A high-efficiency condensate water recycling device for dehumidification
By using a folded design and conical protrusion structure of multiple condenser plates, combined with a vertically layered layout of cold water tank, condenser tank, and recovery tank, the problem of limited condensation area and water waste in traditional condensation dehumidification devices is solved, achieving efficient dehumidification and water recycling.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUZHOU SENJING ELECTROMECHANICAL EQUIP CO LTD
- Filing Date
- 2025-08-12
- Publication Date
- 2026-07-07
AI Technical Summary
Traditional condensation dehumidification devices have limited condensation area, and condensate easily forms a water film that hinders heat exchange. Furthermore, the water circulation system relies on power equipment, increasing energy consumption and easily causing water waste.
It adopts a folded design with multiple condenser plates and a conical protrusion structure, combined with a vertically layered layout of cold water tank, condenser tank and recovery tank, to achieve directional flow of condensate by gravity. The heat exchange process is optimized by folded components and spray head design, reducing power intervention.
It significantly improves condensation efficiency and heat exchange effect, reduces energy consumption and water waste, and achieves efficient dehumidification and water recycling.
Smart Images

Figure CN224470416U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of condensate recycling, specifically a high-efficiency dehumidification condensate recycling device. Background Technology
[0002] In industries, agriculture, warehousing, and home furnishings, excessive humidity not only affects product quality and equipment lifespan but also breeds mold, endangering human health. Traditional dehumidification methods are often energy-intensive and wasteful of water resources. In contrast, high-efficiency condensate water recycling devices optimize the condensation structure and water circulation system to achieve water recycling while efficiently dehumidifying, which is of great significance for energy conservation, emission reduction, and sustainable development.
[0003] However, traditional condensation dehumidification devices mostly use fixed flat condensation plates, which have limited condensation area and the condensate easily forms a water film on the plate surface, hindering heat exchange efficiency and resulting in poor dehumidification effect. In addition, the water circulation system of traditional devices usually relies on power equipment such as water pumps, which not only increases energy consumption, but also easily causes water waste due to secondary evaporation. To address this, we propose a high-efficiency dehumidification condensate circulation and recovery device. Utility Model Content
[0004] To address the shortcomings of existing technologies, this invention provides a highly efficient dehumidification condensate recycling device, which solves the aforementioned problems.
[0005] To achieve the above-mentioned objectives, this utility model provides the following technical solution: a high-efficiency dehumidification condensate circulation and recovery device, comprising a cold water tank, a condensation tank, and a recovery tank, wherein the cold water tank, the condensation tank, and the recovery tank are all hollow boxes, and are installed sequentially from top to bottom as the cold water tank, the condensation tank, and the recovery tank;
[0006] The condenser box is equipped with a condenser plate assembly, which includes a first condenser plate, a second condenser plate, a third condenser plate, and a folding assembly. Folding assemblies are provided between the first condenser plate and the second condenser plate, as well as between the second condenser plate and the third condenser plate.
[0007] Preferably, an inclined base plate is fixedly installed on the inner bottom surface of the cold water tank, and a water outlet is provided at the bottom of the cold water tank at the lower part of the inclined base plate;
[0008] The top surface of the cold water tank is provided with a water inlet, and a sealing rubber block is fixedly installed on the bottom surface of the sealing plug. The sealing rubber block at the bottom of the sealing plug is engaged with the water inlet on the cold water tank.
[0009] Preferably, the top surface of the condenser box is provided with a water inlet, and the water inlet on the condenser box corresponds to the water outlet of the cold water tank.
[0010] Preferably, multiple protrusions are installed on the planes of the first condenser plate, the second condenser plate, and the third condenser plate, and the protrusions are distributed in a matrix and are conical protrusions;
[0011] A hinge block is symmetrically fixedly installed on one side wall of the condenser plate. A square groove is opened between two hinge blocks on the same side wall of the condenser plate. A connecting shaft is fixedly installed between the inner walls of the two sides of the square groove.
[0012] The two side walls of the condenser plate 2 are symmetrically provided with connecting grooves. A hinge shaft is fixedly installed between the two inner walls of the connecting groove. A placement groove is provided between the two connecting grooves on the side wall of the condenser plate 2. A connecting shaft 1 is fixedly installed near the inner wall of the placement groove, and a connecting shaft 2 is fixedly installed near the outlet of the placement groove.
[0013] The sidewalls of the condenser plate three and the condenser plate one opposite each other are equipped with hinge blocks, square grooves and connecting shafts identical to those of the condenser plate one.
[0014] Preferably, the hinge blocks on the first and third condenser plates are hinged to the hinge shaft on the second condenser plate.
[0015] The condenser plate corresponds to the water inlet on the condenser box.
[0016] Preferably, the folding assembly includes a bending connecting rod, a connecting rod, a telescopic rod, and a telescopic cylinder. A telescopic cylinder is hinged to a connecting shaft one on the second condensing plate. A telescopic rod is slidably connected to the telescopic cylinder on the same axis. A hinge block is fixedly installed on the end face of the telescopic rod away from the second condensing plate. The hinge block on the telescopic rod is hinged to one end of the bending connecting rod. A connecting rod is hinged to the connecting shafts on the first and third condensing plates. The other end of the connecting rod is hinged to the other end of the bending connecting rod. The bend of the bending connecting rod is hinged to the connecting shaft two on the second condensing plate.
[0017] Preferably, a guide groove is provided on the bottom surface of the condenser box corresponding to the lower part of the condenser plate three. A water pipe is fixedly installed around the bottom surface of the condenser box corresponding to the guide groove. A spray head is fixedly installed on the bottom surface of the water pipe and is connected to the interior of the condenser box.
[0018] Preferably, the top surface of the recycling box is provided with a water inlet, the water pipe at the bottom of the condensation box is coaxially and fixedly connected to the water inlet of the recycling box, and the spray head is located inside the recycling box.
[0019] Preferably, the two ends of the unidirectional flow guide pipe are connected to the interior of the cold water tank and the recovery tank, respectively, and a pressure pump is fixedly installed in the middle of the unidirectional flow guide pipe.
[0020] Compared with the prior art, this utility model provides a high-efficiency dehumidification condensate recycling device, which has the following beneficial effects:
[0021] 1. This high-efficiency dehumidification condensate recycling device significantly improves condensation efficiency through the folded design of multiple condenser plates and the conical protrusion structure on the surface. Traditional condensation devices mostly use a single flat condenser plate, which has a limited condensation area and the condensate water easily forms a water film that hinders heat exchange. In contrast, the first, second, and third condenser plates of this device are connected by folded components, which can automatically adjust the angle of the condenser plates according to changes in air flow and humidity. At the same time, the conical protrusion reduces the contact area between the condensate water and the plate surface, accelerating the water droplet rolling off. Combined with the design of the guide channel and spray head, the heat exchange between the humid air and the condensation surface is more complete.
[0022] 2. This high-efficiency dehumidification condensate circulation and recovery device adopts a vertical layered layout of cold water tank, condensate tank and recovery tank, combined with the design of inclined bottom plate and guide channel. It relies on gravity to realize the directional flow and recovery of condensate, without the need for additional power intervention. The arrangement of spray heads in the recovery tank avoids secondary evaporation loss. Attached Figure Description
[0023] Figure 1 This is a schematic diagram of the structure of this utility model;
[0024] Figure 2 This is a cross-sectional view of the present invention;
[0025] Figure 3 This is a schematic diagram of the condenser plate assembly of this utility model;
[0026] Figure 4 This is an exploded view of the condenser plate assembly of this utility model;
[0027] Figure 5 for Figure 2 A magnified view of part A in the diagram;
[0028] Figure 6 This is a schematic diagram of the condenser box of this utility model.
[0029] In the diagram: 1. Cold water tank; 2. Condensation tank; 3. Recovery tank; 4. Sealing plug; 5. One-way guide pipe; 6. Pressure pump; 7. Condensation plate one; 8. Condensation plate two; 9. Condensation plate three; 10. Protrusion; 11. Bending connecting rod; 12. Connecting rod; 13. Telescopic rod; 14. Telescopic cylinder; 15. Inclined base plate; 16. Guide channel; 17. Spray head. Detailed Implementation
[0030] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0031] Please see Figure 1-6 A high-efficiency dehumidification condensate recycling device includes a cold water tank 1, a condensation tank 2 and a recycling tank 3. The cold water tank 1, the condensation tank 2 and the recycling tank 3 are all hollow boxes, and are installed from top to bottom as cold water tank 1, condensation tank 2 and recycling tank 3.
[0032] The condenser box 2 is equipped with a condenser plate assembly, which includes a first condenser plate 7, a second condenser plate 8, a third condenser plate 9, and a folding assembly. Folding assemblies are provided between the first condenser plate 7 and the second condenser plate 8, as well as between the second condenser plate 8 and the third condenser plate 9.
[0033] Furthermore, an inclined base plate 15 is fixedly installed on the inner bottom surface of the cold water tank 1. An outlet is provided at the bottom of the cold water tank 1 and at the lower part of the inclined base plate 15. The inclined base plate 15 of the cold water tank 1 can not only guide the cold water to the outlet, but also effectively prevent the cold water from remaining in the tank, reduce the uneven water temperature caused by the stagnation of cold water, and ensure a continuous supply of cold water at a stable temperature to the condenser 2 to maintain a high efficiency condensation effect.
[0034] A water inlet is provided on the top surface of the cold water tank 1, and a sealing rubber block is fixedly installed on the bottom surface of the sealing plug 4. The sealing rubber block at the bottom of the sealing plug 4 is engaged with the water inlet on the cold water tank 1. The sealing plug 4 maintains the airtightness of the tank body through an elastic sealing structure, while allowing convenient manual water replenishment.
[0035] Furthermore, the top surface of the condenser 2 is provided with a water inlet, and the water inlet on the condenser 2 corresponds to the water outlet of the cold water tank 1.
[0036] Furthermore, multiple protrusions 10 are installed on the flat surfaces of condenser plate 7, condenser plate 8 and condenser plate 9, and the protrusions 10 are distributed in a matrix. The protrusions 10 are conical protrusions. In addition to accelerating the condensate to roll off, the protrusions 10 also increase the actual surface area of the condenser plate, making the contact between the humid air and the condenser surface more sufficient, significantly improving the heat exchange efficiency, and thus enhancing the dehumidification effect.
[0037] A hinge block is symmetrically fixedly installed on one side wall of the condenser plate 7. A square groove is opened between two hinge blocks on the same side wall of the condenser plate 7. A connecting shaft is fixedly installed between the inner walls of the two sides of the square groove.
[0038] The two side walls of the condenser plate 2 8 are symmetrically provided with connecting grooves. A hinge shaft is fixedly installed between the two inner walls of the connecting groove. A placement groove is provided between the two connecting grooves on the side wall of the condenser plate 2 8. A connecting shaft 1 is fixedly installed near the inner wall of the placement groove, and a connecting shaft 2 is fixedly installed near the outlet of the placement groove.
[0039] The sidewalls of condenser plate 39 and condenser plate 17 are equipped with hinge blocks, square grooves and connecting shafts that are identical to those of condenser plate 17.
[0040] Furthermore, the hinge blocks on condenser plate 1 7 and condenser plate 3 9 are hinged to the hinge shaft on condenser plate 2 8.
[0041] The condenser plate 7 and the water inlet on the condenser box 2 correspond to each other.
[0042] Furthermore, the folding assembly includes a bending link 11, a link 12, a telescopic link 13, and a telescopic cylinder 14. The telescopic cylinder 14 is hinged to the connecting shaft on the second condenser plate 8. The telescopic link 13 is slidably connected to the telescopic cylinder 14 on the same axis. A hinge block is fixedly installed on the end face of the telescopic link 13 away from the second condenser plate 8. The hinge block on the telescopic link 13 is hinged to one end of the bending link 11. The link 12 is hinged to the connecting shaft on the first condenser plate 7 and the third condenser plate 9. The other end of the link 12 is hinged to the other end of the bending link 11. The bend of the bending link 11 is hinged to the connecting shaft on the second condenser plate 8.
[0043] Furthermore, a guide groove is provided on the bottom surface of the condenser box 2 below the condenser plate 3 9. A water pipe is fixedly installed around the bottom surface of the condenser box 2 corresponding to the guide groove. A spray head 17 is fixedly installed on the bottom surface of the water pipe and is connected to the interior of the condenser box 2.
[0044] Furthermore, a water inlet is provided on the top surface of the recycling box 3. The water pipe at the bottom of the condensation box 2 is coaxially and fixedly connected to the water inlet of the recycling box 3. The spray head 17 is located inside the recycling box 3. The spray head 17 atomizes and sprays the water delivered by the water pipe at the bottom of the condensation box 2, which greatly increases the contact area between the water and the air inside the recycling box 3, accelerates the cooling speed of the water, facilitates the subsequent recycling of condensate, and reduces the secondary evaporation loss of water.
[0045] Furthermore, the two ends of the unidirectional flow guide pipe 5 are respectively connected to the interior of the cold water tank 1 and the recovery tank 3. A pressure pump 6 is fixedly installed in the middle of the unidirectional flow guide pipe 5. While realizing the internal connection between the cold water tank 1 and the recovery tank 3, the unidirectional flow guide pipe 5 effectively prevents water backflow and ensures that the condensate circulates in the predetermined direction. The pressure pump 6 is installed in the middle of the unidirectional flow guide pipe 5 to provide power for the return flow of condensate, making up for the deficiencies of gravity circulation, ensuring the continuous operation of water circulation, and improving the operating efficiency of the entire device.
[0046] Structural Description:
[0047] Cold water tank 1: Cold water tank 1 is the supply source for condensate circulation. It has a hollow internal tank structure with an inclined bottom plate 15 installed on the bottom surface. A water outlet is located at the bottom and a water inlet with a sealing plug 4 on the top surface. The inclined bottom plate 15 guides the cold water to flow to the water outlet to ensure sufficient supply to the condensate tank 2. The sealing plug prevents water evaporation. It is the core component for storing and supplying cold water to the condensation system, ensuring the continuous operation of the condensation circulation.
[0048] Condensation Box 2: Condensation Box 2 is the core area of condensation dehumidification. It is a hollow box with an inlet on the top surface corresponding to the outlet of the cold water tank 1. The bottom has a guide channel 16 and a water pipe connecting to the recovery box 3. The interior houses the condensation plate assembly, providing space for heat exchange between the humid air and the condensation plate. The guide channel 16 collects condensate and sends it to the recovery box 3 through the water pipe. It is the key place to realize water vapor condensation.
[0049] Recycling box 3: Recycling box 3 is a structure for collecting and temporarily storing condensate. It is a hollow box with a water inlet on the top surface connected to the water pipe at the bottom of the condensing box 2. It is equipped with a spray head 17 inside, which receives the condensate and the warm water after heat exchange from the condensing box 2. The water flow is distributed through the spray head 17 and water circulation is achieved in conjunction with the one-way guide pipe 5. It is an important link in the recycling and reuse of water resources.
[0050] Sealing plug 4: Sealing plug 4 is a sealing component of cold water tank 1. A sealing rubber block is fixed on the bottom surface and snaps into the water inlet on the top surface of cold water tank 1. Through the elastic fit of the rubber block, it prevents water evaporation in cold water tank 1 and external dust from entering, ensuring stable water temperature inside the tank. At the same time, it is easy to open and add water. It is a key structure for maintaining the sealed environment of cold water tank 1.
[0051] One-way flow guide pipe 5: One-way flow guide pipe 5 is the connecting channel for water circulation. It is connected to the cold water tank 1 and the recovery tank 3 at both ends. It is a hollow tubular structure that limits the direction of water flow, so that the water in the recovery tank 3 can only flow to the cold water tank 1, avoiding backflow. It works with the pressure pump 6 to realize the circulation and transportation of condensate. It is an important component that connects the two tanks to form a closed loop of water circulation.
[0052] Pressure pump 6: Pressure pump 6 is the power device for water circulation. It is fixed in the middle of the one-way guide pipe 5. It provides power through the operation of the pump body to pressurize the water in the recovery tank 3 and deliver it to the cold water tank 1. It makes up for the deficiencies of gravity circulation, ensures water circulation efficiency, and is the power source to ensure efficient return of condensate and maintain the continuous operation of the system.
[0053] Condensing plate 1 7: Condensing plate 1 7 is the upper condensing structure of the condensing assembly. Its surface has a matrix of conical protrusions 10. The side wall is equipped with hinge blocks, square grooves and connecting shafts, which correspond to the water inlet of condensing box 2. It receives cold water for heat exchange. The protrusions 10 accelerate the condensate to roll off. It is connected to condensing plate 2 8 through hinge blocks. The angle can be adjusted to expand the condensing area and improve the dehumidification efficiency.
[0054] Condensing plate 2 8: Condensing plate 2 8 is the middle connecting structure of the condensing assembly. It has a conical protrusion 10 on its surface and connecting grooves, hinge shafts and placement grooves on both sides. Connecting shaft 1 and connecting shaft 2 are in the grooves. They are connected to condensing plate 1 7 and condensing plate 3 9 through the hinge shafts. Folding components are installed in the placement grooves. The angle can be adjusted with the folding components to form a continuous condensing surface with the upper and lower condensing plates, thereby enhancing the heat exchange effect.
[0055] Condensing plate 39: Condensing plate 39 is the lower condensing structure of the condensing assembly. Its structure is symmetrical with condensing plate 17. It has a conical protrusion 10 on its surface and a hinge block, square groove and connecting shaft on its side wall. It is hinged to condensing plate 28. The angle can be adjusted by the folding assembly to expand the condensing area. It receives the cold water flowing down from the upper condensing plate and continuously carries out heat exchange. There is a corresponding guide groove below to facilitate the collection of condensate.
[0056] Protrusion 10: Protrusion 10 is an enhancement structure on the surface of the condenser plate. It is a matrix of conical protrusions fixed on the plane of condenser plate 1 7, condenser plate 2 8, and condenser plate 3 9. It reduces the contact area between condensate and the plate surface, allowing water droplets to quickly gather and roll off, avoiding the formation of a water film that hinders heat exchange. At the same time, it increases the surface area of the condenser plate, improves the contact efficiency with humid air, and enhances the dehumidification effect.
[0057] Bending Link 11: Bending link 11 is the transmission component of the folding assembly. It is bent, with one end hinged to telescopic rod 13 and the other end hinged to link 12. The bent part is hinged to the connecting shaft of condenser plate 2 8. By rotating itself, it converts the telescopic movement of telescopic rod 13 into the angle adjustment force of condenser plate. The linkage link drives condenser plate 1 7 and condenser plate 3 9 to rotate. It is the key transmission component for realizing the folding adjustment of condenser plate.
[0058] Link 12: Link 12 is the connecting transmission component of the folding assembly. Its two ends are respectively hinged to the connecting shaft of condenser plate 1 7 and condenser plate 3 9 and the bending link 11. When the folding assembly is in operation, it transmits the power of the bending link 11 to the condenser plate, causing the condenser plate to rotate around the hinge shaft to achieve angle adjustment. In conjunction with other components, it enables the condenser plate assembly to fold flexibly to adapt to different dehumidification needs.
[0059] Telescopic rod 13: Telescopic rod 13 is the telescopic adjustment component of the folding assembly. It is coaxially slidably connected inside the telescopic cylinder 14. One end is provided with a hinge block that is hinged to the bending connecting rod 11. By sliding along the telescopic cylinder 14 to change the length, the bending connecting rod 11 is pushed to rotate, thereby adjusting the angle of the condenser plate. Its telescopic movement provides stroke compensation for the folding of the condenser plate and ensures the smoothness of the angle adjustment.
[0060] Telescopic cylinder 14: Telescopic cylinder 14 is a support and guide component of the folding assembly. One end is hinged to the connecting shaft of the second condenser plate 8. The telescopic rod 13 is coaxially housed inside. It provides guidance for the sliding of the telescopic rod 13, restricts its movement direction, and transmits the supporting force of the second condenser plate 8 to the telescopic rod 13. It works with the telescopic rod 13 to realize length adjustment and is the basic support structure of the folding assembly.
[0061] Inclined base plate 15: Inclined base plate 15 is a flow guiding structure inside the cold water tank 1. It is fixed to the bottom surface inside the cold water tank 1 and is inclined. It uses gravity to guide the cold water to flow to the outlet, avoids the cold water from stagnating in the tank, ensures that the cold water is fully supplied to the condensation system, improves the water resource utilization rate, and ensures the continuity of the condensation cycle.
[0062] Flow guide trough 16: Flow guide trough 16 is a condensate collection structure inside the condensation box 2. It is located on the bottom surface inside the condensation box 2, corresponding to the bottom of the condensation plate 3 9. It receives the condensate that rolls off the condensation plate and guides the water to the bottom water pipe through its own slope to prevent condensate from accumulating in the condensation box 2 and to ensure that the condensate flows efficiently to the recovery box 3. It is a key flow guide component for condensate recovery.
[0063] Spray head 17: Spray head 17 is a water circulation distribution component, fixed at the end of the water pipe at the bottom of the condenser 2 and located inside the recovery tank 3. It atomizes the water (including condensate and warm water after heat exchange) transported by the condenser 2 and sprays it into the recovery tank 3, increasing the contact area between water and air, accelerating cooling, facilitating subsequent recycling, and reducing secondary evaporation losses.
[0064] Working principle: Under the guidance of the inclined bottom plate 15, the cold water in the cold water tank 1 flows through the bottom outlet to the inlet of the condenser 2, providing a cold source for the condensation process; the sealing plug 4 seals the water inlet of the cold water tank 1 with a sealing rubber block to reduce water evaporation. After the cold water enters the condenser 2, it first contacts the condenser plate 7. The conical protrusions 10 on the surfaces of the condenser plate 7, condenser plate 8, and condenser plate 9 reduce the contact area between the condensed water and the plate surface, so that the water vapor in the humid air quickly condenses into water droplets on the surface of the condenser plate. The water droplets roll off along the protrusions 10, avoiding the formation of a water film that hinders heat exchange.
[0065] When airflow or humidity changes, the folding assembly causes the condenser plates to adjust their angle: the telescopic cylinder 14 slides relative to the telescopic rod 13, pushing the bending connecting rod 11 to rotate around the connecting shaft of the second condenser plate 8. The bending connecting rod 11 drives the first condenser plate 7 and the third condenser plate 9 to rotate around the hinge shaft of the second condenser plate 8 through the connecting rod 12. At the same time, the extension and retraction compensation angle adjustment stroke of the telescopic rod 13 makes the three condenser plates form a suitable tilt angle, increasing the contact area with the humid air and improving the condensation efficiency.
[0066] Water droplets on the surface of the condenser plate roll down to the guide channel 16 at the bottom of the condenser box 2, and are collected in the water pipe through the guide channel 16. After being atomized by the spray head 17, they are sprayed into the recovery box 3. The spray head 17 is located inside the recovery box 3 to reduce secondary evaporation of condensate. The water collected in the recovery box 3 flows back to the cold water tank 1 through the one-way guide pipe 5 under the drive of the pressure pump 6. The one-way guide pipe 5 prevents water backflow, and the pressure pump 6 ensures sufficient power for water circulation, realizing the recycling of water resources.
[0067] Throughout the process, the vertical layout of the cold water tank 1, condenser tank 2, and recovery tank 3, combined with the inclined base plate 15 and the guide channel 16, utilizes gravity to assist the directional flow of water, reducing additional power consumption. The flexible adjustment of the folding components allows the condenser plate assembly to adapt to different working conditions, and the conical protrusion 10 accelerates the stripping of condensate, improving heat exchange efficiency. Through the linkage of various structures, the device achieves the dual effects of efficient dehumidification and water resource recycling, significantly reducing energy consumption and water waste.
[0068] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A condensate water recycling device for efficient dehumidification, characterized by, include: Cold water tank (1), condenser (2) and recovery tank (3). The cold water tank (1), condenser (2) and recovery tank (3) are all hollow boxes, and are installed from top to bottom as cold water tank (1), condenser (2) and recovery tank (3). The condenser box (2) is provided with a condenser plate assembly, which includes a first condenser plate (7), a second condenser plate (8), a third condenser plate (9) and a folding assembly. Folding assemblies are provided between the first condenser plate (7) and the second condenser plate (8) and between the second condenser plate (8) and the third condenser plate (9).
2. The condensate water recycling device for high efficiency dehumidification according to claim 1, characterized in that, An inclined base plate (15) is fixedly installed on the inner bottom surface of the cold water tank (1), and an outlet is provided at the bottom of the cold water tank (1) and at the lower part of the inclined base plate (15). The top surface of the cold water tank (1) is provided with a water inlet, and a sealing rubber block is fixedly installed on the bottom surface of the sealing plug (4). The sealing rubber block at the bottom of the sealing plug (4) is engaged with the water inlet on the cold water tank (1).
3. The condensate water recycling device for high efficiency dehumidification according to claim 2, characterized in that, The top surface of the condenser (2) is provided with a water inlet, and the water inlet on the condenser (2) corresponds to the water outlet of the cold water tank (1).
4. The condensate water recycling device for high efficiency dehumidification according to claim 1, characterized in that, Multiple protrusions (10) are installed on the plane of the first condenser plate (7), the second condenser plate (8) and the third condenser plate (9), and the protrusions (10) are distributed in a matrix. The protrusions (10) are conical protrusions. A hinge block is symmetrically fixedly installed on one side wall of the condenser plate (7), and a square groove is opened between the two hinge blocks on the same side wall of the condenser plate (7). A connecting shaft is fixedly installed between the inner walls on both sides of the square groove. The two side walls of the condenser plate 2 (8) are symmetrically provided with connecting grooves. A hinge shaft is fixedly installed between the two inner walls of the connecting groove. A placement groove is provided between the two connecting grooves on the side wall of the condenser plate 2 (8). A connecting shaft 1 is fixedly installed near the inner wall of the placement groove, and a connecting shaft 2 is fixedly installed near the outlet of the placement groove. The sidewalls of the condenser plate three (9) and the condenser plate one (7) are equipped with hinge blocks, square grooves and connecting shafts that are identical to those of the condenser plate one (7).
5. The condensate water recycling device for high efficiency dehumidification according to claim 4, characterized in that, The hinge blocks on the first condenser plate (7) and the third condenser plate (9) are hinged to the hinge shaft on the second condenser plate (8); The condenser plate (7) and the water inlet on the condenser box (2) correspond to each other.
6. The condensate water recycling device for high efficiency dehumidification according to claim 4, characterized in that, The folding assembly includes a bending link (11), a link (12), a telescopic link (13), and a telescopic cylinder (14). The telescopic cylinder (14) is hinged to the connecting shaft on the second condensing plate (8). The telescopic link (13) is slidably connected to the telescopic cylinder (14) on the same axis. A hinge block is fixedly installed on the end face of the telescopic link (13) away from the second condensing plate (8). The hinge block on the telescopic link (13) is hinged to one end of the bending link (11). The link (12) is hinged to the connecting shaft on the first condensing plate (7) and the third condensing plate (9). The other end of the link (12) is hinged to the other end of the bending link (11). The bend of the bending link (11) is hinged to the connecting shaft on the second condensing plate (8).
7. The condensate water recycling device for high efficiency dehumidification according to claim 6, characterized in that, The bottom of the condenser (2) is provided with a guide groove below the condenser plate (9). A water pipe is fixedly installed around the bottom of the condenser (2) corresponding to the guide groove. A spray head (17) is fixedly installed on the bottom of the water pipe. The spray head (17) is connected to the inside of the condenser (2).
8. The condensate water recycling device for high efficiency dehumidification according to claim 7, characterized in that, The top surface of the recycling box (3) is provided with a water inlet. The water pipe at the bottom of the condensation box (2) and the water inlet of the recycling box (3) are coaxially fixedly connected, and the spray head (17) is located inside the recycling box (3).
9. The condensate water recycling device for high efficiency dehumidification according to claim 1, characterized in that, The two ends of the unidirectional flow pipe (5) are connected to the interior of the cold water tank (1) and the recovery tank (3) respectively, and a pressure pump (6) is fixedly installed in the middle of the unidirectional flow pipe (5).