Efficient spiral groove drying cylinder

By designing an efficient spiral groove drying cylinder, combined with vibration, pressurization and concentration mechanism, the problems of complex structure and high cost in the prior art are solved, and efficient heat transfer and drainage performance of the high-speed paper machine drying cylinder is achieved.

CN222975548UActive Publication Date: 2025-06-13JIANGSU WEIMEI LIGHT IND MASCH CO LTD
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Patent Information

Application Number
CN202422277708.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-19
Publication Date
2025-06-13
Estimated Expiration
2034-09-19

AI Technical Summary

Technical Problem

The existing Yanke cylinders have complex structures and high cost, making them difficult to be suitable for drying cylinder requirements of high-speed paper machines.

Method used

An efficient spiral groove drying cylinder is designed, and by setting up a vibration mechanism, pressurization mechanism and a centralized mechanism, the rapid flow and discharge of water is achieved by using components such as transmission rods, bidirectional threaded rods and siphons.

Benefits of technology

It improves the heat transfer efficiency and drainage performance of the dryer, reduces structural complexity and cost, and is suitable for the needs of high-speed paper machines.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of high-speed paper machines, and discloses an efficient spiral groove drying cylinder which comprises a water inlet barrel, a water inlet pipe is fixedly connected to the end of the water inlet barrel, a water outlet pipe is fixedly connected to the end, away from the water inlet pipe, of the water inlet barrel, and a supporting plate is fixedly connected to the surface of the water inlet barrel. And the surface of the water inlet barrel is fixedly connected with a water collecting tank. The vibrating mechanism is arranged, the motor is started to drive the transmission rod to rotate, the transmission rod drives the two-way threaded rod to rotate while rotating, when the two-way threaded rod rotates, the threaded rings move in the direction close to each other, and when the threaded rings move, the driven rods are driven to move in the direction close to each other. When the bidirectional threaded rod rotates and drives the rotating shaft to rotate, the rotating shaft rotates and drives the vibrating roller to rotate, when the vibrating roller rotates, the surface makes contact with the surface of the vibrating plate, so that vibration is generated, and when the threaded ring moves, the push rods are pushed to move in the direction close to each other.
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Description

Technical Field

[0001] The utility model relates to the technical field of high-speed paper machine equipment, in particular to an efficient spiral groove dryer cylinder. Background Technique

[0002] In the papermaking process, the dryer cylinder plays a crucial role, mainly used for drying the moisture in the paper sheet and finishing the paper surface. In order to improve the heat transfer efficiency and drainage performance of the dryer cylinder, the spiral groove dryer cylinder came into being.

[0003] The inner wall of the Yankee cylinder is in the form of grooves, and it is an annular groove. After the steam condenses in the dryer cylinder, it accumulates at the bottom of each groove, and then is siphoned through the suction pipes arranged in each groove and discharged outside the cylinder through a complex condensate water system. This form is only applicable to large-diameter Yankee cylinders, with complex structure and high cost. Obviously, it does not meet the requirements of high-speed paper machine dryer cylinders. Content of the Utility Model

[0004] The purpose of the utility model is to provide an efficient spiral groove dryer cylinder to solve the problems put forward in the above background technique.

[0005] To solve the above technical problems, the utility model is realized through the following technical solutions:

[0006] The utility model is an efficient spiral groove dryer cylinder, including a water inlet bucket, the end of the water inlet bucket is fixedly connected with a water inlet pipe, the end of the water inlet bucket far away from the water inlet pipe is fixedly connected with a water outlet pipe, the surface of the water inlet bucket is fixedly connected with a support plate, the surface of the water inlet bucket is fixedly connected with a water collecting groove, the surface of the water collecting groove is fixedly connected with a motor, the output end of the motor is fixedly connected with a transmission rod, and further includes;

[0007] A vibration mechanism, the vibration mechanism includes a sliding plate, the surface of the sliding plate is fixedly connected with an elastic plate, and the surface of the elastic plate is fixedly connected with a contact plate;

[0008] A pressurizing mechanism, the pressurizing mechanism includes a sliding block, the surface of the sliding block is rotatably connected with a downward pressure rod, and the end of the downward pressure rod far away from the sliding block is rotatably connected with a downward pressure plate;

[0009] A concentrating mechanism, the concentrating mechanism includes a concentrating plate, the surface of the concentrating plate is fixedly connected with a sealing plate, and the inner wall of the concentrating plate is slidably connected with a shrinking right-angle plate.

[0010] Furthermore, the end of the water inlet pipe communicates with the end of the water inlet bucket, the end of the water outlet pipe communicates with the end of the water inlet bucket, the inner wall of the water inlet bucket is provided with a spiral groove, and the inner wall of the water collecting groove is provided with a buffer groove.

[0011] Further, the vibration mechanism includes a bidirectional threaded rod, the surface of the bidirectional threaded rod is threadedly connected with a threaded ring, the top of the threaded ring is fixedly connected with a driven rod, the surface of the threaded ring is fixedly connected with a push rod, the end of the bidirectional threaded rod is fixedly connected with a rotating shaft, the surface of the rotating shaft is fixedly connected with a vibration roller, the inner wall of the buffer groove is slidably connected with a vibration plate, the end of the vibration plate is fixedly connected with a buffer elastic rod, the bottom of the vibration plate is fixedly connected with a vibration elastic rod, and the surface of the vibration plate is fixedly connected with a slide rail.

[0012] Further, the transmission rod completely penetrates through the surface of the water collecting tank and is fixedly connected with the end of the bidirectional threaded rod. The number of threaded rings is set to two, and the two threaded rings are symmetrically arranged with the contact plate as the center. The end of the push rod away from the threaded ring is fixedly connected with the surface of the sliding plate. The surface of the vibration roller contacts the surface of the vibration plate, and the surface of the slide rail is slidably connected with the inner wall of the sliding plate.

[0013] Further, the pressurizing mechanism includes a siphon tube, the surface of the siphon tube is fixedly connected with a chute plate, the surface of the sliding block is fixedly connected with a connecting plate, the bottom of the sliding block is fixedly connected with a driven plate, and the surface of the driven plate is fixedly connected with a pulling rod.

[0014] Further, the inner wall of the chute plate is slidably connected with the surface of the sliding block. The end of the driven rod away from the threaded ring is fixedly connected with the surface of the sliding block. The surface of the siphon tube is slidably connected with the inner wall of the lower pressing plate. The end of the siphon tube is fixedly connected with the end of the water outlet pipe. The number of the lower pressing rods is set to four, and the four chute plates are symmetrically arranged with the siphon tube as the center. The surface of the siphon tube is provided with water absorption holes.

[0015] Further, the concentrating mechanism includes a reset elastic rod, the end of the reset elastic rod is fixedly connected with a pushed plate, the bottom of the pushed plate is fixedly connected with a concentrating plate, the surface of the concentrating plate is fixedly connected with a pressing frame, the end of the shrinking right-angled plate away from the concentrating plate is slidably connected with a passive plate, and the surface of the passive plate is fixedly connected with a stress plate.

[0016] Further, the end of the pulling rod away from the driven plate is fixedly connected with the bottom of the concentrating plate. The end of the reset elastic rod away from the pushed plate is fixedly connected with the inner wall of the water collecting tank at a high position. The number of the sealing plates is set to four, and the four sealing plates are symmetrically arranged with the siphon tube as the center. The end of the pressing frame away from the concentrating plate contacts the surface of the stress plate.

[0017] The utility model has the following beneficial effects:

[0018] The utility model is provided with a vibration mechanism. First, the motor is started to drive the transmission rod to rotate. While the transmission rod rotates, it drives the bidirectional threaded rod to rotate. When the bidirectional threaded rod rotates, the threaded rings move towards each other. While the threaded rings move, they drive the driven rods to move towards each other. When the bidirectional threaded rod rotates, it drives the rotating shaft to rotate. While the rotating shaft rotates, it drives the vibrating roller to rotate. When the vibrating roller rotates, vibration is generated by the contact between its surface and the surface of the vibrating plate. While the threaded rings move, they push the push rods to move towards each other. While the push rods move, they push the sliding plates to slide towards each other on the surface of the slide rails. While the sliding plates move, they drive the two ends of the elastic plate to move towards each other. When the two ends of the elastic plate move, the middle part of the elastic plate bends. While the middle part of the elastic plate bends, it pushes the contact plate to move upward. When the contact plate moves upward to a certain position and fits with the surface of the water inlet bucket, the water inlet bucket is effectively vibrated, and the water in the threaded grooves on the inner wall of the water inlet bucket flows more quickly.

[0019] The utility model is provided with a pressurizing mechanism. While the driven rods move towards each other, they drive the sliding blocks to move towards each other on the inner wall of the chute plate. While the sliding blocks move, they drive the connecting plates to move towards each other. While the sliding blocks move, they push the pressing rods to move towards each other. While the pressing rods move, they push the pressing disks to slide downward on the surface of the siphon pipe. While the sliding blocks move, they drive the driven plates to move towards each other. While the driven plates move, they drive the pulling rods to move towards each other. When the pressing disks move downward, a certain pressure can be effectively generated. When the water is under pressure, the siphon pipe can suck out the water more quickly.

[0020] The utility model is provided with a concentrating mechanism. While the pulling rods move towards each other, they drive the concentrating plate to move towards each other. While the concentrating plate moves, it drives the pushed plate to move towards each other. The pushed plate drives the reset elastic rod to extend towards each other. While the concentrating plate moves, it drives the sealing plate to move towards each other. While the concentrating plate moves, it drives the shrinking right-angle plate to shrink towards the inner wall of the passive plate. While the concentrating plate moves, it drives the extrusion frame to move towards each other. When the extrusion frame moves, it squeezes the stress plate through its surface and makes the stress plate move towards each other. When the stress plate is under the squeezing force and moves, it pushes the passive plate to move towards each other. While the passive plate moves, it drives the shrinking right-angle plate to shrink towards the inner wall of the concentrating plate. This not only effectively pushes and concentrates the water, but also more effectively seals the water, so that when the pressing disk presses down, a greater pressure is generated, and thus the siphon pipe discharges the water more quickly.

[0021] Of course, it is not necessary for any product implementing the utility model to achieve all the above-mentioned advantages simultaneously. Brief Description of the Drawings

[0022] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments. 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 these drawings.

[0023] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0024] Figure 2 It is a schematic diagram of the overall sectional structure of the present invention;

[0025] Figure 3 It is a schematic diagram of the overall structure of the vibration mechanism of the present invention;

[0026] Figure 4 It is a schematic diagram of the structure of the rotating shaft of the present invention;

[0027] Figure 5 It is a schematic diagram of the overall structure of the pressurizing mechanism of the present invention;

[0028] Figure 6 For the present invention Figure 5 The enlarged schematic diagram of part A in;

[0029] Figure 7 It is a schematic diagram of the pull rod of the present invention;

[0030] Figure 8 It is a schematic diagram of the overall structure of the concentrating mechanism of the present invention.

[0031] In the drawings, the list of components represented by each reference numeral is as follows:

[0032] In the figure: 1, water inlet bucket; 2, water inlet pipe; 3, water outlet pipe; 4, support plate; 5, water collecting tank; 6, motor; 7, transmission rod; 10, vibration mechanism; 11, bidirectional threaded rod; 12, threaded ring; 13, driven rod; 14, push rod; 15, rotating shaft; 16, vibration roller; 17, vibration plate; 18, buffer elastic rod; 19, vibration elastic rod; 20, slide rail; 21, slide plate; 22, elastic plate; 23, contact plate; 30, pressurizing mechanism; 31, siphon; 32, chute plate; 33, sliding block; 34, downward pressure rod; 35, downward pressure plate; 36, connecting plate; 37, driven plate; 38, pull rod; 50, concentrating mechanism; 51, reset elastic rod; 52, pushed plate; 53, concentrating plate; 54, sealing plate; 55, shrinking right-angle plate; 56, extrusion frame; 57, passive plate; 58, stress plate. Detailed Embodiments

[0033] The following will clearly and completely describe the technical solutions in the embodiments of the present utility model 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 the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present utility model.

[0034] Please refer to Figure 1 - Figure 8 As shown, the present utility model is an efficient spiral groove drying cylinder, including a water inlet bucket 1. One end of the water inlet bucket 1 is fixedly connected to a water inlet pipe 2, and the end of the water inlet bucket 1 far from the water inlet pipe 2 is fixedly connected to a water outlet pipe 3. A support plate 4 is fixedly connected to the surface of the water inlet bucket 1, and a water collecting tank 5 is fixedly connected to the surface of the water inlet bucket 1. A motor 6 is fixedly connected to the surface of the water collecting tank 5, and a transmission rod 7 is fixedly connected to the output end of the motor 6. First, start the motor 6 to drive the transmission rod 7 to rotate. It also includes;

[0035] A vibration mechanism 10, the vibration mechanism 10 includes a sliding plate 21. While the sliding plate 21 moves, it drives both ends of an elastic plate 22 to move towards each other. An elastic plate 22 is fixedly connected to the surface of the sliding plate 21, and a contact plate 23 is fixedly connected to the surface of the elastic plate 22. When both ends of the elastic plate 22 move, the middle part of the elastic plate 22 bends. When the middle part of the elastic plate 22 bends, it pushes the contact plate 23 to move upward. When the contact plate 23 moves upward to a certain position, it fits with the surface of the water inlet bucket 1;

[0036] A pressurizing mechanism 30, the pressurizing mechanism 30 includes a sliding block 33. While the sliding block 33 moves, it pushes a lower pressure rod 34 to move towards each other. A lower pressure rod 34 is rotatably connected to the surface of the sliding block 33, and a lower pressure plate 35 is rotatably connected to the end of the lower pressure rod 34 far from the sliding block 33. When the lower pressure rod 34 moves, it pushes the lower pressure plate 35 to slide downward on the surface of the siphon pipe 31;

[0037] A concentrating mechanism 50, the concentrating mechanism 50 includes a concentrating plate 53. When a pulling rod 38 moves towards each other, it drives the concentrating plate 53 to move towards each other. A sealing plate 54 is fixedly connected to the surface of the concentrating plate 53. When the concentrating plate 53 moves, it drives the sealing plate 54 to move towards each other. A contracting right-angle plate 55 is slidably connected to the inner wall of the concentrating plate 53. When a passive plate 57 moves, it drives the contracting right-angle plate 55 to contract towards the inner wall of the concentrating plate 53.

[0038] The end of the water inlet pipe 2 communicates with the end of the water inlet bucket 1, the end of the water outlet pipe 3 communicates with the end of the water inlet bucket 1, a spiral groove is provided in the inner wall of the water inlet bucket 1, and a buffer groove is provided in the inner wall of the water collecting tank 5.

[0039] The vibration mechanism 10 includes a bidirectional threaded rod 11. A threaded ring 12 is threadedly connected to the surface of the bidirectional threaded rod 11. A driven rod 13 is fixedly connected to the top of the threaded ring 12. When the threaded ring 12 moves, it drives the driven rod 13 to move towards each other. A push rod 14 is fixedly connected to the surface of the threaded ring 12. A rotating shaft 15 is fixedly connected to the end of the bidirectional threaded rod 11. When the bidirectional threaded rod 11 rotates, it drives the rotating shaft 15 to rotate. A vibration roller 16 is fixedly connected to the surface of the rotating shaft 15. When the rotating shaft 15 rotates, it drives the vibration roller 16 to rotate. A vibration plate 17 is slidably connected to the inner wall of the buffer groove. A buffer elastic rod 18 is fixedly connected to the end of the vibration plate 17. A vibration elastic rod 19 is fixedly connected to the bottom of the vibration plate 17. A slide rail 20 is fixedly connected to the surface of the vibration plate 17, effectively vibrating the water inlet bucket 1 and making the water flow more quickly in the thread grooves on the inner wall of the water inlet bucket 1.

[0040] The transmission rod 7 completely penetrates the surface of the water collecting tank 5 and is fixedly connected to the end of the bidirectional threaded rod 11. When the transmission rod 7 rotates, it drives the bidirectional threaded rod 11 to rotate. The number of threaded rings 12 is set to two. When the bidirectional threaded rod 11 rotates, it makes the threaded rings 12 move towards each other. The two threaded rings 12 are symmetrically arranged with the contact plate 23 as the center. The end of the push rod 14 away from the threaded ring 12 is fixedly connected to the surface of the slide plate 21. When the threaded ring 12 moves, it pushes the push rod 14 to move towards each other. The surface of the vibration roller 16 contacts the surface of the vibration plate 17. When the vibration roller 16 rotates, it generates vibration by contacting the surface of the vibration plate 17. The surface of the slide rail 20 is slidably connected to the inner wall of the slide plate 21. When the push rod 14 moves, it pushes the slide plate 21 to slide towards each other on the surface of the slide rail 20.

[0041] The pressurizing mechanism 30 includes a siphon tube 31. A chute plate 32 is fixedly connected to the surface of the siphon tube 31. When the driven rod 13 moves towards each other, it drives the sliding block 33 to move towards each other on the inner wall of the chute plate 32. A connecting plate 36 is fixedly connected to the surface of the sliding block 33. When the sliding block 33 moves, it drives the connecting plate 36 to move towards each other. A driven plate 37 is fixedly connected to the bottom of the sliding block 33. When the sliding block 33 moves, it drives the driven plate 37 to move towards each other. A pulling rod 38 is fixedly connected to the surface of the driven plate 37. When the driven plate 37 moves, it drives the pulling rod 38 to move towards each other. When the pressing disc 35 moves downward, it can effectively generate a certain pressure. When the water is under pressure, the siphon tube can suck out the water more quickly.

[0042] The inner wall of the chute plate 32 is slidably connected to the surface of the sliding block 33. One end of the driven rod 13 away from the threaded ring 12 is fixedly connected to the surface of the sliding block 33. The surface of the siphon tube 31 is slidably connected to the inner wall of the pressing plate 35. The end of the siphon tube 31 is fixedly connected to the end of the water outlet pipe 3. The number of pressing rods 34 is set to four. The four chute plates 32 are symmetrically arranged around the siphon tube 31. The surface of the siphon tube 31 is provided with water suction holes.

[0043] The concentrating mechanism 50 includes a reset elastic rod 51. The reset elastic rod 51 is driven by the pushing plate 52 to extend in the direction of approaching each other. The end of the reset elastic rod 51 is fixedly connected to the pushing plate 52. When the concentrating plate 53 moves, it drives the pushing plate 52 to move in the direction of approaching each other. The bottom of the pushing plate 52 is fixedly connected to the concentrating plate. The surface of the concentrating plate 53 is fixedly connected to the extrusion frame 56. One end of the retractable right-angle plate 55 away from the concentrating plate 53 is slidably connected to the passive plate 57. When the concentrating plate 53 moves, it drives the retractable right-angle plate 55 to contract towards the inner wall of the passive plate 57. When the force-receiving plate 58 is subjected to an extrusion force and moves, it pushes the passive plate 57 to move in the direction of approaching each other. The surface of the passive plate 57 is fixedly connected to the force-receiving plate 58. When the extrusion frame 56 moves, it extrudes the force-receiving plate 58 through the surface and makes the force-receiving plate 58 move in the direction of approaching each other. It not only effectively pushes and concentrates the water, but also more effectively seals the water, so that when the pressing plate 35 is pressed down, a greater pressure is generated, thereby enabling the siphon tube 31 to discharge the water more quickly.

[0044] One end of the pulling rod 38 away from the driven plate 37 is fixedly connected to the bottom of the concentrating plate 53. One end of the reset elastic rod 51 away from the pushing plate 52 is height-connected to the inner wall of the water collecting tank 5. The number of sealing plates 54 is set to four. The four sealing plates 54 are symmetrically arranged around the siphon tube 31. One end of the extrusion frame 56 away from the concentrating plate 53 is in contact with the surface of the force-receiving plate 58. When the concentrating plate 53 moves, it drives the extrusion frame 56 to move in the direction of approaching each other.

[0045] During use, first start the motor 6 to drive the transmission rod 7 to rotate. While the transmission rod 7 rotates, it drives the double-threaded screw rod 11 to rotate. When the double-threaded screw rod 11 rotates, the threaded rings 12 move towards each other. While the threaded rings 12 move, they drive the driven rods 13 to move towards each other. When the double-threaded screw rod 11 rotates, it drives the rotating shaft 15 to rotate. While the rotating shaft 15 rotates, it drives the vibrating roller 16 to rotate. When the vibrating roller 16 rotates, vibration is generated by the contact between its surface and the surface of the vibrating plate 17. While the threaded rings 12 move, they push the push rods 14 to move towards each other. While the push rods 14 move, they push the sliding plates 21 to slide towards each other on the surface of the slide rails 20. While the sliding plates 21 move, they drive the two ends of the elastic plate 22 to move towards each other. When the two ends of the elastic plate 22 move, the middle part of the elastic plate 22 bends. While the middle part of the elastic plate 22 bends, it pushes the contact plate 23 to move upward. When the contact plate 23 moves upward to a certain position, it fits against the surface of the water inlet bucket 1. While the driven rods 13 move towards each other, they drive the sliding blocks 33 to move towards each other on the inner wall of the chute plate 32. While the sliding blocks 33 move, they drive the connecting plates 36 to move towards each other. While the sliding blocks 33 move, they push the pressing rods 34 to move towards each other. While the pressing rods 34 move, they push the pressing discs 35 to slide downward on the surface of the siphon tube 31. While the sliding blocks 33 move, they drive the driven plates 37 to move towards each other. While the driven plates 37 move, they drive the pulling rods 38 to move towards each other. When the pressing discs 35 move downward, while the pulling rods 38 move towards each other, they drive the concentrating plate 53 to move towards each other. While the concentrating plate 53 moves, it drives the pushed plate 52 to move towards each other. The pushed plate 52 drives the reset elastic rod 51 to extend towards each other. While the concentrating plate 53 moves, it drives the sealing plate 54 to move towards each other. While the concentrating plate 53 moves, it drives the shrinking right-angle plate 55 to shrink towards the inner wall of the passive plate 57. While the concentrating plate 53 moves, it drives the extrusion frame 56 to move towards each other. When the extrusion frame 56 moves, it squeezes the stress plate 58 through its surface, and makes the stress plate 58 move towards each other. When the stress plate 58 is subjected to the squeezing force and moves, it pushes the passive plate 57 to move towards each other. While the passive plate 57 moves, it drives the shrinking right-angle plate 55 to shrink towards the inner wall of the concentrating plate 53. This not only effectively pushes and concentrates the water, but also more effectively seals the water, so that when the pressing disc 35 presses down, a greater pressure is generated, thereby enabling the siphon tube 31 to drain the water more quickly.

[0046] The preferred embodiments of the present utility model disclosed above are only used to help illustrate the present utility model. The preferred embodiments do not describe all the details in detail, nor do they limit the present utility model to the specific embodiments described. Obviously, many modifications and variations can be made according to the content of this specification. These embodiments are selected and specifically described in this specification to better explain the principle and practical application of the present utility model, so that those skilled in the art can well understand and utilize the present utility model. The present utility model is only limited by the claims and their full scope and equivalents.

Claims

1. A high-efficiency spiral groove drying cylinder, comprising a water inlet barrel (1), the end of the water inlet barrel (1) is fixedly connected to a water inlet pipe (2), the end of the water inlet barrel (1) away from the water inlet pipe (2) is fixedly connected to a water outlet pipe (3), the surface of the water inlet barrel (1) is fixedly connected to a support plate (4), the surface of the water inlet barrel (1) is fixedly connected to a water collecting trough (5), the surface of the water collecting trough (5) is fixedly connected to a motor (6), and the output end of the motor (6) is fixedly connected to a transmission rod (7), characterized in that: Also includes; A vibration mechanism (10), the vibration mechanism (10) comprising a slide plate (21), a surface of the slide plate (21) being fixedly connected to an elastic plate (22), and a surface of the elastic plate (22) being fixedly connected to a contact plate (23); A pressurizing mechanism (30), the pressurizing mechanism (30) comprising a sliding block (33), a surface of the sliding block (33) being rotatably connected to a pressing rod (34), and an end of the pressing rod (34) away from the sliding block (33) being rotatably connected to a pressing plate (35); A concentrating mechanism (50), the concentrating mechanism (50) comprising a concentrating plate (53), a sealing plate (54) being fixedly connected to the surface of the concentrating plate (53), and a contraction right-angle plate (55) being slidably connected to the inner wall of the concentrating plate (53).

2. The high-efficiency spiral groove drying cylinder according to claim 1, characterized in that: The end of the water inlet pipe (2) and the end of the water inlet bucket (1) are mutually connected, the end of the water outlet pipe (3) and the end of the water inlet bucket (1) are mutually connected, the inner wall of the water inlet bucket (1) is provided with a spiral groove, and the inner wall of the water collecting tank (5) is provided with a buffer groove.

3. The high-efficiency spiral groove drying cylinder according to claim 2, characterized in that: The vibration mechanism (10) comprises a bidirectional threaded rod (11), a threaded ring (12) is threadedly connected to the surface of the bidirectional threaded rod (11), a driven rod (13) is fixedly connected to the top of the threaded ring (12), a push rod (14) is fixedly connected to the surface of the threaded ring (12), an end of the bidirectional threaded rod (11) is fixedly connected to a rotating shaft (15), a surface of the rotating shaft (15) is fixedly connected to a vibration roller (16), an inner wall of the buffer groove is slidably connected to a vibration plate (17), an end of the vibration plate (17) is fixedly connected to a buffer elastic rod (18), a bottom of the vibration plate (17) is fixedly connected to a vibration elastic rod (19), and a surface of the vibration plate (17) is fixedly connected to a slide rail (20).

4. The high-efficiency spiral groove drying cylinder according to claim 3, characterized in that: The transmission rod (7) completely penetrates the surface of the water collecting tank (5) and is fixedly connected to the end of the bidirectional threaded rod (11). The number of threaded rings (12) is two, and the two threaded rings (12) are symmetrically arranged with the contact plate (23) as the center. The end of the push rod (14) away from the threaded ring (12) is fixedly connected to the surface of the slide plate (21), the surface of the vibration roller (16) is in contact with the surface of the vibration plate (17), and the surface of the slide rail (20) is slidably connected to the inner wall of the slide plate (21).

5. The high-efficiency spiral groove drying cylinder according to claim 4, characterized in that: The pressurizing mechanism (30) comprises a siphon tube (31), a slide plate (32) being fixedly connected to the surface of the siphon tube (31), a connecting plate (36) being fixedly connected to the surface of the sliding block (33), a driven plate (37) being fixedly connected to the bottom of the sliding block (33), and a pulling rod (38) being fixedly connected to the surface of the driven plate (37).

6. A high-efficiency spiral groove drying cylinder according to claim 5, characterized in that: The inner wall of the slide plate (32) is slidably connected to the surface of the sliding block (33), the end of the driven rod (13) away from the threaded ring (12) is fixedly connected to the surface of the sliding block (33), the surface of the siphon tube (31) is slidably connected to the inner wall of the lower pressure plate (35), the end of the siphon tube (31) is fixedly connected to the end of the water outlet pipe (3), the number of the lower pressure rod (34) is four, the four slide plates (32) are symmetrically arranged with the siphon tube (31) as the center, and the surface of the siphon tube (31) is provided with a water suction hole.

7. The high-efficiency spiral groove drying cylinder according to claim 6, characterized in that: The centralizing mechanism (50) comprises a resetting elastic rod (51), the end of the resetting elastic rod (51) is fixedly connected to a pushed plate (52), the bottom of the pushed plate (52) is fixedly connected to a centralizing plate, the surface of the centralizing plate (53) is fixedly connected to an extrusion frame (56), one end of the contraction right-angle plate (55) away from the centralizing plate (53) is slidably connected to a passive plate (57), and the surface of the passive plate (57) is fixedly connected to a force-bearing plate (58).

8. The high-efficiency spiral groove drying cylinder according to claim 7, characterized in that: One end of the pulling rod (38) away from the driven plate (37) is fixedly connected to the bottom of the concentrating plate (53), one end of the resetting elastic rod (51) away from the pushed plate (52) is highly connected to the inner wall of the water collecting tank (5), four sealing plates (54) are provided, and the four sealing plates (54) are symmetrically arranged with the siphon tube (31) as the center, and one end of the extrusion frame (56) away from the concentrating plate (53) contacts the surface of the force-bearing plate (58).