Refrigerating capacity improving device using air conditioner condensate water

By spraying condensate water into the air conditioner's condensate water device to cool down and clean dust, the problem of low cooling efficiency and resource waste in high-temperature environments is solved, achieving efficient cooling and cleaning of the air conditioner's outdoor unit.

CN120947115BActive Publication Date: 2025-12-16JIANGSU STARWAY THERMAL TECH CO LTD
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Patent Information

Application Number
CN202511478154.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-10-16
Publication Date
2025-12-16
Estimated Expiration
2045-10-16

AI Technical Summary

Technical Problem

Existing air conditioners have low cooling efficiency and waste condensate water resources in high-temperature environments, and dust accumulation in the outdoor unit affects heat dissipation efficiency.

Method used

Design a device that uses air conditioner condensate to spray onto the side of the condenser for cooling, and uses a centrifugal blade spraying mechanism to evenly spray the condensate, combined with a collection and filtration mechanism to treat dust, thereby improving cooling efficiency and reducing dust accumulation.

Benefits of technology

It increases the cooling capacity of the air conditioner, reduces energy consumption, reduces the impact of dust on heat dissipation, and achieves effective utilization of condensate and cleaning of the air conditioner casing.

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Abstract

The application relates to the refrigeration technical field and discloses a refrigeration capacity increasing device using air conditioner condensate water, which comprises an air conditioner shell, the top end of the air conditioner shell is fixedly connected with a flow limiting mechanism, the top end of the flow limiting mechanism is fixedly connected with a water inlet pipe, the bottom end of the flow limiting mechanism is fixedly connected with a spraying mechanism, and the bottom end of the air conditioner shell is fixedly connected with a collecting mechanism; after the condensate water enters the fan shell, centrifugal blades rotate, the condensate water and air entering the fan shell from the flow limiting mechanism are discharged from the first and second discharge channels under the action of centrifugal force, at the moment, the condensate water is sprayed to the side of the condenser, the low-temperature condensate water cools the condenser after contacting the condenser, thereby improving the refrigeration capacity of the air conditioner, and when the condensate water is sprayed to the side of the condenser, dust in the air conditioner shell is removed, and the refrigeration efficiency is further improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of refrigeration technology, more particularly to a refrigeration capacity increasing device using air conditioner condensate water. BACKGROUND

[0002] As an indispensable electrical appliance in daily life, air conditioner is a device for adjusting temperature, humidity, flow rate and cleanliness in a closed space by artificial means. The core functions of air conditioner include refrigeration, heating, dehumidification and ventilation. The energy efficiency of air conditioner is directly related to energy consumption and economic expenditure of users. The refrigeration capacity of air conditioner refers to the total heat removed from the closed space per unit time under the rated operating condition. According to the inverse Carnot cycle principle, the refrigeration efficiency of air conditioner depends largely on the heat dissipation effect of outdoor condenser.

[0003] When the ambient temperature rises in summer, the temperature difference between condenser and ambient air decreases, resulting in a sharp decrease in heat exchange efficiency, an increase in condensing pressure and temperature, and an increase in compressor load. As a result, the overall refrigeration capacity output of air conditioning system decreases, energy consumption increases, and even the compressor overheats and stops in extreme high temperature weather. Therefore, the temperature of air conditioner outdoor unit needs to be controlled.

[0004] During air conditioning refrigeration operation, the evaporator on the indoor side continuously condenses water because the surface temperature of the coil is lower than the dew point temperature of the indoor air. At present, most household and commercial air conditioning systems simply and extensively dispose of the condensate water by directly discharging it to the outdoor through a water guide pipe. This process wastes a large amount of potential cold source resources. The temperature of condensate water is much lower than the ambient temperature. Actual measurement shows that under the typical operating condition of outdoor ambient temperature of 35℃, indoor dry-bulb temperature of 27℃ and wet-bulb temperature of 19℃, the temperature of generated condensate water is usually between 16℃ and 18℃, with a temperature difference of more than 17℃ from the ambient temperature. Nowadays, air conditioning equipment directly wastes the cold energy of this low-temperature water, causing waste. Nowadays, air conditioning equipment cannot use condensate water well.

[0005] When the air conditioner outdoor unit is in use, it works outdoors for a long time, so various dusts are generated inside it. When the dust in the air conditioner outdoor unit is too much, it will affect the heat dissipation efficiency of the air conditioner outdoor unit, further reducing its working performance. SUMMARY

[0006] In order to overcome the above-mentioned defects of the prior art, the embodiments of the present application provide a refrigeration capacity increasing device using air conditioner condensate water to solve the technical problems proposed in the background art.

[0007] To achieve the above objectives, the present invention provides the following technical solution: a cooling capacity enhancement device using air conditioner condensate, comprising an air conditioner casing, a condenser fixedly connected to the side of the air conditioner casing, an air conditioner protective cover fixedly connected to the side of the air conditioner casing away from the condenser, an air conditioner fan movably connected to one side inside the air conditioner casing, and a compressor fixedly connected to the other side inside the air conditioner casing, the air conditioner fan and the compressor being separate from each other, a flow limiting mechanism fixedly connected to the top of the air conditioner casing, a water inlet pipe fixedly connected to the top of the flow limiting mechanism, a spraying mechanism fixedly connected to the bottom of the flow limiting mechanism, a collection mechanism fixedly connected to the bottom of the air conditioner casing, and a drain pipe fixedly connected to the bottom of the collection mechanism, the flow limiting mechanism collecting the condensate flowing out of the air conditioner, the spraying mechanism spraying the condensate collected by the flow limiting mechanism onto the side of the condenser, the condensate sprayed onto the side of the condenser cooling the condenser, and the collection mechanism collecting the sprayed condensate and dust inside the air conditioner casing.

[0008] In a preferred embodiment, the flow limiting mechanism includes a supporting water receiving tank, a sealing cover fixedly connected to the top of the water receiving tank, a guide plate fixedly connected to the bottom of the inside of the water receiving tank, a connecting cylinder fixedly connected inside the guide plate, the connecting cylinder being located at the lowest point of the top of the guide plate, and water inlet grooves being provided on both sides of the connecting cylinder, the bottom of the water inlet grooves coinciding with the lowest point of the top of the guide plate.

[0009] In a preferred embodiment, a collection chamber is fixedly connected inside the connecting cylinder where the water inlet tank is located. The collection chamber covers the water inlet tank. A drain pipe is fixedly connected to the bottom of the collection chamber, and a filter screen is fixedly connected to the top of the connecting cylinder.

[0010] In a preferred embodiment, a drain pipe is fixedly connected to both sides of the baffle plate near the condenser. A drain nozzle is fixedly connected to the bottom end of the drain pipe. The drain nozzle is located at the top of the condenser. The top end of the drain pipe is located above the baffle plate, and there is a 5 mm gap between the bottom end and the top end of the drain pipe.

[0011] In a preferred embodiment, the spraying mechanism includes a fan housing for support, the top of the fan housing being fixedly connected to the bottom of the connecting cylinder inside the flow limiting mechanism, and condensate and dust inside the connecting cylinder entering the fan housing, with centrifugal blades movably connected inside the fan housing.

[0012] In a preferred embodiment, the centrifugal blades are provided with a first discharge channel and a second discharge channel on the side near the condenser, and the first discharge channel and the second discharge channel spray condensate onto the side of the condenser.

[0013] In a preferred implementation form, the centrifugal blades and the second discharge channel are fixedly connected with a first guide plate and a second guide plate, the first guide plate and the second guide plate are inclined outward relative to the center plane of the first discharge channel and the second discharge channel, and the first guide plate and the second guide plate are mirror-symmetric.

[0014] In a preferred implementation form, the collecting mechanism comprises a fixed plate supported, the inside of the fixed plate is fixedly connected with a filter plate through a connecting rod, two sides of the fixed plate close to the filter plate are provided with an avoiding groove, the top end of the fixed plate is fixedly connected with a sealed shell, the inside of the sealed shell is fixedly connected with a servo motor, the side surface of the servo motor is fixedly connected with a reciprocating screw rod, and the side surface of the reciprocating screw rod is threadedly connected with a cleaning plate.

[0015] In a preferred implementation form, the bottom end of the cleaning plate is in contact with the top end of the filter plate, the cleaning plate moves above the filter plate and pushes the dust above the filter plate into the avoiding groove, and the side of the cleaning plate away from the reciprocating screw rod is movably connected with a limiting rod.

[0016] In a preferred implementation form, the bottom end of the fixed plate is fixedly connected with a collecting box, one side of the inside of the collecting box is fixedly connected with a first inclined plate, the top end of the first inclined plate is an inclined surface, the side surface of the low end of the inclined surface of the first inclined plate is fixedly connected with a second inclined plate, the number of the second inclined plate is two, the two second inclined plates are mirror-symmetric, the side of the two second inclined plates close to each other is an inclined low end, and the drain pipe is located at the low end close to each other of the two second inclined plates.

[0017] Technical effects and advantages of the present application:

[0018] 1. After the condensate water enters the inside of the fan shell, the centrifugal blades rotate, under the action of centrifugal force, the condensate water and air entering the fan shell from the flow limiting mechanism are discharged from the first discharge channel and the second discharge channel, at this time, the condensate water is sprayed to the side surface of the condenser, the low-temperature condensate water is cooled after contacting the condenser, thereby improving the refrigerating capacity of the air conditioner, and when the condensate water is sprayed to the side surface of the condenser, dust in the air conditioner shell is removed, further improving the refrigeration efficiency.

[0019] 2、The application is provided with a water receiving tank, a connecting cylinder, a collecting cavity and a drain pipe, condensed water enters the water receiving tank through the water inlet pipe, at this time, after being guided by the flow guide plate, the water inlet groove on the side of the connecting cylinder enters the collecting cavity, at this time, the condensed water is stored in the collecting cavity and slowly flows to the spraying mechanism through the drain pipe, so that the condensed water cannot be sprayed to the side of the condenser when the water amount is large, and when the condensed water is too much, the condensed water directly flows to the side of the condenser through the discharge pipe and the water discharge nozzle, so that the refrigeration effect of the condensed water on the condenser is ensured

[0020] 3、The application is provided with a condenser, the condensed water flows into the collecting box through the position avoiding groove in the fixed plate and the filter plate, the collecting box is convenient for the falling of condensed water and dust, when the dust covers the upper side of the filter plate, the servo motor drives the cleaning plate to move, so that the cleaning plate reciprocates above the filter plate, the dust is pushed into the collecting box, so that the dust falling from the air conditioner is not raised when the air conditioner is not used, and the air conditioner shell is ensured to be clean enough. BRIEF DESCRIPTION OF DRAWINGS

[0021] Figure 1 It is a whole structure schematic view of the application.

[0022] Figure 2 It is an air conditioner shell internal structure schematic view of the application.

[0023] Figure 3 It is a whole exploded structure schematic view of the application.

[0024] Figure 4 It is a spraying mechanism and condenser structure schematic view of the application.

[0025] Figure 5 It is a spraying mechanism structure schematic view of the application.

[0026] Figure 6 It is a flow limiting mechanism structure schematic view of the application.

[0027] Figure 7 It is a connecting cylinder internal structure schematic view of the application.

[0028] Figure 8 It is a collecting mechanism exploded structure schematic view of the application.

[0029] The reference signs are: 1, air conditioner shell; 2, condenser; 3, air conditioner fan; 4, compressor; 5, water inlet pipe; 6, flow limiting mechanism; 601, water receiving tank; 602, flow guide plate; 603, sealing cover; 604, discharge pipe; 605, water discharge nozzle; 606, connecting cylinder; 607, filter screen; 608, water inlet groove; 609, collecting cavity; 610, drain pipe; 7, spraying mechanism; 701, fan shell; 702, centrifugal blade; 703, first discharge channel; 704, second discharge channel; 705, first guide plate; 706, second guide plate; 8, collecting mechanism; 801, fixed plate; 802, filter plate; 803, sealing shell; 804, servo motor; 805, reciprocating screw rod; 806, cleaning plate; 807, limiting rod; 808, collecting tank; 809, first inclined plate; 810, second inclined plate; 9, drain pipe; 10, air conditioner protection cover. DETAILED DESCRIPTION

[0030] The technical solutions in the present application will be described clearly and completely below in combination with the drawings in the present application. In addition, the forms of the structures described in the following embodiments are only examples. The refrigeration capacity improving device using air conditioner condensate water in the present application is not limited to the structures described in the following embodiments. All other embodiments obtained by those skilled in the art without creative labor belong to the scope of protection of the present application.

[0031] With reference to Figure 1 , Figure 2 and Figure 3 , the present application provides a refrigeration capacity improving device using air conditioner condensate water, comprising an air conditioner shell 1, a condenser 2 fixedly connected to the side of the air conditioner shell 1, an air conditioner protection cover 10 fixedly connected to the side of the air conditioner shell 1 away from the condenser 2, an air conditioner fan 3 movably connected to one side of the inside of the air conditioner shell 1, a compressor 4 fixedly connected to the other side of the inside of the air conditioner shell 1, the air conditioner fan 3 and the compressor 4 being separated from each other, a flow limiting mechanism 6 fixedly connected to the top end of the air conditioner shell 1, a water inlet pipe 5 fixedly connected to the top end of the flow limiting mechanism 6, a spraying mechanism 7 fixedly connected to the bottom end of the flow limiting mechanism 6, a collecting mechanism 8 fixedly connected to the bottom end of the air conditioner shell 1, a drain pipe 9 fixedly connected to the bottom end of the collecting mechanism 8, the flow limiting mechanism 6 collecting the condensate water flowing out of the air conditioner, the spraying mechanism 7 spraying the condensate water collected by the flow limiting mechanism 6 to the side of the condenser 2, the condensate water sprayed to the side of the condenser 2 cooling the condenser 2, and the collecting mechanism 8 collecting the sprayed condensate water and dust in the air conditioner shell 1.

[0032] In the embodiment of the application, during operation, the condensed water is sprayed to the side of the condenser 2, and the low-temperature condensed water cools the condenser 2 after contacting the condenser 2, thereby improving the refrigerating capacity of the air conditioner. When the condensed water is sprayed to the side of the condenser 2, dust in the air conditioner shell 1 is removed, the dust in the air conditioner shell 1 is reduced, and the refrigeration efficiency of the condenser 2 is further improved.

[0033] With reference to Figure 6 With reference to Figure 7 The flow limiting mechanism 6 comprises a water receiving tank 601 supported, a sealing cover 603 fixedly connected to the top end of the water receiving tank 601, a flow guide plate 602 fixedly connected to the bottom end in the water receiving tank 601, a connecting cylinder 606 fixedly connected to the inside of the flow guide plate 602, the connecting cylinder 606 being located at the lowest point of the top end of the flow guide plate 602, water inlet grooves 608 being formed on both sides of the connecting cylinder 606, the bottom end of the water inlet grooves 608 coinciding with the lowest point of the top end of the flow guide plate 602, collection cavities 609 fixedly connected to the inside of the connecting cylinder 606 where the water inlet grooves 608 are located, the collection cavities 609 covering the water inlet grooves 608, a drain pipe 610 fixedly connected to the bottom end of the collection cavities 609, a filter screen 607 fixedly connected to the top end of the connecting cylinder 606, drain pipes 604 fixedly connected to both sides of the flow guide plate 602 close to the condenser 2, water discharge nozzles 605 fixedly connected to the bottom end of the drain pipes 604, the water discharge nozzles 605 being located at the top end of the condenser 2, the top end of the drain pipes 604 being located above the flow guide plate 602, and the bottom end of the drain pipes 604 being spaced apart from the top end of the drain pipes 604 by five millimeters.

[0034] In the embodiment of the application, the condensed water flows into the collection cavities 609 from the water inlet grooves 608 on both sides of the connecting cylinder 606 after being guided by the flow guide plate 602, and the condensed water is stored in the collection cavities 609 and flows down quantitatively and slowly through the drain pipe 610 below the condensed water, so that the spraying mechanism 7 can spray the condensed water to the side of the condenser 2 during operation. The filter screen 607 arranged above the connecting cylinder 606 can filter dust, so that the dust does not enter the air conditioner shell 1 and pollute the air conditioner shell 1. When there is a large amount of condensed water, the condensed water accumulates above the flow guide plate 602 and the liquid level rises. When the rising liquid level exceeds the top end of the drain pipes 604, the condensed water enters the drain pipes 604. The condensed water in the drain pipes 604 flows directly to the top end of the condenser 2 through the water discharge nozzles 605, so that the cooling effect of the condensed water on the condenser 2 is ensured, and the condensed water does not overflow from the water receiving tank 601 due to being too much.

[0035] With reference to Figure 4 With reference to Figure 5, the spraying mechanism 7 comprises a fan shell 701 supported, the top end of the fan shell 701 is fixedly connected with the bottom end of the connecting cylinder 606 in the flow limiting mechanism 6, the condensate water and dust in the connecting cylinder 606 all enter the fan shell 701, the centrifugal blade 702 is movably connected in the fan shell 701, the first discharge channel 703 and the second discharge channel 704 are respectively arranged on the side of the centrifugal blade 702 close to the condenser 2, the first discharge channel 703 and the second discharge channel 704 spray the condensate water to the side of the condenser 2, the first guide plate 705 and the second guide plate 706 are fixedly connected in the centrifugal blade 702 and the second discharge channel 704, the first guide plate 705 and the second guide plate 706 are outwardly inclined relative to the center plane of the first discharge channel 703 and the second discharge channel 704, and the first guide plate 705 and the second guide plate 706 are mirror-symmetric.

[0036] In the embodiment of the application, the top end of the fan shell 701 is fixedly connected with the bottom end of the connecting cylinder 606 in the flow limiting mechanism 6, so that the condensate water flowing from the downcomer 610 enters the fan shell 701, the centrifugal blade 702 draws air from top to bottom when rotating, under the action of centrifugal force, air and condensate water are jointly sprayed to the side of the condenser 2 from the first discharge channel 703 and the second discharge channel 704, the first guide plate 705 and the second guide plate 706 are outwardly inclined relative to the center plane of the first discharge channel 703 and the second discharge channel 704, so as to guide the condensate water to be sprayed to both sides, so that the first guide plate 705 and the second guide plate 706 are uniformly sprayed by the sprayed air and condensate water to the side of the condenser 2, the cooling effect of the condenser 2 is improved, and the refrigerating capacity of the air conditioner can be improved.

[0037] With reference to Figure 3 With Figure 8The collecting mechanism 8 comprises a fixed plate 801 supported, the inside of the fixed plate 801 is fixedly connected with a filter plate 802 through a connecting rod, two sides of the fixed plate 801 close to the filter plate 802 are provided with an avoiding groove, the top end of the fixed plate 801 is fixedly connected with a sealed shell 803, the inside of the sealed shell 803 is fixedly connected with a servo motor 804, the side surface of the servo motor 804 is fixedly connected with a reciprocating screw rod 805, the side surface of the reciprocating screw rod 805 is threadedly connected with a cleaning plate 806, the bottom end of the cleaning plate 806 is in contact with the top end of the filter plate 802, and the cleaning plate 806 moves above the filter plate 802 and pushes the dust above the filter plate 802 into the avoiding groove, the side away from the reciprocating screw rod 805 in the cleaning plate 806 is movably connected with a limiting rod 807, the bottom end of the fixed plate 801 is fixedly connected with a collecting box 808, one side in the inside of the collecting box 808 is fixedly connected with a first inclined plate 809, the top end of the first inclined plate 809 is a slope, the side surface of the low end of the slope of the first inclined plate 809 is fixedly connected with a second inclined plate 810, the number of the second inclined plate 810 is two, the two second inclined plates 810 are mirror-symmetrical, the side surface of the two second inclined plates 810 close to each other is a slope low end, and a drain pipe 9 is located at the low end close to each other of the two second inclined plates 810.

[0038] In the embodiment of the application, the dust and part of the condensed water will fall above the filter plate 802 and the avoiding groove of the fixed plate 801, the dust and the condensed water falling into the avoiding groove of the fixed plate 801 will directly fall into the collecting box 808, the condensed water on the collecting box 808 falls into the collecting box 808, and the dust remains in the filter plate 802, when the servo motor 804 starts, the reciprocating screw rod 805 rotates, the reciprocating screw rod 805 rotates to make the cleaning plate 806 reciprocate above the filter plate 802, so that the dust above the filter plate 802 is pushed into the collecting box 808 through the avoiding groove, the filter plate 802 is above the dust, so that the dust will not be raised again into the inside of the air conditioner shell 1 when the air conditioner is not used, and the inside of the air conditioner shell 1 is ensured.

[0039] The working principle of the application is as follows: when the air conditioner works, the low-temperature condensed water generated by the indoor unit of the air conditioner flows into the water receiving tank 601 through the water inlet pipe 5, is guided by the guide plate 602, flows into the collecting cavity 609 from the water inlet grooves 608 on both sides of the connecting barrel 606, and is stored in the collecting cavity 609, and is quantitatively and slowly flowed down through the drain pipe 610 below the condensed water.

[0040] The condensed water flowing from the drain pipe 610 enters the fan housing 701, and the centrifugal blades 702 rotate to draw air from top to bottom, and the air is filtered by the filter screen 607 and enters the fan housing 701 through the connecting cylinder 606. At this time, under the action of centrifugal force, the air and the condensed water are sprayed from the first discharge channel 703 and the second discharge channel 704 to the side of the condenser 2, and the first guide plate 705 and the second guide plate 706 make the sprayed air and condensed water uniformly sprayed to the side of the condenser 2. When the condensed water is sent to the inside of the air conditioner housing 1, it can reduce the dust in the air conditioner housing 1. When the condensed water is sprayed to the side of the condenser 2, it can cool the condenser 2. After the inside of the air conditioner housing 1 is dusted, the air conditioner fan 3 rotates to blow out heat, further improving the cooling effect.

[0041] When the condensed water in the water receiving tank 601 is too much, the condensed water accumulates above the flow guide plate 602, so the liquid level gradually rises. When the rising liquid level exceeds the top of the discharge pipe 604, it enters the discharge pipe 604. The condensed water in the discharge pipe 604 flows directly to the top of the condenser 2 through the water discharge nozzle 605, ensuring the cooling effect of the condensed water on the condenser 2, and preventing the condensed water from overflowing from the water receiving tank 601.

[0042] After the condensed water is sprayed to dust the inside of the air conditioner housing 1, dust and part of the condensed water will fall into the clearance groove of the filter plate 802 and the fixed plate 801. The dust and condensed water that fall into the clearance groove of the fixed plate 801 will directly fall onto the collection tank 808. The dust and condensed water that fall onto the collection tank 808 are filtered by the collection tank 808. The condensed water falls into the collection tank 808, and the dust remains in the filter plate 802. At this time, the servo motor 804 is started. When the servo motor 804 is started, it drives the reciprocating screw rod 805 to rotate, which makes the cleaning plate 806 reciprocate above the filter plate 802, so that the dust above the filter plate 802 is pushed into the collection tank 808 through the clearance groove. The filter plate 802 is located above the dust to prevent the dust from being raised again into the inside of the air conditioner housing 1 when the air conditioner is not in use.

[0043] The condensed water and dust entering the collection tank 808 are guided by the first inclined plate 809 and the second inclined plate 810 and flow into the drain pipe 9 for discharge.

[0044] Finally, the above is only a preferred embodiment of the present application and is not intended to limit the present application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the present application shall be included in the protection scope of the present application.

Claims

1. A cooling capacity enhancement device using air conditioner condensate, comprising an air conditioner casing (1), characterized in that: A condenser (2) is fixedly connected to the side of the air conditioner housing (1). An air conditioner protective cover (10) is fixedly connected to the side of the air conditioner housing (1) away from the condenser (2). An air conditioner fan (3) is movably connected to one side inside the air conditioner housing (1). A compressor (4) is fixedly connected to the other side inside the air conditioner housing (1). The air conditioner fan (3) and the compressor (4) are separate from each other. A flow limiting mechanism (6) is fixedly connected to the top of the air conditioner housing (1). A water inlet pipe (5) is fixedly connected to the top of the flow limiting mechanism (6). A spraying mechanism (7) is fixedly connected to the bottom end of the flow mechanism (6), a collection mechanism (8) is fixedly connected to the bottom end of the air conditioner housing (1), a drain pipe (9) is fixedly connected to the bottom end of the collection mechanism (8), the flow limiting mechanism (6) collects the condensate flowing out of the air conditioner, the spraying mechanism (7) sprays the condensate collected by the flow limiting mechanism (6) onto the side of the condenser (2), the condensate sprayed onto the side of the condenser (2) cools the condenser (2), and the collection mechanism (8) collects the sprayed condensate and the dust inside the air conditioner housing (1); The flow limiting mechanism (6) includes a water receiving tank (601) for support. A sealing cover (603) is fixedly connected to the top of the water receiving tank (601). A guide plate (602) is fixedly connected to the bottom of the inside of the water receiving tank (601). A connecting cylinder (606) is fixedly connected inside the guide plate (602). The connecting cylinder (606) is located at the lowest point of the top of the guide plate (602). Water inlet grooves (608) are opened on both sides of the connecting cylinder (606). The bottom of the water inlet groove (608) coincides with the lowest point of the top of the guide plate (602). The water inlet tank (608) is located inside the connecting cylinder (606) and a collection chamber (609) is fixedly connected. The collection chamber (609) covers the water inlet tank (608). A drain pipe (610) is fixedly connected to the bottom of the collection chamber (609). A filter screen (607) is fixedly connected to the top of the connecting cylinder (606). The spraying mechanism (7) includes a fan housing (701) for support. The top of the fan housing (701) is fixedly connected to the bottom of the inner connecting cylinder (606) of the flow limiting mechanism (6). The condensate and dust in the connecting cylinder (606) enter the fan housing (701). Centrifugal blades (702) are movably connected inside the fan housing (701). The centrifugal blade (702) has a first discharge channel (703) and a second discharge channel (704) on the side near the condenser (2), and the first discharge channel (703) and the second discharge channel (704) spray condensate onto the side of the condenser (2).

2. The cooling capacity enhancement device using air conditioning condensate water according to claim 1, characterized in that: The guide plate (602) is fixedly connected to the drain pipe (604) on both sides near the condenser (2). The drain pipe (604) is fixedly connected to the bottom end of the drain nozzle (605). The drain nozzle (605) is located at the top of the condenser (2). The top end of the drain pipe (604) is located above the guide plate (602), and there is a five-millimeter distance between the bottom end and the top end of the drain pipe (604).

3. The cooling capacity enhancement device using air conditioning condensate water according to claim 1, characterized in that: The centrifugal blade (702) and the second discharge channel (704) are both fixedly connected with a first guide plate (705) and a second guide plate (706). The first guide plate (705) and the second guide plate (706) are inclined outward relative to the center plane of the first discharge channel (703) and the second discharge channel (704), and the first guide plate (705) and the second guide plate (706) are mirror symmetrical.

4. The cooling capacity enhancement device using air conditioning condensate water according to claim 1, characterized in that: The collection mechanism (8) includes a fixed plate (801) for support. A filter plate (802) is fixedly connected inside the fixed plate (801) by a connecting rod. Alternating grooves are provided on both sides of the fixed plate (801) near the filter plate (802). A sealing shell (803) is fixedly connected to the top of the fixed plate (801). A servo motor (804) is fixedly connected inside the sealing shell (803). A reciprocating screw (805) is fixedly connected to the side of the servo motor (804). A cleaning plate (806) is threadedly connected to the side of the reciprocating screw (805).

5. The cooling capacity enhancement device using air conditioning condensate water according to claim 4, characterized in that: The bottom end of the cleaning plate (806) contacts the top end of the filter plate (802), and the cleaning plate (806) moves above the filter plate (802) and pushes the dust above the filter plate (802) into the clearance groove. A limit rod (807) is movably connected to the side of the cleaning plate (806) away from the reciprocating screw (805).

6. The cooling capacity enhancement device using air conditioning condensate water according to claim 5, characterized in that: The bottom end of the fixed plate (801) is fixedly connected to a collection box (808), and a first inclined plate (809) is fixedly connected to one side inside the collection box (808). The top of the first inclined plate (809) is an inclined surface, and a second inclined plate (810) is fixedly connected to the side of the lower end of the inclined surface of the first inclined plate (809). There are two second inclined plates (810), which are mirror-symmetrical. The sides of the two second inclined plates (810) that are close to each other are the lower ends of the inclined surface, and the drain pipe (9) is located at the lower ends of the two second inclined plates (810) that are close to each other.

Citation Information

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