Energy-saving high-efficiency heat exchange dehumidification equipment
By using four staggered dehumidification plates and a threaded rod tension spring design, the problem of insufficient contact between air and the dehumidification discs is solved, achieving a highly efficient and thorough dehumidification effect.
Patent Information
- Application Number
- CN202511488814.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-17
- Publication Date
- 2026-04-24
- Estimated Expiration
- 2045-10-17
AI Technical Summary
In existing heat exchange dehumidification equipment, the number of times air comes into contact with the dehumidification disc is insufficient, resulting in low dehumidification efficiency and incomplete dehumidification.
The system employs four staggered dehumidification plates, allowing hot air to alternately absorb moisture through these plates and then be cooled and dehumidified by condenser tubes. The design, combined with threaded rods and tension springs, ensures that the dehumidification plates are in full contact with the air, achieving highly efficient dehumidification.
It improves dehumidification efficiency and ensures thorough dehumidification. The increased contact time between the air and the dehumidification plate allows the dehumidification plate to effectively absorb moisture from the air, achieving efficient dehumidification.
Smart Images

Figure CN121274310B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of dehumidification technology, and in particular to an energy-saving and high-efficiency heat exchange dehumidification device. Background Technology
[0002] Heat exchange dehumidification equipment absorbs moisture from the air through a dehumidification disc. Hot air is blown onto the continuously rotating dehumidification disc, and the hot air carries away the moisture from the dehumidification disc. The dehumidification disc rotates to transport the moisture and dehumidify the air, and then the air is condensed to remove the moisture.
[0003] Existing technologies typically employ a dehumidification disc to absorb moisture, with air blown vertically onto the disc for dehumidification. However, the number of times the air scours the disc is insufficient, preventing adequate contact between the air and the disc, resulting in inadequate dehumidification efficiency and insufficient dehumidification. Therefore, there is an urgent need to provide an energy-efficient and highly effective heat exchange dehumidification device. Summary of the Invention
[0004] Based on the technical problems in the background technology, the present invention proposes an energy-saving and high-efficiency heat exchange dehumidification device.
[0005] This invention proposes an energy-saving and high-efficiency heat exchange dehumidification device, comprising: a mounting box, with a driving component fixed to the front of the mounting box via a support rod; a dehumidification mechanism, disposed inside the mounting box, which dehumidifies by filtration; a positioning mechanism, fixed to the inner wall of the mounting box, used to position the angle of the dehumidification mechanism; and a rotating rod, fixed to the power output end of the driving component. The dehumidification mechanism includes: side plates, fixed to the ends of the rotating rod; four dehumidification frames, fixed between two side plates; corner plates, detachably fixed to the sides of the four dehumidification frames; four dehumidification plates, each fixed to the inner wall of one of the four dehumidification frames; two docking frames, each fitted onto the inner wall of one of the two dehumidification frames; multiple diverter blocks, each fixed to the inner wall of one of the two docking frames; and connecting frames, each with its ends passing through and fixed to one of the two docking frames.
[0006] Preferably, the dehumidification mechanism further includes: a threaded rod fixed to the side of the dehumidification frame; a threaded ring threadedly fitted onto the threaded rod; and a washer movably fitted onto the threaded rod. The corner plate is detachably fixed to the side of the dehumidification frame via the threaded rod and the threaded ring.
[0007] Preferably, the positioning mechanism includes: a fixed rod, with multiple fixed rods respectively fixed to the top and bottom of the inner wall of the mounting box; a fixed plate, with the fixed plate fixed to the ends of the multiple fixed rods; a tension spring, with one end of the tension spring fixed to the fixed plate; a tension plate, with the tension plate fixed to the other end of the tension spring; positioning strips, with multiple positioning strips fixed to the surface of the rotating rod; a movable plate, with the end of the movable plate fixed to the middle of the tension plate; a mating ring, which is movably fitted onto the positioning strips and the rotating rod; a square frame, which is fixedly fitted onto the mating ring; and a rolling rod, which movably passes through the movable plate.
[0008] Preferably, a fixing frame is fixedly installed on the inner wall of the mounting box, a connecting pipe is fixedly installed at the end of the fixing frame, an elbow pipe is fixedly installed at the end of the fixing frame, a horizontal pipe is fixedly inserted through the end of the connecting pipe, and a heating box is fixedly inserted through the end of the elbow pipe.
[0009] Preferably, a heating rod is fixed through the top of the heating box, and metal sheets are fixed to the surface of the heating rod. A sealing plate is fixed to the end of the heating box, an air inlet pipe is fixed through the middle of the sealing plate, and a sealing plate is fixed through the end of the horizontal pipe.
[0010] Preferably, a cold water tank is fitted onto the sealing plate, two cold water pipes are fixedly fixed through the side of the cold water tank, a lower sealing plate and an upper sealing plate are fixedly installed on the inner wall of the cold water tank, multiple condenser pipes are fixedly fixed through the lower sealing plate and the upper sealing plate, and an inclined plate is fixedly installed on the inner wall of the cold water tank.
[0011] Preferably, the inner wall of the cold water tank is fixedly provided with a stop-seal plate, the top of the inclined plate is fixedly provided with multiple diversion rods, the inner wall of the cold water tank is fixedly provided with a stop-seal strip, the sides of the diversion rods are all provided with back grooves, and the bottom of the cold water tank is fixedly provided with a drain pipe.
[0012] Preferably, the end of another rotating rod is rotatably inserted through the middle of the mounting box via a rotating component, and two square frames cover the two ends of the two rolling rods, so that the ends of the rolling rods abut against the inner wall of the square frames, and the notch in the middle of the mating ring matches the shape of the rotating rod and the positioning strip.
[0013] Preferably, the connecting frame and the dehumidifying plate are perpendicular, four dehumidifying frames and four corner plates surround the middle of the two side plates, three connecting frames are equidistantly arranged in the middle of the docking frame, and the threaded rod moves through the corner plate.
[0014] Preferably, the drain rod is movably inserted through the condenser tube, and multiple condenser tubes are arranged in an array at equal intervals inside the cold water tank. The inclined plate has an opening with a drain hole, and multiple drain rods are movably inserted through the drain hole of the inclined plate. The diameter of the top of the drain hole is larger than the diameter of its bottom, and the diameter of the bottom of the drain hole is larger than the diameter of the drain rod.
[0015] The beneficial effects of this invention are as follows: the included angle between the four dehumidifying plates is 90 degrees. Hot air passes through two dehumidifying plates, and the moisture in the hot air is absorbed by the dehumidifying plates. Then, the hot air is cooled, and the water vapor condenses and liquefies for dehumidification. Then, the air passes through the other two dehumidifying plates, and the dehumidifying plates absorb the moisture in the air. The four dehumidifying plates rotate 90 degrees, and hot air flows through the four dehumidifying plates at intervals. The four dehumidifying plates continuously absorb moisture, and then the hot air carries away the moisture, condenses it, and separates it from the air. The four dehumidifying plates are used in a cycle, which greatly increases the contact time between the air and the dehumidifying plates. The dehumidifying plates fully absorb the moisture in the air, and have the advantages of high dehumidification efficiency and thorough dehumidification.
[0016] The tension spring pulls the rolling rod, movable plate, and tension plate, causing the two ends of the rolling rod to abut against one of the four corners of the inner wall of the square frame. The two rolling rods pull the two corners of the square frame respectively, causing the connecting ring, square frame, side plate, corner plate, threaded rod, threaded ring, washer, dehumidification frame, dehumidification plate, connecting frame, diverter block, connecting frame, etc. to rotate accurately by 90 degrees. This ensures that the four dehumidification frames are accurately connected to the ends of the three connecting pipes and elbows, allowing air to flow through the four dehumidification plates in sequence. The dehumidification plates fully absorb the moisture in the air, resulting in high dehumidification efficiency and thorough dehumidification. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of the overall structure of an energy-saving and high-efficiency heat exchange dehumidification device proposed in this invention;
[0018] Figure 2 This is a schematic cross-sectional view of an energy-saving and high-efficiency heat exchange dehumidification device proposed in this invention;
[0019] Figure 3 This is a schematic diagram of the internal structure of the mounting box of an energy-saving and high-efficiency heat exchange dehumidification device proposed in this invention;
[0020] Figure 4 This is a schematic diagram of the slider position structure of an energy-saving and high-efficiency heat exchange dehumidification device proposed in this invention;
[0021] Figure 5 This is a schematic diagram of the positioning mechanism of an energy-saving and high-efficiency heat exchange dehumidification device proposed in this invention;
[0022] Figure 6 This is a schematic diagram of the dehumidification mechanism of an energy-saving and high-efficiency heat exchange dehumidification device proposed in this invention;
[0023] Figure 7 This is a schematic diagram of the connected frame structure of an energy-saving and high-efficiency heat exchange dehumidification device proposed in this invention;
[0024] Figure 8This is a schematic diagram of the interior of the cold water tank of an energy-saving and high-efficiency heat exchange dehumidification device proposed in this invention;
[0025] Figure 9 This is a schematic diagram of the inclined plate structure of an energy-saving and high-efficiency heat exchange dehumidification device proposed in this invention;
[0026] Figure 10 This is a schematic cross-sectional view of the cold water tank of an energy-saving and high-efficiency heat exchange dehumidification device proposed in this invention;
[0027] Figure 11 This is a top view cross-sectional diagram of the heating box of an energy-saving and high-efficiency heat exchange dehumidification device proposed in this invention.
[0028] In the diagram: Mounting box 1, drive component 11, fixing rod 12, fixing plate 13, tension spring 14, rotating rod 15, positioning strip 16, docking ring 17, square frame 18, rolling rod 19, movable plate 110, tension plate 111, side plate 2, corner plate 21, threaded rod 22, threaded ring 23, washer 24, dehumidification frame 25, dehumidification plate 26, docking frame 27, diverter block 28, connecting frame 29, fixing bracket 3, elbow pipe 31, connecting pipe 32, horizontal pipe 33, heating box 34, cold water box 35, cold water pipe 36, air inlet pipe 37, heating rod 38, sealing plate 39, inclined plate 310, stop seal plate 311, stop seal strip 312, lower sealing plate 313, upper sealing plate 314, condenser pipe 315, drain rod 316, back groove 317, sealing plate 318, metal sheet 319, drain pipe 320. Detailed Implementation
[0029] Reference Figures 1 to 11 An energy-saving and high-efficiency heat exchange dehumidification device includes: a mounting box 1, on the front of which a drive component 11 is fixed by a support rod. The drive component 11 is a progressive motor, which can be purchased from the market or customized. The power output end of the drive component 11 is movably inserted through the mounting box 1; a dehumidification mechanism, which is located inside the mounting box 1 and dehumidifies by filtration; a positioning mechanism, which is fixed to the inner wall of the mounting box 1 and is used to position the angle of the dehumidification mechanism; and a rotating rod 15, which is fixed to the power output end of the drive component 11 and passes through the middle of two square frames 18.
[0030] In this invention, the dehumidification mechanism includes: side plates 2, which are fixed to the ends of rotating rods 15; the two side plates 2 are parallel to the interior of the mounting box 1; four dehumidification frames 25 are fixed in the middle of the two side plates 2; the dehumidification frames 25 surround the middle of the two side plates 2; and corner plates 21, which are detachably fixed to the sides of the four dehumidification frames 25; the two ends of the corner plates 21 are fixed to the sides of the two side plates 2, so that the two side plates 2, the four corner plates 21, and the four dehumidification frames 25 are fixed together.
[0031] In this invention, four dehumidifying plates 26 are fixed to the inner walls of four dehumidifying frames 25 respectively; the four dehumidifying plates 26 surround the middle of two side plates 2, three connecting pipes 32 and elbow pipes 31 surround the periphery of the four dehumidifying plates 26, and the three connecting pipes 32 and elbow pipes 31 are connected at the ends of the four dehumidifying plates 26; two connecting frames 27 are respectively fitted onto the inner walls of two dehumidifying frames 25.
[0032] In this invention, the dehumidifying plate 26 is composed of several special titanium-coated fibers with a small amount of ceramic composite and has undergone high-temperature resistant treatment. The dehumidifying plate 26 can adhere to the desiccant to a maximum extent and has high strength. The dehumidifying plate 26 has multiple prismatic holes in the opening, allowing air to pass through the prismatic holes. Diverting blocks 28 are fixed to the inner walls of two docking frames 27 respectively. Connecting frames 29 are fixed to the two docking frames 27 at both ends respectively.
[0033] In this invention, the dehumidification mechanism further includes: a threaded rod 22, which is fixed to the side of the dehumidification frame 25; a threaded ring 23, which is threaded onto the threaded rod 22; and a washer 24, which is movably fitted onto the threaded rod 22. The corner plate 21 is detachably fixed to the side of the dehumidification frame 25 via the threaded rod 22 and the threaded ring 23. The threaded ring 23 can rotate on the threaded rod 22, causing the threaded ring 23 to move along the axial direction of the threaded rod 22. The threaded ring 23 abuts against the washer 24, pressing the washer 24 onto the surface of the corner plate 21, thereby keeping the side plate 2, the corner plate 21, and the dehumidification frame 25 fixed.
[0034] In this invention, the positioning mechanism includes: a fixing rod 12, with multiple fixing rods 12 respectively fixed to the top and bottom of the inner wall of the mounting box 1; a fixing plate 13, with the fixing plate 13 fixed to the ends of the multiple fixing rods 12; a tension spring 14, with one end of the tension spring 14 fixed to the fixing plate 13; the tension of the tension spring 14 acts on the tension plate 111, causing the end of the rolling rod 19 to press against the inner wall of the square frame 18; the square frame 18 is square in shape, and the four corners of the square frame 18 are offset from the position of the dehumidification frame 25, so that when the tension of the tension spring 14 pulls the rolling rod 19 against the corner of the square frame 18, the angle between the dehumidification frame 25 and the horizontal plane is 45°, so that the end of the dehumidification frame 25 and the connecting pipe 32 are connected.
[0035] In this invention, a tension plate 111 is fixed to the other end of a tension spring 14; a rotating rod 15 is located between two movable plates 110, and the rotating rod 15 and the rolling rod 19 remain parallel, with the rotating rod 15 perpendicular to the center point of the square frame 18; positioning strips 16 are fixed to the surface of the rotating rod 15; a movable plate 110 is fixed at its end to the middle of the tension plate 111; a mating ring 17 is movably fitted onto the positioning strips 16 and the rotating rod 15; the axial direction of the mating ring 17 coincides with the center point of the square frame 18; a square frame 18 is fixedly fitted onto the mating ring 17; and a rolling rod 19 movably passes through the movable plate 110.
[0036] In this invention, a fixing frame 3 is fixedly installed on the inner wall of the mounting box 1. A connecting pipe 32 is fixedly installed at the end of the fixing frame 3. An elbow pipe 31 is fixedly installed at the end of the fixing frame 3. A horizontal pipe 33 is fixedly inserted through the end of each connecting pipe 32. A heating box 34 is fixedly inserted through the end of each elbow pipe 31. The four fixing frames 3 are respectively fixed on the three connecting pipes 32 and the elbow pipe 31, so that the four fixing frames 3, the three connecting pipes 32 and the elbow pipe 31 are fixed inside the mounting box 1.
[0037] In this invention, a heating rod 38 is fixedly installed through the top of the heating box 34. The heating rod 38 extends from the top of the heating box 34. The heating rod 38 can be obtained by purchasing from the market or by private customization. The heating rod 38 generates heat when connected to a power source. Metal sheets 319 are fixed to the surface of the heating rod 38. The heat from the heating rod 38 is conducted to the metal sheets 319, and the metal sheets 319 conduct the heat to the air. A sealing plate 318 is fixed to the end of the heating box 34 to seal the end of the heating box 34. An air inlet pipe 37 is fixedly installed through the middle of the sealing plate 318. A sealing plate 39 is fixedly installed through the end of the horizontal pipe 33 to seal the end of the cold water tank 35.
[0038] In this invention, a cold water tank 35 is fitted onto a sealing plate 39. Two cold water pipes 36 are fixedly inserted through the side of the cold water tank 35. The cold water pipes 36 inject cold water into the cold water tank 35. The cold water flows between the lower sealing plate 313 and the upper sealing plate 314. The cold water absorbs the heat from multiple condenser tubes 315, causing the air to cool inside the multiple condenser tubes 315. The water vapor liquefies and removes the moisture from the air. The lower sealing plate 313 and the upper sealing plate 314 are fixedly installed on the inner wall of the cold water tank 35. Multiple condenser tubes 315 are fixedly inserted through the lower sealing plate 313 and the upper sealing plate 314. An inclined plate 310 is fixedly installed on the inner wall of the cold water tank 35.
[0039] In this invention, a stop-seal plate 311 is fixedly installed on the inner wall of the cold water tank 35, a plurality of diversion rods 316 are fixedly installed on the top of the inclined plate 310, a stop-seal strip 312 is fixedly installed on the inner wall of the cold water tank 35, and the side of the stop-seal plate 311 forms a flange by turning downward. The stop-seal plate 311 and the stop-seal strip 312 obstruct the flow of water to form a liquid seal, which can prevent air from being discharged through the drain pipe 320. The sides of the diversion rods 316 are all provided with back grooves 317. The bottom of the cold water tank 35 is fixedly connected to the drain pipe 320, which is used to discharge the liquefied water vapor inside the cold water tank 35.
[0040] In this invention, the end of another rotating rod 15 is rotatably inserted through the middle of the mounting box 1 via a rotating component. This rotating component is a sealed bearing, which can be obtained by purchasing from the market or by private customization. The sealed bearing is inserted through the middle of the mounting box 1 and is sleeved on the end of the rotating rod 15, so that the rotating rod 15 rotates in the middle of the mounting box 1. Two square frames 18 cover the two ends of the two rolling rods 19, so that the ends of the rolling rods 19 abut against the inner wall of the square frames 18. The notch in the middle of the mating ring 17 is adapted to the shape of the rotating rod 15 and the positioning strip 16.
[0041] In this invention, the connecting frame 29 and the dehumidifying plate 26 are kept perpendicular. The connecting frame 29 connects the spaces inside the two dehumidifying frames 25, allowing air to flow through the two dehumidifying plates 26 and separating the air between the four dehumidifying plates 26. The four dehumidifying frames 25 and the four corner plates 21 surround the middle of the two side plates 2. The three connecting frames 29 are equidistantly arranged in the middle of the docking frame 27. Air can flow through the gaps between the three connecting frames 29 through the two dehumidifying plates 26, allowing air to flow through the four dehumidifying plates 26 in sequence. The threaded rod 22 is movably inserted through the corner plate 21.
[0042] In this invention, a guide rod 316 is movably inserted through the condenser tube 315. The guide rod 316 can guide the flow of liquefied water vapor, allowing water to flow at the top of the stop-sealing plate 311. The stop-sealing plate 311 and the inclined plate 310 remain parallel. Multiple condenser tubes 315 are arranged in an array at equal intervals inside the cold water tank 35. The inclined plate 310 has an opening with a drain hole. Multiple guide rods 316 movably insert through the drain hole of the inclined plate 310. The diameter of the top of the drain hole is larger than the diameter of its bottom. The diameter of the bottom of the drain hole is larger than the diameter of its bottom. The diameter of the guide rod 316 allows water to flow in the back groove 317 of the guide rod 316, enabling water to pass through the inclined plate 310 via the back groove 317. The shape of the drain hole can impede the airflow, preventing air from passing through the inclined plate 310. The back groove 317 is located on one side of the guide rod 316 and on the leeward side of the airflow, reducing the airflow velocity in the back groove 317 and allowing the back groove 317 to effectively guide the water flow. The other side of the guide rod 316 is the windward side.
[0043] In this invention, the driving component 11 drives the docking ring 17, square frame 18, side plate 2, corner plate 21, threaded rod 22, threaded ring 23, washer 24, dehumidifying frame 25, dehumidifying plate 26, docking frame 27, diverting block 28, connecting frame 29, and other structures to rotate synchronously by 90 degrees. After the docking ring 17 rotates, the tension spring 14 pulls the rolling rod 19, movable plate 110, and tension plate 111, causing the two ends of the rolling rod 19 to abut against the square frame. At one of the four corners of the inner wall of 18, two rolling rods 19 pull the two corners of the square frame 18 respectively, so that the structure including the docking ring 17, square frame 18, side plate 2, corner plate 21, threaded rod 22, threaded ring 23, washer 24, dehumidification frame 25, dehumidification plate 26, docking frame 27, diverter block 28, and connecting frame 29 can be accurately rotated by 90 degrees, ensuring that the four dehumidification frames 25 are accurately docked with the ends of the three docking pipes 32 and elbow pipes 31 respectively.
[0044] In this invention, the air inlet duct 37 is connected to a blower, which delivers the air requiring dehumidification into the air inlet duct 37. Cold water is then connected to one of the cold water pipes 36 to deliver the cold water into a cold water tank 35. The cold water inside the cold water tank 35 is then delivered out through another cold water pipe 36. The cold water fills the space between the stop seal 312 and the lower sealing plate 313, flowing through the gaps between multiple condenser pipes 315. The cold water absorbs heat from the multiple condenser pipes 315. The air is heated by the heating rod 38 and the metal plate 319 to form hot air. The hot air is delivered into one of the dehumidification frames 25 through the elbow pipe 31. The hot air flows over the dehumidification plate 26, where the moisture in the hot air is absorbed. Hot air then enters the docking frame 27, flows through the docking frame 27 and the connecting frame 29 into another dehumidifying frame 25, and then flows through another dehumidifying plate 26, where the moisture in the hot air is absorbed again. The hot air is then transported into the interior of the cold water tank 35 through the connecting pipe 32 and the horizontal pipe 33. The hot air flows through multiple condenser pipes 315, and flows along the inner wall of the condenser pipes 315. The condenser pipes 315 absorb the heat of the hot air, and the water vapor in the hot air condenses and liquefies. The water flows along the surface of the guide rod 316, and flows along the back groove 317 of the guide rod 316. The water passes through the inclined plate 310 through the gap between the guide rod 316 and the inclined plate 310. Water flows at the top of the stop-seal plate 311, and after overflowing the stop-seal strip 312, it forms a liquid seal at the bottom of the stop-seal plate 311. Then, the cooled hot air enters and flows at the top of the inclined plate 310. The air then enters the horizontal pipe 33 and is delivered out of the cold water tank 35. The air then flows over two other dehumidifying plates 26, which absorb moisture from the air. The air is then discharged through the connecting pipe 32 and the horizontal pipe 33. The connecting pipe 32 delivers the air into the blower, which drives the air to circulate and flow through the four dehumidifying plates 26 for dehumidification. The driving component 11 drives the side plate 2, the square frame 18, the four dehumidifying frames 25, and the four dehumidifying plates 26 to rotate synchronously. The four dehumidifying frames 25 rotate 90 degrees. The positions of the four dehumidifying plates 26 change. The two dehumidifying plates 26 at both ends of the connecting frame 29 are blown by hot air. The hot air heats the dehumidifying plates 26 and carries away the moisture, causing it to evaporate into water vapor. The hot air carries away the moisture from the dehumidifying plates 26. The moisture is condensed and liquefied through the condenser tube 315. Then the hot air is cooled and flows through the other two dehumidifying plates 26. The dehumidifying plates 26 can absorb moisture from the cold air. The air can circulate through the four dehumidifying plates 26. The four dehumidifying plates 26 are used alternately to absorb moisture and transport the moisture into the hot air. The hot air is then condensed to remove the moisture. The air is continuously heated and condensed to dehumidify, and the moisture is transported through the dehumidifying plates 26 to complete the dehumidification work.
[0045] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. An energy-saving and high-efficiency heat exchange dehumidification device, characterized in that: include: Mounting box (1), the front of mounting box (1) is fixed with a drive component (11) by a support rod. The dehumidification mechanism is located inside the installation box (1) and dehumidifies by filtration. The positioning mechanism is fixed to the inner wall of the mounting box (1) and is used to position the angle of the dehumidification mechanism. Rotating rod (15), the rotating rod (15) is fixed to the power output end of the driving component (11); Dehumidification mechanisms include: Side plate (2), the side plate (2) is fixed to the end of the rotating rod (15); Dehumidification frames (25), four dehumidification frames (25) are fixed in the middle of two side panels (2); Corner plate (21), four corner plates (21) can be detachably fixed to the sides of four dehumidification frames (25); Dehumidifying plate (26), four dehumidifying plates (26) are respectively fixed to the inner walls of four dehumidifying frames (25); The two docking frames (27) are respectively fitted onto the inner walls of the two dehumidifying frames (25); Diverting blocks (28), multiple diverting blocks (28) are respectively fixed to the inner walls of two docking frames (27); Connecting frames (29), with both ends of multiple connecting frames (29) respectively passing through and fixed in two docking frames (27); The dehumidification mechanism also includes: Threaded rod (22) is fixed to the side of dehumidification frame (25); Threaded ring (23), threaded ring (23) is threaded onto threaded rod (22); Washer (24) is movably fitted on threaded rod (22), and corner plate (21) is detachably fixed to the side of dehumidification frame (25) through threaded rod (22) and threaded ring (23); The positioning mechanism includes: a fixing rod (12), and multiple fixing rods (12) are respectively fixed to the top and bottom of the inner wall of the mounting box (1); A fixing plate (13) is fixed to the end of a plurality of fixing rods (12); A tension spring (14) is fixed at one end to a fixed plate (13); A tension plate (111) is fixed to the other end of a tension spring (14); Positioning strips (16), multiple positioning strips (16) are fixed to the surface of the rotating rod (15); Movable plate (110), the end of which is fixed to the middle of tension plate (111); The docking ring (17) is movably fitted onto the positioning strip (16) and the rotating rod (15); A square frame (18) is fixedly fitted onto the mating ring (17); The roller (19) moves through the movable plate (110).
2. The energy-saving and high-efficiency heat exchange dehumidification equipment according to claim 1, characterized in that, The inner wall of the mounting box (1) is fixedly provided with a fixing frame (3), the end of the fixing frame (3) is fixedly provided with a connecting pipe (32), the end of the fixing frame (3) is fixedly provided with an elbow pipe (31), the end of the connecting pipe (32) is fixedly provided with a horizontal pipe (33), and the end of the elbow pipe (31) is fixedly provided with a heating box (34).
3. The energy-saving and high-efficiency heat exchange dehumidification equipment according to claim 2, characterized in that, A heating rod (38) is fixed through the top of the heating box (34), and metal sheets (319) are fixed on the surface of the heating rod (38). A sealing plate (318) is fixed at the end of the heating box (34), and an air inlet pipe (37) is fixed through the middle of the sealing plate (318). A sealing plate (39) is fixed through the end of the horizontal pipe (33).
4. The energy-saving and high-efficiency heat exchange dehumidification equipment according to claim 3, characterized in that, A cold water tank (35) is fitted on the sealing plate (39). Two cold water pipes (36) are fixed through the side of the cold water tank (35). A lower sealing plate (313) and an upper sealing plate (314) are fixedly installed on the inner wall of the cold water tank (35). Multiple condenser pipes (315) are fixed through the lower sealing plate (313) and the upper sealing plate (314). An inclined plate (310) is fixedly installed on the inner wall of the cold water tank (35).
5. The energy-saving and high-efficiency heat exchange dehumidification equipment according to claim 4, characterized in that, The inner wall of the cold water tank (35) is fixedly provided with a stop-seal plate (311), the top of the inclined plate (310) is fixedly provided with multiple diversion rods (316), the inner wall of the cold water tank (35) is fixedly provided with a stop-seal strip (312), the sides of the diversion rods (316) are all provided with back grooves (317), and the bottom of the cold water tank (35) is fixedly provided with a drain pipe (320).
6. The energy-saving and high-efficiency heat exchange dehumidification equipment according to claim 5, characterized in that, Another rotating rod (15) has its end rotatably inserted through the middle of the mounting box (1) via a rotating component. Two square frames (18) cover the two ends of the two rolling rods (19), so that the ends of the rolling rods (19) abut against the inner wall of the square frames (18). The notch in the middle of the mating ring (17) matches the shape of the rotating rod (15) and the positioning strip (16).
7. The energy-saving and high-efficiency heat exchange dehumidification equipment according to claim 6, characterized in that, The connecting frame (29) and the dehumidifying plate (26) remain perpendicular. Four dehumidifying frames (25) and four corner plates (21) surround the middle of the two side plates (2). Three connecting frames (29) are equidistantly arranged in the middle of the docking frame (27). The threaded rod (22) moves through the corner plate (21).
8. The energy-saving and high-efficiency heat exchange dehumidification equipment according to claim 7, characterized in that, The drain rod (316) is movably inserted through the condenser tube (315). Multiple condenser tubes (315) are arranged in an array at equal intervals inside the cold water tank (35). The inclined plate (310) has an opening with a drain hole. Multiple drain rods (316) are movably inserted through the drain hole of the inclined plate (310). The diameter of the top of the drain hole is larger than the diameter of its bottom, and the diameter of the bottom of the drain hole is larger than the diameter of the drain rod (316).
Citation Information
Patent Citations
Intelligent dehumidification device for power equipment
CN115912085A
Intelligent dehumidification device
CN218871722U