A radiation temperature control system with independent control of air temperature and humidity.

Driven by a motor with a gear plate and bevel gear structure, and combined with a drying and heating chamber, the system achieves precise and energy-saving regulation of the radiant temperature and humidity control system, solving the problem that traditional systems cannot independently control temperature and humidity.

CN119983524BActive Publication Date: 2025-11-14广东省河源市质量计量监督检测所
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Patent Information

Application Number
CN202510459771.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-14
Publication Date
2025-11-14
Estimated Expiration
2045-04-14

AI Technical Summary

Technical Problem

Existing radiant temperature control systems cannot achieve independent control of temperature and humidity, resulting in an inability to provide more precise and energy-efficient temperature and humidity regulation.

Method used

It adopts a gear plate and rack plate structure, combined with motor drive, to achieve independent control of temperature and humidity; it increases air humidity through bevel gear and dispersed fan blade structure; and it uses a drying heating chamber to independently control air heating and dehumidification.

Benefits of technology

It enables independent control of temperature and humidity, improves the accuracy and energy efficiency of the temperature control system, and can accelerate the wind speed without affecting the wind speed, so as to meet the temperature and humidity regulation needs of different requirements.

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Abstract

This invention belongs to the field of radiation temperature control technology, specifically a fully independent air temperature and humidity control radiation temperature control system. The proposed solution includes a housing with an air outlet window on its side wall. The fully independent air temperature and humidity control radiation temperature control system includes a first gear plate and an annular rack plate. A second motor drives the first gear plate to rotate. Through the meshing structure of the first gear plate and the annular rack plate, the rotation of the first gear plate causes the annular rack plate to slide along an annular slide rail via an annular slider. Similarly, the sliding of the annular rack plate causes the second gear plate to rotate, which in turn causes the first rotating plate to rotate. The rotation of the first rotating plate then drives the second rotating plate to rotate, indirectly causing the cooling and humidifying chambers to rise and fall. This allows for changing the ventilation positions of different chambers, thus enabling independent control of temperature and humidity.
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Description

Technical Field

[0001] This invention relates to the field of radiation temperature control technology, and in particular to a radiation temperature control system with independent control of air temperature and humidity. Background Technology

[0002] As people's demands for energy conservation, emission reduction, and living comfort continue to increase, traditional air conditioning systems are no longer able to meet the needs of modern buildings in some aspects, especially in terms of temperature and humidity control, energy efficiency, and air quality. Traditional systems often have limitations. Therefore, a brand-new all-air temperature and humidity independent control radiant temperature regulation device has emerged.

[0003] Most existing radiant temperature control systems combine temperature, humidity, and airflow into one, failing to leverage the advantages of independent temperature and humidity control and radiant temperature regulation, thus failing to provide more precise and energy-efficient temperature and humidity regulation.

[0004] Therefore, a radiation temperature control system with independent control of air temperature and humidity is needed. Summary of the Invention

[0005] The present invention proposes an independent air temperature and humidity control radiant temperature regulation system, which solves the problem that most existing radiant temperature regulation systems combine temperature, humidity and air volume into one, and cannot achieve independent temperature and humidity control and the advantages of radiant temperature regulation, thus failing to provide more precise and energy-efficient temperature and humidity regulation.

[0006] To achieve the above objectives, the present invention provides the following technical solution:

[0007] A radiation temperature regulation system with independent control of air temperature and humidity includes an outer shell. An air outlet window is provided on one side wall of the outer shell, and an air inlet window is provided on the other side wall of the outer shell. A first motor is fixed inside the air inlet window. A first rotating shaft is provided at the rotating end of the first motor, and a first exhaust fan blade is fixed around the first rotating shaft.

[0008] A base plate is fixed to the bottom of the outer casing. A second motor is fixed to the upper surface of the base plate. A second shaft is provided at the rotating end of the second motor. A first gear plate is fixed to the other end of the second shaft. An annular rack plate is meshed with the lower side of the first gear plate. An annular slider is fixed to the lower wall of the annular rack plate. An annular slide rail is provided on the outer side of the annular slider. A second gear plate is meshed with the upper side of the annular rack plate. A first connecting post is fixed to one end of the second gear plate. A first rotating plate is fixed to the other end of the first connecting post. A second rotating plate is provided on one side of the first rotating plate. A third shaft is provided at the connection between the first rotating plate and the second rotating plate. A cooling and humidifying chamber is provided at the other end of the second rotating plate. A fourth shaft is provided at the connection between the second rotating plate and the cooling and humidifying chamber. An accelerated ventilation chamber is located above the cooling and humidifying chamber. A drying and heating chamber is installed above the accelerated ventilation chamber.

[0009] Preferably, a third motor is fixed to the bottom surface of the cooling and humidifying chamber. A fifth rotating shaft is provided at the rotating end of the third motor. A first bevel gear is fixed to the periphery of the fifth rotating shaft. A second bevel gear is meshed with the upper side of the first bevel gear. A support column is fixed above the second bevel gear. A first bearing is provided on the periphery of the top of the support column. A dispersing fan blade is fixed to the periphery of the support column. A spacer baffle is provided on one side of the dispersing fan blade. A water tank is provided above the spacer baffle.

[0010] Preferably, a water pipe is provided on the lower surface of the water tank, a water pump is provided in the middle of the water pipe, and a drip end is provided on one side of the water pipe. A hydraulic rod is provided on the inner bottom surface of the accelerated ventilation chamber, a support frame is provided at the top of the hydraulic rod, a second bearing is provided on the upper and lower surfaces of the support frame, a rotating column is provided on the inner side of the second bearing, a third bevel gear is fixed on the periphery of the rotating column, a bevel gear transmission column is meshed on one side of the third bevel gear, a fourth bevel gear is meshed on the other end of the bevel gear transmission column, a fifth bevel gear is provided on one side of the bevel gear transmission column, a second connecting column is fixed on one end of the fifth bevel gear, a second fan blade is fixed on the periphery of the second connecting column, and a heating module is provided inside the drying and heating chamber.

[0011] Preferably, the first motor and the air intake window form a fixed structure, and the first exhaust fan blades and the first rotating shaft form a rotating structure through the operation of the first motor.

[0012] Preferably, the first gear plate and the second rotating shaft form a rotating structure through the operation of the second motor, and the first gear plate and the annular rack plate form a meshing structure, and the annular rack plate forms a sliding structure through the annular slider and the annular slide rail, and the annular rack plate and the second gear plate form a meshing structure.

[0013] Preferably, the second gear plate forms a fixed structure with the first rotating plate via the first connecting column, and the first rotating plate forms a rotating structure with the second rotating plate via the third rotating shaft, and the second rotating plate forms a rotating structure with the cooling and humidifying chamber via the fourth rotating shaft.

[0014] Preferably, the first bevel gear and the fifth rotating shaft form a rotating structure through the operation of the third motor, and the first bevel gear and the second bevel gear form a meshing structure, and the second bevel gear forms a fixed structure through the support column and the dispersing fan blade.

[0015] Preferably, the support column forms a rotating structure with the water tank through a first bearing, and the drip end is provided with multiple sets of equally spaced distributions on the lower surface of the water tank.

[0016] Preferably, the support frame forms a movable structure through the operation of the hydraulic rod, and the support frame forms a rotating structure with the rotating column through the second bearing, and the rotating column forms a fixed structure with the third bevel gear, and the third bevel gear forms a transmission structure with the fourth bevel gear through the bevel gear transmission column.

[0017] Preferably, the third bevel gear and the fifth bevel gear form a meshing structure, and the fifth bevel gear forms a fixed structure with the second exhaust fan blades through the second connecting column.

[0018] This invention proposes a radiation temperature control system with independent control of air temperature and humidity. Compared with the prior art, the advantages of this invention are:

[0019] 1. This all-air temperature and humidity independent control radiant temperature regulation system is equipped with a first gear plate and an annular rack plate. Through the operation of the second motor, the first gear plate can be driven to rotate. Through the meshing structure of the first gear plate and the annular rack plate, the rotation of the first gear plate can cause the annular rack plate to slide through the annular slider and the annular slide rail. Similarly, the sliding of the annular rack plate can cause the second gear plate to rotate, and the rotation of the second gear plate can cause the first rotating plate to rotate. The rotation of the first rotating plate can then drive the second rotating plate to rotate, indirectly driving the cooling and humidifying chamber to rise and fall. This allows for changing different chambers for ventilation, and can independently control temperature and humidity. This avoids the problem that most radiant temperature regulation systems mix temperature, humidity and air volume together, and cannot achieve the advantages of independent temperature and humidity control and radiant temperature regulation, which leads to the inability to provide more precise and energy-efficient temperature and humidity regulation.

[0020] 2. This all-air temperature and humidity independent control radiant temperature regulation system is equipped with a first bevel gear and a second bevel gear. By turning on the third motor, the first bevel gear can be driven to rotate. Through the meshing structure of the first and second bevel gears, the rotation of the first bevel gear can cause the second bevel gear to rotate, which indirectly drives the dispersing fan blades to rotate. The high-speed rotation of the dispersing fan blades can disperse the water droplets falling from above, exposing the water molecules to the flowing air, thereby increasing the humidity in the air and preventing the air from becoming too dry. This device facilitates independent humidity control.

[0021] 3. This all-air temperature and humidity independent control radiant temperature regulation system is equipped with a third bevel gear and a fifth bevel gear. The extension and retraction of the hydraulic rod can push the support frame to move. The movement of the support frame can cause the bevel gear transmission column to mesh with the fourth bevel gear. When the first rotating shaft and the first row of fan blades rotate, they can drive the fourth bevel gear to rotate. The rotation of the fourth bevel gear can drive the third bevel gear to rotate. Through the meshing structure of the third and fifth bevel gears, the rotation of the third bevel gear can drive the fifth bevel gear to rotate, indirectly driving the second row of fan blades to rotate. Since the wind speed brought by the rotation of the first row of fan blades is limited, the rotation of the upper and lower sets of second row of fan blades can further accelerate the wind speed without affecting the wind speed brought by the rotation of the first row of fan blades.

[0022] 4. This all-air temperature and humidity independent control radiant temperature regulation system is equipped with a drying and heating chamber. The drying and heating chamber is equipped with a heating module. Through the heating and drying of the heating module, air heating and air drying can be carried out independently. While heating, the water molecules in the air are reduced, and the humidity in the air is lowered. The installation of this device can meet different needs. Attached Figure Description

[0023] Figure 1 This is a three-dimensional structural diagram of a radiation temperature regulation system with independent control of all air temperature and humidity proposed in this invention.

[0024] Figure 2 This is a cross-sectional structural schematic diagram of an independent air temperature and humidity control radiant temperature regulation system proposed in this invention.

[0025] Figure 3 This is a schematic diagram of the bottom structure of a radiation temperature regulation system with independent control of all air temperature and humidity proposed in this invention.

[0026] Figure 4 This is a schematic diagram of the unfolded structure of a radiation temperature regulation system with independent control of all air temperature and humidity proposed in this invention.

[0027] Figure 5This is a schematic diagram of the internal structure of the outer shell of a radiation temperature regulation system with independent control of all air temperature and humidity proposed in this invention.

[0028] Figure 6 This is a side view of the radiant temperature and humidity independent control system proposed in this invention.

[0029] Figure 7 This is a top view schematic diagram of a radiation temperature regulation system with independent control of all air temperature and humidity proposed in this invention.

[0030] In the diagram: 1. Outer casing; 2. Exhaust window; 3. Intake window; 4. First motor; 5. First rotating shaft; 6. First exhaust fan blade; 7. Base plate; 8. Second motor; 9. Second rotating shaft; 10. First gear plate; 11. Ring rack plate; 12. Ring slider; 13. Ring slide rail; 14. Second gear plate; 15. First connecting column; 16. First rotating plate; 17. Third rotating shaft; 18. Second rotating plate; 19. Fourth rotating shaft; 20. Cooling and humidifying chamber; 21. Accelerated ventilation chamber; 22. Drying and heating chamber; 23. Third motor 24. Fifth rotating shaft; 25. First bevel gear; 26. Second bevel gear; 27. Support column; 28. First bearing; 29. ​​Dispersing fan blade; 30. Spacer baffle; 31. Water tank; 32. Water pipe; 33. Water pump; 34. Hydraulic rod; 35. Support frame; 36. Second bearing; 37. Rotating column; 38. Third bevel gear; 39. Bevel gear transmission column; 40. Fourth bevel gear; 41. Fifth bevel gear; 42. Second connecting column; 43. Second exhaust fan blade; 44. Heating module; 45. Drip end. Detailed Implementation

[0031] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0032] Please see Figure 1-7 The present invention provides a technical solution: a radiation temperature regulation system with independent control of air temperature and humidity, including a shell 1, an air outlet window 2 is provided on the side wall of the shell 1, an air inlet window 3 is provided on the other side wall of the shell 1, a first motor 4 is fixed inside the air inlet window 3, a first rotating shaft 5 is provided at the rotating end of the first motor 4, and a first exhaust fan blade 6 is fixed around the first rotating shaft 5.

[0033] A base plate 7 is fixed to the bottom of the outer casing 1. A second motor 8 is fixed to the upper surface of the base plate 7. A second rotating shaft 9 is provided at the rotating end of the second motor 8. A first gear plate 10 is fixed to the other end of the second rotating shaft 9. An annular rack plate 11 is meshed with the lower side of the first gear plate 10. An annular slider 12 is fixed to the lower wall of the annular rack plate 11. An annular slide rail 13 is provided on the outer side of the annular slider 12. A second gear plate 14 is meshed with the upper side of the annular rack plate 11. A first connecting rod is fixed to one end of the second gear plate 14. The first connecting column 15 has a first rotating plate 16 fixed to the other end. A second rotating plate 18 is provided on one side of the first rotating plate 16. A third rotating shaft 17 is provided at the connection between the first rotating plate 16 and the second rotating plate 18. A cooling and humidifying chamber 20 is provided at the other end of the second rotating plate 18. A fourth rotating shaft 19 is provided at the connection between the second rotating plate 18 and the cooling and humidifying chamber 20. An accelerated ventilation chamber 21 is provided above the cooling and humidifying chamber 20. A drying and heating chamber 22 is installed above the accelerated ventilation chamber 21.

[0034] Furthermore, a third motor 23 is fixed to the bottom surface of the cooling and humidifying chamber 20. A fifth rotating shaft 24 is provided at the rotating end of the third motor 23. A first bevel gear 25 is fixed to the periphery of the fifth rotating shaft 24. A second bevel gear 26 is meshed with the upper side of the first bevel gear 25. A support column 27 is fixed above the second bevel gear 26. A first bearing 28 is provided on the periphery of the top of the support column 27. A dispersing fan blade 29 is fixed to the periphery of the support column 27. A spacer baffle 30 is provided on one side of the dispersing fan blade 29. A water tank 31 is provided above the spacer baffle 30.

[0035] Furthermore, a water pipe 32 is provided on the lower surface of the water tank 31, a water pump 33 is provided in the middle of the water pipe 32, and a drip end 45 is provided on one side of the water pipe 32. A hydraulic rod 34 is provided on the inner bottom surface of the accelerated ventilation chamber 21, a support frame 35 is provided at the top of the hydraulic rod 34, a second bearing 36 is provided on the upper and lower surfaces of the support frame 35, a rotating column 37 is provided on the inner side of the second bearing 36, a third bevel gear 38 is fixed on the periphery of the rotating column 37, and a bevel gear transmission column 39 is meshed with one side of the third bevel gear 38, and the bevel gear transmission... The other end of the column 39 is meshed with a fourth bevel gear 40. A fifth bevel gear 41 is provided on one side of the bevel gear transmission column 39. A second connecting column 42 is fixed to one end of the fifth bevel gear 41. A second row of fan blades 43 is fixed to the periphery of the second connecting column 42. A heating module 44 is provided inside the drying heating chamber 22. The heating module 44 can independently heat and dry the air through heating and drying. While heating, the water molecules in the air are reduced, and the humidity in the air is lowered.

[0036] Furthermore, the first motor 4 and the air intake window 3 form a fixed structure, and the first exhaust fan blade 6 and the first rotating shaft 5 form a rotating structure through the operation of the first motor 4. Through the operation of the first motor 4, the first exhaust fan blade 6 can be driven to rotate, thereby accelerating the air circulation.

[0037] Furthermore, the first gear plate 10 and the second rotating shaft 9 form a rotating structure through the operation of the second motor 8, and the first gear plate 10 and the annular rack plate 11 form a meshing structure, and the annular rack plate 11 forms a sliding structure through the annular slider 12 and the annular slide rail 13. Moreover, the annular rack plate 11 and the second gear plate 14 form a meshing structure. Through the operation of the second motor 8, the first gear plate 10 can be driven to rotate. Through the meshing structure of the first gear plate 10 and the annular rack plate 11, the rotation of the first gear plate 10 can cause the annular rack plate 11 to slide through the annular slider 12 and the annular slide rail 13.

[0038] Furthermore, the second gear plate 14 forms a fixed structure with the first rotating plate 16 via the first connecting column 15, and the first rotating plate 16 forms a rotating structure with the second rotating plate 18 via the third rotating shaft 17. The second rotating plate 18 forms a rotating structure with the cooling and humidifying chamber 20 via the fourth rotating shaft 19. Similarly, the sliding of the annular rack plate 11 can cause the second gear plate 14 to rotate, and the rotation of the second gear plate 14 can cause the first rotating plate 16 to rotate. The rotation of the first rotating plate 16 can then drive the second rotating plate 18 to rotate, indirectly causing the cooling and humidifying chamber 20 to rise and fall. This allows for changing different chambers for ventilation, and thus independently controlling the temperature and humidity.

[0039] Furthermore, the first bevel gear 25 and the fifth rotating shaft 24 form a rotating structure through the operation of the third motor 23, and the first bevel gear 25 and the second bevel gear 26 form a meshing structure, and the second bevel gear 26 forms a fixed structure through the support column 27 and the dispersing fan blade 29.

[0040] Furthermore, the support column 27 forms a rotating structure with the water tank 31 through the first bearing 28, and the drip end 45 is provided with multiple sets of equally spaced distribution on the lower surface of the water tank 31. When the third motor 23 is turned on, it can drive the first bevel gear 25 to rotate. Through the meshing structure of the first bevel gear 25 and the second bevel gear 26, the rotation of the first bevel gear 25 can drive the second bevel gear 26 to rotate, which indirectly drives the dispersing fan blade 29 to rotate. The high-speed rotation of the dispersing fan blade 29 can disperse the water droplets falling from above, exposing water molecules to the flowing air, thereby increasing the humidity in the air and preventing the air from becoming too dry. This device allows for convenient independent control of humidity.

[0041] Furthermore, the support frame 35 forms a movable structure through the operation of the hydraulic rod 34, and the support frame 35 forms a rotating structure with the rotating column 37 through the second bearing 36. The rotating column 37 forms a fixed structure with the third bevel gear 38, and the third bevel gear 38 forms a transmission structure with the fourth bevel gear 40 through the bevel gear transmission column 39. By extending and retracting the hydraulic rod 34, the support frame 35 can be moved. The movement of the support frame 35 can cause the bevel gear transmission column 39 to mesh with the fourth bevel gear 40. When the first rotating shaft 5 and the first fan blade 6 rotate, they can drive the fourth bevel gear 40 to rotate. The rotation of the fourth bevel gear 40 can cause the third bevel gear 38 to rotate.

[0042] Furthermore, the third bevel gear 38 and the fifth bevel gear 41 form a meshing structure, and the fifth bevel gear 41 forms a fixed structure with the second row of fan blades 43 through the second connecting column 42. Through the meshing structure of the third bevel gear 38 and the fifth bevel gear 41, the rotation of the third bevel gear 38 can cause the fifth bevel gear 41 to rotate, which indirectly drives the second row of fan blades 43 to rotate. Since the wind speed brought by the rotation of the first row of fan blades 6 is limited, the wind speed is further accelerated by the rotation of the upper and lower sets of second row of fan blades 43 without affecting the wind speed brought by the rotation of the first row of fan blades 6.

[0043] Working principle: First, the operator operates the first motor 4, which drives the first exhaust fan blades 6 to rotate, accelerating air circulation. The second motor 8 drives the first gear plate 10 to rotate. The rotation of the first gear plate 10 causes the annular rack plate 11 to slide along the annular slide rail 13 via the annular slider 12. Similarly, the sliding of the annular rack plate 11 causes the second gear plate 14 to rotate. The rotation of the second gear plate 14 causes the first rotating plate 16 to rotate, which in turn drives the second rotating plate 18 to rotate, indirectly causing the cooling and humidifying chamber 20 to rise and fall, allowing for ventilation in different chambers. The activation of the third motor 23 drives the first bevel gear 25 to rotate. Through the meshing structure of the first bevel gear 25 and the second bevel gear 26, the rotation of the first bevel gear 25 causes the second bevel gear 26 to rotate, indirectly driving the scattering fan... The blade 29 rotates, and the high-speed rotation of the dispersing fan blade 29 can disperse the water droplets falling from above, exposing water molecules to the flowing air, thereby increasing the humidity in the air and preventing the air from becoming too dry. This device allows for independent humidity control. Finally, the extension and retraction of the hydraulic rod 34 can push the support frame 35 to move. The movement of the support frame 35 can cause the bevel gear transmission column 39 to mesh with the fourth bevel gear 40. When the first rotating shaft 5 and the first row of fan blades 6 rotate, they can drive the fourth bevel gear 40 to rotate. The rotation of the fourth bevel gear 40 can drive the third bevel gear 38 to rotate. The rotation of the third bevel gear 38 can drive the fifth bevel gear 41 to rotate, indirectly driving the second row of fan blades 43 to rotate. Since the wind speed brought by the rotation of the first row of fan blades 6 is limited, the rotation of the upper and lower sets of second row of fan blades 43 can further accelerate the wind speed without affecting the wind speed brought by the rotation of the first row of fan blades 6.

[0044] Although embodiments of the 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 invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A radiation temperature control system with independent control of air temperature and humidity, comprising a housing (1), characterized in that: The outer casing (1) has an air outlet window (2) on one side wall and an air inlet window (3) on the other side wall. A first motor (4) is fixed inside the air inlet window (3). A first rotating shaft (5) is provided at the rotating end of the first motor (4). A first exhaust fan blade (6) is fixed around the first rotating shaft (5). A base plate (7) is fixed to the bottom end of the outer casing (1). A second motor (8) is fixed to the upper surface of the base plate (7). A second rotating shaft (9) is provided at the rotating end of the second motor (8). A first gear plate (10) is fixed to the other end of the second rotating shaft (9). An annular rack plate (11) is meshed with the lower side of the first gear plate (10). An annular slider (12) is fixed to the lower wall of the annular rack plate (11). An annular slide rail (13) is provided on the outer side of the annular slider (12). A second gear plate (14) is meshed with the upper side of the annular rack plate (11). A first gear plate (14) is fixed to one end of the second gear plate (14). A connecting column (15) is provided, and a first rotating plate (16) is fixed at the other end of the first connecting column (15). A second rotating plate (18) is provided on one side of the first rotating plate (16). A third rotating shaft (17) is provided at the connection between the first rotating plate (16) and the second rotating plate (18). A cooling and humidifying chamber (20) is provided at the other end of the second rotating plate (18). A fourth rotating shaft (19) is provided at the connection between the second rotating plate (18) and the cooling and humidifying chamber (20). An accelerated ventilation chamber (21) is provided above the cooling and humidifying chamber (20). A drying and heating chamber (22) is installed above the accelerated ventilation chamber (21). A third motor (23) is fixed to the bottom surface of the cooling and humidifying chamber (20). A fifth rotating shaft (24) is provided at the rotating end of the third motor (23). A first bevel gear (25) is fixed to the periphery of the fifth rotating shaft (24). A second bevel gear (26) is meshed with the upper side of the first bevel gear (25). A support column (27) is fixed above the second bevel gear (26). A first bearing (28) is provided on the periphery of the top of the support column (27). A dispersing fan blade (29) is fixed to the periphery of the support column (27). A partition baffle (30) is provided on one side of the dispersing fan blade (29). A water tank (31) is provided above the partition baffle (30). A water pipe (32) is provided on the lower surface of the water tank (31). A water pump (33) is provided in the middle of the water pipe (32). A drip end (45) is provided on one side of the water pipe (32). A hydraulic rod (34) is provided on the inner bottom surface of the accelerated ventilation chamber (21). A support frame (35) is provided at the top of the hydraulic rod (34). A second bearing (36) is provided on the upper and lower surfaces of the support frame (35). A rotating column (37) is provided on the inner side of the second bearing (36). A third bevel gear (38) is fixed on the periphery of the rotating column (37). A bevel gear transmission column (39) is meshed on one side of the third bevel gear (38). A fourth bevel gear (40) is meshed on the other end of the bevel gear transmission column (39). A fifth bevel gear (41) is provided on one side of the bevel gear transmission column (39).

2. The all-air temperature and humidity independent control radiant temperature regulation system according to claim 1, characterized in that: One end of the fifth bevel gear (41) is fixed with a second connecting column (42), and a second fan blade (43) is fixed around the second connecting column (42). A heating module (44) is provided inside the drying heating chamber (22).

3. The all-air temperature and humidity independently controlled radiant temperature regulation system according to claim 1, characterized in that: The first motor (4) and the air intake window (3) form a fixed structure, and the first exhaust fan blade (6) and the first rotating shaft (5) form a rotating structure through the operation of the first motor (4).

4. The all-air temperature and humidity independently controlled radiant temperature regulation system according to claim 1, characterized in that: The first gear plate (10) and the second rotating shaft (9) form a rotating structure through the operation of the second motor (8), and the first gear plate (10) and the ring rack plate (11) form a meshing structure, and the ring rack plate (11) forms a sliding structure through the ring slider (12) and the ring slide rail (13), and the ring rack plate (11) and the second gear plate (14) form a meshing structure.

5. The all-air temperature and humidity independent control radiant temperature regulation system according to claim 1, characterized in that: The second gear plate (14) forms a fixed structure with the first rotating plate (16) through the first connecting column (15), and the first rotating plate (16) forms a rotating structure with the second rotating plate (18) through the third rotating shaft (17), and the second rotating plate (18) forms a rotating structure with the cooling and humidifying chamber (20) through the fourth rotating shaft (19).

6. The all-air temperature and humidity independent control radiant temperature regulation system according to claim 2, characterized in that: The first bevel gear (25) and the fifth rotating shaft (24) form a rotating structure through the operation of the third motor (23), and the first bevel gear (25) and the second bevel gear (26) form a meshing structure, and the second bevel gear (26) forms a fixed structure through the support column (27) and the dispersing fan blade (29).

7. The all-air temperature and humidity independent control radiant temperature regulation system according to claim 1, characterized in that: The support column (27) forms a rotating structure with the water tank (31) through the first bearing (28), and the drip end (45) is provided in multiple sets and is distributed at equal intervals on the lower surface of the water tank (31).

8. The all-air temperature and humidity independent control radiant temperature regulation system according to claim 1, characterized in that: The support frame (35) is a movable structure through the operation of the hydraulic rod (34), and the support frame (35) is a rotating structure through the second bearing (36) and the rotating column (37), and the rotating column (37) is a fixed structure through the third bevel gear (38), and the third bevel gear (38) is a transmission structure through the bevel gear transmission column (39) and the fourth bevel gear (40).

9. The all-air temperature and humidity independently controlled radiant temperature regulation system according to claim 1, characterized in that: The third bevel gear (38) and the fifth bevel gear (41) form a meshing structure, and the fifth bevel gear (41) forms a fixed structure with the second exhaust fan blade (43) through the second connecting column (42).

Citation Information

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