An air conditioning energy-saving water tank
By designing an air-conditioning energy water tank in the central air-conditioning system of the water source heat pump and recycling water sources, the problem of insufficient water supply caused by the reduction of groundwater resources is solved, and the normal operation of the unit and the conservation of groundwater resources are achieved.
Patent Information
- Application Number
- CN202211007661.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-08-22
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2042-08-22
AI Technical Summary
After a long time of use, the existing central air conditioning system for water source heat pumps gradually decreased, resulting in insufficient water supply on the water source side, which could not meet the unit operation needs. Some cities do not allow new water source wells to be drilled, resulting in the system being unable to use normally.
A water tank is designed to provide air-regulating energy water tanks. By setting up a water tank between the outlet well and the return well and connecting it to the unit, the water tank circulation system is used to replenish the water source when there is insufficient groundwater to meet the unit's operation needs, and when the return water temperature exceeds the limited temperature, the return water is directly discharged to the return well to save groundwater resources.
Without re-drilling, improve the water flow rate on the water source side of the water source heat pump air conditioning system, extend the service life of groundwater resources, ensure the normal operation of the unit, and save groundwater resources.
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Figure CN115420007B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of air conditioning heat pump technology, and in particular to an air conditioning energy-saving water tank. Background Art
[0002] Water source heat pump technology is a technology that uses the low-level energy contained in shallow water on the earth's surface, such as groundwater, surface water, seawater, river water and lake water, as the heat source on the low-temperature side of the heat pump to achieve the transfer of low-level heat energy to high-level heat energy. It uses water source heat pump units to replace traditional refrigeration units and boilers or air-cooled heat pump units, and uses natural water bodies as the cold and hot sources of the water source side heat exchange system of the heat pump unit to achieve the purpose of regulating indoor temperature.
[0003] The existing water source heat pump central air conditioning system uses groundwater as the water source. At the beginning of the design, a water source well was dug, which is divided into a water well and a recharging well.
[0004] With regard to the above-mentioned related technologies, the inventor believes that after long-term use, groundwater resources will gradually decrease, resulting in insufficient water supply on the water source side of the system, which cannot meet the operation needs of the unit. To solve this problem, it is necessary to drill a new well to restore the original water supply; however, since some cities no longer allow new water source wells to be drilled, the original water source heat pump central air conditioning system cannot be used due to insufficient water supply. Summary of the invention
[0005] In order to improve the problem of insufficient water flow on the water source side of a water source heat pump air conditioning system without re-drilling a well, the present application provides an air conditioning energy-saving water tank.
[0006] The present application provides an air conditioning energy-saving water tank, which adopts the following technical solution:
[0007] An air-conditioning energy-saving water tank comprises a water outlet well and a recharging well relatively connected to the water outlet well, a water tank is arranged between a unit and the water outlet well, one side of the water tank is relatively connected to the water outlet well, the other side of the water tank is relatively connected to the unit, and the water tank is also relatively connected to the recharging well, and a return water pipeline is arranged between the unit and the water tank.
[0008] By adopting the above technical solution, the liquid inside the outlet well enters the inside of the water tank, and enters the unit position through the water tank, and then the liquid at the unit position is returned to the position of the water tank. Through the set water tank, in the case of insufficient groundwater, the liquid in the outlet well enters the water tank, and then circulates with the unit. When the return water temperature of the unit exceeds the specified temperature, the return water is directly discharged from the water tank to the recharging well, which can save groundwater resources. At the same time, during the peak period of unit use, the water supply of the outlet well pump is insufficient, and the liquid inside the water tank can be used as a supplement to meet the full load operation of the unit, and improve the insufficient water flow on the water source side of the water source heat pump air conditioning system without re-drilling the well.
[0009] Optionally, the return water pipeline includes a cooling pipe, a cooling chamber is opened inside the cooling pipe, two adjacent cooling chambers are relatively connected through a connecting chamber, and the cooling pipe is vertically provided with a cooling paddle relative to the cooling chamber, and the cooling paddle is rotatably connected to the cooling pipe.
[0010] By adopting the above technical solution, the liquid inside the cooling pipe drives the cooling paddle to rotate, and then the cooling paddle drives the liquid to flip, thereby improving the cooling effect of the liquid, accelerating the cooling of the liquid, and reducing the temperature inside the water tank where the liquid returns, thereby facilitating the circulation of the returned liquid and improving the circulation efficiency of the water tank.
[0011] Optionally, a blowing pipe is fixedly connected to the top of the cooling pipe, a connecting hole is vertically opened on the bottom wall of the blowing pipe, the connecting hole relatively connects the interior of the cooling pipe with the interior of the blowing pipe, a refrigeration grille is vertically fixedly connected to the interior of the blowing pipe, and a fan is fixedly connected to the cooling pipe on one side relative to the refrigeration grille.
[0012] By adopting the above technical solution, the cold air located at the refrigeration grille is circulated by a fan, so that the cold air moves relatively inside the blow pipe, and the cold air enters the cooling pipe from the connecting hole, and cools the liquid inside the cooling pipe, thereby improving the cooling effect of the liquid.
[0013] Optionally, the cooling paddle includes a vertically arranged standpipe, which is rotatably connected to the cooling tube, and a paddle is fixedly connected to the side wall of the standpipe. The paddle is a hollow structure, and is relatively connected to the interior of the standpipe. The top of the standpipe is relatively connected to the interior of the blowing tube, and an exhaust hole is provided on the sidewall of the paddle, which relatively connects the interior of the paddle with the interior of the cooling tube.
[0014] By adopting the above technical solution, the cold air inside the blowing pipe enters into the interior of the vertical pipe from the top opening of the vertical pipe, and the cold air enters into the interior of the paddle from the vertical pipe, and then enters into the interior of the cooling pipe from the exhaust hole of the paddle, so as to cool the liquid. The temperature of the vertical pipe and the paddle is lowered by the cold air, thereby improving the effect of cooling the liquid during the stirring process.
[0015] Optionally, a condensation plate is fixedly connected to the lower surface of the top wall of the blowing pipe, and the bottom wall of the condensation plate is convex.
[0016] By adopting the above technical solution, the humid hot air inside the cooling pipe enters into the blowing pipe through the exhaust hole, and the internal temperature of the blowing pipe is relatively low. The condenser pipe provided can condense the liquid in the air, and the condensed liquid flows back into the cooling pipe through the exhaust hole, thereby reducing the loss of liquid.
[0017] Optionally, a first partition is horizontally arranged inside the water tank, a second partition is horizontally arranged below the first partition, and a connecting pipe is vertically arranged between the first partition and the second partition. The connecting pipe relatively connects the top of the first partition and the bottom of the second partition, and the first partition and the second partition are relatively connected with the blowing pipe.
[0018] By adopting the above technical scheme, the liquid returning to the water tank and the liquid retained in the water tank can be separated by the first partition and the second partition, and the liquid returning to the water tank can flow into the bottom of the second partition through the connecting pipe, and the circulation pipe is cooled by the gas blown in by the blowing pipe, thereby cooling the liquid at the connecting pipe position.
[0019] Optionally, a reversing pipe is fixedly connected to the inside of the water tank, and the reversing pipe includes an inner pipe and an outer pipe sleeved on the outside of the inner pipe, the inner pipe and the outer pipe are rotatably connected, the outer pipe is relatively connected to the recharge well, a drain outlet is provided on the side wall of the outer pipe, and an adjustment port is provided on the inner pipe relative to the position of the drain outlet, a first adjustment plate is coaxially fixedly connected to the inside of the outer pipe, the first adjustment plate is provided with a first notch, and a second adjustment plate is fixedly connected to the position of the inner pipe relative to the outer pipe, the first adjustment plate and the second adjustment plate are relatively and rotatably connected, the second adjustment plate can completely cover the first notch, and a second notch is provided on the second adjustment plate. When the second adjustment plate covers the first notch, the drain outlet and the adjustment port are relative, and the side wall of the inner pipe is provided with a rotating structure that drives the inner pipe to rotate.
[0020] By adopting the above technical scheme, when the temperature of the detected reflux liquid exceeds the predetermined temperature, the inner tube is driven to rotate by the rotating structure, so that the first adjusting plate is opposite to the second adjusting plate, the first notch is opposite to the second notch, and the drain port and the regulating port are staggered, and the liquid inside the inner tube can enter the interior of the second pipe from the first notch and the second notch and flow into the recharging well; and when the temperature of the detected reflux liquid is lower than the predetermined temperature, the inner tube is driven to rotate by the rotating structure, so that the first adjusting plate and the second adjusting plate are staggered, the second adjusting plate covers the first notch, and the drain port and the regulating port are opposite, so that the liquid inside the inner tube flows back to the inside of the water tank for circulation.
[0021] Optionally, the rotating structure includes a gear ring fixed to the outer wall of the inner tube, the outer side of the gear ring is meshingly connected with a gear, one side of the gear is fixedly connected to a first driving member that drives the gear to rotate, and the inside of the inner tube is fixedly connected to a temperature detector, and the temperature detector is signal-connected to the first driving member.
[0022] By adopting the above technical solution, when the temperature detector detects the temperature, the temperature detector controls the first driving member to drive the gear to rotate, and the gear drives the ring gear to rotate, so that the ring gear drives the inner tube to rotate relatively inside the outer tube.
[0023] In summary, the present application includes at least one of the following beneficial technical effects:
[0024] 1. The liquid in the outlet well enters the water tank and enters the unit through the water tank. Then the liquid at the unit returns to the water tank. Through the water tank, when there is insufficient groundwater, the liquid in the outlet well enters the water tank and circulates with the unit. When the return water temperature of the unit exceeds the specified temperature, the return water is directly discharged from the water tank to the recharging well, which can save groundwater resources. At the same time, during the peak period of unit use, the water supply from the outlet well pump is insufficient, and the liquid inside the water tank can be used as a supplement to meet the full load operation of the unit, and improve the insufficient water flow on the water source side of the water source heat pump air conditioning system without re-drilling the well.
[0025] 2. The cold air inside the blow pipe enters the interior of the vertical pipe from the top opening of the vertical pipe, and the cold air enters the interior of the paddle from the vertical pipe, and then enters the interior of the cooling pipe from the exhaust hole of the paddle to cool the liquid. The temperature of the vertical pipe and the paddle is lowered by the cold air, thereby improving the cooling effect of the liquid during the stirring process.
[0026] 3. When the temperature of the detected refluxed liquid exceeds a predetermined temperature, the inner tube is driven to rotate by the rotating structure, so that the first adjusting plate is opposite to the second adjusting plate, the first notch is opposite to the second notch, and the drain port and the regulating port are staggered, and the liquid inside the inner tube can enter the interior of the second pipe from the first notch and the second notch and flow into the recharging well; and when the temperature of the detected refluxed liquid is lower than a predetermined temperature, the inner tube is driven to rotate by the rotating structure, so that the first adjusting plate and the second adjusting plate are staggered, the second adjusting plate covers the first notch, and the drain port and the regulating port are opposite, so that the liquid inside the inner tube flows back to the inside of the water tank for circulation. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] Figure 1 This is a schematic diagram of the overall structure of an air-conditioning energy-saving water tank in an embodiment of the present application;
[0028] Figure 2 is a cross-sectional view of an air-conditioning energy-saving water tank in an embodiment of the present application;
[0029] Figure 3 It is a structural schematic diagram of the heating pipe position of an air-conditioning energy-saving water tank in an embodiment of the present application;
[0030] Figure 4 It is a structural schematic diagram of the blowing pipe position of an air-conditioning energy-saving water tank in an embodiment of the present application;
[0031] Figure 5 This is a schematic diagram of the structure of the first partition and the second partition of an air-conditioning energy-saving water tank in an embodiment of the present application;
[0032] Figure 6 It is a structural schematic diagram of the reversing pipe position of an air-conditioning energy-saving water tank in an embodiment of the present application;
[0033] Figure 7 It is an exploded view of the inner tube and the outer tube at the reversing tube position of an air-conditioning energy-saving water tank in an embodiment of the present application.
[0034] Explanation of reference numerals: 1, water tank; 11, temperature control reversing structure; 111, reversing tube; 1111, inner tube; 1112, outer tube; 1113, first adjusting plate; 1114, first notch; 1115, second adjusting plate; 1116, second notch; 1117, adjusting port; 1118, drain port; 112, gear ring; 113, gear; 114, rotating motor; 115, temperature detector; 12, first partition; 13, second partition; 14, high temperature portion; 15, low temperature portion; 16, cooling 1. Part; 17. Connecting pipe; 18. Air pipe; 19. Return pipe; 2. Water outlet well; 21. First pipeline; 3. Recharge well; 31. Second pipeline; 4. Unit; 5. Return water pipeline; 51. Cooling structure; 511. Cooling pipe; 512. Cooling chamber; 513. Connecting chamber; 514. Cooling paddle; 5141. Vertical pipe; 5142. Paddle; 5143. Exhaust hole; 52. Blowing pipe; 521. Connecting hole; 522. Refrigeration grille; 523. Fan; 524. Condensation plate; 6. Water inlet pipeline. DETAILED DESCRIPTION
[0035] The following is combined with Figure 1-7 This application is described in further detail.
[0036] The present application embodiment discloses an air conditioning energy-saving water tank. Figure 1 , Figure 2 An air-conditioning energy-saving water tank includes a water tank 1, a water outlet well 2 is arranged on one side of the water tank 1, a recharge well 3 is arranged on one side of the water outlet well 2, the water outlet well 2 and the recharge well 3 are relatively connected, and an organic group 4 is also arranged on one side of the water tank 1.
[0037] The water outlet well 2 and the water tank 1 are relatively connected through the first pipeline 21, and the recharge well 3 and the water tank 1 are relatively connected through the second pipeline 31, the unit 4 and the water tank 1 are relatively connected through the return pipeline 5, and a water inlet pipeline 6 is also provided between the unit 4 and the water tank 1, and a water supply pipeline is connected to one side of the water tank 1, and the water supply pipeline can be relatively connected with the external water supply pipe.
[0038] The liquid inside the outlet well 2 is pumped into the water tank 1 through the pump body, and the liquid inside the water tank 1 enters the unit 4 through the water inlet pipe 6 for cooling, and the cooled return water flows into the water tank 1 through the return pipe, and a temperature control reversing structure 11 is provided inside the water tank 1. When the temperature inside the return pipe 5 is lower than the predetermined temperature, the liquid inside the return pipe 5 is controlled to enter the water tank 1 and enter the unit 4 again through the water inlet pipe 6. When the temperature inside the return pipe 5 is higher than the predetermined temperature, the liquid inside the return pipe 5 is controlled to enter the recharging well 3 through the second pipe 31. A cooling structure 51 is provided inside the return pipe 5, and the high-temperature liquid inside the return pipe 5 can be cooled by the cooling structure 51, thereby improving the circulation effect of the liquid inside the water tank 1.
[0039] Reference Figure 3 , Figure 4 The cooling structure 51 includes a horizontally arranged cooling tube 511, and a cooling chamber 512 is provided inside the cooling tube 511. The cooling chamber 512 is a cylindrical structure, and a plurality of cooling chambers 512 are staggered along the length direction of the cooling tube 511, and two adjacent cooling chambers 512 are relatively connected through a connecting chamber 513. A cooling paddle 514 is vertically arranged inside the cooling tube 511 relative to the position of the cooling chamber 512, and the cooling paddle 514 includes a vertically arranged vertical tube 5141, and a paddle 5142 is fixedly connected to the side wall of the vertical tube 5141, and a plurality of paddles 5142 are arranged along the circumferential side wall of the vertical tube 5141.
[0040] The liquid in the cooling tube 511 drives the paddle 5142 to rotate, and then the paddle 5142 stirs the liquid to improve the heat dissipation capacity of the liquid. A blowing tube 52 is fixedly connected to the top of the cooling tube 511, and a connecting hole 521 is vertically opened on the lower surface of the blowing tube 52. The connecting hole 521 penetrates the top wall of the cooling tube 511, and the inside of the blowing tube 52 and the inside of the cooling tube 511 are relatively connected through the connecting hole 521.
[0041] A refrigeration grille 522 is vertically arranged inside the cooling pipe 511, and the refrigeration grille 522 is fixedly connected to the cooling pipe 511. A fan 523 is fixedly connected to the cooling pipe 511 on one side of the refrigeration grille 522, and the low-temperature air at the position of the refrigeration grille 522 is relatively circulated inside the cooling pipe 511 through the fan 523.
[0042] The vertical pipe 5141 is a hollow structure, and the top of the vertical pipe 5141 is relatively connected to the inside of the blowing pipe 52. The paddle 5142 is a hollow structure, and the paddle 5142 is relatively connected to the inside of the vertical pipe 5141. An exhaust hole 5143 is horizontally opened at one end of the paddle 5142 away from the vertical pipe 5141. The low-temperature gas inside the blowing pipe 52 can enter the inside of the paddle 5142 from the position of the vertical pipe 5141, and then enter the inside of the cooling pipe 511 from the position of the paddle 5142 through the exhaust hole 5143, and then return to the inside of the blowing pipe 52 from the position of the connecting hole 521.
[0043] A condensation plate 524 is fixedly connected to the lower surface of the top wall of the blowing pipe 52. A plurality of condensation plates 524 are equidistantly arranged along the setting direction of the blowing pipe 52, and the bottom end of the condensation plate 524 is a convex structure, so that the condensation plate 524 can condense the liquid inside the blowing pipe 52, and the condensed liquid enters the interior of the cooling pipe 511 through the exhaust hole 5143.
[0044] Reference Figure 2 , Figure 5 A first partition 12 is horizontally arranged inside the water tank 1, and a second partition 13 is horizontally arranged below the first partition 12. The first partition 12 is fixedly connected to the water tank 1, and the second partition 13 is fixedly connected to the water tank 1. The first partition 12 and the second partition 13 divide the interior of the water tank 1 into a high-temperature portion 14 located above the first partition 12, a low-temperature portion 15 located below the second partition 13, and a cooling portion 16 located between the first partition 12 and the second partition 13. The return water pipeline 5 is relatively connected to the high-temperature portion 14, and the water inlet pipeline 6 is relatively connected to the low-temperature portion 15.
[0045] A connecting pipe 17 is vertically arranged inside the cooling part 16, and multiple connecting pipes 17 are arranged. The top end of the connecting pipe 17 is fixedly connected to the first partition 12, the bottom end of the connecting pipe 17 is fixedly connected to the second partition 13, and the top end of the connecting pipe 17 is relatively connected to the high temperature part 14, and the bottom end of the connecting pipe 17 is relatively connected to the low temperature part 15.
[0046] The water tank 1 is fixedly connected with an air supply pipe 18 at a position relative to the cooling part 16, one end of the air supply pipe 18 is fixedly connected with the blowing pipe 52 and is relatively connected, and the other end of the air supply pipe 18 is relatively connected with the water tank 1 and is relatively connected with the cooling part 16. The end of the blowing pipe 52 away from the air supply pipe 18 is fixedly connected with a return air pipe 19, and the other end of the return air pipe 19 is relatively connected with the cooling part 16 and is relatively connected, so that the gas inside the blowing pipe 52 can enter the return air pipe 19 from the blowing pipe 52 to the interior of the cooling part 16 to cool the cooling pipe 511, and then flow back to the interior of the blowing pipe 52 through the air supply pipe 18.
[0047] Reference Figure 6 , Figure 7 The temperature control reversing structure 11 includes a reversing tube 111 fixedly connected inside the water tank 1, one end of the reversing tube 111 is relatively connected to the return water pipeline 5, and the other end of the reversing tube 111 is relatively connected to the second pipeline 31. The reversing tube 111 includes an inner tube 1111 arranged horizontally and an outer tube 1112 sleeved on the outer side of the inner tube 1111. The inner tube 1111 and the outer tube 1112 are coaxially arranged, and the inner tube 1111 and the outer tube 1112 are rotatably connected. The outer wall of the inner tube 1111 is coaxially fixedly connected with a gear ring 112, and the outer side of the gear ring 112 is meshedly connected with a gear 113. The outer tube 1112 is fixedly connected with a rotating motor 114 relative to the position of the gear 113, and the motor shaft of the rotating motor 114 is coaxially and fixedly connected with the gear 113. A temperature detector 115 is fixedly connected to the interior of the inner tube 1111 . The temperature detector 115 is signal-connected to the rotating motor 114 . The temperature detector 115 can detect the temperature of the liquid inside the inner tube 1111 .
[0048] The end of the outer tube 1112 facing away from the return pipe 5 is fixedly connected with a first adjusting plate 1113, the first adjusting plate 1113 is a semicircular structure, the outer tube 1112 forms a first notch 1114 for drainage through the first adjusting plate 1113, and the inner tube 1111 is fixedly connected with a second adjusting plate 1115 at a position relative to the first adjusting plate 1113, the second adjusting plate 1115 is a semicircular structure, and the inner tube 1111 forms a second notch 1116 for drainage through the second adjusting plate 1115. The side wall of the inner tube 1111 is provided with an adjusting port 1117, and the outer tube 1112 is provided with a drainage port 1118 at a position relative to the adjusting port 1117.
[0049] When the temperature detector 115 detects that the temperature of the liquid inside the inner tube 1111 is higher than the predetermined temperature, the first adjustment plate 1113 of the outer tube 1112 and the second adjustment plate 1115 of the inner tube 1111 are opposite to each other, and the adjustment port 1117 and the drain port 1118 are staggered, so that the liquid inside the inner tube 1111 can be discharged into the interior of the second pipeline 31 from the positions of the first notch 1114 and the second notch 1116.
[0050] When the temperature detector 115 detects that the temperature of the liquid inside the inner tube 1111 is lower than the predetermined temperature, the first adjusting plate 1113 of the outer tube 1112 and the second adjusting plate 1115 of the inner tube 1111 are staggered, so that the position of the second notch 1116 is completely covered by the first adjusting plate 1113, and the position of the first notch 1114 is completely covered by the second adjusting plate 1115. At this time, the adjusting port 1117 and the drain port 1118 are opposite to each other, and the liquid inside the inner tube 1111 can enter the interior of the water tank 1.
[0051] The implementation principle of an air-conditioning energy-saving water tank in the embodiment of the present application is as follows: by pumping the liquid inside the water outlet well 2 into the inside of the water tank 1, the liquid inside the water tank 1 is relatively connected through the water inlet pipe 6, and then when the liquid at the position of the unit 4 flows back to the inside of the water tank 1, and the liquid at the position of the cooling pipe 511 is cooled by the blowing pipe 52, the liquid inside the cooling pipe 511 can be cooled by the blade 5142. The liquid inside the cooling pipe 511 enters the inside of the reversing pipe 111 through the cooling pipe 511, and the temperature is detected by the temperature detector 115. When the temperature exceeds the predetermined temperature, the inner pipe 1111 controls the liquid to enter the inside of the second pipe 31 and flow back to the inside of the recharging well 3. When the temperature is lower than the predetermined temperature, the inner pipe 1111 controls the liquid to enter the inside of the water tank 1, and the liquid is recycled.
[0052] The above are all preferred embodiments of the present application, and the protection scope of the present application is not limited thereto. Therefore, any equivalent changes made according to the structure, shape, and principle of the present application should be included in the protection scope of the present application.
Claims
1. An air conditioning energy-saving water tank, characterized in that: It comprises a water outlet well (2) and a recharging well (3) which is relatively connected to the water outlet well (2); a water tank (1) is arranged between the unit (4) and the water outlet well (2); one side of the water tank (1) is relatively connected to the water outlet well (2); the other side of the water tank (1) is relatively connected to the unit (4); the water tank (1) is also relatively connected to the recharging well (3); a water return pipeline (5) is arranged between the unit (4) and the water tank (1); The return water pipeline (5) comprises a cooling pipe (511), a cooling chamber (512) is provided inside the cooling pipe (511), two adjacent cooling chambers (512) are relatively connected via a connecting chamber (513), a cooling paddle (514) is vertically arranged on the cooling pipe (511) relative to the cooling chamber (512), and the cooling paddle (514) is rotatably connected to the cooling pipe (511); A blowing pipe (52) is fixedly connected to the top of the cooling pipe (511); a connecting hole (521) is vertically opened on the bottom wall of the blowing pipe (52); the connecting hole (521) relatively connects the interior of the cooling pipe (511) with the interior of the blowing pipe (52); a refrigeration grille (522) is vertically fixedly connected to the interior of the blowing pipe (52); and a fan (523) is fixedly connected to one side of the cooling pipe (511) relative to the refrigeration grille (522); A first partition (12) is horizontally arranged inside the water tank (1), a second partition (13) is horizontally arranged below the first partition (12), a connecting pipe (17) is vertically arranged between the first partition (12) and the second partition (13), the connecting pipe (17) relatively connects the upper part of the first partition (12) and the lower part of the second partition (13), and the first partition (12) and the second partition (13) are relatively connected to the blowing pipe (52).
2. The air conditioning energy-saving water tank according to claim 1, characterized in that: The cooling paddle (514) comprises a vertically arranged vertical pipe (5141), the vertical pipe (5141) is rotatably connected to the cooling pipe (511), a paddle (5142) is fixedly connected to the side wall of the vertical pipe (5141), the paddle (5142) is a hollow structure, and the paddle (5142) is relatively connected to the inside of the vertical pipe (5141), the top end of the vertical pipe (5141) is relatively connected to the inside of the blowing pipe (52), and an exhaust hole (5143) is opened on the side wall of the paddle (5142), and the exhaust hole (5143) relatively connects the inside of the paddle (5142) with the inside of the cooling pipe (511).
3. The air conditioning energy-saving water tank according to claim 1, characterized in that: A condensation plate (524) is fixedly connected to the lower surface of the top wall of the blowing pipe (52), and the bottom wall of the condensation plate (524) is arranged in a convex manner.
4. The air conditioning energy-saving water tank according to claim 1, characterized in that: A reversing pipe (111) is fixedly connected to the interior of the water tank (1), the reversing pipe (111) comprising an inner pipe (1111) and an outer pipe (1112) sleeved on the outer side of the inner pipe (1111), the inner pipe (1111) and the outer pipe (1112) being rotatably connected, the outer pipe (1112) being relatively connected to the recharging well (3), a drainage port (1118) being provided on the side wall of the outer pipe (1112), an adjustment port (1117) being provided at a position of the inner pipe (1111) relative to the drainage port (1118), a first adjustment plate (1113) being coaxially fixedly connected to the interior of the outer pipe (1112), the first adjustment plate (1113) being provided with a first The inner tube (1111) is fixedly connected to a second adjustment plate (1115) at a position relative to the outer tube (1112); the first adjustment plate (1113) and the second adjustment plate (1115) are relatively and rotatably connected; the second adjustment plate (1115) can completely cover the first notch (1114); a second notch (1116) is provided on the second adjustment plate (1115); when the second adjustment plate (1115) covers the first notch (1114), the drainage port (1118) and the adjustment port (1117) are relatively opposite; and a rotating structure for driving the inner tube (1111) to rotate is provided on the side wall of the inner tube (1111).
5. The air-conditioning energy-saving water tank according to claim 4, characterized in that: The rotating structure comprises a gear ring (112) fixed to the outer wall of the inner tube (1111); the outer side of the gear ring (112) is meshingly connected with a gear (113); one side of the gear (113) is fixedly connected with a first driving member for driving the gear (113) to rotate; the interior of the inner tube (1111) is fixedly connected with a temperature detector (115); and the temperature detector (115) is signal-connected to the first driving member.
Citation Information
Patent Citations
Refrigerating and heating water source heat pump system suitable for partial load operation
CN211400156U
A stirrer with cooling function
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