Multi-functional solution dehumidifying air conditioner
By integrating dehumidification and regeneration components, and combining countercurrent contact and humidity-sensitive resistor control, the problems of inconvenient installation, limited functionality, and poor energy efficiency of existing dehumidifying air conditioners have been solved, achieving multifunctional, energy-efficient air conditioner control.
Patent Information
- Application Number
- CN202511402827.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-28
- Publication Date
- 2025-12-12
- Estimated Expiration
- 2045-09-28
AI Technical Summary
Existing dehumidifying air conditioners have separate humidification and regeneration sections, which are inconvenient to install, have limited functionality, poor energy efficiency, high control complexity, and a high failure rate.
The dehumidification and regeneration components are integrated into the same unit. The humidification and dehumidification functions are achieved through the combination of airflow components, heating and cooling components, humidity components and control mechanisms. The counter-current contact method is used to increase the contact time and area between the airflow and the solution. The number of magnetic pumps is controlled by a humidity-sensitive resistor, which reduces complexity and cost.
It enables convenient installation and disassembly of dehumidifying air conditioners, offers diverse functions, is energy-efficient, reduces the failure rate, improves dehumidification and humidification effects, and adapts to optimized control under different humidity conditions.
Smart Images

Figure CN120868529B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of dehumidification devices, and more particularly to a multifunctional solution dehumidification air conditioner. Background Technology
[0002] In modern building environmental control, industrial production assurance, and special site operation and maintenance, precise control of air temperature and humidity has become a core requirement. Especially in scenarios such as clean air conditioning, cultural relics museums, laboratories, five-constant residences, precision electronic production workshops, museums, and lithium battery production drying rooms, extremely high requirements are placed on the deep processing of air humidity, temperature stability, and energy utilization efficiency. Solution dehumidifiers, as devices that achieve air dehumidification and temperature and humidity regulation through the hygroscopic properties of salt solutions, have become a key technical support for the above scenarios due to their advantages such as high dehumidification efficiency and strong controllability. With the advancement of the "dual carbon" target and the rapid development of smart buildings and high-end manufacturing industries, the market has placed higher demands on the multi-functional integration, intelligent control precision, energy efficiency, and scenario adaptability of dehumidifiers.
[0003] In existing technologies, the humidification and regeneration sections of dehumidifying air conditioners are often separate units, which makes installation and disassembly inconvenient. Furthermore, existing dehumidifying air conditioners only have a humidification function, which is relatively simple and their energy efficiency is generally poor. Summary of the Invention
[0004] The purpose of this invention is to solve the problems in the prior art by proposing a multifunctional solution dehumidification air conditioner.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A multifunctional solution dehumidification air conditioner includes a body, a fixed cover is fixedly connected to the upper surface of the body, a servo motor is fixedly connected to the upper surface of the fixed cover by a bracket, and an equipment cavity and two treatment chambers and a liquid cavity are opened in the body.
[0007] The machine body is equipped with an air handling mechanism, which consists of an airflow component, a heating and cooling component, and a humidity component. The airflow component includes two fixed pipes that are fixedly connected to the machine body. A three-way pipe is fixedly connected to each fixed pipe. An exhaust pipe and an intake pipe are fixedly connected to the other two ports of the three-way pipe, respectively. The two intake pipes are fixedly connected to an indoor pipe. The heating and cooling component includes a compressor that is fixedly connected to the equipment cavity. The humidity component includes two magnetic pumps that are fixedly connected to the equipment cavity. An air pipe is fixedly connected to the machine body, and the air pipe connects one of the treatment chambers to the liquid chamber.
[0008] The machine body is equipped with a control mechanism, which includes a humidity-sensitive resistor. The humidity-sensitive resistor is fixedly connected to the top wall inside the fixed cover. The machine body has a main control cavity, and an electromagnet is fixedly connected to the bottom wall inside the main control cavity. The electromagnet and the humidity-sensitive resistor are electrically connected through wires.
[0009] Furthermore, the airflow assembly also includes a groove, which is formed in the body of the machine. The fixed cover is rotatably connected to a rotating shaft via a bearing. One end of the rotating shaft is fixedly connected to the output shaft of a servo motor, and the other end extends through into the groove and is fixedly connected to an exhaust fan. The body is fixedly connected to two connecting pipes, which connect the corresponding treatment chambers to the groove.
[0010] Furthermore, the heating and cooling assembly also includes two heat exchangers, which are respectively fixedly connected to the two treatment chambers. The body is fixedly connected through an intermediate pipe that connects the two heat exchangers. A heat-conducting block is fixedly connected between the top wall and the bottom wall of the equipment cavity. The heat-conducting block has a hollow structure. The input end and output end of the compressor are respectively fixedly connected through the side wall of the corresponding heat-conducting block. The body and the heat-conducting block are jointly fixedly connected through a refrigerant pipe that connects the corresponding heat-conducting block to the heat exchanger.
[0011] Furthermore, the humidity component also includes two liquid inlet pipes, one end of which is fixedly connected to the corresponding input end of the magnetic pump, and the other end extends through into the corresponding liquid chamber. The output end of the magnetic pump is fixedly connected to an outlet pipe. A fixing block is fixedly connected to the side wall of the treatment chamber. The fixing block is a hollow structure. The outlet pipe is fixedly connected through the side wall of the corresponding fixing block. Multiple spray pipes are fixedly connected through the bottom wall of the fixing block. An atomizing nozzle is fixedly connected to one end of the spray pipe outside the fixing block. The body has two flow holes that connect the corresponding treatment chamber to the liquid chamber. The liquid chamber is filled with a dehumidifying solution.
[0012] Furthermore, the control mechanism also includes two vertical rods, which are fixedly connected between the top wall and the bottom wall of the main control cavity. A magnetic block and a sliding plate are slidably connected through the two vertical rods. Two first conductive blocks are fixedly connected through the magnetic block. Two second conductive blocks are fixedly connected to the bottom wall of the main control cavity. Two third conductive blocks and one fourth conductive block are fixedly connected through the sliding plate. A fifth conductive block is fixedly connected to the top wall of the main control cavity. Multiple springs are fixedly connected between the sliding plate, the magnetic block, and the inner wall of the main control cavity. A first solenoid valve and a third solenoid valve are respectively installed in the two exhaust pipes. A second solenoid valve and a fourth solenoid valve are respectively installed in the two air inlet pipes. A fifth solenoid valve is installed in the air pipe. The first, third, second, fourth, and fifth solenoid valves, the magnetic pump, the second, third, and fourth conductive blocks are electrically connected via wires. The first conductive blocks are connected to the positive and negative terminals of the power supply via wires.
[0013] Furthermore, a balance tube is fixed through the body, which connects the two liquid chambers, and an ultrafiltration membrane is installed inside the balance tube.
[0014] Furthermore, the side wall of the fixed cover has multiple through holes, and a filter screen is fixedly embedded in the through holes.
[0015] Furthermore, the magnetic block is made of ferrite magnet, the slide plate is made of ceramic material, and the inner wall of the main control cavity is coated with an insulating coating.
[0016] Furthermore, a support frame is fixedly connected to the inner wall of the groove by a rod, and the rotating shaft is rotatably connected to the support frame by a bearing.
[0017] Furthermore, the side walls of the treatment room are all coated with a polyurethane coating.
[0018] The present invention has the following advantages:
[0019] 1. The dehumidification and regeneration parts of traditional dehumidifying air conditioners are combined and integrated into the same unit, making the installation, disassembly and transportation of dehumidifying air conditioners more convenient;
[0020] 2. By setting up two sets of fixed pipes, three-way pipes, and air inlet pipes, and coordinating with the control mechanism, different airflows are regulated to enter the indoor pipe, so that the dehumidifying air conditioner can not only dehumidify the room, but also humidify the room, making the functions of the dehumidifying air conditioner more comprehensive.
[0021] 3. The dehumidifying solution is sprayed from top to bottom through the nozzle, while the airflow direction is from bottom to top, opposite to the solution spraying direction, forming a counter-current contact form. This makes the contact time between the airflow and the solution longer and the contact area larger, thus achieving a better dehumidification and humidification effect.
[0022] 4. Through the setting of the control mechanism, not only can humidification and dehumidification be controlled, but also the number of working magnetic pumps can be controlled according to different humidity levels. This allows for control of different working states of the air conditioner at different humidity levels, avoiding high energy consumption when the equipment is running at full capacity, and making the air conditioner more energy-efficient.
[0023] 5. The control of the air conditioner is achieved by sensing humidity with a humidity-sensitive resistor and feeding back the magnitude of the magnetic force of an electromagnet. Compared with control methods using sensors and complex circuits, this method is less complex and less expensive, resulting in a lower failure rate. Attached Figure Description
[0024] Figure 1 This is a schematic diagram of the overall structure of a multifunctional solution dehumidification air conditioner proposed in this invention;
[0025] Figure 2 This is a schematic diagram of the internal structure of a multifunctional solution dehumidification air conditioner proposed in this invention, taken from a longitudinal section.
[0026] Figure 3 for Figure 2 Enlarged view of point A in the image;
[0027] Figure 4 for Figure 2 Enlarged view of point B in the image;
[0028] Figure 5 for Figure 2 Enlarged view of point C in the image;
[0029] Figure 6 This is a schematic diagram of the internal structure of a multifunctional solution dehumidification air conditioner proposed in this invention, shown in both longitudinal and transverse planes.
[0030] Figure 7 This is a schematic diagram of the internal structure of a multifunctional solution dehumidification air conditioner proposed in this invention, viewed from another horizontal plane.
[0031] In the diagram: 1. Body, 2. Groove, 3. Fixing cover, 301. Through hole, 302. Filter screen, 4. Servo motor, 5. Rotating shaft, 6. Support frame, 7. Exhaust fan, 8. Treatment chamber, 9. Connecting pipe, 10. Fixing pipe, 11. T-connector, 12. Air inlet pipe, 13. Indoor pipe, 14. Exhaust pipe, 15. Liquid chamber, 16. Equipment chamber, 17. Compressor, 18. Refrigerant pipe, 19. Heat exchanger, 20. Intermediate pipe, 21. Magnetic pump, 22. Liquid inlet pipe, 23. Liquid outlet pipe, 24. Fixing block, 25. Spray. 26. Pipe, 27. Atomizing nozzle, 28. Heat-conducting block, 29. Balance pipe, 30. Flow hole, 31. Air pipe, 32. Main control chamber, 33. Electromagnet, 34. Humidity-sensitive resistor, 35. Vertical rod, 36. Magnetic block, 37. First conductive block, 38. Second conductive block, 49. Slide plate, 40. Third conductive block, 41. Fourth conductive block, 42. Fifth conductive block, 43. First solenoid valve, 44. Second solenoid valve, 45. Fourth solenoid valve, 46. Fifth solenoid valve, 47. Spring. Detailed Implementation
[0032] 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.
[0033] Example
[0034] Reference Figures 1 to 7 A multifunctional solution dehumidification air conditioner includes a body 1, a fixed cover 3 is fixedly connected to the upper surface of the body 1, a servo motor 4 is fixedly connected to the upper surface of the fixed cover 3 through a bracket, and an equipment cavity 16 and two treatment chambers 8 and a liquid cavity 15 are opened inside the body 1.
[0035] An air handling unit is installed inside the body 1. The air handling unit consists of an airflow component, a heating and cooling component, and a humidity component. The airflow component includes two fixed pipes 10, which are fixedly connected to the body 1. A three-way pipe 11 is fixedly connected to the fixed pipe 10. The other two ports of the three-way pipe 11 are fixedly connected to an exhaust pipe 14 and an air inlet pipe 12, respectively. The two air inlet pipes 12 are fixedly connected to an indoor pipe 13, which is connected to the main pipe that introduces air into the room. The heating and cooling component includes a compressor 17, which is fixedly connected inside the equipment cavity 16. The humidity component includes two magnetic pumps 21, which are fixedly connected inside the equipment cavity 16. An air pipe 30 is fixedly connected to the body 1, which connects one of the treatment chambers 8 to the liquid chamber 15.
[0036] The body 1 is equipped with a control mechanism, which includes a humidity-sensitive resistor 33. The resistance of the humidity-sensitive resistor 33 can change with the humidity. The higher the humidity, the lower its resistance. The humidity-sensitive resistor 33 is fixedly connected to the top wall inside the fixed cover 3. The body 1 is provided with a main control cavity 31. An electromagnet 32 is fixedly connected to the bottom wall inside the main control cavity 31. The electromagnet 32 and the humidity-sensitive resistor 33 are electrically connected through wires.
[0037] The airflow assembly also includes a groove 2, which is opened inside the body 1. A fixed cover 3 is rotatably connected to a rotating shaft 5 via a bearing. One end of the rotating shaft 5 is fixedly connected to the output shaft of the servo motor 4, and the other end extends through into the groove 2 and is fixedly connected to an exhaust fan 7. Two connecting pipes 9 are fixedly connected through the body 1, and the two connecting pipes 9 connect the corresponding treatment chamber 8 to the groove 2.
[0038] The heating and cooling system also includes two heat exchangers 19, which are fixedly connected to the two treatment chambers 8 respectively. A middle pipe 20 is fixedly connected through the body 1, which connects the two heat exchangers 19. A heat-conducting block 27 is fixedly connected between the top wall and the bottom wall of the equipment cavity 16. The heat-conducting block 27 is a hollow structure. The input end and output end of the compressor 17 are fixedly connected through the side wall of the corresponding heat-conducting block 27 respectively. A refrigerant pipe 18 is fixedly connected through the body 1 and the heat-conducting block 27. The refrigerant pipe 18 connects the corresponding heat-conducting block 27 to the heat exchanger 19. After the compressor 17 compresses the refrigerant, it is discharged from its right side and flows back from its left side.
[0039] The humidity control unit also includes two inlet pipes 22, one end of which is fixedly connected to the input end of the corresponding magnetic pump 21, and the other end extends through into the corresponding liquid chamber 15. An outlet pipe 23 is fixedly connected to the output end of the magnetic pump 21. The outlet pipe 23 coils in a "serpentine" shape as it passes the heat-conducting block 27, increasing the contact area with the heat-conducting block 27. A fixing block 24 is fixedly connected to the inner wall of the treatment chamber 8. The fixing block 24 is a grid type (e.g., ...). Figure 6As shown), the fixed block 24 is a hollow structure. The liquid outlet pipe 23 is fixedly connected to the side wall of the corresponding fixed block 24. Multiple spray pipes 25 are fixedly connected to the bottom wall of the fixed block 24. An atomizing nozzle 26 is fixedly connected to one end of the spray pipe 25 outside the fixed block 24. The body 1 has two flow holes 29, which connect the corresponding treatment chamber 8 to the liquid chamber 15. The liquid chamber 15 is filled with a dehumidifying solution, which is a mixed salt solution of lithium chloride, calcium chloride, and lithium bromide. The magnetic pump 21 on the right is started, drawing the dehumidifying solution in the liquid chamber 15 through the liquid inlet pipe 22. The air is pumped into the fixed block 24 through the outlet pipe 23. Before entering the fixed block 24, it is cooled by the heat-conducting block 27 to improve its adsorption capacity. Then it enters the spray pipe 25 from the fixed block 24 and is atomized and sprayed out through the atomizing nozzle 26. After the air is condensed and dehumidified, it comes into contact with the dehumidifying solution for solution dehumidification. The solution is atomized and sprayed out from top to bottom, while the airflow is from bottom to top, thus forming a countercurrent contact. Through the combination of countercurrent contact and atomized spraying, the contact time and contact area between the airflow and the solution are greatly increased, thereby improving the solution dehumidification effect.
[0040] The control mechanism also includes two vertical rods 34, which are fixedly connected between the top and bottom walls of the main control cavity 31. The two vertical rods 34 are slidably connected to a magnetic block 35 and a sliding plate 38. The magnetic block 35 is fixedly connected to two first conductive blocks 36. Two second conductive blocks 37 are fixedly connected to the bottom wall of the main control cavity 31. The sliding plate 38 is fixedly connected to two third conductive blocks 39 and one fourth conductive block 40. A fifth conductive block 41 is fixedly connected to the top wall of the main control cavity 31. Multiple springs 47 are fixedly connected between the sliding plate 38, the magnetic block 35, and the inner wall of the main control cavity 31. A first solenoid valve 42 and a third solenoid valve 44 are respectively installed in the two exhaust pipes 14. (Refer to...) Figure 1 The right-side exhaust duct 14 is equipped with a first solenoid valve 42, the left-side exhaust duct 14 is equipped with a third solenoid valve 44, and the two air inlet ducts 12 are equipped with a second solenoid valve 43 and a fourth solenoid valve 45, respectively. (Refer to...) Figure 1A second solenoid valve 43 is installed in the right-side air inlet pipe 12, and a fourth solenoid valve 45 is installed in the left-side air inlet pipe 12. The second solenoid valve 43 and the third solenoid valve 44 are normally open solenoid valves, closing when energized. The first solenoid valve 42 and the fourth solenoid valve 45 are normally closed solenoid valves, opening when energized. A fifth solenoid valve 46 is installed in the air pipe 30. The fifth solenoid valve 46 is a normally open solenoid valve, closing when energized. The first solenoid valve 42, the third solenoid valve 44, the second solenoid valve 43, the fourth solenoid valve 45, and the fifth solenoid valve... 46. Magnetic pump 21, second conductive block 37, third conductive block 39, and fourth conductive block 40 are electrically connected by wires. First conductive block 36 is connected to the positive and negative terminals of the power supply by wires. When two first conductive blocks 36 are in contact with two second conductive blocks 37, the first solenoid valve 42, third solenoid valve 44, second solenoid valve 43, fourth solenoid valve 45, fifth solenoid valve 46, and magnetic pump 21 will be energized. When two first conductive blocks 36 are in contact with two third conductive blocks 39, the following will occur: Figure 2 When the magnetic pump 21 on the right is energized, if the third conductive block 39 and the fourth conductive block 40 are in contact at the same time, the magnetic pump 21 on the left and the fifth solenoid valve 46 will be energized synchronously. Both magnetic pumps 21 have two sets of input and output terminals. The change in humidity causes the magnetic force of the electromagnet 32 to change, which in turn causes the position of the magnetic block 35 to change, thus changing the working state of the air conditioner. The air conditioner can then perform condensation dehumidification only or condensation and solution combination dehumidification according to the humidity. The regeneration method is simply to heat the dehumidification solution and perform condensation and solution combination dehumidification. The regeneration method is upgraded to atomization heating regeneration, which ensures that the air conditioner is always in the best working state, avoids excessive energy waste, and is more energy-efficient.
[0041] It is worth mentioning that the present invention uses a humidity-sensitive resistor 33 to sense humidity and feeds back the magnitude of the magnetic force of an electromagnet 32 to control the air conditioner. Compared with control methods using sensors and complex circuits, it is less complex and less expensive, thus resulting in a lower failure rate.
[0042] The body 1 is fixed with a balance tube 28, which connects the two liquid chambers 15. An ultrafiltration membrane is installed inside the balance tube 28. The ultrafiltration membrane only allows water molecules and ions in the salt solution to pass through, and prevents other substances from passing through, so that the concentration between the two liquid chambers 15 reaches a real-time balance.
[0043] The side wall of the fixed cover 3 has multiple through holes 301, and a filter screen 302 is fixedly embedded in the through holes 301. The filter screen 302 prevents external dust from entering the machine body 1 and affecting the internal equipment.
[0044] The magnetic block 35 is made of ferrite magnet. The magnetic block 35 made of ferrite magnet has better insulation performance, which avoids the misleading conduction of the two first conductive blocks 36 and the resulting short circuit. The slide plate 38 is made of ceramic material. The ceramic material slide plate 38 has better insulation ring performance, which avoids the misleading conduction of the two third conductive blocks 39 and the fourth conductive block 40. The inner wall of the main control cavity 31 is coated with an insulating coating. The insulating coating on the inner wall of the main control cavity 31 avoids the misleading conduction of the first conductive block 36 and the fifth conductive block 41.
[0045] The inner wall of the groove 2 is fixedly connected to the support frame 6 by a rod. The rotating shaft 5 is rotatably connected to the support frame 6 by a bearing. The support frame 6 makes the rotation of the fan 7 driven by the rotating shaft 5 more stable, avoiding excessive vibration during rotation and affecting the service life.
[0046] The inner walls of the treatment chamber 8 are all coated with polyurethane. The polyurethane coating can block the heat exchange between the treatment chamber 8 and the outside, thereby making the temperature inside the treatment chamber 8 more stable and preventing heat loss.
[0047] In this invention, during the operation of the air conditioner, the servo motor 4 drives the exhaust fan 7 to rotate via the rotating shaft 5. The rotation of the exhaust fan 7 introduces outside air into the groove 2, and then enters the two treatment chambers 8 through the two connecting pipes 9. When the outside air enters the fixed cover 3, it passes through the humidity-sensitive resistor 33, and the resistance of the humidity-sensitive resistor 33 changes with the change of air humidity.
[0048] When the humidity is high, the change in resistance of the humidity-sensitive resistor 33 causes a change in the magnetic force of the electromagnet 32. The magnetic repulsion of the electromagnet on the magnetic block 35 causes the magnetic block 35 to slide, thus placing the magnetic block 35 between the second conductive block 37 and the third conductive block 39. At this time, the first conductive block 36 is neither in contact with the second conductive block 37 nor the third conductive block 39, so neither of the two magnetic pumps 21 starts, while the compressor 17 works, causing the refrigerant to circulate. The refrigerant absorbs heat at the right heat exchanger 19 and releases heat at the left heat exchanger 19. Air enters the right treatment chamber 8 and encounters cold air at the right heat exchanger 19, causing water vapor to condense. The air then enters the left treatment chamber 8, carrying away the heat from the heat exchanger 19, thus cooling the refrigerant. After condensation and dehumidification, the air enters the indoor pipe 13 through the right fixed pipe 10, the three-way pipe 11, and the air inlet pipe 12, and then enters the room. At this time, the machine only performs condensation dehumidification.
[0049] When the humidity is high, the resistance of the humidity-sensitive resistor 33 decreases further, thereby increasing the magnetic repulsion of the electromagnet 32 on the magnetic block 35. This causes the first conductive block 36 to come into contact with the third conductive block 39. At this time, the magnetic pump 21 on the right side starts, drawing the dehumidifying solution in the liquid chamber 15 out through the inlet pipe 22 and then pumping it into the fixed block 24 through the outlet pipe 23. Before entering the fixed block 24, the solution is cooled by the heat-conducting block 27 to improve its adsorption capacity. Then, it enters the spray pipe 25 from the fixed block 24 and passes through the atomizing nozzle 26. The atomized air is sprayed out, and after being condensed and dehumidified, it comes into contact with the dehumidifying solution for solution dehumidification. Then, it enters the indoor pipe 13 through the fixed pipe 10, the three-way pipe 11, and the air inlet pipe 12 on the right side, and then enters the room. At this time, the magnetic pump 21 on the left side does not start. The air entering the treatment chamber 8 on the left side absorbs heat and enters the dehumidifying solvent in the liquid chamber 15 on the left side through the air pipe 30, raising its temperature and removing the moisture inside the dehumidifying solvent. At this time, the machine performs condensation and solution combined dehumidification, and the regeneration method is only to raise the temperature of the dehumidifying solution.
[0050] When the humidity is extremely high, the resistance of the humidity-sensitive resistor 33 decreases further, which increases the magnetic repulsion of the electromagnet 32 on the magnetic block 35. At this time, the slide plate 38 is pushed upward, causing the fourth conductive block 40 to contact the fifth conductive block 41, thereby energizing and closing the fifth solenoid valve 46. Simultaneously, the magnetic pump 21 on the left side also starts. While the right treatment chamber 8 performs condensation and solution dehumidification, the magnetic pump 21 on the left side atomizes and sprays out the dehumidification solution in the left liquid chamber 15, allowing it to fully contact with hot air. That is, at this time, the machine performs condensation and solution combined dehumidification, and the regeneration method is upgraded to atomized heating regeneration, improving the regeneration efficiency.
[0051] When the humidity is low, the resistance of the humidity-sensitive resistor 33 is relatively high. The magnetic repulsion of the electromagnet 32 on the magnetic block 35 is insufficient to overcome the elastic force of the spring 47, thus preventing the magnetic block 35 from sliding. At this time, the first conductive block 36 and the second conductive block 37 come into contact. The first solenoid valve 42 and the fourth solenoid valve 45 are energized and opened, while the second solenoid valve 43 and the third solenoid valve 44 are energized and closed. At the same time, the two magnetic pumps 21 start simultaneously. The air entering from the left side comes into contact with the pumped dehumidification solution, absorbing the moisture inside. Then, it enters the indoor pipe 13 through the fixed pipe 10, the three-way pipe 11, and the air inlet pipe 12 on the right side, thus entering the room to humidify the room.
[0052] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A multifunctional solution dehumidification air conditioner, comprising a body, characterized in that, A fixed cover is fixedly connected to the upper surface of the machine body, and a servo motor is fixedly connected to the upper surface of the fixed cover via a bracket. The machine body has an equipment cavity and two treatment chambers and a liquid cavity. The machine body is equipped with an air handling mechanism, which consists of an airflow component, a heating / cooling component, and a humidity component. The airflow component includes two fixed pipes that are fixedly connected to the machine body. A T-junction is fixedly connected to each fixed pipe, and the other two ports of the T-junction are respectively fixedly connected to an exhaust pipe and an intake pipe. Both intake pipes are fixedly connected to an indoor pipe. The heating / cooling component includes a compressor fixedly connected inside the equipment cavity. The heating / cooling component also includes two heat exchangers fixedly connected to two treatment chambers. The machine body... A central pipe is fixedly connected through the device, connecting the two heat exchangers. A heat-conducting block with a hollow structure is fixedly connected between the top and bottom walls of the device cavity. The input and output ends of the compressor are fixedly connected through the corresponding side walls of the heat-conducting block. A refrigerant pipe is fixedly connected through the device body and the heat-conducting block, connecting the corresponding heat-conducting block to the heat exchanger. The humidity component includes two magnetic pumps fixedly connected inside the device cavity. A gas pipe is fixedly connected through the device body, connecting one of the treatment chambers to the liquid chamber. The machine body is provided with a control mechanism, which includes a humidity-sensitive resistor. The humidity-sensitive resistor is fixedly connected to the top wall inside the fixed cover. The machine body has a main control cavity. An electromagnet is fixedly connected to the bottom wall inside the main control cavity. The electromagnet and the humidity-sensitive resistor are electrically connected through wires. The airflow assembly also includes a groove formed within the machine body. A rotating shaft is rotatably connected to the fixed cover via a bearing. One end of the rotating shaft is fixedly connected to the output shaft of a servo motor, and the other end extends through the groove and is fixedly connected to an exhaust fan. Two connecting pipes are fixedly connected through the machine body, connecting the corresponding treatment chamber to the groove. The humidity assembly also includes two liquid inlet pipes, one end of which is fixedly connected to the input end of a corresponding magnetic pump, and the other end extends through the corresponding liquid chamber. A liquid outlet pipe is fixedly connected to the output end of the magnetic pump. A fixed block, which is hollow, is fixedly connected to the inner side wall of the treatment chamber. The liquid outlet pipe is fixedly connected through the side wall of the corresponding fixed block. Multiple spray pipes are fixedly connected through the bottom wall of the fixed block, with an atomizing nozzle fixedly connected to one end of each spray pipe outside the fixed block. Two flow holes are formed within the machine body, connecting the corresponding treatment chamber to the liquid chamber. The cavity is filled with a dehumidifying solution. The control mechanism also includes two vertical rods, which are fixedly connected between the top wall and the bottom wall of the main control cavity. The two vertical rods are slidably connected to a magnetic block and a sliding plate. The magnetic block is fixedly connected to two first conductive blocks. The bottom wall of the main control cavity is fixedly connected to two second conductive blocks. The sliding plate is fixedly connected to two third conductive blocks and one fourth conductive block. The top wall of the main control cavity is fixedly connected to a fifth conductive block. Multiple springs are fixedly connected between the sliding plate, the magnetic block, and the inner wall of the main control cavity. The two exhaust pipes are respectively equipped with a first solenoid valve and a third solenoid valve. The two air inlet pipes are respectively equipped with a second solenoid valve and a fourth solenoid valve. The air pipe is equipped with a fifth solenoid valve. The first solenoid valve, the third solenoid valve, the second solenoid valve, the fourth solenoid valve, the fifth solenoid valve, the magnetic pump, the second conductive block, the third conductive block, and the fourth conductive block are electrically connected by wires. The first conductive block is connected to the positive and negative terminals of the power supply by wires.
2. The multifunctional solution dehumidification air conditioner according to claim 1, characterized in that, The body is fixed with a balance tube that connects two liquid chambers, and an ultrafiltration membrane is installed inside the balance tube.
3. The multifunctional solution dehumidification air conditioner according to claim 1, characterized in that, The side wall of the fixed cover has multiple through holes, and a filter screen is fixedly embedded in each of the through holes.
4. A multifunctional solution dehumidification air conditioner according to claim 1, characterized in that, The magnetic block is made of ferrite magnet, the slide plate is made of ceramic material, and the inner wall of the main control cavity is coated with an insulating coating.
5. A multifunctional solution dehumidification air conditioner according to claim 1, characterized in that, The inner wall of the groove is fixedly connected to a support frame by a rod, and the rotating shaft is rotatably connected to the support frame by a bearing.
6. A multifunctional solution dehumidification air conditioner according to claim 1, characterized in that, The side walls of the treatment room are all coated with polyurethane.
Citation Information
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