A multifunctional air treatment method with intelligent frequency conversion regulation
Through intelligent frequency conversion regulation and real-time detection, the wind speed and fan blade speed are dynamically adjusted, which solves the problems of power waste and filter clogging caused by fixed dehumidifier wind speed, and improves the dehumidification efficiency and practicality of the device.
Patent Information
- Application Number
- CN202411738490.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-29
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2044-11-29
AI Technical Summary
Existing dehumidifiers have fixed wind speed gears and cannot be frequency-controlled according to indoor air humidity, resulting in power waste or incomplete dehumidification, and the filter is easily clogged, affecting the dehumidification effect.
It adopts intelligent variable frequency regulation method, combined with humidity sensor and camera to detect indoor humidity and filter status in real time, dynamically adjusts wind speed and fan speed, and stirs impurities in the water tank through blades to optimize drainage efficiency.
It can automatically adjust the wind speed according to the humidity, avoid electricity waste, extend the service life of the filter, improve the dehumidification efficiency and drainage effect, and enhance the practicality of the device.
Smart Images

Figure CN119436453B_ABST
Abstract
Description
Technical Field
[0001] The present invention belongs to the technical field of air dehumidification, and in particular relates to a multifunctional air treatment method with intelligent frequency conversion regulation. Background Art
[0002] A dehumidifier consists of a compressor, condenser, evaporator, capillary tube, fan, and duct housing. Its working principle is to use the refrigeration system to cool humid air to below the dew point, causing the water vapor in the air to condense into liquid water. This water is then heated by the condenser and returned to the room, achieving air treatment.
[0003] For ease of use, existing dehumidifiers generally have a high wind speed gear and a low wind speed gear. However, this setting is not flexible enough in actual use and cannot perform frequency conversion adjustment according to the indoor air humidity, which makes it easy to waste electricity during the use of the dehumidifier or fail to dehumidify. In addition, during the use of the dehumidifier, the filter will be adsorbed by dust and impurities on the surface, causing the filter blockage area to continue to increase. The setting of the two gears causes the dehumidification effect to continue to decline during continuous use of the dehumidifier.
[0004] Therefore, we propose a multifunctional air treatment method with intelligent variable frequency regulation to solve the above problems. Summary of the Invention
[0005] The purpose of the present invention is to solve the problem that the existing dehumidifiers are generally set with a high wind speed gear and a low wind speed gear for ease of use. However, this setting is not flexible enough in actual use and cannot perform frequency conversion adjustment according to the indoor air humidity, which makes it easy to waste electricity during the use of the dehumidifier, or the dehumidification is not in place. In addition, during the use of the dehumidifier, the filter will be adsorbed on the surface due to dust and impurities, causing the filter blockage area to continue to increase. The setting of two gears causes the dehumidification effect of the dehumidifier to continue to decline during continuous use. A multifunctional air treatment method with intelligent frequency conversion adjustment is proposed.
[0006] To achieve the above object, the present invention provides the following technical solution: a multifunctional air treatment method with intelligent frequency conversion regulation, comprising the following steps:
[0007] Step 1: Before humidity treatment of the indoor space, the indoor humidity is first detected by the humidity sensor, and then the detected data is compared with the preset humidity data. If the detected data is greater than the preset humidity data, the high wind speed is turned on; if the detected data is less than the preset humidity data, the low wind speed is turned on; then, when the motor works, the three sets of fan blades are driven to rotate through the shaft and belt transmission mechanism, so that the shell and the outside air are quickly circulated;
[0008] Step 2: External air enters the housing through the air inlet, and after passing through the filter, most of the dust and impurities in the air are blocked and filtered by the filter. During dehumidification, the camera works, and uses the camera to take pictures of the filter surface at the same interval to obtain a real-time image of the filter surface. The real-time image is analyzed to obtain the speed level corresponding to the detection moment, and a corresponding speed level signal is generated and sent to the motor. The motor adjusts the speed of the fan blade 1 and the fan blade 2 by increasing or decreasing the speed according to the speed level.
[0009] Step 3. After the motor speed is adjusted by real-time frequency conversion, the air passing through the filter enters the evaporator and condenser for processing. At this time, the water vapor in the air condenses into water droplets and falls downward through the condenser into the inside of the water tank. The dry air moves backward through the condenser into the inside of the shell, and then is discharged to the outside space through the air outlet. When the air flows to the inside of the upper end of the shell, it will pass through the inside of the installation box, thereby driving the fan blade three to rotate. The rotation of the fan blade three will drive the rotating rod one and the bevel gear one to rotate, thereby driving the bevel gear two and the worm gear to rotate, and then drive the worm gear, rotating rod two and bevel gear three to rotate, and then make the bevel gear four, rotating rod three, sleeve rod and blades rotate, so that the blades stir the inside of the water tank, stir up some of the impurities carried by the water droplets, and then take them away through the water flow during drainage, so as to prevent the impurities from accumulating in the water tank and polluting the water tank;
[0010] Step 4. When the humidity sensor detects that the humidity in the air is higher than the set humidity threshold, the device accumulates water quickly inside the water tank when it is working in dehumidification. At this time, the electric telescopic rod is started, and the electric telescopic rod drives the connecting plate and the sleeve rod to move to the left, and then drives the paddle at the left end of the sleeve rod to move into the drain pipe. At this time, the paddle rotates, which can increase the drainage rate inside the drain pipe, thereby preventing water from accumulating too quickly inside the water tank, resulting in insufficient drainage efficiency, and allowing the air dehumidification work to proceed smoothly and continuously.
[0011] As a preferred embodiment of the present invention, it includes a shell, an air inlet is provided in the middle of the front end of the shell, a grille and a filter are provided inside the air inlet, an evaporator and a condenser are provided on the rear side of the filter, an upper partition is provided at the upper end of the evaporator and the condenser, and the upper end of the upper partition is connected to the inner top wall of the shell, the lower end of the evaporator and the condenser is abutted against a water tank, and the water tank is provided at the inner bottom of the shell, a detection module is provided at the front end of the upper partition, and the detection module includes a humidity sensor and a camera, a motor is provided on the upper surface of the rear side of the upper partition, the power output end of the motor is transmission-connected to a rotating shaft, a fan blade 1 is provided on the circumferential surface of the upper end of the rotating shaft, and the rotating shaft is transmission-connected to fan blade 2 through a belt transmission mechanism, an air outlet is provided on the upper surface of the shell, and the air outlet is provided directly above fan blade 1 and fan blade 2.
[0012] As a preferred embodiment of the present invention, a control panel is provided at the upper end of the front side of the shell, and two wind speed gears of high wind speed and low wind speed and a timed power on / off function are provided inside the control panel. The control panel is electrically connected to an alarm, and the alarm is provided on the front side of the shell and on the right side of the control panel.
[0013] As a preferred embodiment of the present invention, the specific processing process of the detection module for detecting the filter is as follows:
[0014] During dehumidification, the camera takes a picture of the filter and transmits the real-time image to the control panel. The real-time image is processed by the processing module inside the control panel to obtain the wind speed adjustment coefficient S1. The wind speed adjustment coefficient S1 is compared with the gear increase coefficient to obtain the gear at which the motor needs to increase speed. When the wind speed adjustment coefficient S1 exceeds the fifth gear with the highest gear increase coefficient, it means that the filter is clogged and seriously affects the dehumidification efficiency and quality. At this time, the control panel will send an alarm signal to the alarm, causing the alarm to alert the staff that the filter needs to be disassembled, cleaned or replaced.
[0015] As a preferred embodiment of the present invention, an installation box is provided on the upper surface of the rear side of the upper partition, and the installation box is provided on the rear side of the motor, and ventilation slots are opened on the upper end and the lower end of the rear side of the installation box, and a rotating rod 1 is rotatably installed inside the installation box, and the circumferential surface of the upper end of the rotating rod 1 is provided with fan blades 3, the lower end of the rotating rod 1 passes through the upper partition and extends to the rear side of the water tank, and a bevel gear 1 is provided at the lower end of the rotating rod 1, the front end of the bevel gear 1 is meshed with bevel gear 2, the front end of the bevel gear 2 is provided with a worm, the left side of the worm is meshed with a worm wheel, the lower end of the worm wheel is provided with a rotating rod 2, the circumferential surface of the lower end of the rotating rod 2 is provided with bevel gear 3, the left side of the bevel gear 3 is meshed with bevel gear 4, and the left end of the bevel gear 4 is provided with a rotating rod 3, the surface of the rotating rod 3 is slidably connected to a sleeve rod through a slider, and the circumferential surface of the left end of the sleeve rod is provided with a paddle, and the paddle is provided on the right side of the drain pipe.
[0016] As a preferred embodiment of the present invention, the worm is rotatably mounted inside the upper end of the water tank, the lower end of the second rotating rod is rotatably mounted on the inner bottom of the water tank, and the third rotating rod is rotatably mounted inside the water tank through a fixed block.
[0017] As a preferred embodiment of the present invention, an electric telescopic rod is provided on the inner wall of the upper left end of the water tank, a connecting plate is provided on the right end of the electric telescopic rod, and the sleeve rod is rotatably installed inside the lower end of the connecting plate.
[0018] As a preferred embodiment of the present invention, sliding grooves are provided on the surfaces of the upper and lower ends of the rotating rod three, and the sliding block is arranged inside the sliding grooves.
[0019] Compared with the prior art, the present invention has the following beneficial effects:
[0020] (1) Through the detection module, the camera in the detection module can detect the filter in real time during the dehumidification process of the device, and then can intelligently adjust the motor speed so that the fan blades 1 and 2 are always in the best dehumidification state, while avoiding the motor speed being too fast to waste resources and the motor speed being too slow to affect the dehumidification quality;
[0021] (2) The paddles arranged in the water tank can drive the airflow generated inside the housing of the device to rotate during the dehumidification process, and then drive the paddles to rotate. When the humidity is low, the paddles rotate inside the water tank to stir the accumulated water in the water tank. When the water in the water tank is discharged, the impurities inside the water tank can be discharged together to avoid the precipitation of impurities affecting the use of the water tank. In addition, in a high humidity environment, the paddles can be moved into the drain pipe, and the paddles rotate to increase the drainage speed inside the drain pipe, avoiding the excessive accumulation of water inside the water tank in a high humidity environment, which causes the automatic drainage efficiency of the device to be unable to keep up with the overflow phenomenon, thereby improving the practicality of the device.
[0022] (3) The humidity sensor set in the detection module can detect the air humidity and enable the device to open the high wind speed or low wind speed according to the humidity. It will also determine whether the electric telescopic rod drives the paddle to move into the drain pipe based on this, thereby improving the drainage effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] To facilitate understanding by those skilled in the art, the present invention is further described below with reference to the accompanying drawings.
[0024] Figure 1 Schematic diagram of the three-dimensional structure of the device of the present invention;
[0025] Figure 2 It is a front cutaway perspective view of the device of the present invention;
[0026] Figure 3 For the present invention Figure 2 A magnified view of the structure at point A;
[0027] Figure 4 It is a right side cutaway perspective view of the device of the present invention;
[0028] Figure 5 This is a line graph showing the additional increase in wind speed for the device of the present invention.
[0029] In the figure: 1. Shell; 2. Air inlet; 3. Filter; 4. Upper partition; 5. Humidity sensor; 6. Camera; 7. Evaporator; 8. Condenser; 9. Water tank; 10. Drain pipe; 11. Motor; 12. Rotating shaft; 13. Fan blade 1; 14. Air outlet; 15. Belt drive mechanism; 16. Fan blade 2; 17. Mounting box; 18. Rotating rod 1; 19. Fan blade; 20. Bevel gear 1; 21. Bevel gear 2; 22. Worm; 23. Worm gear; 24. Rotating rod 2; 25. Bevel gear 3; 26. Bevel gear 4; 27. Rotating rod 3; 28. Fixed block; 29. Slider; 30. Sleeve rod; 31. Slide groove; 32. Paddle; 33. Electric telescopic rod; 34. Connecting plate; 35. Control panel; 36. Alarm. 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] Example 1
[0032] See also Figure 1 A multifunctional air treatment method with intelligent variable frequency regulation is implemented based on a multifunctional air treatment device with intelligent variable frequency regulation. The device includes a shell 1, an air inlet 2 is opened in the middle of the front end of the shell 1, and an air outlet 14 is opened on the upper surface of the shell 1.
[0033] Example 2
[0034] See also Figure 2 - Figure 5As shown, a multifunctional air treatment method with intelligent variable frequency regulation is implemented based on a multifunctional air treatment device with intelligent variable frequency regulation. The device includes a shell 1, an air inlet 2 is opened in the middle of the front end of the shell 1, and a grille and a filter 3 are arranged inside the air inlet 2. The filter 3 can remove most of the dust and impurities in the wind to prevent dust and impurities from entering the interior of the shell 1 and polluting the interior of the shell 1 to affect the use effect of the equipment inside the shell 1. An evaporator 7 and a condenser 8 are arranged on the rear side of the filter 3. The upper ends of the evaporator 7 and the condenser 8 are provided with an upper partition 4, and the upper end of the upper partition 4 is connected to the inner top wall of the shell 1. The lower ends of the evaporator 7 and the condenser 8 are abutted with a water tank 9, and the water tank 9 is arranged at the inner bottom of the shell 1. The water tank 9 can collect water condensed by the condenser 8 A detection module is provided at the front end of the upper partition 4, and a motor 11 is provided on the upper surface of the rear side of the upper partition 4. The power output end of the motor 11 is connected to the rotating shaft 12 through a coupling transmission. The circumferential surface of the upper end of the rotating shaft 12 is provided with a fan blade 13, and the rotating shaft 12 is connected to the fan blade 2 16 through a belt transmission mechanism 15. The belt transmission mechanism 15 is a prior art and therefore will not be described in detail. An air outlet 14 is provided on the upper surface of the shell 1, and the air outlet 14 is arranged directly above the fan blade 13 and the fan blade 2 16. Among them, the fan blade 2 16 is provided with two groups, a total of two groups of fan blades 2 16 and one group of fan blades 13, so that the wind speed at the air outlet 14 is relatively large, thereby allowing the air of the shell 1 to circulate smoothly through the air inlet 2 and the air outlet 14;
[0035] The upper surface of the rear side of the upper partition 4 is provided with a mounting box 17, and the mounting box 17 is arranged on the rear side of the motor 11. The upper end and the lower end of the rear side of the mounting box 17 are both provided with ventilation slots. A rotating rod 18 is rotatably installed inside the mounting box 17. The circumferential surface of the upper end of the rotating rod 18 is provided with a fan blade 3 19. The lower end of the rotating rod 18 passes through the upper partition 4 and extends to the rear side of the water tank 9. The lower end of the rotating rod 18 is provided with a bevel gear 1 20. The front end of the bevel gear 20 is meshed with a bevel gear 21. The front end of the bevel gear 21 is provided with a worm 22. The worm 22 is rotatably installed inside the upper end of the water tank 9. The left side of the worm 22 A worm gear 23 is meshed with the worm gear 23, and a rotating rod 24 is provided at the lower end of the worm gear 23. The lower end of the rotating rod 24 is rotatably mounted on the inner bottom of the water tank 9. The worm 22 and the rotating rod 24 are both rotatably mounted inside the water tank 9 through bearings, which can limit the support of the worm 22 and the rotating rod 24 without affecting the rotation of the worm 22 and the rotating rod 24. A bevel gear 3 25 is provided on the circumferential surface of the lower end of the rotating rod 24, and a bevel gear 4 26 is meshed with the left side of the bevel gear 3 25. A rotating rod 3 27 is provided at the left end of the bevel gear 4 26. The rotating rod 3 27 is rotatably mounted inside the water tank 9 through a fixed block 28. The surface of the rotating rod 3 27 The sleeve rod 30 is slidably connected to the slider 29, and the circumferential surface of the left end of the sleeve rod 30 is provided with a paddle 32, and the paddle 32 is arranged on the right side of the drain pipe 10. The inner wall of the upper left end of the water tank 9 is provided with an electric telescopic rod 33, and the right end of the electric telescopic rod 33 is provided with a connecting plate 34. The sleeve rod 30 is rotatably mounted on the lower end of the connecting plate 34. The surfaces of the upper and lower ends of the rotating rod 37 are provided with a slide groove 31, and the slider 29 is arranged inside the slide groove 31. The setting of the slide groove 31 provides the slider 29 with horizontal movement space left and right, so that the electric telescopic rod 33 can smoothly drive the sleeve rod 30 and the slide groove 31 through the connecting plate 34. Block 29 and paddle 32 move horizontally to the left into the interior of drain pipe 10, and then the rotation of paddle 32 improves the drainage efficiency inside drain pipe 10. At low wind speed, paddle 32 will not move into the interior of drain pipe 10, but inside water tank 9, so that at low wind speed, air flow is not easy to drive fan blade three 19 to rotate quickly, and then paddle 32 will not rotate too fast at this time. At this time, if paddle 32 is located inside drain pipe 10, it will not only not speed up the drainage speed, but also reduce the drainage area inside drain pipe 10, affecting the drainage speed. Therefore, when the windshield is working at low wind speed, paddle 32 is set inside water tank 9.
[0036] It should be noted that the design of the ventilation slot allows air to enter the interior of the installation box 17 from the ventilation slot at the lower end of the rear side, and then be blown out through the ventilation slot at the upper end, so that the air flow in this direction inside the installation box 17 can smoothly blow the fan blade three 19 to rotate, and then the fan blade three 19 can smoothly drive the rotating rod 18 to rotate.
[0037] Example 3
[0038] A control panel 35 is provided at the upper end of the front face of the shell 1. The control panel 35 is internally provided with two wind speed gears, high wind speed and low wind speed, and a timed power on / off function, so that the dehumidification device can independently judge whether to turn on the high wind speed gear or the low wind speed gear according to the external humidity. The timed power on / off function can time the device so that the device automatically starts working at a specific time without requiring the staff to be on duty, which is more intelligent.
[0039] Example 4
[0040] The device also includes a detection module, which is composed of a humidity sensor 5 and a camera 6. The humidity sensor 5 can be a HS24LF model sensor, but is not limited thereto. The control panel 35 is electrically connected to an alarm 36, and the alarm 36 is provided on the front of the housing 1 and on the right side of the control panel 35. The database inside the control panel 35 records the formula of the filter 3 and the corresponding preset weight factor, preset clogging threshold, deviation threshold, preset value and gear coefficient range, etc. The detection module is also used to detect the filter 3 and process it. The specific processing process is as follows:
[0041] During dehumidification, the camera 6 takes a picture of the filter 3 and transmits the captured real-time image 1 to the control panel 35. The processing module inside the control panel 35 processes the real-time image 1, specifically:
[0042] The captured real-time image is divided into several regions to obtain several sub-region images corresponding to the filter 3. The several sub-region images are magnified several times to obtain the pixel grid images of the sub-region images. The color corresponding to each pixel grid in the pixel grid image is identified, and several colors are set. Each color corresponds to a preset blocking base value. The color corresponding to each pixel grid is matched with the set colors to obtain the corresponding preset blocking base value. For example, the grayscale includes ten color levels, and the blocking base values from dark to light are 0.01, ..., 0.002, 0.001, and the size is a custom setting. The blocking base values corresponding to all pixel grid images in the sub-region image are summed to obtain the blocking sub-value. The blocking sub-values of all sub-region images are summed to obtain the total blocking value m1 of the filter 3.
[0043] The brightness of the outside of the filter 3 is collected and marked as the comparison brightness. The inside of the filter 3 (i.e., the inside of the housing 1) is photographed to obtain real-time image 2. The real-time image 2 is identified and divided into several light-transmitting areas. The brightness of each light-transmitting area is identified. The brightness of the light-transmitting area is calculated by subtracting the brightness from the comparison brightness to obtain the brightness deviation. All brightness deviations are summed to obtain the total deviation value m2. The total blockage value and the total deviation value are normalized and the values of both are taken and substituted into the formula Output wind speed adjustment coefficient S1, where e1 and e2 are preset weight factors, M1 and M2 are preset congestion threshold and deviation threshold respectively; Yg is a preset value and is greater than 1.
[0044] Set the gear coefficient interval [0.15, 1], corresponding to the gear increase coefficient adjustment level. When S1∈[0.15, 1], wind speed adjustment is performed. The gear increase coefficient adjustment levels include first-gear control, second-gear control, third-gear control, fourth-gear control, and fifth-gear control. First-gear control means that the wind speed adjustment coefficient S1 is in the range of 0% to 10% of the gear increase coefficient, that is, the wind speed is increased by 0% to 10% based on the first gear. The specific adjustment is determined by the size of the wind speed adjustment coefficient. The larger the wind speed adjustment coefficient, the greater the corresponding increase.
[0045] Second gear control: Indicates that the wind speed adjustment coefficient S1 is in the range of 0% to 15% of the gear increase coefficient.
[0046] Three-speed control: Indicates that the wind speed adjustment coefficient S1 is in the range of 16% to 30% of the gear increase coefficient.
[0047] Four-speed control: Indicates that the wind speed adjustment coefficient S1 is in the range of 31% to 45% of the gear increase coefficient.
[0048] Five-speed control: indicates that the wind speed adjustment coefficient S1 is in the range of 46% to 60% of the gear increase coefficient.
[0049] Specifically:
[0050] First, the working state of the device at this time is understood based on the signal transmitted to the control panel 35 by the humidity sensor 5, whether it is a high wind speed state or a low wind speed state, and the wind speed adjustment coefficient S1 is compared with the gear increase coefficient to obtain the gear at which the motor 11 needs to increase the speed. When the wind speed adjustment coefficient S1 exceeds the fifth gear with the highest gear increase coefficient (i.e., when S1>1), it means that the filter 3 is seriously clogged and has affected the dehumidification efficiency and dehumidification quality. At this time, the control panel 35 will send an alarm signal to the alarm 36, so that the alarm 36 will sound an alarm to remind the staff to disassemble, clean or replace the filter 3;
[0051] The speed of the motor 11 is increased by the gear increase coefficient at this time, so that when the surface of the filter 3 is partially blocked at this time, the motor 11 can still maintain the dehumidification effect of the initial state of the filter 3, so that the device can be used continuously. Because the filter 3 is gradually blocked during use, the frequency conversion is used to increase the speed of the motor 11, realizing intelligent adjustment, thereby effectively utilizing energy in the dehumidification process, avoiding energy waste, and achieving energy-saving effects. After the wind speed adjustment coefficient S1 exceeds the range of the five-speed control, it means that the surface of the filter 3 is seriously blocked and has affected the dehumidification effect. At this time, the control panel 35 will send an alarm signal to the alarm 36, and the Shudie alarm 36 will sound an alarm to remind the staff that the device needs to be repaired and replaced.
[0052] The working principle and use process of the present invention:
[0053] Before the indoor space is humidified, the indoor humidity is first detected by the humidity sensor 5. The detected data is then compared with the preset humidity data. If the detected data is greater than the preset humidity data, the high wind speed is turned on; if the detected data is less than the preset humidity data, the low wind speed is turned on. Then, when the motor 11 is working, the three sets of fan blades 13 are driven to rotate through the rotating shaft 12 and the belt transmission mechanism 15, so that the housing 1 and the outside air are quickly circulated.
[0054] External air enters the housing 1 through the air inlet 2, and after passing through the filter 3, most of the dust and impurities in the air are blocked and filtered by the filter 3. During dehumidification, the camera 6 works, and uses the camera 6 to take pictures of the surface of the filter 3 at the same interval. The speed level corresponding to the detection moment is obtained by analysis, and the corresponding speed level signal is generated and sent to the motor 11. The motor 11 adjusts the speed of the fan blade 13 and the fan blade 2 16 by increasing or decreasing the speed according to the speed level.
[0055] After the speed of the motor 11 is adjusted by real-time frequency conversion, the air passing through the filter 3 enters the evaporator 7 and the condenser 8 for processing. At this time, the water vapor in the air condenses into water droplets and falls downward into the water tank 9 through the condenser 8. The dry air moves backward into the interior of the shell 1 through the condenser 8, and then is discharged to the outside space through the air outlet 14. When the air flows to the interior of the upper end of the shell 1, it passes through the interior of the mounting box 17, thereby driving the fan blade 3 19 to rotate. The rotation of the fan blade 3 19 will drive the rotating rod 1 18 and the bevel gear 1 20 to rotate, thereby driving the bevel gear 21 and the worm 22 to rotate, and then drive the worm gear 23, the rotating rod 24 and the bevel gear 3 25 to rotate, and then make the bevel gear 4 26, the rotating rod 3 27, the sleeve rod 30 and the paddle 32 rotate, so that the paddle 32 stirs the inside of the water tank 9, stirs up some of the impurities carried by the water droplets, and then takes them away through the water flow during drainage, so as to prevent the impurities from accumulating in the water tank 9 and polluting the water tank 9;
[0056] When the humidity sensor 5 detects that the humidity in the air is higher than the set humidity threshold, the device accumulates water quickly inside the water tank 9 when it is working in dehumidification. At this time, the electric telescopic rod 33 is started, and the electric telescopic rod 33 drives the connecting plate 34 and the sleeve rod 30 to move to the left, and then drives the paddle 32 at the left end of the sleeve rod 30 to move into the interior of the drain pipe 10. At this time, the paddle 32 rotates, which can increase the drainage rate inside the drain pipe 10, thereby avoiding excessive accumulation of water inside the water tank 9, resulting in insufficient drainage efficiency, so that the air dehumidification work can be carried out smoothly and continuously.
[0057] The preferred embodiments of the present invention disclosed above are intended only to help illustrate the present invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the present invention to specific embodiments. Obviously, many modifications and variations are possible based on the contents of this specification. These embodiments are selected and described in detail in this specification to better explain the principles and practical applications of the present invention, thereby enabling those skilled in the art to better understand and utilize the present invention. The present invention is limited only by the claims and their full scope and equivalents.
Claims
1. A multifunctional air treatment method with intelligent frequency conversion regulation, characterized in that: The following steps are involved: Step 1: Before performing humidity treatment on the indoor space, the indoor humidity is first detected by the humidity sensor (5), and then the detected data is compared with the preset humidity data. If the detected data is greater than the preset humidity data, the high wind speed of the fan blade 1 (13) and the fan blade 2 (16) is turned on; if the detected data is less than the preset humidity data, the low wind speed of the fan blade 1 (13) and the fan blade 2 (16) is turned on; then, when the motor (11) works and drives the three sets of fan blades 1 (13) to rotate through the rotating shaft (12) and the belt transmission mechanism (15), the housing (1) and the outside air are quickly circulated; Step 2: External air enters the housing (1) through the air inlet (2), passes through the filter (3), and most of the dust and impurities in the air are blocked and filtered by the filter (3). During dehumidification, the camera (6) works, and the camera (6) takes pictures of the surface of the filter (3) at the same interval to obtain a real-time image of the filter surface of the filter (3). The real-time image is analyzed to obtain a speed adjustment level corresponding to the detection moment, and a corresponding speed adjustment level signal is generated and sent to the motor (11). The power output end of the motor (11) is connected to the rotating shaft (12). The circumferential surface of the upper end of the rotating shaft (12) is provided with a fan blade (13). The rotating shaft (12) is connected to the fan blade (16) through a belt transmission mechanism (15). The motor (11) adjusts the speed of the fan blade (13) and the fan blade (16) according to the speed adjustment level corresponding to the speed increase or decrease. Step 3: After the speed of the motor (11) is adjusted by real-time frequency conversion, the air passing through the filter (3) enters the evaporator (7) and the condenser (8) for processing. At this time, the water vapor in the air condenses into water droplets and falls downward into the water tank (9) through the condenser (8). The dry air moves backward into the interior of the shell (1) through the condenser (8), and then is discharged upward through the air outlet (14) to the outside space. When the air flows to the interior of the upper end of the shell (1), it passes through the interior of the installation box (17), thereby driving the fan blade three (19) to rotate. The fan blade three (19 ) rotation will drive the rotating rod 1 (18) and the bevel gear 1 (20) to rotate, thereby driving the bevel gear 2 (21) and the worm (22) to rotate, and then driving the worm gear (23), the rotating rod 2 (24) and the bevel gear 3 (25) to rotate, and then causing the bevel gear 4 (26), the rotating rod 3 (27), the sleeve rod (30) and the paddle (32) to rotate, so that the paddle (32) stirs the inside of the water tank (9), stirs up some of the impurities carried by the water droplets, and then carries them away through the water flow during drainage, so as to prevent the impurities from accumulating inside the water tank (9) and polluting the water tank (9); Step 4: When the humidity sensor (5) detects that the humidity in the air is higher than the set humidity threshold, the water inside the water tank (9) accumulates quickly, and the electric telescopic rod (33) is started. The electric telescopic rod (33) drives the connecting plate (34) and the sleeve rod (30) to move to the left, and then drives the paddle (32) at the left end of the sleeve rod (30) to move into the interior of the drain pipe (10). At this time, the paddle (32) rotates, thereby increasing the drainage rate inside the drain pipe (10).
2. A multifunctional air treatment method with intelligent frequency conversion regulation according to claim 1, characterized in that: An air inlet (2) is provided in the middle of the front end of the shell (1), a grille and a filter (3) are provided inside the air inlet (2), an evaporator (7) and a condenser (8) are provided on the rear side of the filter (3), an upper partition (4) is provided on the upper ends of the evaporator (7) and the condenser (8), and the upper end of the upper partition (4) is connected to the inner top wall of the shell (1), the lower ends of the evaporator (7) and the condenser (8) are abutted against a water tank (9), and the water tank (9) is provided on the inner bottom of the shell (1), a detection module is provided at the front end of the upper partition (4), and the detection module includes a humidity sensor (5) and a camera (6), a motor (11) is provided on the upper surface of the rear side of the upper partition (4), an air outlet (14) is provided on the upper surface of the shell (1), and the air outlet (14) is provided directly above the fan blade 1 (13) and the fan blade 2 (16).
3. A multifunctional air treatment method with intelligent frequency conversion regulation according to claim 2, characterized in that: A control panel (35) is provided at the upper end of the front face of the housing (1). The control panel (35) is electrically connected to an alarm (36), and the alarm (36) is provided on the front face of the housing (1) and is located on the right side of the control panel (35).
4. The multifunctional air treatment method with intelligent frequency conversion regulation according to claim 3 is characterized in that: The detection module is also used to detect the filter (3) and perform analysis. The specific processing process is as follows: The camera (6) takes a photo of the filter (3) for detection, and transmits the real-time image taken to the control panel (35). The real-time image is processed by the processing module inside the control panel (35) to obtain the wind speed adjustment coefficient S1. The wind speed adjustment coefficient S1 is compared with the gear coefficient interval to obtain the gear at which the motor (11) needs to increase the speed. When the wind speed adjustment coefficient S1 exceeds the fifth gear with the highest gear increase coefficient, the control panel (35) sends an alarm signal to the alarm (36), so that the alarm (36) sounds an alarm to remind the staff that the filter (3) needs to be disassembled, cleaned, or replaced.
5. The multifunctional air treatment method with intelligent frequency conversion regulation according to claim 2 is characterized in that: The upper surface of the rear side of the upper partition (4) is provided with a mounting box (17), and the mounting box (17) is provided on the rear side of the motor (11). The upper end and the rear lower end of the mounting box (17) are both provided with ventilation slots. A rotating rod (18) is rotatably mounted inside the mounting box (17). The circumferential surface of the upper end of the rotating rod (18) is provided with a fan blade (19). The lower end of the rotating rod (18) passes through the upper partition (4) and extends to the rear side of the water tank (9). The lower end of the rotating rod (18) is provided with a bevel gear (20). The front end of the bevel gear (20) is meshedly connected with a bevel gear (21). The bevel gear (21) A worm (22) is provided at the front end of the worm (22), the left side of the worm (22) is meshedly connected to a worm wheel (23), the lower end of the worm wheel (23) is provided with a rotating rod (24), the circumferential surface of the lower end of the rotating rod (24) is provided with a bevel gear (25), the left side of the bevel gear (25) is meshedly connected to a bevel gear (26), the left end of the bevel gear (26) is provided with a rotating rod (27), the surface of the rotating rod (27) is slidably connected to a sleeve rod (30) through a slider (29), the circumferential surface of the left end of the sleeve rod (30) is provided with a paddle (32), and the paddle (32) is provided on the right side of the drain pipe (10).
6. The multifunctional air treatment method with intelligent frequency conversion regulation according to claim 5 is characterized in that: The worm (22) is rotatably mounted inside the upper end of the water tank (9), the lower end of the second rotating rod (24) is rotatably mounted on the inner bottom of the water tank (9), and the third rotating rod (27) is rotatably mounted inside the water tank (9) via a fixing block (28).
7. The multifunctional air treatment method with intelligent frequency conversion regulation according to claim 5 is characterized in that: An electric telescopic rod (33) is provided on the inner wall of the upper left end of the water tank (9), a connecting plate (34) is provided on the right end of the electric telescopic rod (33), and the sleeve rod (30) is rotatably mounted inside the lower end of the connecting plate (34).
8. The multifunctional air treatment method with intelligent frequency conversion regulation according to claim 5 is characterized in that: The surfaces of the upper and lower ends of the rotating rod (27) are both provided with sliding grooves (31), and the sliding block (29) is arranged inside the sliding grooves (31).
Citation Information
Patent Citations
Dehumidifier
CN102116507A
Air purifier and using method thereof
CN111249902A