Fiber desiccant moisture removal device with rolling type flowing function

The tumbling flow fiber desiccant moisture removal device solves the problems of uneven deposition and water splashing during the dehydration process, achieving efficient and stable dehydration operation and environmental protection.

CN223580542UActive Publication Date: 2025-11-21SUZHOU FORMULA TECH CO LTD
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Patent Information

Application Number
CN202423266822.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-30
Publication Date
2025-11-21
Estimated Expiration
2034-12-30

AI Technical Summary

Technical Problem

Traditional fiber desiccant moisture removal devices suffer from uneven fiber desiccant deposition, high risk of mechanical damage, and water splashing during the dehydration process, which are difficult to handle, affecting production efficiency and cost.

Method used

The fiber desiccant moisture removal device adopts a tumbling flow design. Through the combined design of dehydration component, feeding component and drainage component, it can achieve uniform stirring, stable dehydration and effective moisture treatment of fiber desiccant.

Benefits of technology

It improves dehydration efficiency, reduces the risk of mechanical damage, keeps the working environment clean, reduces additional processing steps and costs, and extends equipment life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the field of fiber desiccant production devices, in particular to a fiber desiccant moisture removal device with rolling type flow, which comprises a base, a dehydration component is arranged on the base, a feeding component is arranged on one side of the dehydration component, and a drainage component is arranged at the bottom of the dehydration component. According to the spiral dehydrator, the dehydration assembly is arranged, efficient dehydration operation is achieved, the spiral blades in the spiral dehydrator can fully extrude moisture in fibers, it is ensured that the dehydration effect is optimal, meanwhile, the speed reducer can reduce the rotating speed of the first motor and increase torque, and the spiral dehydrator is more stable during operation; by arranging the feeding assembly, uniform stirring of the fiber drying agent is achieved, the deposition phenomenon of the fiber drying agent can be avoided, it is ensured that the fiber drying agent is evenly stressed in the dehydration process, and the situation that the spiral dehydrator is damaged and the dehydration effect is affected due to the fact that local pressure is too large is avoided.
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Description

TECHNICAL FIELD

[0001] The utility model relates to a fiber drying agent production device field especially relates to a fiber drying agent moisture removal device with tumbling flow. BACKGROUND

[0002] The fiber drying agent is a kind of environmental protection type drying agent refined from pure natural plant fiber, is used to absorb and remove the moisture in package, to ensure that fiber drying agent reaches ideal dry state before use, guarantee the quality and stability of product, often need to carry out dehydration work to fiber drying agent in production process.

[0003] However, in the operation process of traditional fiber drying agent moisture removal device, manually pour the fiber drying agent to be dehydrated into the feed inlet of spiral dehydrator, easy to cause fiber drying agent deposition, and then uneven stress distribution in dehydration process, not only reduces dehydration efficiency, also increases the risk of mechanical damage, affects overall production efficiency, in addition, the moisture produced in the dehydration process often splashes everywhere, causes messy working environment, more annoyingly, these dehydrated water often contains fiber residues, cannot be directly discharged, must rely on additional filtering equipment to handle before discharging, which undoubtedly increases the production cost and operation complexity of enterprise. UTILITARIAN CONTENT

[0004] The utility model aims at providing a fiber drying agent moisture removal device with tumbling flow to solve the problems in the above background.

[0005] To achieve the above object, the utility model provides the following technical scheme: it includes base, is provided with dehydration component on the base, one side of dehydration component is provided with feeding component, the bottom of dehydration component is provided with drainage component.

[0006] As the preferred embodiment of the utility model, the dehydration component includes a reducer arranged on one side of the base, a motor one is arranged on one side of the reducer, a shaft coupling is arranged on the side of the reducer away from the motor one, a spiral dehydrator is arranged on the side of the shaft coupling away from the reducer, and a discharge port is arranged on one side of the spiral dehydrator.

[0007] As the preferred embodiment of the utility model, the feeding component includes an inverted L-shaped mounting block arranged on one side of the spiral dehydrator, a telescopic cylinder one is arranged on the top of the inverted L-shaped mounting block, the telescopic rod of the telescopic cylinder one penetrates through the inverted L-shaped mounting block, an installation frame one is arranged on the bottom of the telescopic rod of the telescopic cylinder one, an installation box one is arranged on the bottom of the installation frame one, a motor two is arranged on the top of the installation box one, a rotating shaft one is arranged on the transmission end of the motor two, the rotating shaft one penetrates through the installation box one, a gear one is arranged on the outside of the rotating shaft one, and a plurality of gear twos are arranged on the outside of the gear one in meshing mode.

[0008] As a preferred embodiment of this utility model, the bottom of the mounting box is provided with a cover, and bearing seats are provided at the bottom of the cover corresponding to the position of gear 2. A stirring rod is inserted into several bearing seats, the top of several stirring rods is connected to gear 2, and stirring blades are sleeved on the outside of several stirring rods. The top of the spiral dewatering machine is provided with a mounting base 3 corresponding to the position of mounting box 1, and a storage bucket is provided in the middle of the mounting base 3. A filter screen is provided at the bottom of the storage bucket.

[0009] In a preferred embodiment of this utility model, the drainage assembly includes a pair of anti-splash shells symmetrically arranged on the outside of the spiral dewatering machine. A fixing plate is provided on one side of each of the two anti-splash shells, and an elongated hole is provided on each of the two fixing plates. An installation sleeve is provided on the base corresponding to the position of the fixing plate. A disc is slidably arranged inside the installation sleeve. A return spring is provided between the top surface of the installation sleeve and the disc. A rod is provided in the center of the disc, penetrating the installation sleeve. A knob is provided at the end of the rod away from the disc. A pair of limiting blocks are symmetrically arranged at the bottom of the knob. Limiting grooves are provided on the fixing plates on both sides of the elongated hole corresponding to the positions of the limiting blocks.

[0010] As a preferred embodiment of this utility model, a second filter screen is provided on the base at the position corresponding to the anti-splash shell, and a drainage pipe is provided at the bottom of the base at the position corresponding to the second filter screen.

[0011] Compared with the prior art, the above-mentioned technical solution of this utility model has the following beneficial technical effects:

[0012] This invention achieves efficient dehydration by setting up a dehydration component and cooperating with a motor, a reducer, and a spiral dehydrator. The spiral blades in the spiral dehydrator can fully squeeze the water in the fiber to ensure the best dehydration effect. At the same time, the reducer can reduce the speed of the motor and increase the torque, which makes the spiral dehydrator more stable during operation, reduces mechanical failures caused by excessive speed, and improves the reliability and service life of the equipment.

[0013] This invention achieves uniform stirring of the fiber desiccant by setting up a feeding assembly, a combination of motor two, gear one, gear two, stirring roller and stirring blade, which can avoid the fiber desiccant from settling and ensure that the fiber desiccant is evenly stressed during the dehydration process. This avoids excessive local pressure that could damage the spiral dehydrator and affect the dehydration effect. At the same time, the telescopic cylinder one allows the height of the mounting box one to be flexibly adjusted, making it convenient for the operator to pour the fiber desiccant to be dehydrated into the storage tank. The filter screen one at the bottom of the storage tank can not only effectively filter out impurities in the fiber desiccant, but also effectively trap large pieces of deposited fiber desiccant, improving the dehydration efficiency and extending the service life of the equipment.

[0014] The utility model discloses a drainage assembly is set up, and the effective prevention of preventing splashing shell has prevented the splashing of moisture in the dehydration process, has maintained the cleanness of working environment, has improved work efficiency, has relieved the cleaning burden of staff, and convenient installation and disassembly are realized through the cooperation of knob, plug rod and limiting block of preventing splashing shell, not only have facilitated the maintenance and maintenance of equipment, but also improved work efficiency, in addition, the filtration net no. BRIEF DESCRIPTION OF DRAWINGS

[0015] Figure 1 It is the whole structure schematic diagram of the utility model;

[0016] Figure 2 It is dehydration assembly structure schematic diagram of the utility model;

[0017] Figure 3 It is feed assembly structure schematic diagram of the utility model;

[0018] Figure 4 It is the inside structure schematic diagram of installation box no.

[0019] Figure 5 It is the storage barrel structure schematic diagram in feed assembly of the utility model;

[0020] Figure 6 It is drainage assembly structure schematic diagram of the utility model;

[0021] Figure 7 It is Figure 6 The enlarged schematic diagram of A place in middle.

[0022] Drawing reference: base 1, dehydration assembly 2, motor no. 21, speed reducer 22, shaft coupling 23, spiral dehydrator 24, discharge port 25, feed assembly 3, inverted L-shaped mounting block 31, telescopic cylinder no. 32, mounting frame no. 33, installation box no. 34, motor no. 35, rotating shaft no. 36, gear no. 37, gear no. 38, cover 39, bearing seat 310, stirring stick 311, stirring blade 312, mounting seat no. 313, storage barrel 314, filter screen no. 315, drainage assembly 4, prevent splashing shell 41, fixed plate 42, long slot 43, limiting groove 44, mounting sleeve 45, disc 46, return spring 47, plug rod 48, knob 49, limiting block 410, filter screen no. 411, drainage pipeline 412. DETAILED DESCRIPTION

[0023] In order to make the purpose, technical scheme and advantages of the utility model more clearly understood, further detailed description will be made to the utility model below in conjunction with specific embodiments and with reference to the drawings. It should be understood that these descriptions are only exemplary and are not intended to limit the scope of the utility model. In addition, in the following description, the description of the known structures and technologies is omitted to avoid unnecessary confusion of the concept of the utility model.

[0024] As shown in Figures 1-7 The utility model provides a kind of fiber desiccant moisture removal device with tumbling flow, it includes base 1, dehydration assembly 2 is provided on base 1, dehydration assembly 2 side is provided with feeding assembly 3, dehydration assembly 2 bottom is provided with drainage assembly 4.

[0025] Dehydration assembly 2 includes the reducer 22 being arranged on the side of base 1, the rotational speed of motor one 21 is reduced by reducer 22, torque is increased, so that spiral dehydrator 24 can more effectively carry out dehydration operation, motor one 21 is provided on the side of reducer 22, motor one 21 provides power for reducer 22, coupling 23 is provided on the side away from motor one 21 of reducer 22, coupling 23 connects reducer 22 and spiral dehydrator 24, ensure that power transmission is stable, spiral dehydrator 24 is provided on the side away from reducer 22 of coupling 23, spiral dehydrator 24 is extruded by the rotation of helical blade, the moisture in fiber is extruded, reach dehydration purpose, spiral dehydrator 24 side is provided with discharge port 25, and fiber desiccant after dehydration is discharged from discharge port 25.

[0026] Feeding assembly 3 includes the inverted L-shaped mounting block 31 being arranged on the side of spiral dehydrator 24, provides installation base for other components in feeding assembly 3, inverted L-shaped mounting block 31 top is provided with telescopic cylinder one 32, the telescopic rod of telescopic cylinder one 32 penetrates inverted L-shaped mounting block 31, telescopic cylinder one 32 is adjusted the height of mounting box one 34 by telescopic motion, to facilitate staff to pour the fiber desiccant with dehydration into storage barrel 314, the telescopic rod of telescopic cylinder one 32 bottom is provided with mounting bracket one 33, mounting bracket one 33 provides installation base for mounting box one 34, mounting bracket one 33 bottom is provided with mounting box one 34, mounting box one 34 provides installation base for motor two 35, gear one 37, gear two 38, mounting box one 34 top is provided with motor two 35, motor two 35 drives gear one 37 to rotate, in turn drives gear two 38 and stirring stick 311 to rotate, the transmission end of motor two 35 is provided with shaft one 36, shaft one 36 penetrates mounting box one 34, shaft one 36 transmits the power of motor two 35 to gear one 37, gear one 37 is sleeved on the outside of shaft one 36, a plurality of gear two 38 is engaged on the outside of gear one 37, gear one 37 and gear two 38 are transmitted by engaging, so that stirring stick 311 can rotate synchronously.

[0027] The bottom of the installation box 34 is provided with a cover 39, which protects the components in the installation box and provides a mounting base for the bearing seat 310. The bottom of the cover 39 is provided with a bearing seat 310 corresponding to the position of the gear 38, which ensures the stability of the stirring rod 311 during rotation. The stirring rod 311 is inserted into the bearing seat 310. The top of the stirring rod 311 is connected to the gear 38. The gear 38 drives the stirring rod 311 to rotate. The outer side of the stirring rod 311 is sleeved with stirring blades 312. The combination of the stirring rod 311 and the stirring blades 312 can evenly stir the fiber desiccant and avoid sedimentation. The top of the spiral dewatering machine 24 is provided with a mounting seat 313 corresponding to the position of the installation box 34. The mounting seat 313 connects the storage barrel 314 and the spiral dewatering machine 24, allowing the fiber desiccant to be dewatered to pass through and enter the spiral dewatering machine 24. The middle of the mounting seat 313 is provided with a storage barrel 314, which stores the fiber desiccant to be dewatered and provides a stirring place. The bottom of the storage barrel 314 is provided with a filter screen 315. The evenly stirred fiber desiccant can pass through the filter screen 315, ensuring that the fiber desiccant is evenly stressed during the dewatering process, avoiding excessive local pressure that can damage the spiral dewatering machine 24 and affect the dewatering effect. It can also trap impurities in the fiber desiccant to be dewatered.

[0028] The drainage assembly 4 comprises a pair of anti-splashing shells 41 symmetrically arranged outside the spiral dewatering machine 24, which prevents water from splashing during the dewatering process and keeps the working environment clean. The two anti-splashing shells 41 are provided with fixing plates 42 on one side, and long strip holes 43 are formed in the two fixing plates 42. The long strip holes 43 allow the knob 49 to pass through. The base 1 is provided with mounting sleeves 45 corresponding to the positions of the fixing plates 42. The mounting sleeves 45 provide a stable sliding path for the disc 46. The disc 46 is slidably arranged in the mounting sleeve 45. The disc 46 provides a mounting base for the insertion rod 48 and the return spring 47. The return spring 47 is arranged between the top surface of the mounting sleeve 45 and the disc 46, and provides a restoring force for the disc 46. The insertion rod 48 is arranged in the middle of the disc 46 and penetrates the mounting sleeve 45. The insertion rod 48 is provided with a knob 49 at the end away from the disc 46. A pair of limiting blocks 410 are symmetrically arranged at the bottom of the knob 49. Limiting grooves 44 are formed in the fixing plates 42 on both sides of the long strip holes 43 corresponding to the positions of the limiting blocks 410. The fixing plates 42 on both sides of the anti-splashing shell 41 are aligned with the mounting sleeves 45, and the knob 49 passes through the long strip holes 43. The knob 49 is pulled up, and the insertion rod 48 and the disc 46 are pulled upwards. The disc 46 presses the return spring 47. Then the knob 49 is rotated by 90 degrees. The limiting blocks 410 at the bottom of the knob 49 are aligned with the limiting grooves 44 in the fixing plates 42 and are inserted. When the external force disappears, the return spring 47 releases the elastic potential energy, and the limiting blocks 410 are firmly clamped in the limiting grooves 44, ensuring that the anti-splashing shell 41 is stably installed with the base 1. Then the two anti-splashing shells 41 are connected by bolts, ensuring that the water squeezed out by the spiral dewatering machine 24 does not splash, reducing the cleaning burden of the workers. The convenient disassembly and assembly of the anti-splashing shell 41 also facilitate the workers to regularly clean the filter screen two 411.

[0029] The base 1 is provided with a filter screen two 411 corresponding to the position of the anti-splashing shell 41. The base 1 is provided with a drainage pipe 412 corresponding to the position of the filter screen two 411 at the bottom.

[0030] In use, the workers first install two anti-splashing shells 41 outside the spiral dewatering machine 24. The fixing plates 42 on both sides of the anti-splashing shell 41 are aligned with the mounting sleeves 45, and the knob 49 passes through the long strip holes 43. The workers pull up the knob 49, and the insertion rod 48 and the disc 46 are pulled upwards. The disc 46 presses the return spring 47. Then the knob 49 is rotated by 90 degrees. The limiting blocks 410 at the bottom of the knob 49 are aligned with the limiting grooves 44 in the fixing plates 42 and are inserted. When the external force disappears, the return spring 47 releases the elastic potential energy, and the limiting blocks 410 are firmly clamped in the limiting grooves 44, ensuring that the anti-splashing shell 41 is stably installed with the base 1. Then the two anti-splashing shells 41 are connected by bolts, ensuring that the water squeezed out by the spiral dewatering machine 24 does not splash, reducing the cleaning burden of the workers.

[0031] Then start motor 21, through the reducer 22 and the shaft coupling 23 drive spiral dewatering machine 24, the staff will be dewatering fiber drying agent into the storage bucket 314, and start telescopic cylinder 32, through telescopic rod telescopic adjustment installation box 34 height, make installation box 34 cover storage bucket 314, then start motor 35, motor 35 drive gear 37 rotation, gear 37 drive gear 38 rotation, gear 38 drive stirring stick 311 and stirring blade 312 rotation, the fiber drying agent is stirred evenly, through the filter screen 315 block deposited fiber drying agent, these deposited fiber drying agent continues to be stirred by stirring blade 312, until can pass through the filter screen 315, ensure that the fiber drying agent is uniformly stressed in the dewatering process, avoid local pressure too large and cause spiral dewatering machine 24 damage, influence dewatering effect, the filter screen 315 can also filter out the impurities in the fiber, after the fiber drying agent of filter screen 315 enters spiral dewatering machine 24, spiral dewatering machine 24 is through the rotation of spiral blade, the water in the fiber is squeezed out, reach the dewatering purpose.

[0032] The water of spiral dewatering machine 24 is dropped due to its own gravity, through the filter screen 411 on the base 1, can effectively intercept the fiber fragments in the water, prevent pollution environment, the filtered water can be directly discharged through the drain pipe 412, the fiber drying agent after dewatering work is discharged from the discharge port 25.

[0033] It should be understood that the above specific embodiments of the present application are only used for illustrative or explanatory purposes of the principles of the present application, and do not constitute a limitation of the present application. Therefore, any modification, equivalent replacement, improvement, etc. made without departing from the spirit and scope of the present application shall be included in the protection scope of the present application. In addition, the appended claims of the present application are intended to cover all changes and modifications falling within the scope and boundary of the appended claims, or the equivalent form of such scope and boundary.

Claims

1. A fibrous desiccant moisture removal device provided with tumbling flow, comprising: The base (1) is characterized in that: the base (1) is provided with a dehydration assembly (2), one side of the dehydration assembly (2) is provided with a feeding assembly (3), and the bottom of the dehydration assembly (2) is provided with a drainage assembly (4).

2. A fibrous desiccant moisture removal device provided with tumbling flow according to claim 1, characterized in that: The dehydration assembly (2) comprises a reducer (22) arranged on one side of the base (1), one side of the reducer (22) is provided with a motor one (21), the side, away from the motor one (21), of the reducer (22) is provided with a shaft coupling (23), the side, away from the reducer (22), of the shaft coupling (23) is provided with a spiral dehydration machine (24), and one side of the spiral dehydration machine (24) is provided with a discharge port (25).

3. A fibrous desiccant moisture removal device provided with tumbling flow according to claim 2, characterized in that: The feeding assembly (3) comprises an inverted L-shaped mounting block (31) arranged on one side of the spiral dehydration machine (24), the top of the inverted L-shaped mounting block (31) is provided with a telescopic cylinder one (32), the telescopic rod of the telescopic cylinder one (32) penetrates through the inverted L-shaped mounting block (31), the bottom of the telescopic rod of the telescopic cylinder one (32) is provided with a mounting frame one (33), the bottom of the mounting frame one (33) is provided with a mounting box one (34), the top of the mounting box one (34) is provided with a motor two (35), the transmission end of the motor two (35) is provided with a rotating shaft one (36), the rotating shaft one (36) penetrates through the mounting box one (34), the rotating shaft one (36) is provided with a gear one (37) outside, and a plurality of gear twos (38) are arranged outside the gear one (37) in a meshed mode.

4. A fibrous desiccant moisture removal device provided with tumbling flow according to claim 3, characterized in that: The bottom of the mounting box one (34) is provided with a cover (39), the bottom of the cover (39) is provided with a bearing seat (310) corresponding to the position of the gear two (38), a plurality of stirring rods (311) are arranged in the bearing seat (310), the top of each of the stirring rods (311) is connected with the gear two (38), each of the stirring rods (311) is provided with a stirring blade (312) outside, the top of the spiral dehydration machine (24) is provided with a mounting seat three (313) corresponding to the position of the mounting box one (34), the mounting seat three (313) is provided with a storage barrel (314) in the middle, and the bottom of the storage barrel (314) is provided with a filter screen one (315).

5. A fibrous desiccant moisture removal device provided with tumbling flow according to claim 4, characterized in that: The drainage assembly (4) comprises a pair of anti-splashing shells (41) symmetrically arranged outside the spiral dewatering machine (24), one side of each of the two anti-splashing shells (41) is provided with a fixed plate (42), a long hole (43) is formed in each of the two fixed plates (42), a mounting sleeve (45) is arranged on the base (1) at a position corresponding to the fixed plate (42), a disc (46) is slidably arranged in the mounting sleeve (45), a return spring (47) is arranged between the inner top surface of the mounting sleeve (45) and the disc (46), a plug rod (48) is arranged in the middle of the disc (46), the plug rod (48) penetrates through the mounting sleeve (45), a knob (49) is arranged at the end of the plug rod (48) away from the disc (46), a pair of limiting blocks (410) is symmetrically arranged at the bottom of the knob (49), and a limiting groove (44) is formed in the fixed plate (42) on the side of the long hole (43) at a position corresponding to the limiting block (410).

6. A fibrous desiccant moisture removal device provided with tumbling flow according to claim 5, characterized in that: A filter screen two (411) is arranged on the base (1) at a position corresponding to the anti-splashing shell (41), and a drainage pipeline (412) is arranged at the bottom of the base (1) at a position corresponding to the filter screen two (411).