box (1), one end of each of the two first support rods (25) is fixedly connected to a fixing seat (26), and a fixing block (31) is fixedly connected to the outer wall of the servo motor (3), and one side of the fixing block (31) is fixedly connected to one side of the preparation box (1).

Citation Information

Patent Citations

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