Intelligent condensation removing device

By setting up moisture absorption medium and heat absorption medium on the rotor dehumidifier and using the tensioning structure to maintain the tensioning state of the belt, the problem of low dehumidification efficiency of the existing rotor dehumidifier is solved, and more efficient dehumidification and regeneration effects are achieved.

CN223020441UActive Publication Date: 2025-06-24XISHUANGBANNA POWER SUPPLY BUREAU OF YUNNAN POWER GRID CO LTD
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Patent Information

Application Number
CN202421739498.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-22
Publication Date
2025-06-24
Estimated Expiration
2034-07-22

AI Technical Summary

Technical Problem

During the regeneration process of existing rotary wheel dehumidifiers, the dehumidification efficiency is low due to the hot air not being able to penetrate the rotary wheel evenly.

Method used

The hygroscopic medium and the heat absorbing medium are provided on the rotor, and the rotor is driven to rotate through the driving structure. The tensioning structure is used to maintain the tensioning state of the belt, ensuring that the hygroscopic medium and the heat absorbing medium are switched between the treatment area and the regeneration area, achieving uniform dehumidification and regeneration.

Benefits of technology

Through the coordination of the moisture-absorbing medium and the heat-absorbing medium, the dehumidification efficiency is improved, the normal operation of the rotor is ensured, and the belt is loosened through the tensioning structure.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223020441U_ABST
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Abstract

The utility model provides an intelligent condensation removing device which comprises a dehumidifier, a rotating wheel and a driving structure are arranged in the dehumidifier, the driving structure drives the rotating wheel to rotate and is arranged on one side of the rotating wheel, the output end of the driving structure is connected with the rotating wheel through a belt, and the rotating wheel is connected with the rotating wheel through a belt. A tensioning structure is arranged on one side of the driving structure and comprises a supporting rod and a rotating part, the supporting rod is arranged on one side of the driving structure, the supporting rod is sleeved with a torsional spring, the rotating part is arranged on the torsional spring, and the rotating part abuts against the belt under the action of the torsional spring. The rotating wheel comprises heat absorption media and moisture absorption media, the heat absorption media are arranged on the rotating wheel at intervals, the heat absorption media are arranged between every two adjacent groups of moisture absorption media, the moisture absorption media are used for absorbing water vapor, the heat absorption media are used for absorbing heat energy to evaporate the water vapor, and reinforcing parts are arranged between the heat absorption media and the moisture absorption media.
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Description

Technical Field

[0001] The utility model relates to the technical field of dehumidification equipment, and more specifically to an intelligent dew condensation removal device. Background Art

[0002] The rotary dehumidifier is a typical representative of temperature-controlled dehumidification. By driving the motor, the rotary wheel rotates, and the dehumidification and regeneration actions are continuously repeated to provide dry air. The rotary wheel includes a treatment area and a regeneration area. After the moisture in the aggregated air is removed in the treatment area, the dry air is sent into the room. The rotary wheel that has absorbed moisture moves to the regeneration area, and the moisture is removed by the regeneration air sent in the reverse direction, enabling the rotary wheel to continue working. During the regeneration process of the rotary wheel, hot air is blown to remove the moisture on the rotary wheel. Since the hot air acts on one side of the rotary wheel and cannot penetrate to the other side in time, the dehumidification efficiency of the rotary wheel is low. Content of the Utility Model

[0003] Aiming at the deficiencies existing in the prior art, the purpose of the utility model is to provide an intelligent dew condensation removal device to overcome the above-mentioned defects in the prior art.

[0004] To achieve the above purpose, the utility model provides the following technical solutions:

[0005] An intelligent dew condensation removal device includes a dehumidifier. A rotary wheel and a driving structure are arranged in the dehumidifier. The driving structure drives the rotary wheel to rotate. The rotary wheel includes a treatment area and a regeneration area. An air inlet channel and an air outlet channel are arranged on the dehumidifier. The inlet channel communicates with the treatment area, and the outlet channel communicates with the regeneration area. The driving structure is arranged on one side of the rotary wheel, and the output end of the driving structure is connected to the rotary wheel through a belt. A tensioning structure is arranged on one side of the driving structure. The rotary wheel includes a heat-absorbing medium and a moisture-absorbing medium. The heat-absorbing medium is arranged on the rotary wheel at intervals, and a heat-absorbing medium is arranged between adjacent two groups of moisture-absorbing media. The moisture-absorbing medium is used for adsorbing water vapor, and the heat-absorbing medium is used for absorbing heat energy to evaporate water vapor. A reinforcing member is arranged between the heat-absorbing medium and the moisture-absorbing medium.

[0006] Preferably, a plurality of groups of placement grooves are arranged in a strip shape on the upper surface of the rotary wheel, and the plurality of groups of placement grooves are arranged in parallel. The heat-absorbing medium and the moisture-absorbing medium are arranged in the placement grooves at intervals.

[0007] Preferably, the reinforcing member is arranged on the upper surface of the rotary wheel. The moisture-absorbing medium and the heat-absorbing medium are both arranged on the reinforcing member. The reinforcing member is detachably arranged on the rotary wheel, and a plurality of groups of through holes communicating with the rotary wheel are arranged on the reinforcing member.

[0008] Preferably, the tensioning structure includes a support rod and a rotating member. The support rod is disposed on one side of the driving structure. A torsion spring is sleeved on the support rod. The rotating member is disposed on the torsion spring, and the rotating member presses against the belt under the action of the torsion spring.

[0009] Preferably, the rotating member includes a pressing rod, a support block, and a connecting block. The connecting blocks are disposed at both ends of the pressing rod, and the connecting blocks are sleeved on the support rod. Both ends of the support block are respectively connected to the connecting blocks. The pressing rod is used to contact the belt. The support block is disposed on one side of the pressing rod. One end of the torsion spring is connected to the dehumidifier, and the other end of the torsion spring is disposed on the connecting block.

[0010] Preferably, a one-way bearing is disposed between the connecting block and the support rod. The pressing rod rotates towards the side where the belt is located under the action of the one-way bearing.

[0011] Preferably, the one-way bearing includes an inner shaft sleeve, an outer shaft sleeve, and a limiting member. The limiting member is disposed between the inner shaft sleeve and the outer shaft sleeve. A plurality of groups of wedge-shaped members are annularly arranged on the outer side wall of the inner shaft sleeve. The limiting member includes a ball and an elastic member. The elastic member presses against the inner shaft sleeve, and the ball is disposed in the groove of the wedge-shaped member.

[0012] Preferably, the rotating wheel includes a treatment area and a regeneration area. Pressing plates are oppositely disposed on both sides of the regeneration area. An air cavity is disposed between the pressing plate and the rotating wheel. The pressing plate and the rotating wheel are hermetically connected.

[0013] Preferably, a sealing member is annularly disposed around the pressing plate. The sealing member presses against the rotating wheel. The sealing member is disposed in the air cavity.

[0014] Preferably, a pressing member is disposed in the pressing plate. One end of the pressing member presses against the pressing plate, and the other end of the pressing member presses against the sealing member. The sealing member moves towards the side where the rotating wheel is located under the action of the pressing member.

[0015] Advantages of the present utility model: A moisture absorption medium and a heat absorption medium are provided on the runner. The moisture absorption medium is used to absorb water vapor in the air. At the same time, the heat absorption medium facilitates the evaporation of water vapor. A tensioning structure is provided on one side of the driving structure. By using the tensioning structure, the belt can be pressed tightly to ensure that the belt is always in a tensioned state during the use of the runner, avoiding belt loosening and affecting the normal use of the runner. The tensioning mechanism includes a support rod and a rotating member. The support rod is arranged on one side of the driving mechanism and is vertically arranged on the dehumidifier frame. The rotating mechanism is rotatably arranged on the support rod, and a torsion spring is sleeved on the support rod. The rotating member is arranged on the torsion spring. During use, the rotating member moves towards the side where the belt is located under the action of the torsion spring, so that the rotating member presses against the belt. By adjusting the rotation angle of the rotating member, the adjustment of the rotating member on the belt is realized, thereby realizing the tensioning of the belt. Description of the Drawings

[0016] Figure 1 is the overall structure diagram of the present utility model;

[0017] Figure 2 is the runner structure diagram of the present utility model;

[0018] Figure 3 is the tensioning structure diagram of the present utility model;

[0019] Figure 4 is the cross-sectional view of the one-way bearing of the present utility model;

[0020] Figure 5 is the internal structure diagram of the pressing plate of the present utility model.

[0021] Reference numerals: 1, dehumidifier; 2, runner; 21, regeneration area; 22, treatment area; 23, pressing plate; 24, ventilation cavity; 25, seal; 26, mortgage member; 271, heat absorption medium; 272, moisture absorption medium; 273, placement groove; 274, reinforcement member; 3, driving structure; 31, belt; 4, tensioning structure; 41, support rod; 42, rotating member; 421, pressing rod; 422, support block; 423, connecting block; 43, torsion spring; 44, one-way bearing; 441, inner shaft sleeve; 442, outer shaft sleeve; 443, limiting member; 444, wedge member. Detailed Embodiments

[0022] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the 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.

[0023] It should be noted that when a component is referred to as being "fixed to" another component, it can be directly on the other component or there may also be an intermediate component. When a component is considered to be "connected to" another component, it can be directly connected to the other component or there may be an intermediate component at the same time. When a component is considered to be "disposed on" another component, it can be directly disposed on the other component or there may be an intermediate component at the same time. The terms "vertical", "horizontal", "left", "right" and similar expressions used in this article are for illustrative purposes only.

[0024] Unless otherwise defined, all technical and scientific terms used in this article have the same meaning as commonly understood by those of ordinary skill in the technical field to which this utility model belongs. The terms used in the specification of this utility model in this article are only for the purpose of describing specific embodiments and are not intended to limit this utility model. The term "and / or" used in this article includes any and all combinations of one or more of the related listed items.

[0025] The following further details the embodiments of this utility model in conjunction with the accompanying drawings:

[0026] Such as Figures 1-4As shown in the figure, the utility model provides an intelligent dew condensation removal device, which includes a dehumidifier 1. A runner 2 and a driving mechanism are arranged in the dehumidifier 1. The driving mechanism is used to drive the runner 2 to rotate. A regeneration area 21 and a treatment area 22 are arranged on the runner 2. The treatment area 22 is used to dehumidify the gas entering the dew condensation removal device to achieve the dew condensation removal effect. At the same time, the condensation on the runner 2 is removed by heating the regeneration area 21 to ensure the continuous operation of the runner 2. An air inlet channel and an air outlet channel are arranged on the dehumidifier. The inlet channel communicates with the treatment area 22, and the outlet channel communicates with the regeneration area 21. During the use process, the driving structure 3 is used to drive the runner 2 to rotate, so as to realize the switching of the runner 2 between the regeneration area 21 and the treatment area 22. The driving structure 3 is arranged on one side of the runner 2, and is connected with the runner 2 through a belt 31. The belt 31 is used to drive the runner 2 to rotate, so as to realize the dehumidification and regeneration of the runner 2. A tensioning structure 4 is arranged on one side of the driving structure 3. The tensioning structure 4 is used to press the belt 31 to ensure that the belt 31 is always in a tensioned state during the use of the runner 2, so as to avoid the loosening of the belt 31 and affect the normal use of the runner 2. The tensioning mechanism includes a support rod 41 and a rotating member 42. The support rod 41 is arranged on one side of the driving mechanism and is vertically arranged on the frame of the dehumidifier 1. The rotating mechanism is rotatably arranged on the support rod 41, and a torsion spring 43 is sleeved on the support rod 41. The rotating member 42 is arranged on the torsion spring 43. During the use process, the rotating member 42 moves towards the side where the belt 31 is located under the action of the torsion spring 43, so that the rotating member 42 presses against the belt 31. By adjusting the rotation angle of the rotating member 42, the adjustment of the rotating member 42 on the belt 31 is realized, so as to realize the tensioning of the belt 31.

[0027] The runner 2 includes a heat-absorbing medium 271 and a moisture-absorbing medium 272. The heat-absorbing medium 271 is arranged on the runner 2 at intervals, and a heat-absorbing medium 271 is arranged between two adjacent groups of moisture-absorbing media 272. The moisture-absorbing medium 272 is used to adsorb water vapor, and the heat-absorbing medium 271 is used to absorb heat energy to evaporate water vapor. A reinforcing member 274 is arranged between the heat-absorbing medium 271 and the moisture-absorbing medium 272. The heat-absorbing medium 271 and the moisture-absorbing medium 272 are arranged on the runner 2. The heat-absorbing medium 271 is used to adsorb water vapor in the air. At the same time, the moisture-absorbing medium 272 is used to absorb heat to facilitate the evaporation of water vapor, so as to realize the cyclic use of the runner 2. At the same time, the heat-absorbing medium 271 and the moisture-absorbing medium 272 are arranged on the runner 2 at intervals. While improving the moisture absorption efficiency, it is convenient to accelerate the evaporation of water vapor. At the same time, the reinforcing member 274 is used to realize the fixed connection between the heat-absorbing medium 271 and the moisture-absorbing medium 272.

[0028] The upper surface of the runner 2 is provided with several groups of placement grooves 273 arranged in a strip shape, and several groups of placement grooves 273 are arranged in parallel. The heat-absorbing medium 271 and the moisture-absorbing medium 272 are arranged at intervals in the placement grooves 273. The placement grooves 273 are provided on the upper surface of the runner 2, and the heat-absorbing medium 271 and the moisture-absorbing medium 272 are placed by using the placement grooves 273, which facilitates the switching of the heat-absorbing medium 271 and the moisture-absorbing medium 272 between the regeneration area 21 and the treatment area 22 during the use process driven by the rotation of the runner 2.

[0029] The reinforcing member 274 is arranged on the upper surface of the runner 2. The moisture-absorbing medium 272 and the heat-absorbing medium 271 are both arranged on the reinforcing member 274. The reinforcing member 274 is detachably arranged on the runner 2. The reinforcing member 274 is provided with several groups of through holes communicating with the runner 2. The connection between the heat-absorbing medium 271 and the moisture-absorbing medium 272 is realized by using the reinforcing member 274. At the same time, the fixed connection with the runner 2 is realized by using the reinforcing member 274. While facilitating the installation of the heat-absorbing medium 271 and the moisture-absorbing medium 272, it is also convenient to replace them. At the same time, through holes are provided on the reinforcing ribs to ensure that air can pass through and contact the runner 2 through the reinforcing member 274.

[0030] The rotating member 42 includes a pressing rod 421, a supporting block 422 and a connecting block 423. The connecting blocks 423 are arranged at both ends of the pressing rod 421, and the connecting blocks 423 are sleeved on the supporting rod 41. Both ends of the supporting block 422 are connected to the connecting blocks 423 respectively. The pressing rod 421 is used to contact the belt 31. The supporting block 422 is arranged on one side of the pressing rod 421. One end of the torsion spring 43 is connected to the dehumidifier 1, and the other end of the torsion spring 43 is arranged on the connecting block 423. The rotating member 42 includes a pressing rod 421, a supporting block 422 and a connecting block 423. Connecting blocks 423 are arranged at both ends of the pressing rod 421. The connecting blocks 423 are rotatably arranged on the supporting rod 41. By rotating the connecting blocks 423, the installation angle of the pressing rod 421 is adjusted. A supporting block 422 is arranged on one side of the pressing rod 421. Both ends of the supporting block 422 are arranged on the connecting blocks 423, and one end of the torsion spring 43 is fixed to the supporting rod 41. The torsion spring 43 is used to drive the supporting block 422 to rotate, thereby driving the pressing rod 421 to move towards the side where the belt 31 is located.

[0031] A one-way bearing 44 is arranged between the connecting block 423 and the supporting rod 41. The pressing rod 421 rotates towards the side where the belt 31 is located under the action of the one-way bearing 44. A one-way bearing 44 is arranged between the connecting block 423 and the supporting rod 41. The one-way bearing 44 is used to ensure that the pressing rod 421 always moves towards the side where the belt 31 is located, preventing the pressing rod 421 from disengaging from the belt 31 and affecting the normal use of the belt 31.

[0032] The one-way bearing 44 includes an inner shaft sleeve 441, an outer shaft sleeve 442, and a limiting member 443. The limiting member 443 is disposed between the inner shaft sleeve 441 and the outer shaft sleeve 442. A plurality of groups of wedge members 444 are annularly arranged on the outer side wall of the inner shaft sleeve 441. The limiting member 443 includes balls and elastic members. The elastic members are pressed against the inner shaft sleeve 441, and the balls are disposed in the grooves of the wedge members 444. When the inner shaft sleeve 441 rotates clockwise relative to the outer shaft sleeve 442, the balls are located within the wedge members 444, and the elastic members are compressed, enabling the inner shaft sleeve 441 to rotate relative to the outer shaft sleeve 442. When the inner shaft sleeve 441 rotates counterclockwise relative to the outer shaft sleeve 442, the elastic members reset, and the balls are pressed against the outer shaft sleeve 442 under the action of the elastic members, achieving the locking between the inner shaft sleeve 441 and the outer shaft sleeve 442.

[0033] The runner 2 includes a treatment area 22 and a regeneration area 21. Pressing plates 23 are oppositely arranged on both sides of the regeneration area 21. An air vent cavity 24 is provided between the pressing plates 23 and the runner 2, and the pressing plates 23 and the runner 2 are hermetically connected. By means of the pressing plates 23, the treatment area 22 and the regeneration area 21 are separated on the runner 2. By utilizing the treatment area 22, the adsorption of water vapor in the air is achieved. Meanwhile, through the heating of the regeneration area 21, the evaporation of moisture is realized, ensuring the continuous use of the runner 2. During the use process, the driving structure 3 is used to drive the runner 2 to rotate, achieving the engagement of the runner 2 between the treatment area 22 and the regeneration area 21. The runner 2 adsorbed with water vapor is rotated into the regeneration area 21. After removing the water vapor on the runner 2, it is rotated into the treatment area 22 to re-adsorb water vapor.

[0034] Sealing members 25 are annularly arranged around the pressing plates 23. The sealing members 25 are pressed against the runner 2, and the sealing members 25 are disposed within the air vent cavity 24. Sealing members 25 are annularly arranged around the bottom of the pressing plates 23. By means of the sealing rings, the sealing of the air vent cavity 24 is ensured, preventing the leakage of gas in the regeneration area 21.

[0035] A pressing member 26 is disposed within the pressing plates 23. One end of the pressing member 26 is pressed against the pressing plates 23, and the other end of the pressing member 26 is pressed against the sealing members 25. The sealing members 25 move towards the side where the runner 2 is located under the action of the pressing member 26.

[0036] The above is only the preferred embodiment of the present invention. The protection scope of the present invention is not limited to the above embodiments. All technical solutions falling within the concept of the present invention belong to the protection scope of the present invention. It should be noted that for those of ordinary skill in the art in this technical field, several improvements and refinements made without departing from the principle of the present invention should also be regarded as within the protection scope of the present invention.

Claims

1. An intelligent decondensation device, comprising a dehumidifier (1), wherein a rotating wheel (2) and a driving structure (3) are arranged in the dehumidifier (1), wherein the driving structure (3) drives the rotating wheel (2) to rotate, and the rotating wheel (2) comprises a processing area (22) and a regeneration area (21), wherein: The dehumidifier is provided with an air inlet channel and an air outlet channel, the air inlet channel is communicated with the processing area (22), and the air outlet channel is communicated with the regeneration area (21); the driving structure (3) is arranged on one side of the rotary wheel (2), and the output end of the driving structure (3) is connected to the rotary wheel (2) via a belt (31); a tensioning structure (4) is arranged on one side of the driving structure (3); the rotary wheel (2) comprises a heat absorbing medium (271) and a hygroscopic medium (272); the heat absorbing medium (271) is arranged on the rotary wheel (2) at intervals, and a heat absorbing medium (271) is arranged between two adjacent groups of hygroscopic media (272); the hygroscopic medium (272) is used to absorb water vapor, and the heat absorbing medium (271) is used to absorb heat energy to evaporate water vapor; a reinforcing member (274) is arranged between the heat absorbing medium (271) and the hygroscopic medium (272).

2. The intelligent condensation removal device according to claim 1, characterized in that: The upper surface of the rotating wheel (2) is provided with a plurality of groups of placement grooves (273) in a strip shape, and the plurality of groups of placement grooves (273) are arranged in parallel, and the heat absorbing medium (271) and the moisture absorbing medium (272) are arranged in the placement grooves (273) at intervals.

3. The intelligent condensation removal device according to claim 1, characterized in that: The reinforcing member (274) is arranged on the upper surface of the rotating wheel (2); the hygroscopic medium (272) and the heat absorbing medium (271) are both arranged on the reinforcing member (274); the reinforcing member (274) is detachably arranged on the rotating wheel (2); and the reinforcing member (274) is provided with a plurality of groups of through holes communicating with the rotating wheel (2).

4. The intelligent condensation removal device according to claim 1, characterized in that: The tensioning structure (4) comprises a support rod (41) and a rotating member (42); the support rod (41) is arranged on one side of the driving structure (3); a torsion spring (43) is sleeved on the support rod (41); the rotating member (42) is arranged on the torsion spring (43); and the rotating member (42) is pressed against the belt (31) under the action of the torsion spring (43).

5. The intelligent condensation removal device according to claim 4, characterized in that: The rotating member (42) comprises a pressure rod (421), a support block (422) and a connecting block (423); the connecting block (423) is arranged at both ends of the pressure rod (421), and the connecting block (423) is sleeved on the support rod (41); the two ends of the support block (422) are respectively connected to the connecting block (423); the pressure rod (421) is used to contact the belt (31); the support block (422) is arranged on one side of the pressure rod (421); one end of the torsion spring (43) is connected to the dehumidifier (1), and the other end of the torsion spring (43) is arranged on the connecting block (423).

6. The intelligent condensation removal device according to claim 5, characterized in that: A one-way bearing (44) is provided between the connecting block (423) and the supporting rod (41), and the pressing rod (421) rotates toward the side where the belt (31) is located under the action of the one-way bearing (44).

7. The intelligent condensation removal device according to claim 6, characterized in that: The one-way bearing (44) comprises an inner sleeve (441), an outer sleeve (442) and a limiting member (443); the limiting member (443) is arranged between the inner sleeve (441) and the outer sleeve (442); and a plurality of groups of wedge-shaped members (444) are arranged in a circular array on the outer wall of the inner sleeve (441); the limiting member (443) comprises a ball and an elastic member; the elastic member is pressed against the inner sleeve (441), and the ball is arranged in a groove of the wedge-shaped member (444).

8. The intelligent condensation removal device according to claim 1, characterized in that: Pressure plates (23) are arranged opposite to each other on both sides of the regeneration zone (21), a ventilation cavity (24) is arranged between the pressure plate (23) and the impeller (2), and the pressure plate (23) and the impeller (2) are sealed and connected.

9. The intelligent condensation removal device according to claim 8, characterized in that: A sealing member (25) is provided in an annular shape around the pressure plate (23), the sealing member (25) is pressed against the rotating wheel (2), and the sealing member (25) is arranged in the ventilation cavity (24).

10. The intelligent condensation removal device according to claim 9, characterized in that: A mortgage member (26) is arranged inside the pressure plate (23), one end of the mortgage member (26) is pressed against the pressure plate (23), and the other end of the mortgage member (26) is pressed against the sealing member (25). Under the action of the mortgage member (26), the sealing member (25) moves toward the side where the rotating wheel (2) is located.