Energy-saving mobile integrated intelligent air conditioner
By designing the structure of the movable plate and atomizing nozzle in the air conditioner, efficient refrigeration in large spaces and open-air places is achieved, solving the problems of poor cooling effect and high energy consumption of existing air conditioners, and achieving energy-saving refrigeration effect.
Patent Information
- Application Number
- CN202510999198.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-21
- Publication Date
- 2025-09-02
AI Technical Summary
Existing air conditioners have poor cooling effects and high energy consumption in large spaces and open-air places.
An energy-saving mobile integrated intelligent air conditioner is designed. The condensed water is sent into the cold water tank through the reciprocating movement of the movable plate, and the condensed water is replenished and cooled by the throttling capillary, and the condensed water is atomized and sprayed out through the atomization spray head to evaporate and absorb heat, improving the cooling effect.
Increase the cooling capacity, improve the cooling effect of large spaces and open-air places, and reduce energy consumption.
Smart Images

Figure CN120576483A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of energy-saving air conditioners, and in particular to an energy-saving mobile integrated intelligent air conditioner. Background Art
[0002] Air conditioners are common household appliances. Their refrigeration system consists of a compressor, condenser, evaporator, expansion valve, fan, and control components. Portable air conditioners are portable and can be moved around freely. They require no external unit and simply plug in to operate. They exhaust hot air through an exhaust duct, achieving rapid local cooling.
[0003] With rising temperatures in recent years, air conditioning is increasingly being used in venues such as food stalls and open-air exhibitions. However, current commercially available air conditioners offer poor cooling performance in large spaces and some outdoor venues, and consume high amounts of energy. Therefore, there is an urgent need for an energy-saving, mobile, integrated, intelligent air conditioner. Summary of the Invention
[0004] The purpose of the present invention is to solve the shortcomings of the prior art and to propose an energy-saving mobile integrated intelligent air conditioner.
[0005] In order to achieve the above object, the present invention adopts the following technical solutions: An energy-saving mobile integrated intelligent air conditioner comprises a body, an evaporator is provided inside the body, a water receiving frame is installed at the bottom of the evaporator, a water receiving frame is vertically movably provided at the lower groove of the water receiving frame, the water receiving frame is connected to a cold water tank through a horizontal pipe, and a throttling capillary is immersed in the cold water tank; The movable plate is located outside the water receiving frame and is fixedly connected to the water receiving frame. Both sides of the movable plate are connected to the counterweight magnetic block through a traction rope, and the middle part of the traction rope is hung on the bottom of the top plate through multiple guide rope rings. Both sides of the water holding frame are provided with inclined guides with floating blocks, and reset columns and linkage rods are installed on the floating blocks. High-position clamps and low-position clamps are installed on both sides of the low groove. The water holding frame is provided with corresponding card slots, and the high-position clamps and low-position clamps are provided with reset pieces adapted to the reset columns. One side of the linkage horizontal frame is linked to the linkage rod through the linkage vertical frame, and the other side of the linkage horizontal frame is installed with a magnetic isolation plate, and the magnetic isolation plate is located below the counterweight magnetic block and moves; The connecting pipes are respectively installed on both sides of the cold water tank, and a water storage pipe is connected to the connecting pipe. An atomizing nozzle is installed on one side of the water storage pipe, and a pressure pipe is installed on the other side of the water storage pipe. The water storage pipe and the pressure pipe are driven to work by the reciprocating movement of the movable plate.
[0006] In addition, the preferred structure is that a middle plate is installed inside the body, a compressor, a condenser and a condensing fan are installed below the middle plate in the body, a throttling capillary, an evaporator and an evaporating fan are installed above the middle plate in the body, and the evaporating fan is installed on the middle plate through a frame.
[0007] In addition, the preferred structure is that the water receiving frame is installed at the bottom of the evaporator, a low trough is provided inside the water receiving frame, a water holding frame is vertically movably provided in the low trough, a horizontal pipe is provided on the water receiving frame above the low trough, and the other end of the horizontal pipe extends into the cold water tank.
[0008] In addition, the preferred structure is that a plurality of first guide columns and second guide columns are fixed vertically upward on both sides of the cross tube on the middle plate, the tops of the first guide columns and the second guide columns on each side are connected to the top plate, the movable plate is guided and moved by the first guide columns, and the counterweight magnetic blocks are guided and moved by the second guide columns.
[0009] In addition, a preferred structure is that a plurality of guide rope rings are fixedly installed on the bottom of the top plate, traction ropes are installed on both sides of the movable plate, the other ends of the traction ropes are connected to the counterweight magnetic blocks after passing through the guide rope rings, and a bottom magnetic block is installed on the middle plate below the counterweight magnetic block, and the bottom magnetic block and the counterweight magnetic block are adapted to repel each other; A magnetic isolation plate is installed on one side of the linkage horizontal frame. The magnetic isolation plate is located between the bottom magnetic block and the counterweight magnetic block. A release cavity is opened on the magnetic isolation plate, and the other side of the linkage horizontal frame is fixedly connected to the linkage vertical frame.
[0010] In addition, the preferred structure is that two fixed seats are installed on both sides of the low groove, and high-position clips and low-position clips are respectively installed on the two fixed seats on each side, and matching high-position clips and low-position clips are respectively opened on the outer walls on both sides of the water frame corresponding to the high-position clips and low-position clips. A side guide column is fixedly installed between the two fixed seats on each side, and the linkage uprights are guided and moved by the side guide columns.
[0011] In addition, the preferred structure is that inclined guide grooves are provided on the inner walls on both sides of the water holding frame, and the corresponding guide grooves on the floating block are adapted to be provided with guide parts. The floating block is connected to the reset column through a connecting frame, and the reset columns are all located on the outside of the water holding frame, and the corresponding reset columns on the high-position card and the low-position card are adapted to be provided with reset parts.
[0012] In addition, the preferred structure is that connecting pipes are installed on both sides of the cold water tank, and a connecting water storage pipe is installed on one side of the end of the connecting pipe. A water-containing baffle is vertically movably arranged between the connecting pipe and the water storage pipe, a water-containing part is fixedly installed on the bottom of the water-containing baffle, and a hook is installed on the top of the water-containing baffle.
[0013] In addition, the preferred structure is that an atomizing nozzle is installed at one end of the water storage pipe, and a connected pressurized pipe is installed at the other end of the water storage pipe, a baffle cavity is opened on the pressurized pipe, and a pressurized baffle is vertically movably arranged in the baffle cavity, a reset pressure column is fixedly arranged on one side of the top of the pressurized baffle, and a mother magnetic plate is fixedly arranged on the other side, a through cavity is opened at the top of the pressurized pipe below the mother magnetic plate, a silicone part is installed on the outside of the through cavity, and a sub-magnetic plate is fixedly installed on the connecting pipe, and the sub-magnetic plate is located above the mother magnetic plate and is adapted to be attracted to it.
[0014] In addition, the preferred structure is that an air pump is provided on one side of the connecting pipe above the middle plate, and an air pump rod is movably provided on the top of the air pump. The air pump is connected to the pressurized pipe through an air pipe, and a first side plate is adapted to be provided on both sides of the movable plate corresponding to the air pump rod, and a second side plate is adapted to be provided on both sides of the movable plate corresponding to the hook, and a pressure piece adapted to the reset pressure column is fixedly installed on the counterweight magnetic block.
[0015] The beneficial effects of the present invention are as follows: through the reciprocating movement of the movable plate, the condensed water in the water receiving frame can be sent into the cold water tank, and by immersing most of the throttling capillary tube in the cold water tank, secondary cooling and cooling can be achieved, thereby increasing the cooling capacity, and the condensed water is atomized and sprayed out through the atomizing nozzle, and the water mist evaporates and absorbs heat in the external environment, which can further reduce the external ambient temperature, thereby improving the cooling effect of the device in large spaces and some open-air places. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 This is a structural diagram of an energy-saving mobile integrated intelligent air conditioner proposed by the present invention; Figure 2 This is a schematic diagram of the internal structure of the machine body proposed in the present invention; Figure 3 It is a schematic diagram of the structure above the middle plate proposed in the present invention; Figure 4 for Figure 3 Schematic diagram of the structure after the evaporation fan is hidden; Figure 5 for Figure 4 Schematic diagram of the structure after the evaporator is hidden; Figure 6 for Figure 5 Schematic diagram of the structure after the middle plate is hidden; Figure 7 This is a structural diagram of the water receiving frame, movable plate and linkage horizontal frame proposed in the present invention; Figure 8 It is a structural schematic diagram of the movable plate, linkage horizontal frame and top plate proposed in the present invention; Figure 9 for Figure 8 A schematic diagram of the structure when the water holding frame in FIG. 1 moves upward; Figure 10 This is a bottom-up structural schematic diagram of the top plate proposed in the present invention; Figure 11 It is a structural schematic diagram of the movable plate proposed in the present invention; Figure 12 It is a structural schematic diagram of the floating block proposed in the present invention; Figure 13 This is a schematic structural diagram of the water holding frame proposed in the present invention; Figure 14 It is a structural diagram of the linkage horizontal frame proposed in the present invention; Figure 15 It is a structural schematic diagram of the fixing seat proposed in the present invention; Figure 16 This is a schematic structural diagram of the water receiving frame and cold water tank proposed in the present invention; Figure 17 This is a schematic diagram of the structure of the connecting pipe, water-containing baffle, water storage pipe, atomizing nozzle, pressurizing pipe and air pump proposed in the present invention; Figure 18 This is a schematic diagram of the internal structure of the connecting pipe, water-containing baffle and water storage pipe proposed in the present invention; Figure 19 for Figure 18 A schematic diagram of the structure when the water baffle moves upward; Figure 20 This is a schematic structural diagram of the water-containing baffle proposed in the present invention; Figure 21 This is a schematic structural diagram of the connecting pipe, pressurizing pipe and air pump proposed in the present invention; Figure 22 A schematic diagram of the explosion structure between the pressurized pipe, the pressurized baffle and the silicone member proposed in the present invention; Figure 23 It is a schematic diagram of the structure between the movable plate, counterweight magnetic block, air pumping rod, hook and reset pressure column proposed in the present invention.
[0017] In the figure: 1 body, 11 middle plate, 12 compressor, 13 condenser, 131 condensing fan, 14 throttling capillary, 15 evaporator, 151 evaporating fan, 16 frame, 2 water receiving frame, 21 low groove, 22 horizontal pipe, 23 fixed seat, 231 side guide column, 232 high clamp, 233 low clamp, 234 reset member, 3 movable plate, 31 first side plate, 32 second side plate, 33 water frame, 331 guide groove, 332 high clamp, 333 low clamp, 34 floating block, 341 guide, 342 connecting frame, 343 reset column, 344 connecting Moving rod, 4 cold water tank, 41 connecting pipe, 411 sub-magnetic plate, 42 water holding baffle, 421 water holding part, 422 hook, 43 water storage pipe, 44 atomizing nozzle, 45 pressurized pipe, 451 baffle cavity, 452 pressurized baffle, 453 reset pressure column, 454 mother magnetic plate, 455 silicone part, 46 air pump, 461 air pump rod, 5 linkage horizontal frame, 51 magnetic isolation plate, 52 release cavity, 53 linkage vertical frame, 6 top plate, 61 first guide column, 62 second guide column, 63 guide rope ring, 631 traction rope, 64 counterweight magnetic block, 641 pressure piece, 65 bottom magnetic block. DETAILED DESCRIPTION
[0018] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.
[0019] See Figure 1-4 A middle plate 11 is fixedly provided inside the body 1, and a compressor 12, a condenser 13 and a condensing fan 131 are installed below the middle plate 11 in the body 1. A throttling capillary 14, an evaporator 15 and an evaporating fan 151 are installed above the middle plate 11 in the body 1, and the evaporating fan 151 is installed on the middle plate 11 through a frame 16.
[0020] When the device is in operation, compressor 12 drives the refrigerant through the pipeline, passing through condenser 13, throttling capillary tube 14, and evaporator 15 in sequence, and then returning to compressor 12 to achieve refrigerant circulation. The heat generated in condenser 13 is discharged from the top of the machine body 1 by condensing fan 131, and the cold air generated in evaporator 15 is discharged from the front of the machine body 1 by evaporating fan 151. It is worth noting that the specific structures of compressor 12, condenser 13, condensing fan 131, throttling capillary tube 14, evaporator 15, and evaporating fan 151, as well as their operating refrigeration methods, are all prior art and therefore will not be described in detail.
[0021] See Figure 5-616, a water receiving frame 2 is fixedly mounted on the middle plate 11, and an evaporator 15 is mounted above the water receiving frame 2. As the evaporator 15 operates, condensed water is generated and drips into the water receiving frame 2. This is prior art and will not be described in detail.
[0022] The condensed water in the water receiving frame 2 then flows into the cold water tank 4 through the horizontal pipe 22, and the throttling capillary 14 passes through the cold water tank 4. In this way, most of the throttling capillary 14 can be immersed in the condensed water naturally generated by the evaporator 15 to form secondary cooling and cooling, thereby increasing the cooling capacity and achieving better use effect.
[0023] It is worth noting that overflow drainage pipes are provided in the water receiving frame 2 and the cold water tank 4 so that excess condensed water can be discharged when the device continues to work. This is existing technology and will not be elaborated on.
[0024] See Figure 7-15 A low groove 21 is provided inside the water receiving frame 2, and slopes are provided on both sides of the low groove 21 in the water receiving frame 2, so that the condensed water collected in the water receiving frame 2 can be guided into the low groove 21 through the slopes.
[0025] A water collecting frame 33 is vertically movable in the low trough 21, and the water collecting frame 33 is fixedly connected to the movable plate 3. Through the vertical movement of the water collecting frame 33, the condensed water in the low trough 21 can be collected upward into the horizontal pipe 22, so that the condensed water can enter the cold water tank 4 through the horizontal pipe 22.
[0026] Among them, two fixed seats 23 are installed on both sides of the low groove 21, and a high-position clip 232 and a low-position clip 233 are respectively installed on the two fixed seats 23 on each side. The outer walls on both sides of the water frame 33 are respectively provided with adaptive high-position clips 332 and low-position clips 333 corresponding to the high-position clips 232 and the low-position clips 233.
[0027] When the water frame 33 is at its lowest position, the lower latch 233 and the lower latching slot 333 engage to secure the water frame 33 at its lowest position. When the water frame 33 is at its highest position, the upper latch 232 and the upper latching slot 332 engage to secure the water frame 33 at its highest position. Both the upper latch 232 and the lower latch 233 are wedge-shaped, elastic members. Therefore, the water frame 33 automatically engages simply by moving it to the designated position.
[0028] The inner walls of both sides of the water frame 33 are provided with inclined guide grooves 331, and the corresponding guide grooves 331 are adapted to be provided on the float 34. A plurality of guide rods are fixedly installed in the guide grooves 331, and the guide rods guide the guide members 341 to ensure the stability of the float 34 during movement.
[0029] The float 34 is connected to the reset column 343 through the connecting frame 342 . The reset column 343 is located outside the water holding frame 33 , and the corresponding reset columns 343 on the high-position clamp 232 and the low-position clamp 233 are adapted to be provided with a reset component 234 .
[0030] When condensed water is contained in the water holding frame 33, the float 34 can automatically move obliquely upward by buoyancy. When the condensed water in the water holding frame 33 flows out, the float 34 can gradually move obliquely downward and reset by gravity.
[0031] This allows the float 34 to tilt up and down due to the buoyancy of the water, driving the reset post 343 to move synchronously. The movement of the reset post 343 can thus release the jamming of the water frame 33 caused by the high-position clamp 232 or the low-position clamp 233. It is worth noting that a certain gap is provided between the high-position clamp 232, the low-position clamp 233, and the water frame 33 to ensure the movement of the reset post 343.
[0032] Among them, a magnetic isolation plate 51 is installed on one side of the linkage horizontal frame 5, and the magnetic isolation plate 51 is located between the bottom magnetic block 65 and the counterweight magnetic block 64. A release cavity 52 is opened on the magnetic isolation plate 51, and the other side of the linkage horizontal frame 5 is fixedly connected to the linkage vertical frame 53.
[0033] Since the linkage rod 344 is located in the middle of the linkage frame 53 and the linkage rod 344 is not fixedly connected to the linkage frame 53, the linkage frame 53 can be driven to move horizontally through the tilting movement of the linkage rod 344.
[0034] A side guide post 231 is fixedly mounted between the two fixing seats 23 on each side of the low groove 21, and the linkage frame 53 is guided by the side guide posts 231. The provision of the side guide posts 231 improves the stability of the linkage frame 53 during movement. Furthermore, the water receiving frame 2 supports the bottom of the linkage frame 53 during movement, further improving the stability of the linkage frame 53 during movement.
[0035] Among them, multiple first guide columns 61 and second guide columns 62 are fixed vertically upward on both sides of the cross tube 22 on the middle plate 11, and the tops of the first guide columns 61 and the second guide columns 62 on each side are connected to the top plate 6. The movable plate 3 is guided and moved by the first guide columns 61, and the counterweight magnetic blocks 64 are guided and moved by the second guide columns 62.
[0036] A plurality of guide rope rings 63 are fixedly installed at the bottom of the top plate 6, and traction ropes 631 are installed on both sides of the movable plate 3. The other ends of the traction ropes 631 are connected to the counterweight magnet 64 after passing through the guide rope rings 63. A bottom magnet 65 is installed on the middle plate 11 below the counterweight magnet 64, and the bottom magnet 65 and the counterweight magnet 64 are adapted to repel each other.
[0037] The sum of the gravity of the counterweight magnets 64 on both sides is greater than that of the movable plate 3 and its components. Therefore, when the low-position clamp 233 no longer clamps the water holding frame 33, the traction rope 631 is pulled by the gravity of the counterweight magnet 64, so that the movable plate 3 can be pulled upward to drive the water holding frame 33 to move upward synchronously.
[0038] See Figure 16-23 A connecting pipe 41 is provided on both sides of the cold water tank 4, and a connecting water storage pipe 43 is installed on one side of the end of the connecting pipe 41. A water storage baffle 42 is vertically movably provided between the connecting pipe 41 and the water storage pipe 43, and a water storage part 421 is fixedly installed on one side of the bottom of the water storage baffle 42.
[0039] When the water-collecting baffle 42 is pulled upward, the cavity between the connecting pipe 41 and the water storage pipe 43 is opened, and at this time the water-collecting part 421 can collect the condensed water in the connecting pipe 41 upward, so that the condensed water can be collected to the cavity through the water-collecting part 421, and the condensed water can enter the connecting pipe 41 through the cavity.
[0040] When the water-filling baffle 42 falls, the cavity between the connecting pipe 41 and the water storage pipe 43 can be blocked by the water-filling baffle 42, and at this time the water-filling part 421 also moves to the bottom, and the condensed water in the connecting pipe 41 can automatically flow into the water-filling part 421, so that the water-filling part 421 can fill water next time.
[0041] A hook 422 is mounted on the top of the water baffle 42, and second side plates 32 are mounted on both sides of the movable plate 3 to fit the hooks 422. This allows the movable plate 3 to move upwards by driving the hooks 422 upwards via the second side plates 32, and the water baffle 42 to automatically drop downwards by its own gravity when the movable plate 3 descends.
[0042] Among them, an atomizing nozzle 44 is installed at one end of the water storage pipe 43, and a connected pressurizing pipe 45 is installed at the other end of the water storage pipe 43. A baffle cavity 451 is opened on the pressurizing pipe 45, and a pressurizing baffle 452 is vertically movably arranged in the baffle cavity 451.
[0043] A reset pressure column 453 is fixedly provided on one side of the top of the pressure baffle 452, and a mother magnetic plate 454 is fixedly provided on the other side. The top of the pressure tube 45 is located below the mother magnetic plate 454 and a through cavity is opened. A silicone part 455 is installed on the outside of the through cavity, and a sub-magnetic plate 411 is fixedly installed on the connecting tube 41. The sub-magnetic plate 411 is located above the mother magnetic plate 454 and is adapted to be attracted to it.
[0044] An air pump 46 is provided above the middle plate 11, on one side of the connecting pipe 41. A pump rod 461 is movably provided on the top of the pump 46. The pump 46 is connected to the pressurized pipe 45 via an air pipe. First side plates 31 are provided on both sides of the movable plate 3 to accommodate the pump rods 461. Thus, by moving the first side plate 31, the pump rods 461 are pressed downward, thereby inflating the pressurized pipe 45.
[0045] It is worth noting that the pump rod 461 in the air pump 46 is a self-rebounding structure in the prior art. The pump rod 461 can automatically reset after being pressed, and a one-way valve is provided at the end of the air pipe to prevent gas from flowing out of the pressurized pipe 45. This is a prior art and therefore will not be described in detail.
[0046] The pressurized tube 45 has a through cavity, and a silicone member 455 is positioned outside the cavity. As the pressure in the pressurized tube 45 gradually increases, the silicone member 455 continuously expands due to air pressure, pushing the mother magnetic plate 454 and the pressurized baffle 452 upward. When the mother magnetic plate 454 moves to a sufficient height, the distance between the mother magnetic plate 454 and the sub-magnetic plate 411 is reduced to the distance required for magnetic attraction. At this time, the mother magnetic plate 454 and the pressurized baffle 452 can move upward due to the magnetic attraction, and the pressurized tube 45 is now connected to the water storage tube 43.
[0047] The bottom of the baffle chamber 451 on the pressure tube 45 has a bottom groove, and the bottom of the pressure baffle 452 contacts the bottom groove. This ensures that when the pressure baffle 452 slightly moves upward due to the expansion of the silicone member 455, it remains in the bottom groove, and the pressure tube 45 remains closed. Only when the pressure tube 45 moves significantly upward due to the magnetic attraction between the mother magnetic plate 454 and the daughter magnetic plate 411 does the pressure tube 45 and the water storage tube 43 communicate.
[0048] Each weighted magnetic block 64 is fixedly mounted with a pressure piece 641 that mates with the reset pressure post 453. This allows the pressure piece 641 to press down on the reset pressure post 453 when the mother magnetic plate 454 and the daughter magnetic plate 411 are attracted to each other, thereby resetting the pressure baffle 452. Furthermore, due to the different travel distances between the weighted magnetic block 64 and the pressure baffle 452, the pressure piece 641 can only press down on the reset pressure post 453 during attraction. However, during the expansion of the silicone member 455, since the reset pressure post 453 is located below, the pressure piece 641 cannot contact the reset pressure post 453.
[0049] The atomizing nozzle 44 is a conventional drip-proof nozzle. When the air pressure in the water storage pipe 43 is insufficient, the baffle on the atomizing nozzle 44 closes, preventing the water in the water storage pipe 43 from entering the atomizing nozzle 44. When the air pressure in the water storage pipe 43 is sufficient, the baffle on the atomizing nozzle 44 opens, allowing the condensed water to be sprayed out through the atomizing nozzle 44. This is conventional technology and will not be described in detail.
[0050] In this embodiment, when the device is in operation, the compressor 12 drives the refrigerant through the pipeline, sequentially passing through the condenser 13, the throttling capillary 14, and the evaporator 15, and then returning to the compressor 12, thereby realizing the circulation of the refrigerant. The heat generated in the condenser 13 is discharged from the top of the body 1 by the condensing fan 131, and the cold air generated in the evaporator 15 is discharged from the front of the body 1 by the evaporating fan 151. This is a prior art and therefore will not be described in detail.
[0051] During the operation of the evaporator 15, the condensed water continuously drips into the water receiving frame 2 and is then guided into the lower trough 21 via the slope within the water receiving frame 2. The condensed water in the lower trough 21 then flows into the water receiving frame 33. At this time, the float 34 in the water receiving frame 33 is driven by the buoyancy of the condensed water and rises along the guide groove 331, thereby driving the float 34, the guide member 341, the connecting frame 342, the reset column 343, and the linkage rod 344 to move diagonally upward in a synchronous manner.
[0052] When the float 34 moves to the top, the reset pin 343 moves to push the reset member 234 on the low-position clamp 233, thereby pushing the low-position clamp 233 outward, thereby releasing the mutual engagement between the low-position clamp 233 and the low-position clamping groove 333. At this time, the water-containing frame 33 and the movable plate 3 are no longer fixed in the low position, and the counterweight magnetic blocks 64 on both sides can then automatically fall down by their own gravity, thereby pulling the movable plate 3 and the water-containing frame 33 upward by the traction rope 631.
[0053] When the floating block 34 in the water holding frame 33 gradually rises due to the buoyancy of the condensed water, the movement of the linkage rod 344 drives the linkage vertical frame 53, the linkage horizontal frame 5, and the magnetic isolation plate 51 to move, thereby moving the magnetic isolation plate 51 between the counterweight magnet 64 and the bottom magnet 65, thereby weakening the repulsive magnetic force between the counterweight magnet 64 and the bottom magnet 65, thereby ensuring that the counterweight magnet 64 can fall stably. It is worth noting that a limit ring is provided on the second guide post 62 to limit the travel of the counterweight magnet 64, thereby ensuring that there is still a certain distance between the counterweight magnet 64 and the bottom magnet 65 when the counterweight magnet 64 falls to the bottom, so that the magnetic isolation plate 51 can be easily inserted between the counterweight magnet 64 and the bottom magnet 65.
[0054] Furthermore, when the water frame 33 moves to the top, the condensed water in the water frame 33 automatically flows into the transverse pipe 22, and then the condensed water enters the cold water tank 4 through the transverse pipe 22. Since the throttling capillary tube 14 passes through the cold water tank 4, the throttling capillary tube 14 can be immersed in the condensed water in the cold water tank 4, thereby forming a secondary cooling and cooling effect, thereby increasing the cooling capacity.
[0055] As the condensed water in the water frame 33 continues to flow out, the float 34 automatically descends along the guide groove 331 due to gravity, driving the float 34, the guide member 341, the connecting frame 342, the reset column 343 and the linkage rod 344 to move synchronously downward and reset.
[0056] When the float 34 moves to the bottom, the reset member 234 on the high-position clamp 232 can be pushed by the movement of the reset column 343, thereby pushing the high-position clamp 232 outward, thereby releasing the mutual blocking between the high-position clamp 232 and the high-position clamping slot 332.
[0057] As the float 34 in the water frame 33 descends, the movement of the linkage rod 344 drives the linkage vertical frame 53, the linkage horizontal frame 5, and the magnetic isolation plate 51 to synchronously move and reset. This allows the release chamber 52 on the magnetic isolation plate 51 to be moved between the counterweight magnet 64 and the bottom magnet 65. At this point, the repulsive magnetic force between the counterweight magnet 64 and the bottom magnet 65 is no longer weakened, and the counterweight magnet 64 can be pushed upward by the repulsive magnetic force between the counterweight magnet 64 and the bottom magnet 65.
[0058] This significantly reduces the tension exerted by the counterweight magnet 64 on the traction rope 631, allowing the movable plate 3 and water frame 33 to automatically descend under their own gravity. When the movable plate 3 and water frame 33 reach their lowest point, the low-position latch 233 reengages the low-position latch slot 333, securing the water frame 33 once again. This reciprocating motion continuously delivers condensed water from the water receiving frame 2 to the cold water tank 4, while also enabling the movable plate 3 to continuously reciprocate.
[0059] It is worth noting that when the magnetic isolation plate 51 is located between the counterweight magnet 64 and the bottom magnet 65, the counterweight magnet 64 can descend due to its own weight, pulling the traction rope 631, thereby pulling the movable plate 3 upward. When the release cavity 52 on the magnetic isolation plate 51 is located between the counterweight magnet 64 and the bottom magnet 65, the counterweight magnet 64 moves upward due to the repulsive magnetic force, thereby reducing the pulling force of the counterweight magnet 64 on the traction rope 631, and the movable plate 3 can then automatically fall due to its own weight.
[0060] Furthermore, when the movable plate 3 moves upward, it can hook the hook member 422 upward through the second side plate 32, thereby driving the water-collecting baffle 42 and the water-collecting member 421 to move upward synchronously, thereby scooping up the condensed water through the movement of the water-collecting member 421. Since the water-collecting member 421 is arranged on one side of the bottom of the water-collecting baffle 42, when the water-collecting baffle 42 moves upward, the cavity between the connecting pipe 41 and the water storage pipe 43 is opened, and the condensed water in the water-collecting member 421 can automatically flow into the water storage pipe 43.
[0061] When the movable plate 3 moves downward, the water-collecting baffle 42, the water-collecting member 421, and the hook member 422 automatically move downward due to their own gravity. At this time, the water-collecting member 421 moves to the bottom, and the condensed water automatically flows into the water-collecting member 421. In addition, the water-collecting baffle 42 can block the cavity between the connecting pipe 41 and the water storage pipe 43 to ensure the sealing of the water storage pipe 43.
[0062] Furthermore, when the movable panel 3 moves downward, it can drive the pump rod 461 on the pump 46 downward via the first side panel 31. When the movable panel 3 moves upward, the pump rod 461 on the pump 46 automatically resets. As the movable panel 3 continues to move vertically, the pump rod 461 can be driven to continuously move, thereby inflating the pressurized tube 45 through the pump 46. The pressurized tube 45 is also equipped with a one-way valve to prevent gas leakage.
[0063] Furthermore, as the air pressure in the pressurized tube 45 continues to rise, the silicone member 455 will continue to expand, thereby pushing the mother magnetic plate 454 upward through the expansion of the silicone member 455, thereby driving the pressurized baffle 452 and the reset pressure column 453 to move upward synchronously, thereby continuously reducing the distance between the mother magnetic plate 454 and the sub-magnetic plate 411.
[0064] When the air pressure in the pressurized tube 45 is sufficient, the silicone member 455 expands to its maximum, and the distance between the mother magnetic plate 454 and the daughter magnetic plate 411 is reduced to the maximum magnetic adsorption distance. In this way, the mother magnetic plate 454 can move toward the daughter magnetic plate 411 by magnetic force, thereby driving the pressurized baffle 452 and the reset pressure column 453 to move upward synchronously.
[0065] At this point, the pressure damper 452 is opened, allowing the gas in the pressure pipe 45 to automatically flow into the water storage pipe 43, raising the pressure therein. The condensed water in the water storage pipe 43 is then sprayed out through the atomizing nozzle 44. By atomizing and spraying the condensed water, the mist evaporates in the external environment, absorbing heat and further lowering the ambient temperature. Furthermore, this device is designed for use in large spaces and some open-air locations, so the impact of atomization on air humidity need not be considered.
[0066] When the water in the water storage pipe 43 is atomized and sprayed out, as the counterweight magnetic block 64 descends, the reset pressure column 453 can be pressed downward by the pressure piece 641 to release the mutual adsorption between the mother magnetic plate 454 and the child magnetic plate 411, so as to achieve the reset of the pressure baffle 452.
[0067] Furthermore, the water-holding baffle 42 and the pressure-generating baffle 452 are guided and moved by guide blocks and guide cavities, and the water-holding baffle 42, the pressure-generating baffle 452 and the silicone component 455 are all provided with sealing structures in the prior art to ensure the sealing of the water storage pipe 43 and the pressure pipe 45.
[0068] Furthermore, a conventional filtration structure is provided within the transverse tube 22, comprising a stainless steel coarse filter, a glass fiber gradient layer, a copper-silver alloy sterilization mesh, and a sustained-release sterilization cartridge to filter the condensed water. The specific filtration structure is conventional and will not be described in detail.
[0069] Furthermore, overflow pipes are provided in the water receiving frame 2 and the cold water tank 4 to ensure that the water levels in the water receiving frame 2 and the cold water tank 4 are in a normal state.
[0070] The water storage component and the atomization component in this device do not use an electric structure to reduce energy consumption.
[0071] In the present invention, the condensed water in the water receiving frame 2 can be sent into the cold water tank 4 through the reciprocating movement of the movable plate 3. By immersing most of the throttling capillary 14 in the cold water tank 4, secondary cooling and cooling can be achieved, thereby increasing the cooling capacity. The condensed water is atomized and sprayed out through the atomizing nozzle 44. The water mist evaporates and absorbs heat in the external environment, which can further reduce the external ambient temperature, thereby improving the cooling effect of the device in large spaces and some open-air places.
[0072] The above description is only a preferred specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any technician familiar with the technical field, within the technical scope disclosed by the present invention, who makes equivalent replacements or changes based on the technical solution and inventive concept of the present invention, should be covered by the scope of protection of the present invention.
Claims
1. An energy-saving mobile integrated intelligent air conditioner, characterized in that: include: A machine body (1), wherein an evaporator (15) is provided inside the machine body (1), a water receiving frame (2) is installed at the bottom of the evaporator (15), a water receiving frame (33) is vertically movably provided at the lower groove (21) of the water receiving frame (2), the water receiving frame (2) is connected to the cold water tank (4) through a horizontal pipe (22), and a throttling capillary (14) is immersed in the cold water tank (4); A movable plate (3), the movable plate (3) being movable outside the water receiving frame (2), the movable plate (3) being fixedly connected to the water receiving frame (33), both sides of the movable plate (3) being connected to the counterweight magnetic block (64) via a traction rope (631), and the middle portion of the traction rope (631) being suspended at the bottom of the top plate (6) via a plurality of guide rope rings (63); A water holding frame (33), wherein both sides of the water holding frame (33) are provided with floating blocks (34) in an inclined guide manner, and a reset column (343) and a linkage rod (344) are installed on the floating blocks (34), and a high-position clamping member (232) and a low-position clamping member (233) are installed on both sides of the low groove (21), and the water holding frame (33) is provided with corresponding clamping slots, and the high-position clamping member (232) and the low-position clamping member (233) are provided with reset members (234) adapted to the reset column (343); A linkage horizontal frame (5), one side of the linkage horizontal frame (5) is linked to the linkage rod (344) through a linkage vertical frame (53), and the other side of the linkage horizontal frame (5) is installed with a magnetic isolation plate (51), and the magnetic isolation plate (51) is located below the counterweight magnetic block (64) for movement; A connecting pipe (41) is installed on both sides of the cold water tank (4), and a water storage pipe (43) is connected to the connecting pipe (41). An atomizing nozzle (44) is installed on one side of the water storage pipe (43), and a pressurizing pipe (45) is installed on the other side of the water storage pipe (43). The water storage pipe (43) and the pressurizing pipe (45) are both driven to work by the reciprocating movement of the movable plate (3).
2. The energy-saving mobile integrated intelligent air conditioner according to claim 1, characterized in that: A middle plate (11) is installed inside the machine body (1), a compressor (12), a condenser (13) and a condensing fan (131) are installed below the middle plate (11) in the machine body (1), a throttling capillary (14), an evaporator (15) and an evaporating fan (151) are installed above the middle plate (11) in the machine body (1), and the evaporating fan (151) is installed on the middle plate (11) through a frame (16).
3. The energy-saving mobile integrated intelligent air conditioner according to claim 1, characterized in that: The water receiving frame (2) is installed at the bottom of the evaporator (15), and a low groove (21) is provided inside the water receiving frame (2). A water holding frame (33) is vertically movably provided in the low groove (21). A horizontal pipe (22) is provided on the water receiving frame (2) above the low groove (21) and is in communication with the water receiving frame (2), and the other end of the horizontal pipe (22) extends into the cold water tank (4).
4. The energy-saving mobile integrated intelligent air conditioner according to claim 1, characterized in that: A plurality of first guide columns (61) and second guide columns (62) are fixedly arranged vertically upward on both sides of the cross tube (22) on the middle plate (11), and the tops of the first guide columns (61) and the second guide columns (62) on each side are connected to the top plate (6), the movable plate (3) is guided to move by the first guide columns (61), and the counterweight magnetic blocks (64) are guided to move by the second guide columns (62).
5. The energy-saving mobile integrated intelligent air conditioner according to claim 4, characterized in that: A plurality of guide rope rings (63) are fixedly installed at the bottom of the top plate (6), traction ropes (631) are installed on both sides of the movable plate (3), and the other ends of the traction ropes (631) are connected to the counterweight magnetic block (64) after passing through the guide rope rings (63). A bottom magnetic block (65) is installed on the middle plate (11) below the counterweight magnetic block (64), and the bottom magnetic block (65) and the counterweight magnetic block (64) are adapted to repel each other; A magnetic isolation plate (51) is installed on one side of the linkage horizontal frame (5), and the magnetic isolation plate (51) is located between the bottom magnetic block (65) and the counterweight magnetic block (64). A release cavity (52) is provided on the magnetic isolation plate (51), and the other side of the linkage horizontal frame (5) is fixedly connected to the linkage vertical frame (53).
6. The energy-saving mobile integrated intelligent air conditioner according to claim 1, characterized in that: Two fixing seats (23) are installed on both sides of the low groove (21), and a high-position clamping member (232) and a low-position clamping member (233) are respectively installed on the two fixing seats (23) on each side. Adaptive high-position clamping slots (332) and low-position clamping slots (333) are respectively opened on the outer walls of both sides of the water holding frame (33) corresponding to the high-position clamping member (232) and the low-position clamping member (233). A side guide column (231) is fixedly installed between the two fixing seats (23) on each side, and the linkage stand (53) is guided and moved by the side guide column (231).
7. The energy-saving mobile integrated intelligent air conditioner according to claim 1, characterized in that: Inclined guide grooves (331) are provided on both inner walls of the water holding frame (33). Guide members (341) are adapted to correspond to the guide grooves (331) on the float block (34). The float block (34) is connected to the reset column (343) via a connecting frame (342). The reset column (343) is located outside the water holding frame (33). Reset members (234) are adapted to correspond to the reset columns (343) on the high-position clamp (232) and the low-position clamp (233).
8. The energy-saving mobile integrated intelligent air conditioner according to claim 1, characterized in that: A connecting pipe (41) is installed on both sides of the cold water tank (4), and a connecting water storage pipe (43) is installed on one side of the end of the connecting pipe (41). A water storage baffle (42) is vertically movably arranged between the connecting pipe (41) and the water storage pipe (43), a water storage member (421) is fixedly installed at the bottom of the water storage baffle (42), and a hook member (422) is installed at the top of the water storage baffle (42).
9. The energy-saving mobile integrated intelligent air conditioner according to claim 8, characterized in that: An atomizing nozzle (44) is installed at one end of the water storage pipe (43), and a connected pressurizing pipe (45) is installed at the other end of the water storage pipe (43). A baffle cavity (451) is provided on the pressurizing pipe (45), and a pressurizing baffle (452) is vertically movably provided in the baffle cavity (451). A reset pressure column (453) is fixedly provided on one side of the top of the pressurizing baffle (452), and a mother magnetic plate (454) is fixedly provided on the other side. A through cavity is provided at the top of the pressurizing pipe (45) below the mother magnetic plate (454), and a silicone member (455) is installed on the outside of the through cavity. A sub-magnetic plate (411) is fixedly provided on the communicating pipe (41), and the sub-magnetic plate (411) is located above the mother magnetic plate (454) and is adapted to be attracted thereto.
10. The energy-saving mobile integrated intelligent air conditioner according to claim 9, characterized in that: An air pump (46) is provided above the middle plate (11) on one side of the connecting pipe (41), and an air pump rod (461) is movably provided on the top of the air pump (46). The air pump (46) is connected to the pressurized pipe (45) through an air pipe. A first side plate (31) is provided on both sides of the movable plate (3) in correspondence with the air pump rod (461), a second side plate (32) is provided on both sides of the movable plate (3) in correspondence with the hook (422), and a pressure piece (641) adapted to the reset pressure column (453) is fixedly installed on the counterweight magnetic block (64).
Citation Information
Patent Citations
Mobile air-conditioning system
CN103344013A
Water-cooled mobile air-conditioning
CN201348318Y
Air conditioner
CN221375832U
Method and system for collecting information to supplement personal information
KR102274357B1