Air purification and energy-saving air conditioner
By introducing the design into the air conditioner, through the circulation flow of the refrigerant liquid and the design of the transmission rod, the waste of low-temperature liquid in the refrigeration and dehumidification process of the existing air conditioner is solved, the technical application is realized, and the technical problems existing in the existing technology are solved. Through the circulation of the refrigerant liquid and the rapid cooling of the gas, the rapid cooling effect of energy is achieved, the rapid cooling effect of energy is achieved, the energy saving effect is achieved, the energy saving effect is achieved, the energy saving effect is achieved, the energy saving effect is achieved, the energy saving effect is achieved, the energy purification energy-saving air conditioner is achieved.
Patent Information
- Application Number
- CN202510945273.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-09
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2045-07-09
AI Technical Summary
In the cooling and dehumidification process of existing air conditioners, low-temperature liquid is wasted, resulting in increased energy consumption.
The refrigerant guide pipe and the discharge liquid pipe are used to guide the low-temperature liquid liquefied from the condenser into the hollow cooling tube. Combined with the design of the transmission rod and the hydraulic rod, the recycling of the low-temperature liquid and the rapid cooling of the gas are realized, reducing the operation complexity of the condenser.
It effectively reduces the energy consumption of the condenser, realizes the secondary utilization of the cryogenic liquid and avoids waste.
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Figure CN120466743B_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of air purification, in particular to an air purification energy-saving air conditioner. Background Art
[0002] With the development of society and the advancement of science and technology, people are becoming more and more aware of environmental protection. Ozone pollution and PM2.5 have become the focus of everyone's attention. Various energy-saving and environmentally friendly alternative air conditioners have emerged. In particular, the application of semiconductor hot and cold chip combinations in this field has been theoretically recognized and will become an alternative to traditional refrigeration and air conditioning.
[0003] A patent with publication number CN114234337A discloses an energy-saving and environmentally friendly air-conditioning air purification system, which relates to the technical field of air conditioning devices. Its technical solution is: it includes an air-conditioning air purification device body, an air-conditioning all-in-one unit, a second filter device, a connecting pipe and a first filter device, the first filter device also includes a rear base installed at one end of the external threaded head, one side of the rear base is fixedly connected to the side fixing plate, the top of the side fixing plate is provided with a mounting groove, one end of the side fixing plate is fixedly connected to the fixing ring, the inner wall of the fixing ring is sleeved with a solar panel, the inner wall of the mounting groove is provided with a filter box, the filter box also includes a frame installed on the outer surface, and the inner wall of the frame is provided with a cross-shaped iron wire. The present invention has the advantages of increasing the air intake and air outlet of the air conditioner, reducing the resistance of the air intake while improving the filtering effect, and improving the degree of indoor air purification. It has low cost, novel design, saves electricity resources, is easy to clean, and is convenient for long-term use.
[0004] In the current existing technology, when the existing air conditioner performs cooling and dehumidification, it needs to absorb the hot air from the outside into the interior of the air conditioner and cool the absorbed air through the condenser. Since the higher the temperature of the air, the higher the energy required for cooling the condenser, and the air contains a large amount of water vapor, when these water vapor encounters the condenser, as the temperature drops, the water vapor inside the air will gradually liquefy. These liquefied low-temperature liquids and the liquid collected during dehumidification will be directly discharged through the pipeline. The discharge of these low-temperature liquids will cause certain low-temperature waste problems.
[0005] To this end, the present invention provides an air-purifying energy-saving air conditioner. Summary of the Invention
[0006] In order to make up for the deficiencies of the prior art, at least one technical problem raised in the background technology is solved.
[0007] The technical solution adopted by the present invention to solve its technical problems is as follows: an air-purifying energy-saving air conditioner described in the present invention comprises a protective shell and an energy-saving air-conditioning main unit fixedly mounted on the inner wall surface of the protective shell, a medium-sized air inlet pipe fixedly mounted on the outer surface of the protective shell and the energy-saving air-conditioning main unit, a limiting collar 2 fixedly mounted on the outer surface of the medium-sized air inlet pipe, a circulating pumping cylinder fixedly mounted on the inner surface of the limiting collar 2, a refrigerant liquid guide pipe and a discharge liquid pipe are respectively arranged on the upper and lower surfaces of the circulating pumping cylinder, and the other end of the refrigerant liquid guide pipe is fixedly connected to the energy-saving air-conditioning main unit On the outer surface of the said limit ring 2, a hollow shell is provided on the outer surface, the upper and lower side surfaces of the hollow shell are located at the outer edge positions of the refrigerant guide pipe and the discharge liquid pipe, the inner wall surface of the medium-sized air inlet pipe is fixedly connected with a hollow cooling pipe, and a guide cavity is provided on the outer surface of the hollow cooling pipe, and a transmission rod 1 is movably connected on the inner wall surface of the medium-sized air inlet pipe and the hollow shell, and a push blade is fixedly connected on the outer surface of the hollow shell and located inside the medium-sized air inlet pipe, and a transmission blade 1 is provided on the outer surface of the transmission rod 1 and located inside the hollow shell.
[0008] Preferably, a one-way discharge pipe is fixedly installed on the top surface of the limiting ring 2, the other end of the one-way discharge pipe is fixedly connected to the inside of the medium-sized air inlet pipe, and a return pipe is fixedly connected to the bottom surface of the circulating pressure cylinder.
[0009] Preferably, a baffle is fixedly connected to the inner wall of the circulating pumping cylinder and located in the middle position, two groups of hydraulic rods are symmetrically fixedly installed on the upper and lower surfaces of the baffle, and a limiting mesh is fixedly installed on the inner wall of the circulating pumping cylinder and located on the outer surface of the hydraulic rod.
[0010] Preferably, an extrusion push plate is fixedly connected to the output end of the hydraulic rod, air holes are opened on both side surfaces of the circulating pumping cylinder and on both side edge positions of the baffle, and heat dissipation air pipes are fixedly connected to the inner wall surfaces of the refrigerant liquid guide pipe and the discharge liquid pipe.
[0011] Preferably, a filter screen is fixedly connected to the inner wall of the medium-sized air inlet pipe, and an atomizing screen is fixedly connected to the inner wall of the medium-sized air inlet pipe and at a side edge position of the filter screen.
[0012] Preferably, a transmission rod 2 is movably connected to the center position of the filter screen plate and the atomizing screen plate, a transmission blade 2 is fixedly connected to the outer surface of the transmission rod 2, and a dust scraping fan blade is fixedly connected to one end of the transmission rod 2.
[0013] Preferably, the outer surface of the dust scraping blade is movably attached to the outer surface of the filter screen plate, and the outer surface of the hollow cooling tube is fixedly connected to a drainage tube.
[0014] Preferably, the other end of the drainage pipe extends to the outer surface of the medium-sized air intake pipe, and the other ends of the one-way discharge pipe and the return pipe are fixedly connected to the outer surface of the drainage pipe.
[0015] Preferably, a support arm is fixedly connected to the outer surface of the second limiting ring, and the outer surface of the hollow casing is fixedly connected to one end of the support arm.
[0016] Preferably, a limiting ring 1 is fixedly connected to the inner wall surface of the medium-sized air intake pipe, and the outer surface of the transmission rod 1 is movably sleeved on the outer surface of the limiting ring 1.
[0017] The beneficial effects of the present invention are as follows:
[0018] 1. The air purifying energy-saving air conditioner described in the present invention is characterized in that when the liquid inside the energy-saving air conditioner main unit is liquefied and the liquid absorbed during dehumidification is mixed, the low-temperature water source liquefied by the condenser is filled into the interior of the hollow cooling tube through the refrigerant liquid guide pipe. The low-temperature liquid liquefied by the condenser is used to quickly cool the surface of the hollow cooling tube and keep the surface of the hollow cooling tube at a low temperature. When the hot air outside passes through the guide cavity, it is fully in contact with the surface of the hollow cooling tube, thereby quickly cooling the flowing gas. The cooled hot air is then pumped into the interior of the condenser through the compressor for cooling. At this time, the temperature at the bottom can effectively reduce the operating complexity of the condenser and thus effectively reduce energy consumption.
[0019] 2. In the air-purifying energy-saving air conditioner described in the present invention, when the low-temperature liquid flows and is transported, it will later flow and be discharged through the refrigerant liquid guide pipe and the discharge liquid pipe. At this time, the surfaces of the refrigerant liquid guide pipe and the discharge liquid pipe will be kept at a low temperature due to the low-temperature liquid. At the same time, the low-temperature gas passing through the guide cavity will push the push blades on the outer surface of the transmission rod to rotate. The transmission rod after transmission will drive the transmission blades inside the hollow casing to rotate. Since the space inside the hollow casing is relatively narrow, when the transmission blades rotate, they will drive the gas inside the hollow casing to flow rapidly to both sides or in a single direction. The flow of gas will drive the low-temperature gas accumulated on the surface of the refrigerant liquid guide pipe and the discharge liquid pipe or on one of them to escape, thereby cooling the temperature inside the protective casing.
[0020] 3. The air-purifying energy-saving air conditioner of the present invention cooperates with two sets of hydraulic rods inside the circulating pumping and pressure cylinder to hydraulically extend and retract, thereby driving the extrusion push plate on one end of the hydraulic rod to slide back and forth inside the circulating pumping and pressure cylinder, thereby unidirectionally squeezing the low-temperature liquid inside the refrigerant liquid guide tube into the interior of the circulating pumping and pressure cylinder. With the reverse push of the extrusion push plate, the low-temperature liquid is squeezed and injected into the interior of the one-way discharge pipe, and then enters the interior of the hollow cooling tube, thereby cooling the surface of the hydraulic rod;
[0021] 4. In the air-purifying energy-saving air conditioner of the present invention, when the other set of hydraulic rods retracts and retracts, they cooperate with the return pipe to pump the constant-temperature liquid that has absorbed heat inside the hollow cooling tube into the interior of the circulating pumping cylinder. Under the pushing and squeezing of the hydraulic rods, the constant-temperature liquid is squeezed and discharged through the discharge pipe, thereby achieving the effect of reusing the liquid left over from the condenser and dehumidification process and avoiding the waste of low-temperature liquid.
[0022] 5. The air-purifying energy-saving air conditioner described in the present invention, when the compression pump absorbs external air, cooperates with the medium-sized air intake pipe to absorb the external air at high speed, and at this time cooperates with the filter plate to filter the air. When the filtered gas passes through the filter plate, it will push the transmission blade 2 on the outer surface of the transmission rod 2, so that the transmission blade 2 drives the dust scraping fan blade to rotate. The rotating dust scraping fan blade will rub the accumulated dust on the surface of the filter plate, so that the loose dust is gradually accumulated and crushed together to form thin strips of impurities, and utilize the trumpet shape at the entrance of the medium-sized air intake pipe and the effect of the thin strips of impurities falling and rolling down. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] The present invention will be further described below with reference to the accompanying drawings.
[0024] Figure 1 is a perspective view of the present invention;
[0025] Figure 2 It is a three-dimensional diagram of the protective cover of the present invention;
[0026] Figure 3 It is a three-dimensional diagram of the medium-sized air intake pipe in the present invention;
[0027] Figure 4 It is a cutaway perspective view of a medium-sized air intake pipe in the present invention;
[0028] Figure 5 is a cutaway perspective view of a hollow cooling tube in the present invention;
[0029] Figure 6 This is a second stereoscopic view of the limiting ring in the present invention;
[0030] Figure 7It is a sectional perspective view of the circulating pumping and pressure cylinder in the present invention;
[0031] Figure 8 It is a sectional perspective view of the refrigerant liquid guide tube in the present invention.
[0032] In the figure: 11, protective casing; 12, energy-saving air conditioner main unit; 13, medium-sized air intake pipe; 131, limiting ring one; c2, transmission rod one; c3, push blade; c4, transmission blade one; 132, filter screen; 133, transmission rod two; 134, dust scraping fan blade; 135, transmission blade two; 136, atomizing screen; 137, hollow cooling pipe; 138, drainage pipe; 139, diversion chamber; 14, limiting ring two; a1, support arm; a2, hollow casing; 141, circulating pumping cylinder; 142, refrigerant diversion pipe; 143, one-way discharge pipe; 144, return pipe; 145, discharge liquid pipe; 146, baffle; 147, hydraulic rod; 148, limiting screen; 149, extrusion push plate; 1410, air hole; 1411, heat dissipation air pipe. DETAILED DESCRIPTION
[0033] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.
[0034] like Figures 1 to 8 As shown, an air-purifying energy-saving air conditioner according to an embodiment of the present invention includes a protective shell 11 and an energy-saving air conditioner main unit 12 fixedly mounted on the inner wall of the protective shell 11, a medium-sized air inlet pipe 13 fixedly mounted on the outer surfaces of the protective shell 11 and the energy-saving air conditioner main unit 12, a second limiting ring 14 fixedly mounted on the outer surface of the medium-sized air inlet pipe 13, a circulating pumping cylinder 141 fixedly mounted on the inner surface of the second limiting ring 14, a refrigerant liquid guide pipe 142 and a discharge liquid pipe 145 are respectively provided on the upper and lower surfaces of the circulating pumping cylinder 141, and the other end of the refrigerant liquid guide pipe 142 is fixedly connected to the outer surface of the energy-saving air conditioner main unit 12. A hollow shell a2 is provided on the outer surface of the limiting ring 14, and the upper and lower side surfaces of the hollow shell a2 are located at the outer edge positions of the refrigerant guide pipe 142 and the discharge liquid pipe 145. A hollow cooling pipe 137 is fixedly connected to the inner wall surface of the medium-sized air inlet pipe 13, and a guide cavity 139 is provided on the outer surface of the hollow cooling pipe 137. A transmission rod c2 is movably connected to the inner wall surface of the medium-sized air inlet pipe 13 and the hollow shell a2. A push blade c3 is fixedly connected to the outer surface of the hollow shell a2 and located inside the medium-sized air inlet pipe 13. A transmission blade c4 is provided on the outer surface of the transmission rod c2 and located inside the hollow shell a2.
[0035] When the liquefied liquid inside the energy-saving air-conditioning main unit 12 is mixed with the liquid absorbed during dehumidification, the low-temperature water source liquefied by the condenser is filled into the interior of the hollow cooling tube 137 in conjunction with the refrigerant liquid guide pipe 142. The low-temperature liquid liquefied by the condenser is used to quickly cool the surface of the hollow cooling tube 137, and the surface of the hollow cooling tube 137 is kept at a low temperature, so that the external hot air is fully in contact with the surface of the hollow cooling tube 137 when passing through the guide cavity 139, thereby quickly cooling the flowing gas. The cooled hot air is infused into the interior of the condenser through the compressor for cooling. At this time, the bottom temperature can effectively reduce the operation of the condenser and thus effectively reduce energy consumption.
[0036] When the cryogenic liquid flows and is transported, it will later flow and be discharged through the refrigerant liquid guide pipe 142 and the discharge liquid pipe 145. At this time, the surfaces of the refrigerant liquid guide pipe 142 and the discharge liquid pipe 145 will be kept at a low temperature due to the cryogenic liquid. At the same time, the cryogenic gas passing through the guide cavity 139 will push the push blade c3 on the outer surface of the transmission rod c2 to rotate. After the transmission, the transmission rod c2 will drive the transmission blade c4 inside the hollow casing a2 to rotate. Since the space inside the hollow casing a2 is relatively small, when the transmission blade c4 rotates, it will drive the gas inside the hollow casing a2 to flow rapidly to both sides or in a single direction. The flow of gas will drive the cryogenic gas accumulated on the surface of the refrigerant liquid guide pipe 142 and the discharge liquid pipe 145 or a single one of them to escape, thereby cooling the temperature inside the protective casing 11.
[0037] like Figure 1 、 Figure 3-Figure 4 and Figures 6 to 8 As shown, a one-way discharge pipe 143 is fixedly installed on the top surface of the limiting ring 14, and the other end of the one-way discharge pipe 143 is fixedly connected to the inside of the medium-sized air inlet pipe 13. A return pipe 144 is fixedly connected to the bottom surface of the circulating pumping and pressure cylinder 141, and a baffle 146 is fixedly connected to the inner wall of the circulating pumping and pressure cylinder 141 and located in the middle position. Two groups of hydraulic rods 147 are symmetrically fixedly installed on the upper and lower surfaces of the baffle 146. A limiting mesh plate 148 is fixedly installed on the inner wall of the circulating pumping and pressure cylinder 141 and located on the outer surface of the hydraulic rod 147. An extrusion push plate 149 is fixedly connected to the output end of the hydraulic rod 147. Air holes 1410 are provided on both side surfaces of the circulating pumping and pressure cylinder 141 and located on both side edge positions of the baffle 146. The inner wall surfaces of the refrigerant guide pipe 142 and the discharge liquid pipe 145 are fixedly connected with the heat dissipation air pipe 1411.
[0038] The two sets of hydraulic rods 147 inside the circulating pumping cylinder 141 are hydraulically extended and retracted, thereby driving the extrusion push plate 149 on one end of the hydraulic rod 147 to slide back and forth inside the circulating pumping cylinder 141, thereby unidirectionally squeezing the low-temperature liquid inside the refrigerant liquid guide tube 142 into the interior of the circulating pumping cylinder 141. With the reverse push of the squeezing push plate 149, the low-temperature liquid is squeezed and injected into the interior of the one-way discharge pipe 143, and the low-temperature liquid enters the interior of the hollow cooling tube 137, thereby cooling the surface of the hydraulic rod 147;
[0039] When another set of hydraulic rods 147 are extended and retracted back and forth, the return pipe 144 is used to inject the constant temperature liquid after absorbing heat inside the hollow cooling tube 137 into the interior of the circulating pumping cylinder 141, and under the push and squeeze of the hydraulic rods 147, the constant temperature liquid is squeezed and discharged through the discharge liquid pipe 145, thereby achieving the secondary utilization of the liquid left over from the condenser and dehumidification, and avoiding the waste of low-temperature liquid.
[0040] like Figures 1 to 5 As shown, a filter screen plate 132 is fixedly connected to the inner wall of the medium air inlet pipe 13, and an atomizing screen plate 136 is fixedly connected to the inner wall of the medium air inlet pipe 13 and located on one side edge of the filter screen plate 132. A transmission rod 2 133 is movably sleeved on the center position of the filter screen plate 132 and the atomizing screen plate 136. A transmission blade 2 135 is fixedly connected to the outer surface of the transmission rod 2 133. A dust scraping blade 134 is fixedly connected to one end of the transmission rod 2 133. The outer surface of the dust scraping blade 134 is movably fitted on the outer surface of the filter screen plate 132. A drainage pipe 138 is fixedly connected to the outer surface of the tube 137, and the other end of the drainage pipe 138 extends to the outer surface of the medium-sized air intake pipe 13. The other ends of the one-way discharge pipe 143 and the return pipe 144 are fixedly connected to the outer surface of the drainage pipe 138. The outer surface of the limiting ring 14 is fixedly connected to the support arm a1, and the outer surface of the hollow shell a2 is fixedly connected to one end of the support arm a1. The inner wall surface of the medium-sized air intake pipe 13 is fixedly connected to the limiting ring 131, and the outer surface of the transmission rod 1 c2 is movably sleeved on the outer surface of the limiting ring 131.
[0041] When the compression pump absorbs external air, it cooperates with the medium-sized air intake pipe 13 to absorb the external air at high speed. At this time, it cooperates with the filter plate 132 to filter the air. When the filtered gas passes through the filter plate 132, it will push the transmission blade 2 135 on the outer surface of the transmission rod 2 133, so that the transmission blade 2 135 drives the dust scraping blade 134 to rotate. The rotating dust scraping blade 134 will rub the accumulated dust on the surface of the filter plate 132, so that the loose dust is gradually accumulated and crushed together to form thin strips of impurities, and utilize the trumpet shape at the entrance of the medium-sized air intake pipe 13 and the effect of the thin strips of impurities falling and rolling down.
[0042] Working principle: When the liquefied liquid inside the energy-saving air-conditioning main unit 12 is mixed with the liquid absorbed during dehumidification, the low-temperature water source liquefied by the condenser will be filled into the interior of the hollow cooling tube 137 in conjunction with the refrigerant liquid guide pipe 142. The low-temperature liquid liquefied by the condenser is used to quickly cool the surface of the hollow cooling tube 137, and the surface of the hollow cooling tube 137 is kept at a low temperature, so that the external hot air is fully in contact with the surface of the hollow cooling tube 137 when passing through the guide cavity 139, thereby quickly cooling the flowing gas. The cooled hot air will be infused into the interior of the condenser through the compressor for cooling. At this time, the bottom temperature can effectively reduce the operation of the condenser and thus effectively reduce energy consumption.
[0043] When the cryogenic liquid flows and is transported, it will later flow and be discharged through the refrigerant liquid guide pipe 142 and the discharge liquid pipe 145. At this time, the surfaces of the refrigerant liquid guide pipe 142 and the discharge liquid pipe 145 will be kept at a low temperature due to the cryogenic liquid. At the same time, the cryogenic gas passing through the guide cavity 139 will push the push blade c3 on the outer surface of the transmission rod c2 to rotate. After the transmission, the transmission rod c2 will drive the transmission blade c4 inside the hollow casing a2 to rotate. Since the space inside the hollow casing a2 is relatively narrow, when the transmission blade c4 rotates, it will drive the gas inside the hollow casing a2 to flow rapidly to both sides or in a single direction. The flow of gas will drive the cryogenic gas accumulated on the surface of the refrigerant liquid guide pipe 142 and the discharge liquid pipe 145 or on a single surface to escape, thereby cooling the temperature inside the protective casing 11.
[0044] The two sets of hydraulic rods 147 inside the circulating pumping cylinder 141 are hydraulically extended and retracted, thereby driving the extrusion push plate 149 on one end of the hydraulic rod 147 to slide back and forth inside the circulating pumping cylinder 141, thereby unidirectionally squeezing the low-temperature liquid inside the refrigerant liquid guide tube 142 into the interior of the circulating pumping cylinder 141. With the reverse push of the squeezing push plate 149, the low-temperature liquid is squeezed and injected into the interior of the one-way discharge pipe 143, and the low-temperature liquid enters the interior of the hollow cooling tube 137, thereby cooling the surface of the hydraulic rod 147;
[0045] When the other set of hydraulic rods 147 are extended and retracted back and forth, they cooperate with the return pipe 144 to inject the constant temperature liquid after absorbing heat inside the hollow cooling tube 137 into the interior of the circulating pumping cylinder 141. Under the pushing and squeezing of the hydraulic rods 147, the constant temperature liquid is squeezed and discharged through the discharge liquid pipe 145, achieving the effect of secondary utilization of the liquid left over from the condenser and dehumidification, and avoiding the waste of low temperature liquid.
[0046] When the compression pump absorbs external air, it cooperates with the medium-sized air intake pipe 13 to absorb the external air at high speed. At this time, it cooperates with the filter plate 132 to filter the air. When the filtered gas passes through the filter plate 132, it will push the transmission blade 2 135 on the outer surface of the transmission rod 2 133, so that the transmission blade 2 135 drives the dust scraping blade 134 to rotate. The rotating dust scraping blade 134 will rub the accumulated dust on the surface of the filter plate 132, so that the loose dust is gradually accumulated and crushed together to form thin strips of impurities, and utilize the trumpet shape at the entrance of the medium-sized air intake pipe 13 and the effect of the thin strips of impurities falling and rolling down.
[0047] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the foregoing embodiments. The foregoing embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.
Claims
1. An air-purifying energy-saving air conditioner, comprising a protective casing (11) and an energy-saving air conditioner main unit (12) fixedly mounted on the inner wall surface of the protective casing (11), a medium-sized air inlet pipe (13) fixedly mounted on the outer surfaces of the protective casing (11) and the energy-saving air conditioner main unit (12), and a second limiting ring (14) fixedly mounted on the outer surface of the medium-sized air inlet pipe (13), characterized in that: A circulating pumping cylinder (141) is fixedly mounted on the inner surface of the limiting ring (14), and a refrigerant guide tube (142) and a discharge liquid pipe (145) are respectively provided on the upper and lower surfaces of the circulating pumping cylinder (141). The other end of the refrigerant guide tube (142) is fixedly connected to the outer surface of the energy-saving air conditioner host (12). A hollow shell (a2) is provided on the outer surface of the limiting ring (14), and the upper and lower surfaces of the hollow shell (a2) are located on the outer sides of the refrigerant guide tube (142) and the discharge liquid pipe (145). At the edge position, a hollow cooling tube (137) is fixedly connected to the inner wall surface of the medium-sized air inlet pipe (13), a guide cavity (139) is provided on the outer surface of the hollow cooling tube (137), a transmission rod (c2) is movably sleeved on the inner wall surface of the medium-sized air inlet pipe (13) and the hollow casing (a2), a push blade (c3) is fixedly connected to the outer surface of the hollow casing (a2) and located inside the medium-sized air inlet pipe (13), and a transmission blade (c4) is provided on the outer surface of the transmission rod (c2) and located inside the hollow casing (a2).
2. The air-purifying energy-saving air conditioner according to claim 1, characterized in that: A one-way discharge pipe (143) is fixedly mounted on the top surface of the second limiting ring (14), and the other end of the one-way discharge pipe (143) is fixedly connected to the inside of the medium-sized air inlet pipe (13). A return pipe (144) is fixedly connected to the bottom surface of the circulating pumping cylinder (141).
3. The air-purifying energy-saving air conditioner according to claim 2, characterized in that: A baffle (146) is fixedly connected to the inner wall of the circulating pumping and pressure cylinder (141) and located at a middle position. Two groups of hydraulic rods (147) are symmetrically fixedly installed on the upper and lower surfaces of the baffle (146). A limiting mesh plate (148) is fixedly installed on the inner wall of the circulating pumping and pressure cylinder (141) and located on the outer surfaces of the hydraulic rods (147).
4. The air-purifying energy-saving air conditioner according to claim 3, characterized in that: An extrusion push plate (149) is fixedly connected to the output end of the hydraulic rod (147), air holes (1410) are provided on both side surfaces of the circulating pumping cylinder (141) and at both side edge positions of the baffle (146), and heat dissipation air pipes (1411) are fixedly connected to the inner side walls of the refrigerant liquid guide pipe (142) and the discharge liquid pipe (145).
5. The air-purifying energy-saving air conditioner according to claim 2, characterized in that: A filter screen plate (132) is fixedly connected to the inner wall of the medium-sized air inlet pipe (13), and an atomizing screen plate (136) is fixedly connected to the inner wall of the medium-sized air inlet pipe (13) and at a side edge of the filter screen plate (132).
6. The air-purifying energy-saving air conditioner according to claim 5, characterized in that: A second transmission rod (133) is movably sleeved on the center positions of the filter screen plate (132) and the atomizing screen plate (136), a second transmission blade (135) is fixedly connected to the outer surface of the second transmission rod (133), and a dust scraping fan blade (134) is fixedly connected to one end of the second transmission rod (133).
7. The air-purifying energy-saving air conditioner according to claim 6, characterized in that: The outer surface of the dust scraping blade (134) is movably attached to the outer surface of the filter screen plate (132), and a drainage pipe (138) is fixedly connected to the outer surface of the hollow cooling pipe (137).
8. The air-purifying energy-saving air conditioner according to claim 7, characterized in that: The other end of the drainage pipe (138) extends to the outer surface of the medium-sized air intake pipe (13), and the other ends of the one-way discharge pipe (143) and the return pipe (144) are fixedly connected to the outer surface of the drainage pipe (138).
9. The air-purifying energy-saving air conditioner according to claim 1, characterized in that: The outer surface of the second limiting ring (14) is fixedly connected to a support arm (a1), and the outer surface of the hollow casing (a2) is fixedly connected to one end of the support arm (a1).
10. The air-purifying energy-saving air conditioner according to claim 1, characterized in that: A limiting ring (131) is fixedly connected to the inner wall surface of the medium-sized air inlet pipe (13), and the outer surface of the transmission rod (c2) is movably sleeved on the outer surface of the limiting ring (131).
Citation Information
Patent Citations
Energy-saving and environment-friendly air purification system of air conditioner
CN114234337A
Air conditioner
CN103673112A
Carbon dioxide refrigerant pressurization circulation heating system and method and air conditioner heater
CN113970192A