An air circulation fan with water cooling and humidification function
The design of a detachable water box with built-in cooling tubes and a temperature and humidity monitoring module solves the problems of dirt and bacteria breeding in the air circulation fan water tank and poor cooling effect, achieving convenient cleaning and precise humidity control.
Patent Information
- Application Number
- CN202410900098.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-05
- Publication Date
- 2025-09-09
- Estimated Expiration
- 2044-07-05
AI Technical Summary
The water in the water tank of the existing air circulation fan gradually disappears, causing dirt to form, breeding bacteria in the high temperature environment, making it difficult to clean, and the water mist cooling effect is poor.
It adopts a detachable water box design with built-in cooling pipes, and cooling is controlled by remote control; combined with a temperature and humidity monitoring module, it adjusts the operation of the fan and water pump to optimize cooling and humidity control.
It achieves convenient cleaning, keeps the water temperature low, increases the cooling speed and humidity adjustment accuracy, and improves the user experience.
Smart Images

Figure CN118463302B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of air circulation fans, and in particular to an air circulation fan with water cooling and humidification functions. Background Art
[0002] An air circulation fan is a fan that can swivel at multiple angles, allowing for rapid air circulation. Its main components include a drive motor, a turbofan, a guide grille, and a cylindrical casing. Compared to traditional electric fans, air circulation fans can blow air in a spiral pattern along a specific direction. As the blades stir, they form a spiral column of wind. The wind blown by an air circulation fan has a longer distance and better directionality. This wind has a greater contact surface with the surrounding air, breaking up the surrounding air and driving more air into indoor air circulation, accelerating indoor air circulation and thus balancing the indoor temperature.
[0003] For example, the invention disclosed in the publication number CN108444016B discloses an air circulation fan with water cooling and humidification functions, including a fan head and a body. The fan head is mounted on the body. The fan head includes a base and a fan assembly that provides air circulation power. The fan assembly is mounted on the base. The base is mounted on the body. The body includes a water tank for holding water and a volatilizer for volatilizing the water in the water tank. The volatilizer is arranged at the bottom of the water tank, and a plurality of air inlet holes are opened on the side wall of the water tank. The bottom of the base is provided with a plurality of water vapor outlets, and the water vapor outlets are located above the volatilizer. The air circulation fan uses circulating wind to drive the volatilization of water, and then uses the circulating wind to disperse the volatilized water vapor into the air, thereby avoiding the air drying caused by the loss of water in the air when using the air circulation fan alone. The combined flow of wind and water mist can accelerate the reduction of indoor temperature. The multi-purpose use of one machine not only saves consumers' purchase costs, but also reduces energy consumption and increases consumers' experience value.
[0004] However, in the existing technology, the staff adds water to the water tank at the bottom, evaporates the water into water vapor through the volatilization device, and then floats out through the air inlet. Then, with the blowing of the fan, the water mist is dispersed with the flow of air. As the water mist is sprayed for a long time, the water in the water tank gradually disappears. However, the inside of the water tank is repeatedly added with water, which causes dirt to form inside. In a high temperature environment, bacteria are easily bred inside. The water tank is located inside the fuselage, so it is difficult to clean. Secondly, there is a lot of water inside the fuselage, and it takes a while to evaporate all of it. During this period of time, the cold water gradually returns to room temperature, resulting in a poor cooling effect of the water mist. Summary of the Invention
[0005] The purpose of the present invention is to solve the problem in the prior art that as the water mist is sprayed for a long time, the water in the water tank gradually disappears, but the repeated addition of water inside the water tank causes dirt to form inside. In a high temperature environment, bacteria are easily bred inside, and the water tank is located inside the fuselage, so it is difficult to clean. Secondly, there is a lot of water inside the fuselage, and it takes a while for all of it to evaporate. During this period of time, the cold water gradually returns to room temperature, resulting in a poor cooling effect of the water mist.
[0006] In order to achieve the above-mentioned objectives, the present invention adopts the following technical solutions: an air circulation fan with water cooling and humidification functions, comprising a supporting box body, a door body is provided on one side of the bottom end of the supporting box body, power installation slots are provided on both sides of the bottom end of the supporting box body, a water holding assembly is provided at the bottom end of the supporting box body, a fan assembly is provided at the top end of the supporting box body, a shaking head assembly is provided at the middle part of the top end of the supporting box body, a water pumping assembly is provided on one side of the shaking head assembly inside the supporting box body, and a temperature monitoring assembly and a humidity monitoring assembly are provided on the side of the shaking head assembly inside the supporting box body away from the water pumping assembly.
[0007] As a preferred embodiment, the water storage assembly includes a water storage box, and both sides of the bottom end of the water storage box are fixedly connected with an installation connection board, and the installation connection board is slidably connected to the installation connection slot, and power connection terminals are provided on both sides of the bottom end of the installation connection board. An observation window is fixedly connected to one side of the water storage box, and a refrigeration pipe is fixedly connected to the inside of the bottom end of the water storage box. The middle part of the refrigeration pipe is fixedly connected to a controller, and the controller is fixedly connected to the water storage box. The staff opens the door, takes out the water storage box, and then adds an appropriate amount of water to the inside of the water storage box, and then puts the water storage box through the installation The installation connection board is pushed into the interior of the installation connection slot until the water box is completely inserted into the support box for use. When water is stored for a long time, bacteria will grow inside the water box. The staff can take out the water box for cleaning. A refrigeration pipe is set inside the bottom of the water box. During use, the installation connection board is located inside the installation connection slot, and the power connection end contacts the conductive end inside the installation connection slot, so that the controller is energized. At this time, the controller can be started by remote control, and the controller drives the refrigeration pipe to work. The refrigeration pipe cools the water inside the water box, so that the water inside the water box can be kept at a low temperature.
[0008] As a preferred embodiment, the fan assembly includes a shell, which is arranged at the top of the supporting box body, and protective covers are clamped at both ends of the shell. A first motor is arranged inside the shell, and mounting plates are fixedly connected on both sides of the first motor. When the first motor is started, the first motor starts to drive the first rotating shaft to rotate, and the rotation of the first rotating shaft drives the fan blades to rotate, thereby realizing air circulation.
[0009] As a preferred embodiment, the mounting plate is clamped with a fixing rod at one end away from the first motor, and a fixing bolt is threadedly connected to the connection between the fixing rod and the mounting plate. One end of the first motor is transmission-connected to the first rotating shaft, and the end of the first rotating shaft away from the first motor is fixedly connected to the fan blade. When installing, the staff inserts the first motor into the fixing rod through the mounting plate, and then fixes the first motor with the fixing bolt, which is convenient for disassembly and repair in case of later damage.
[0010] As a preferred embodiment, the shaking assembly includes a second motor, which is fixed at the top of the supporting box, and the top of the second motor is connected to the second rotating shaft, and the top of the second rotating shaft passes through the supporting box and is rotatably connected to the supporting box. The top of the second rotating shaft is fixedly connected to a support block, and the top of the support block is fixedly connected to the bottom of the outer shell, and one side of the second motor is fixedly connected to a second control module, and the side of the second control module away from the second motor is fixedly connected to a fourth wire. When the second motor starts, it drives the second rotating shaft to rotate, and the rotation of the second rotating shaft drives the support block to rotate. The rotation of the support block drives the outer shell to rotate, and the outer shell deflects to an area with higher temperature for air circulation cooling, thereby increasing the cooling speed.
[0011] As a preferred embodiment, the water pumping assembly includes a water pump, which is fixed at the top of the support box on one side of the second motor. One end of the water pump is fixedly connected to a water suction pipe, which is fixedly connected to the support box. The bottom end of the water suction pipe is fixedly connected to a weight head, which is located inside the water box. When the water pump is started, negative pressure is generated, causing water to enter the water suction pipe, and then enter the water outlet pipe through the water pump, and finally enter the fixed ring and be sprayed out, thereby cooperating with the fan blade water cooling and humidification.
[0012] As a preferred embodiment, the water pump is fixedly connected to a first control module at one end away from the load-bearing head, and a third wire is fixedly connected to the side of the first control module away from the water pump. The top of the water pump is fixedly connected to a water outlet pipe, and the water outlet pipe passes through the top of the support box and is slidably connected to the support box. The top of the water outlet pipe is fixedly connected to a fixing ring, and the top of the inside of the fixing ring is fixedly connected with atomizing nozzles arranged equidistantly. Water enters the water outlet pipe through the water pump, and then enters the fixing ring through the water outlet pipe, and is finally sprayed out through the atomizing nozzle in high-pressure atomization.
[0013] As a preferred embodiment, the temperature monitoring component includes a temperature data analysis module and a temperature monitoring module, the temperature data analysis module is fixed on the side of the top of the supporting box away from the door body, the temperature monitoring module is fixed on the outer wall of the supporting box on the side of the temperature data analysis module, the bottom end of the temperature data analysis module is fixedly connected to the first connecting wire, the bottom end of the first connecting wire is fixedly connected to the control center, the control center is fixedly connected to the supporting box, the control center is fixedly connected to the fourth wire, the fan blades fan, so that the indoor air circulates, due to the large indoor area, the circulating air causes the air temperature to be different in each place, so each area is monitored by the temperature monitoring module, the monitored data is transmitted to the temperature data analysis module for analysis, the analyzed data is transmitted to the control center, the control center drives the second motor according to the different data, the second motor starts to drive the second shaft to rotate, the second shaft rotation drives the support block to rotate, the support block rotation drives the outer shell to rotate, the outer shell deflects to the area with higher temperature for air circulation cooling, thereby increasing the cooling speed.
[0014] As a preferred embodiment, the humidity monitoring component includes a humidity data analysis module and a humidity monitoring module. The humidity data analysis module is fixed on the support box and is located at the bottom end of the temperature data analysis module. The humidity monitoring module is fixed on the support box and is located at the bottom end of the temperature monitoring module. The bottom end of the humidity data analysis module is fixedly connected to a second connecting wire, and the bottom end of the second connecting wire is fixedly connected to the control center. The fan blades fan and drive the water mist sprayed from the atomizing nozzle to disperse, but the space inside the air-conditioned room is more closed than the outdoor space. Therefore, long-term spraying of water mist will cause higher indoor humidity. Therefore, the humidity monitoring module can monitor the indoor humidity in real time. The humidity monitoring module transmits the monitored data to the humidity data analysis module for analysis, and the data analyzed by the humidity data analysis module is transmitted to the control center. The control center drives the first control module according to the analyzed data, thereby adjusting the water delivery speed of the water pump, thereby adjusting the speed of water mist spraying, thereby facilitating the control of the indoor humidity.
[0015] The beneficial effects of the present invention are as follows:
[0016] 1. In the present invention, the staff opens the door, takes out the water box, and then adds an appropriate amount of water to the inside of the water box, and then pushes the water box into the inside of the installation connection slot through the installation connection plate until the water box is completely entered into the support box for use. When water is stored for a long time, bacteria will grow inside the water box. The staff can take out the water box for cleaning, and a cooling pipe is arranged inside the bottom of the water box. During use, the installation connection plate is located inside the installation connection slot, and the power connection end contacts the conductive end inside the installation connection slot, so that the controller is energized. At this time, the controller can be started by remote control, and the controller drives the cooling pipe to work. The cooling pipe cools the water inside the water box, so that the water inside the water box can be kept at a low temperature.
[0017] 2. In the present invention, the fan blades fan the air indoors, and since the indoor area is large, the circulating air causes the air temperature in each place to be different. Therefore, each area is monitored by the temperature monitoring module, and the monitored data is transmitted to the temperature data analysis module for analysis. The analyzed data is transmitted to the control center, and the control center drives the second motor according to the different data. The second motor starts and drives the second shaft to rotate. The rotation of the second shaft drives the support block to rotate. The rotation of the support block drives the outer shell to rotate. The outer shell deflects to the area with higher temperature for air circulation and cooling, thereby increasing the cooling speed.
[0018] 3. In the present invention, the fan blades drive the water mist sprayed from the atomizing nozzle to float, but the space inside the air-conditioned room is more closed than the outdoor space. Therefore, long-term spraying of water mist will lead to higher indoor humidity. Therefore, the humidity monitoring module can monitor the indoor humidity in real time. The humidity monitoring module transmits the monitored data to the humidity data analysis module for analysis. The data analyzed by the humidity data analysis module is transmitted to the control center. The control center drives the first control module according to the analyzed data, thereby adjusting the water delivery speed of the water pump, thereby adjusting the speed of the water mist spraying, thereby facilitating the control of the indoor humidity. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 A schematic structural diagram of an air circulation fan with water cooling and humidification functions provided by the present invention;
[0020] Figure 2 A schematic cross-sectional view of an air circulation fan with water cooling and humidification functions provided by the present invention;
[0021] Figure 3 A schematic structural diagram of a fan assembly of an air circulation fan with water cooling and humidification functions provided by the present invention;
[0022] Figure 4 This is a schematic cross-sectional structure diagram of an air circulation fan support box with water cooling and humidification functions provided by the present invention.
[0023] Figure 5 A schematic diagram of the fixed ring structure of an air circulation fan with water cooling and humidification functions provided by the present invention;
[0024] Figure 6 A schematic structural diagram of an oscillating component of an air circulation fan with water cooling and humidification functions provided by the present invention;
[0025] Figure 7 A schematic structural diagram of a humidity monitoring component of an air circulation fan with water cooling and humidification function provided by the present invention;
[0026] Figure 8 A schematic diagram of the structure of a temperature monitoring component of an air circulation fan with water cooling and humidification functions provided by the present invention;
[0027] Figure 9 This is a schematic cross-sectional structure diagram of a water box of an air circulation fan with water cooling and humidification functions provided by the present invention.
[0028] Legend:
[0029] 1. Support box; 11. Door; 12. Install the power connection slot; 21. Housing; 22. Protective cover; 23. First motor; 231. Mounting plate; 232. Fixing rod; 233. Fixing bolt; 234. First shaft; 235. Fan blade; 31. Water container; 32. Install the power connection board; 33. Power connection terminal; 34. Refrigeration pipe; 35. Controller; 36. Observation window; 41. Temperature data analysis module; 42. Temperature monitoring module; 43. First connecting wire; 51, humidity data analysis module; 52, humidity monitoring module; 53, second connecting wire; 61, water pump; 611, water suction pipe; 612, load-bearing head; 613, first control module; 614, third wire; 62, fixing ring; 621, water outlet pipe; 622, atomizing nozzle; 71, second motor; 72, second control module; 73, second rotating shaft; 74, support block; 75, fourth wire; 8, control center. DETAILED DESCRIPTION
[0030] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0031] See also Figure 1-9The present invention provides a technical solution: an air circulation fan with water cooling and humidification function, comprising a supporting box body 1, a door body 11 is provided on one side of the bottom end of the supporting box body 1, power installation slots 12 are provided on both sides of the bottom end of the supporting box body 1, a water holding component is provided at the bottom end of the supporting box body 1, a fan component is provided at the top end of the supporting box body 1, a shaking head component is provided at the middle part of the top end of the supporting box body 1, a water pumping component is provided on one side of the shaking head component inside the supporting box body 1, and a temperature monitoring component and a humidity monitoring component are provided on the side of the shaking head component inside the supporting box body 1 away from the water pumping component.
[0032] like Figure 1-9 As shown, the water storage assembly includes a water storage box 31, and the two sides of the bottom end of the water storage box 31 are fixedly connected with the installation power connection plate 32, the installation power connection plate 32 is slidably connected to the installation power connection slot 12, and the two sides of the bottom end of the installation power connection plate 32 are provided with power connection terminals 33. An observation window 36 is fixedly connected to one side of the water storage box 31, and a cooling pipe 34 is fixedly connected to the inside of the bottom end of the water storage box 31. The middle part of the cooling pipe 34 is fixedly connected to the controller 35, and the controller 35 is fixedly connected to the water storage box 31.
[0033] In this embodiment, the staff opens the door 11, takes out the water box 31, and then adds an appropriate amount of water to the inside of the water box 31, and then pushes the water box 31 into the inside of the installation connection slot 12 through the installation connection plate 32 until the water box 31 is completely in the support box 1 for use. When water is stored for a long time, bacteria grow inside the water box 31. The staff can take out the water box 31 for cleaning, and a cooling pipe 34 is set inside the bottom end of the water box 31. During use, the installation connection plate 32 is located inside the installation connection slot 12, and the power connection end 33 contacts the conductive end inside the installation connection slot 12, so that the controller 35 is energized. At this time, the controller 35 can be started by remote control, and the controller 35 drives the cooling pipe 34 to work. The cooling pipe 34 cools the water inside the water box 31, so that the water inside the water box 31 can be conveniently maintained at a low temperature.
[0034] like Figure 1-9As shown, the fan assembly includes a shell 21, which is arranged at the top of the supporting box 1, and protective covers 22 are clamped at both ends of the shell 21. A first motor 23 is arranged inside the shell 21, and mounting plates 231 are fixedly connected on both sides of the first motor 23. A fixing rod 232 is clamped at one end of the mounting plate 231 away from the first motor 23, and a fixing bolt 233 is threadedly connected at the connection between the fixing rod 232 and the mounting plate 231. One end of the first motor 23 is transmission-connected to a first rotating shaft 234, and an end of the first rotating shaft 234 away from the first motor 23 is fixedly connected to a fan blade 235. The water pumping assembly includes a water pump 61, which is fixed at the top of the supporting box 1 on one side of the second motor 71. One end of the pump 61 is fixedly connected to a water suction pipe 611, and the water suction pipe 611 is fixedly connected to the support box 1. The bottom end of the water suction pipe 611 is fixedly connected to a load-bearing head 612, and the load-bearing head 612 is located inside the water box 31. The end of the water pump 61 away from the load-bearing head 612 is fixedly connected to a first control module 613, and the side of the first control module 613 away from the water pump 61 is fixedly connected to a third wire 614. The top of the water pump 61 is fixedly connected to a water outlet pipe 621, and the water outlet pipe 621 passes through the top of the support box 1 and is slidably connected to the support box 1. The top of the water outlet pipe 621 is fixedly connected to a fixing ring 62, and the top inside the fixing ring 62 is fixedly connected with atomizing nozzles 622 arranged equidistantly.
[0035] In this embodiment, the first motor 23 is started, and the first motor 23 starts to drive the first rotating shaft 234 to rotate, and the first rotating shaft 234 drives the fan blades 235 to rotate, and the fan blades 235 fan the air circulation. At the same time, the water pump 61 is started, and the water pump 61 starts to generate negative pressure, so that the water suction pipe 611 starts to absorb water, and the water enters the water outlet pipe 621 through the water suction pipe 611, and is then sprayed out into water mist at high pressure through the atomizing nozzle 622. The water mist floats away with the fanning of the fan blades 235. Among them, if the first motor 23 is damaged, the staff can disassemble it for maintenance through the mounting plate 231, the fixing rod 232 and the fixing bolt 233.
[0036] like Figure 1-9As shown, the shaking assembly includes a second motor 71, which is fixed at the top end of the support box 1, and the top end of the second motor 71 is transmission-connected with a second rotating shaft 73. The top end of the second rotating shaft 73 passes through the support box 1 and is rotatably connected to the support box 1. The top end of the second rotating shaft 73 is fixedly connected to a support block 74, and the top end of the support block 74 is fixedly connected to the bottom end of the outer shell 21. One side of the second motor 71 is fixedly connected to a second control module 72, and the side of the second control module 72 away from the second motor 71 is fixedly connected to a fourth wire 75. The temperature monitoring assembly includes a temperature data analysis module 41 and a temperature monitoring module 42. The temperature data analysis module 41 is fixed at the side of the top end of the support box 1 away from the door body 11, and the temperature monitoring module 42 is fixed on the outer wall of the support box 1 on the side of the temperature data analysis module 41. The bottom end of the temperature data analysis module 41 is fixedly connected to the first connecting wire 43, and the bottom end of the first connecting wire 43 is fixedly connected to the control center 8. The control center 8 is fixedly connected to the support box 1, and the control center 8 is fixedly connected to the fourth wire 75.
[0037] In this embodiment, the fan blades 235 fan to circulate the indoor air. Since the indoor area is large, the circulating air causes the air temperature in each place to be different. Therefore, each area is monitored by the temperature monitoring module 42, and the monitored data is transmitted to the temperature data analysis module 41 for analysis. The analyzed data is transmitted to the control center 8. The control center 8 drives the second motor 71 according to the different data. The second motor 71 starts to drive the second shaft 73 to rotate. The rotation of the second shaft 73 drives the support block 74 to rotate. The rotation of the support block 74 drives the outer shell 21 to rotate. The outer shell 21 deflects to the area with higher temperature for air circulation cooling, thereby increasing the cooling speed.
[0038] like Figure 1-9 As shown, the humidity monitoring component includes a humidity data analysis module 51 and a humidity monitoring module 52. The humidity data analysis module 51 is fixed to the support box 1 at the bottom end of the temperature data analysis module 41, and the humidity monitoring module 52 is fixed to the support box 1 at the bottom end of the temperature monitoring module 42. The bottom end of the humidity data analysis module 51 is fixedly connected to a second connecting wire 53, and the bottom end of the second connecting wire 53 is fixedly connected to the control center 8.
[0039] In this embodiment, the fan blades 235 fan and drive the water mist sprayed from the atomizing nozzle 622 to float, but the space inside the air-conditioned room is more closed than the outdoor space, so long-term spraying of water mist will lead to higher indoor humidity. Therefore, the humidity monitoring module 52 can monitor the indoor humidity in real time. The humidity monitoring module 52 transmits the monitored data to the humidity data analysis module 51 for analysis, and the data analyzed by the humidity data analysis module 51 is transmitted to the control center 8. The control center 8 drives the first control module 613 according to the analyzed data, thereby adjusting the water delivery speed of the water pump 61, thereby adjusting the speed of the water mist spraying, thereby facilitating the control of the indoor humidity.
[0040] Working principle: First, the staff opens the door 11 and takes out the water box 31, then adds an appropriate amount of water to the inside of the water box 31, and then pushes the water box 31 into the inside of the installation connection slot 12 through the installation connection plate 32. During this period, the bottom end of the water suction pipe 611 is placed in the water box 31. Since the load head 612 has a certain weight, the water suction pipe 611 is vertical in the water box 31 and contacts the bottom end of the water box 31. Then continue to push the water box 31 until the water box 31 is completely entered into the support box 1 for use. Long-term water storage prevents bacteria from growing inside the water box 31. The staff can take out the water box 31 for cleaning. A cooling pipe 34 is provided inside the bottom of the water box 31. During use, the power board 32 is installed inside the power connection slot 12, and the power connection end 33 contacts the conductive end inside the power connection slot 12, so that the controller 35 is energized. At this time, the controller 35 can be started by remote control, and the controller 35 drives the cooling pipe 34 to work. The cooling pipe 34 cools the water inside the water box 31, thereby facilitating the water inside the water box 31 to continuously maintain a low temperature. Then, the first motor 23 is started, and the first motor 23 starts to drive the first rotating shaft 234 to rotate. The first rotating shaft 234 drives the fan blades 235 to rotate, and the fan blades 235 fan the air circulation. At the same time, the water pump is started. 61, the water pump 61 starts to generate negative pressure, so that the water suction pipe 611 starts to absorb water, and the water enters the water outlet pipe 621 through the water suction pipe 611, and then is sprayed out into water mist at high pressure through the atomizing nozzle 622. The water mist is dispersed as the fan blades 235 fan. Since the indoor area is large, the circulating air causes the air temperature in each place to be different. Therefore, each area is monitored by the temperature monitoring module 42, and the monitored data is transmitted to the temperature data analysis module 41 for analysis. The analyzed data is transmitted to the control center 8. The control center 8 drives the second motor 71 according to the different data. The second motor 71 starts to drive the second shaft 73 to rotate, and the second shaft 73 rotates to drive the support block 74 The support block 74 rotates to drive the outer shell 21 to rotate, and the outer shell 21 deflects to the area with higher temperature for air circulation and cooling. Since the space inside the air-conditioned room is more closed than the outdoor space, long-term spraying of water mist will cause the indoor humidity to be higher. Therefore, the humidity monitoring module 52 can monitor the indoor humidity in real time. The humidity monitoring module 52 transmits the monitored data to the humidity data analysis module 51 for analysis. The data analyzed by the humidity data analysis module 51 is transmitted to the control center 8. The control center 8 drives the first control module 613 according to the analyzed data, thereby adjusting the water delivery speed of the water pump 61, thereby adjusting the speed of the water mist spraying, thereby facilitating the control of the indoor humidity.
[0041] The above description is merely a preferred embodiment of the present invention and does not constitute any other form of limitation to the present invention. Any person skilled in the art may utilize the technical contents disclosed above to change or modify them into equivalent embodiments with equivalent changes for application in other fields. However, any simple modification, equivalent change, and modification of the above embodiments made in accordance with the technical essence of the present invention without departing from the technical solution of the present invention shall still fall within the scope of protection of the technical solution of the present invention.
Claims
1. An air circulation fan with water cooling and humidification function, comprising a supporting box (1), characterized in that: A door body (11) is provided on one side of the bottom end of the support box (1), and power connection slots (12) are provided on both sides of the bottom end of the support box (1). A water container assembly is provided on the bottom end of the support box (1), a fan assembly is provided on the top end of the support box (1), and an oscillating head assembly is provided in the middle of the top end of the support box (1). A water pumping assembly is provided on one side of the oscillating head assembly inside the support box (1), and a temperature monitoring assembly and a humidity monitoring assembly are provided on the side of the oscillating head assembly away from the water pumping assembly inside the support box (1); The water pumping assembly comprises a water pump (61), the water pump (61) being fixed to the top of the support box (1) and located on one side of the second motor (71), one end of the water pump (61) being fixedly connected to a water suction pipe (611), the water suction pipe (611) being fixedly connected to the support box (1), the bottom end of the water suction pipe (611) being fixedly connected to a load-bearing head (612), the load-bearing head (612) being located inside the water box (31); One end of the water pump (61) away from the load-bearing head (612) is fixedly connected to a first control module (613), and one side of the first control module (613) away from the water pump (61) is fixedly connected to a third wire (614). The top end of the water pump (61) is fixedly connected to a water outlet pipe (621), and the water outlet pipe (621) passes through the top end of the support box (1) and is slidably connected to the support box (1). The top end of the water outlet pipe (621) is fixedly connected to a fixing ring (62), and the top end of the fixing ring (62) is fixedly connected to atomizing nozzles (622) arranged equidistantly. The temperature monitoring component includes a temperature data analysis module (41) and a temperature monitoring module (42), wherein the temperature data analysis module (41) is fixed to a side of the top end of the support box (1) away from the door body (11), and the temperature monitoring module (42) is fixed to an outer wall of the support box (1) on a side of the temperature data analysis module (41), and the bottom end of the temperature data analysis module (41) is fixedly connected to a first connecting wire (43), and the bottom end of the first connecting wire (43) is fixedly connected to a control center (8), the control center (8) is fixedly connected to the support box (1), and the control center (8) is fixedly connected to a fourth wire (75); The fan assembly comprises a housing (21), the housing (21) being arranged at the top end of the supporting box (1), protective covers (22) being clamped at both ends of the housing (21), a first motor (23) being arranged inside the housing (21), and mounting plates (231) being fixedly connected to both sides of the first motor (23); A fixing rod (232) is clamped on one end of the mounting plate (231) away from the first motor (23); a fixing bolt (233) is threadedly connected to the connection between the fixing rod (232) and the mounting plate (231); one end of the first motor (23) is drivingly connected to a first rotating shaft (234); and an end of the first rotating shaft (234) away from the first motor (23) is fixedly connected to a fan blade (235); The shaking assembly includes a second motor (71), the second motor (71) is fixed at the top end of the support box (1), the top end of the second motor (71) is connected to the second rotating shaft (73), the top end of the second rotating shaft (73) passes through the support box (1) and is rotatably connected to the support box (1), the top end of the second rotating shaft (73) is fixedly connected to a support block (74), the top end of the support block (74) is fixedly connected to the bottom end of the housing (21), one side of the second motor (71) is fixedly connected to a second control module (72), and the side of the second control module (72) away from the second motor (71) is fixedly connected to a fourth wire (75); The humidity monitoring component comprises a humidity data analysis module (51) and a humidity monitoring module (52), wherein the humidity data analysis module (51) is fixed to the bottom end of the support box (1) located at the temperature data analysis module (41), and the humidity monitoring module (52) is fixed to the bottom end of the support box (1) located at the temperature monitoring module (42), and the bottom end of the humidity data analysis module (51) is fixedly connected to a second connecting wire (53), and the bottom end of the second connecting wire (53) is fixedly connected to the control center (8); The fan blades (235) fan the air, so that the indoor air circulates. Since the indoor area is large, the circulating air causes the air temperature in each place to be different. Therefore, each area is monitored by the temperature monitoring module (42), and the monitored data is transmitted to the temperature data analysis module (41) for analysis. The analyzed data is transmitted to the control center (8). The control center (8) drives the second motor (71) according to the difference in data. The second motor (71) starts to drive the second shaft (73) to rotate. The rotation of the second shaft (73) drives the support block (74) to rotate. The rotation of the support block (74) drives the outer shell (21) to rotate. The outer shell (21) deflects to the area with higher temperature to circulate air and cool down, thereby increasing the cooling speed.
2. The air circulation fan with water cooling and humidification function according to claim 1, characterized in that: The water storage assembly comprises a water storage box (31), two sides of the bottom end of the water storage box (31) are fixedly connected with a mounting power connection plate (32), the mounting power connection plate (32) is slidably connected to the mounting power connection slot (12), two sides of the bottom end of the mounting power connection plate (32) are provided with power connection terminals (33), one side of the water storage box (31) is fixedly connected with an observation window (36), the interior of the bottom end of the water storage box (31) is fixedly connected with a refrigeration pipe (34), the middle part of the refrigeration pipe (34) is fixedly connected with a controller (35), and the controller (35) is fixedly connected to the water storage box (31).
Citation Information
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