Air conditioner
By fixing a micro-perforated plate to the outside of the rotary vane in the air conditioner and combining it with a sensor to control the state of the air guide plate, the problem of poor airflow effect in existing air conditioners has been solved, resulting in better airflow effect and user experience.
Patent Information
- Application Number
- CN202110785585.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-07-12
- Publication Date
- 2026-02-27
- Estimated Expiration
- 2041-07-12
AI Technical Summary
Existing air conditioners, while achieving a windless effect, have poor airflow performance, affecting the user experience. Furthermore, the combination of guide vanes and micro-perforated plates in existing technologies has failed to effectively improve the windless effect.
The first micro-perforated plate is fixed to the outside of the first swirl plate. The air is guided to the micro-perforated plate through the swirl plate. Combined with the sensor to control the opening and closing state of the air guide plate, the air diffusion and regulation are realized, thereby improving the air output effect and the windless experience.
It achieves better windless and airflow effects, enhancing the user experience. Sensor control ensures it adapts to different user needs and provides flexible airflow adjustment.
Smart Images

Figure CN115614818B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of air conditioning equipment, in particular to an air conditioner. BACKGROUND
[0002] In the related art, the air conditioner is only provided with a micro-hole plate to achieve the windless effect, at this time, the air outlet effect of the air conditioner is poor, and only the rotary leaf plate is provided, the air conditioner has a general windless effect, which affects the user's experience, in addition, in the related art, the guide vane plate and the micro-hole plate are matched, that is, the guide vane plate and the micro-hole plate are arranged at intervals in the air outlet direction, and the guide vane plate and the micro-hole plate are independently arranged on the air conditioner, in the specific technical scheme, when the air conditioner needs to be in the windless state, the micro-hole plate is moved to the front side of the guide vane plate, but in essence, the windless effect of the air conditioner is still achieved by the micro-hole plate, even if the rear side is guided by the guide vane plate, but the air outlet effect through the micro-hole plate is still not ideal. SUMMARY
[0003] The present application aims to at least solve one of the problems in the prior art. To this end, one object of the present application is to provide an air conditioner which can achieve a better windless effect.
[0004] The air conditioner according to the embodiment of the present application comprises: a panel, the panel being formed with an air outlet; a first air deflector, the first air deflector being rotatably installed at the air outlet to open or cover the air outlet, the first air deflector comprising a first micro-hole plate and a first rotary leaf plate, in the air outlet direction, the first micro-hole plate being fixed outside the first rotary leaf plate.
[0005] According to the air conditioner of the embodiment of the present application, by fixing the first micro-hole plate outside the first rotary leaf plate, the first rotary leaf plate can guide the air in a diffused manner to the first micro-hole plate, which can improve the air outlet effect of the first micro-hole plate, and at the same time, in achieving the windless effect of the air conditioner, the air can be first adjusted by the first rotary leaf plate, which has a certain ability to achieve the windless effect, and then the air is adjusted again by the first micro-hole plate, so that the air conditioner can better achieve the windless effect of the air conditioner. In addition, the first air deflector is composed of the first micro-hole plate and the first rotary leaf plate, by making the first air deflector in an open state or a sweeping state, the air blown out from the air outlet can be guided by the first air deflector, and can flow better towards the indoor.
[0006] In addition, the air conditioner according to the present application can also have the following additional technical features:
[0007] In some embodiments of the present application, the first rotating vane plate comprises a rotating vane support, a guide vane, and a first reinforcing ring, the guide vane is installed on the rotating vane support, the first reinforcing ring is arranged along the circumference of the rotating vane support, and a first buckle part is formed on the first reinforcing ring; the first micro-porous plate comprises a micro-porous net and a second reinforcing ring, the second reinforcing ring is arranged along the circumference of the micro-porous net, and a second buckle part that cooperates with the first buckle part is formed on the second reinforcing ring.
[0008] Optionally, a flange is formed on the second reinforcing ring, the flange and the micro-porous net form an assembly groove, and the rotating vane plate is assembled in the assembly groove, wherein the outer wall of the flange is formed in a circular arc shape.
[0009] Optionally, the micro-porous net and the rotating vane support are spaced apart, and the distance between the micro-porous net and the rotating vane support gradually decreases in the direction from the middle to both sides of the guide vane plate.
[0010] In some embodiments of the present application, a first installation groove is formed on the panel, a first rotating shaft is formed on the first guide vane plate, the first rotating shaft is rotatably arranged in the first installation groove, and the air conditioner further comprises a guide vane plate pressing plate, the guide vane plate pressing plate cooperates with the first installation groove to limit the rotation angle of the first rotating shaft.
[0011] In some embodiments of the present application, a plurality of first guide vane plates are provided, the plurality of first guide vane plates are uniformly spaced apart along the width direction of the air outlet, and the plurality of first guide vane plates are transmissionally connected.
[0012] In some embodiments of the present application, the air conditioner further comprises a second guide vane plate, the second guide vane plate is rotatably installed at the lower end of the first guide vane plate, the second guide vane plate comprises a first sub-guide vane plate and a second sub-guide vane plate, the lower end of the first sub-guide vane plate and the upper end of the second sub-guide vane plate respectively form a second rotating shaft, the two second rotating shafts are connected through an intermediate rotating shaft, and a second installation groove that cooperates with the second rotating shaft is formed on the panel.
[0013] Optionally, the first sub-guide vane plate and the second sub-guide vane plate each comprise a second micro-porous plate and a second rotating vane plate, the second micro-porous plate and the second rotating vane plate are fixedly connected in the air outlet direction, and the second micro-porous plate is arranged on the outer side of the second rotating vane plate.
[0014] Optionally, when the first guide vane plate or the second guide vane plate is greater than a predetermined length, a third rotating shaft is formed on the first guide vane plate or the second guide vane plate, and a third installation groove that cooperates with the third rotating shaft is formed on the panel.
[0015] Optionally, the air conditioner further includes a first sensor and a second sensor arranged along the height direction of the air outlet. The first sensor is located below the second sensor. Both the first air guide plate and the second air guide plate have a closed state and a swing state. When the first sensor is triggered, the first air guide plate is in the swing state and the second air guide plate is in the closed state. When both the first and second sensors are triggered, both the first air guide plate and the second air guide plate are in the closed state, or the first air guide plate is in the closed state and the second air guide plate is in the swing state.
[0016] Additional aspects and advantages of the invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description
[0017] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:
[0018] Figure 1 This is a structural schematic diagram of an air conditioner from one angle according to an embodiment of the present invention.
[0019] Figure 2 This is a structural schematic diagram of an air conditioner according to an embodiment of the present invention from another angle.
[0020] Figure 3 This is a schematic diagram of the disassembled structure of the first sensor and the air guide plate pressure plate of an air conditioner according to an embodiment of the present invention.
[0021] Figure 4 yes Figure 3 A magnified view of region A in the middle.
[0022] Figure 5 This is a structural schematic diagram of the first air guide plate of an air conditioner according to an embodiment of the present invention at one angle.
[0023] Figure 6 yes Figure 5 A sectional view along line BB.
[0024] Figure 7 This is a structural schematic diagram of the first air guide plate of an air conditioner according to an embodiment of the present invention from another angle.
[0025] Figure 8 yes Figure 7 A cross-sectional view along the CC line.
[0026] Figure 9 yes Figure 8 A magnified view of region D in the middle.
[0027] Figure 10This is a schematic diagram showing the disassembled structure of the second micro-perforated plate and the second swivel plate of the second air guide plate of an air conditioner according to an embodiment of the present invention.
[0028] Figure 11 This is a schematic diagram of the structure of the first swirl vane of the first air guide plate of an air conditioner according to an embodiment of the present invention.
[0029] Figure 12 This is a schematic diagram of the structure of the first microperforated plate of the first air guide plate of an air conditioner according to an embodiment of the present invention.
[0030] Figure label:
[0031] Air conditioner 100
[0032] Panel 1
[0033] First air guide plate 2
[0034] First microperforated plate 21, microperforated mesh 211, second reinforcing ring 212, second snap-fit part 213, flange 214.
[0035] First swirl vane 22, swirl vane support 221, air guide vane 222, first reinforcing ring 223, first snap-fit part 224, first rotating shaft 23, third rotating shaft 25, intermediate rotating shaft 26.
[0036] Second air guide plate 3, first sub-air guide plate 31, second sub-air guide plate 32, second micro-perforated plate 33, second swirl plate 34
[0037] First sensor 41, second sensor 42, air guide plate pressure plate 43
[0038] Drive motor 44, motor bracket 45. Detailed Implementation
[0039] Embodiments of the present invention are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.
[0040] An air conditioner 100 according to an embodiment of the present invention will now be described with reference to the accompanying drawings.
[0041] like Figure 1 , Figure 5 , Figure 6As shown, the air conditioner 100 according to the embodiment of the present application comprises a panel 1 and a first air deflector 2, the panel 1 is formed with an air outlet, here, the panel 1 can comprise a panel body and a panel support, which can be respectively produced and then assembled, or can be integrally formed. The cold air of the air conditioner 100 in the cooling mode or the hot air of the air conditioner 100 in the heating mode can be blown out from the air outlet to the indoor.
[0042] The first air deflector 2 is rotatably installed at the air outlet to open or cover the air outlet, the first air deflector 2 comprises a first micro-porous plate 21 and a first rotary vane plate 22, and in the air outlet direction, the first micro-porous plate 21 is fixed outside the first rotary vane plate 22. That is, by arranging the first rotary vane plate 22, the direction of the air blown out from the air outlet can be guided, and in an example, the air blown out through the first rotary vane plate 22 can flow out in a diffused manner, which can avoid the air directly blown out from the air outlet in the same direction, and thus to a certain extent, the windless effect of the air conditioner 100 can be achieved, and further, to better achieve the windless effect of the air conditioner 100, the first micro-porous plate 21 can be arranged outside the first rotary vane plate 22, so that the air flowing through the first micro-porous plate 21 can further achieve the windless effect of the air conditioner 100.
[0043] In addition, in the related art, the windless effect of the air conditioner is only achieved by arranging the micro-porous plate, at this time, the air outlet effect of the air conditioner is poor, and only by arranging the rotary vane plate, the windless effect of the air conditioner is general, which affects the user's experience, in addition, in the related art, the cooperation of the guide vane plate and the micro-porous plate is also used, that is, the guide vane plate and the micro-porous plate are arranged at intervals in the air outlet direction, and the guide vane plate and the micro-porous plate are independently arranged on the air conditioner, and in the specific technical solution, when the air conditioner needs to be in the windless state, the micro-porous plate is moved to the front side of the guide vane plate, but in essence, the windless effect of the air conditioner is still achieved by the micro-porous plate, that is, even if the rear side is guided by the guide vane plate, the air outlet effect through the micro-porous plate is still not ideal.
[0044] In the present application, by fixing the first micro-porous plate 21 outside the first rotary vane plate 22, the first rotary vane plate 22 can guide the air to the first micro-porous plate 21 in a diffused manner, which can improve the air outlet effect of the first micro-porous plate 21, and at the same time, in achieving the windless effect of the air conditioner 100, the air can be first adjusted by the first rotary vane plate 22, which has a certain ability to achieve the windless effect, and then the air is adjusted again by the first micro-porous plate 21, so that the air conditioner 100 can better achieve the windless effect of the air conditioner 100.
[0045] Further, the fixedly fitted first micro-hole plate 21 and the first rotating vane plate 22 can rotate synchronously, that is, when it is required to make the air conditioner 100 have the windless effect, the first air deflector 2 can be in the closed state, at this time, the first air deflector 2 can cover the air outlet, thus all the air flowing out of the air outlet is adjusted by the first air deflector 2, so that the air blown out of the air conditioner 100 has a better windless effect. When it is required to make the air conditioner 100 quickly cool or heat, or make the air conditioner 100 have the blowing effect, the first air deflector 2 can be in the open state or the air sweeping state, at this time, the air blown out of the air outlet can be guided by the first air deflector 2 and can flow better towards the indoor.
[0046] Thus, according to the air conditioner 100 of the embodiment of the present application, by fixing the first micro-hole plate 21 outside the first rotating vane plate 22, the first rotating vane plate 22 can guide the air in a diffused manner to the first micro-hole plate 21, the air outlet effect of the first micro-hole plate 21 can be improved, and at the same time, in realizing the windless effect of the air conditioner 100, the air can be adjusted by the first rotating vane plate 22 for the first time and has a certain ability to realize the windless effect, and then the air is adjusted by the first micro-hole plate 21 for the second time, so that the air conditioner 100 can better realize the windless effect of the air conditioner 100. In addition, the first air deflector 2 is composed of the first micro-hole plate 21 and the first rotating vane plate 22, by making the first air deflector 2 in the open state or the air sweeping state, at this time, the air blown out of the air outlet can be guided by the first air deflector 2 and can flow better towards the indoor.
[0047] In some embodiments of the present application, as shown in Figure 11 The first rotating vane plate 22 includes a rotating vane support 221, an air guiding rotating vane 222 and a first reinforcing ring 223, the air guiding rotating vane 222 is installed on the rotating vane support 221, for example Figure 11 As shown, the air guiding rotating vane 222 is circular, the air guiding rotating vane 222 is formed with an inner ring rotating vane and an outer ring rotating vane, the outer ring rotating vane is arranged at the outer periphery of the inner ring rotating vane, and the inner ring rotating vane and the outer ring rotating vane are both composed of a plurality of rotating vanes, each rotating vane is arranged obliquely, it should be noted that the oblique direction and angle of the rotating vanes of the inner ring rotating vane and the outer ring rotating vane can be set according to actual conditions, and here is not limited to the oblique direction and angle of the rotating vanes shown in the figure. The inner ring rotating vane and the outer ring rotating vane can better make the air flow in a diffused manner from the center of the air guiding rotating vane 222 to the outer periphery.
[0048] Further, the air guiding rotating vane 222 can be provided in plurality, the plurality of air guiding rotating vanes 222 can be arranged in a matrix or can be arranged uniformly and spaced apart only in the up-down direction, which is not limited here.
[0049] Further, as shown in Figure 11 andFigure 12 As shown, the first reinforcing ring 223 is arranged along the circumference of the vane support 221, so that the structural strength of the first vane plate 22 can be improved by the first reinforcing ring 223, so that the first vane plate 22 and the first microporous plate 21 are not easily damaged when assembled, and at the same time, a mounting structure can be arranged on the first reinforcing ring 223, for example, a first buckle portion 224 is formed on the first reinforcing ring 223, so that the first buckle portion 224 can be clamped on the first microporous plate 21, and in the further embodiment, a second buckle portion 213 cooperating with the first buckle portion 224 can be arranged on the first microporous plate 21, so that the first vane plate 22 can be better assembled on the first microporous plate 21 through the cooperation of the first buckle portion 224 and the second buckle portion 213. Specifically, the first microporous plate 21 includes a microporous mesh 211 and a second reinforcing ring 212, a plurality of micropores are formed on the microporous mesh 211, and the second reinforcing ring 212 is arranged along the circumference of the microporous mesh 211, so that the structural strength of the first microporous plate 21 can be better improved, thereby facilitating the cooperation between the first microporous plate 21 and the first vane plate 22, and further, the second reinforcing ring 212 can be formed with the second buckle portion 213 cooperating with the first buckle portion 224, so that the second buckle portion 213 can be machined on the second reinforcing ring 212 at the same time when the second reinforcing ring 212 is produced, thereby reducing the assembly and machining difficulty of the second buckle portion 213.
[0050] In some examples, the first reinforcing ring 223 and the second reinforcing ring 212 can also be formed with other mutually cooperating locking structures, respectively, for example, mounting holes are formed on the first reinforcing ring 223 and the second reinforcing ring 212, and the two mounting holes are fastened by a fastener to fix and connect the first microporous plate 21 and the first vane plate 22. Specific other assembly examples are not described in detail here.
[0051] In some embodiments of the present application, as shown in Figure 7 , Figure 8 and Figure 9 As shown, the second reinforcing ring 212 is formed with a flange 214, and the flange 214 and the microporous mesh 211 constitute an assembly groove, and the vane plate is assembled in the assembly groove, for example Figure 12 As shown, the flange 214 is arranged along the circumference of the microporous mesh 211, which not only can further improve the structural strength of the microporous mesh 211, but also can form the second buckle portion 213 on the flange 214, Figure 9When the first buckle part 224 and the second buckle part 213 are matched, the first buckle part 224 and the second buckle part 213 can be hidden between the first microporous plate 21 and the first rotary blade plate 22, thereby making the first air deflector 2 more beautiful. In addition, there is no extra assembly structure exposed outside the first air deflector 2, which can facilitate the assembly of the first air deflector 2, and compared with the assembly structure exposed in the prior art, the first air deflector 2 of the present application can also prevent the user or worker from being scratched when installing or replacing the first air deflector 2, thereby improving the safety of the assembly of the first air deflector 2.
[0052] Further, the outer wall of the turned edge 214 can be formed into a circular arc, and specifically, as shown in Figure 6 The turned edge 214 is wrapped around the outer circumferential side of the first microporous plate 21. By forming the outer wall of the turned edge 214 into a circular arc, the end of the first air deflector 2 formed by the first microporous plate 21 and the first rotary blade plate 22 can be formed into a circular arc structure, thereby facilitating the assembly of the first air deflector 2 and also being beneficial to reducing the wind resistance and noise of the first air deflector 2 when in contact with the wind, thereby being beneficial to improving the user's experience.
[0053] In some embodiments of the present application, as shown in Figure 6 The microporous net 211 and the rotary blade support 221 are spaced apart, and the distance between the microporous net 211 and the rotary blade support 221 gradually decreases in the direction from the middle to the sides of the air deflector. Thus, when the wind flows through the first air deflector 2, by spacing the microporous net 211 and the rotary blade support 221, the wind diffusion effect of the wind can be better improved, and by gradually reducing the distance between the microporous net 211 and the rotary blade support 221 in the direction from the middle to the sides of the air deflector, and when the outer wall of the turned edge 214 is formed into a circular arc, the wind can flow better along the wall surface of the first air deflector 2 when the air deflector 2 is deflected, thereby better reducing the wind resistance and noise of the wind, and being beneficial to improving the user's experience.
[0054] In some embodiments of the present application, a first mounting slot is formed on the panel 1, and a first rotating shaft 23 is formed on the first air deflector 2, and the first rotating shaft 23 is rotatably arranged in the first mounting slot, for example Figure 5 and Figure 12 As shown, the upper and lower ends of the first air deflector 2 are respectively formed with a first rotating shaft 23, and more specifically, since the first microporous plate 21 is assembled in the assembly slot of the first rotary blade plate 22, the first rotating shaft 23 can be formed on the first reinforcing ring 223 of the first microporous plate 21. Thus, by matching the first rotating shaft 23 and the first mounting slot, the first air deflector 2 can be better rotated relative to the panel 1.
[0055] In some examples of the present application, a motor support 45 is further formed on the panel 1, and the driving motor 44 can be mounted on the motor support 45, and the driving motor 44 can be in transmission connection with the first rotating shaft 23, so that the first rotating shaft 23 can be driven to rotate by the driving motor 44, thereby enabling the first air deflector 2 to perform air sweeping or to be kept at a certain position, such as kept in a closed state or kept at a certain fixed air sweeping angle.
[0056] In some examples of the present application, as shown in Figure 3 The air conditioner 100 further comprises an air deflector pressing plate 43, and the air deflector pressing plate 43 cooperates with the first mounting slot to limit the rotating angle of the first rotating shaft 23. That is, when the first air deflector 2 is assembled on the panel 1 through cooperation of the first rotating shaft 23 and the first mounting slot, in order to prevent the first air deflector 2 from falling off from the first mounting slot, the first air deflector 2 can be fixed in the first mounting slot through cooperation of the air deflector pressing plate and the first mounting slot, and in addition, the air deflector pressing plate 43 can also limit the rotating angle of the first rotating shaft 23, thereby limiting the rotating angle of the first air deflector 2, and the first air deflector 2 can be prevented from rotating excessively, thereby causing interference of the first air deflector 2. In addition, in the example as shown in Figure 2 When the air deflector pressing plate 43 is assembled in the first mounting slot, the outer wall surface of the air deflector pressing plate 43 can be in the same plane with the outer wall surface of the panel 1, thereby also making the air conditioner 100 more beautiful.
[0057] In some examples of the present application, the first air deflector 2 is provided in plurality, so that the air sweeping effect of the air conditioner 100 can be improved by providing the plurality of first air deflectors 2. Further, the plurality of first air deflectors 2 can be arranged in uniform intervals along the width direction of the air outlet, and of course, it can be understood that the plurality of first air deflectors 2 can also be arranged in uniform intervals along the length direction of the air outlet, wherein the width direction herein can refer to the left-right direction as shown in Figure 1 The length direction can refer to the up-down direction as shown in Figure 1 When the first air deflector 2 is provided in plurality, the air deflector pressing plate 43 can also be provided in plurality in correspondence, or the air deflector pressing plate 43 can also be provided in one, for example Figure 3 As shown, the plurality of first air deflectors 2 are arranged in uniform intervals along the width direction of the air outlet, so that the plurality of first mounting slots corresponding to the plurality of first air deflectors 2 are all located at the same horizontal height, thereby enabling only one air deflector pressing plate 43 to be provided to cooperate with the plurality of first mounting slots.
[0058] Furthermore, multiple first air guide plates 2 are connected by a drive mechanism. In one specific example, the multiple first air guide plates 2 are evenly spaced along the width direction of the air outlet, and an intermediate connecting rod is provided between the multiple first air guide plates 2. Thus, when one of the first air guide plates 2 rotates, the multiple first air guide plates 2 can rotate synchronously through the air guide connecting rod. The structure is simple and the operation is convenient. In another example, the multiple first air guide plates 2 are evenly spaced along the length direction of the air outlet. For example, two first air guide plates 2 are provided in the length direction of the air outlet. The first rotating shaft 23 at the uppermost first air guide plate 2 is connected to the drive motor 44. The first rotating shaft 23 at the lowermost first air guide plate 2 is connected to the first rotating shaft 23 at the lower end of the uppermost first air guide plate 2 through an intermediate rotating shaft 26. When the drive motor 44 drives one first air guide plate 2 to rotate, the two first air guide plates 2 can rotate synchronously.
[0059] In some embodiments of the present invention, such as Figure 1 , Figure 2 , Figure 3 and Figure 10 As shown, the air conditioner 100 also includes a second air guide plate 3. The second air guide plate 3 is rotatably mounted at the air outlet and located at the lower end of the first air guide plate 2. The second air guide plate 3 includes a second perforated plate 33 and a second swirl vane 34. In the air outlet direction, the second perforated plate 33 and the second swirl vane 34 are fixedly connected, and the second perforated plate 33 is located on the outer side of the second swirl vane 34. That is to say, the first air guide plate 2 and the second air guide plate 3 have the same layout in the air outlet direction, that is, the second perforated plate 33 and the second swirl vane 34 cooperate to construct a second air guide plate 3 with an integral structure. The air outlet effect of the second air guide plate 3 is achieved by the cooperation of the second swirl vane 34 and the second perforated plate 33.
[0060] As for placing the second air guide plate 3 at the lower end of the first air guide plate 2, here is as follows: Figure 1 As shown, the air outlet can be configured into an upper air outlet area and a lower air outlet area in the vertical direction. The first air guide plate 2 is located in the upper air outlet area, and the second air guide plate 3 is located in the lower air outlet area. In some examples, the vertically positioned first air guide plate 2 and second air guide plate 3 can allow the upper and lower air outlet areas to have different air outlet patterns. For example, the first air guide plate 2 in the upper air outlet area can be in a swing state, while the first air guide plate 2 in the lower air outlet area can be in a closed state. This results in a faster airflow in the upper air outlet area for rapid cooling or heating of the room, while the lower air outlet area experiences a windless airflow to meet customer needs.
[0061] Of course, it can be understood that the air outlet can also be configured into upper air outlet area, middle air outlet area and lower air outlet area in the up-down direction, and the first air deflector 2, the second air deflector 3 and the third air deflector can be correspondingly arranged. Here, it can be understood that the number of the air outlet areas configured in the up-down direction of the air outlet and the number of the air deflectors can be set according to actual needs, which is not limited here.
[0062] Optionally, the first air deflector 2 and the second air deflector 3 are in transmission connection, that is, when the driving motor 44 drives the first air deflector 2 to rotate, the first air deflector 2 can drive the second air deflector 3 to rotate, thereby simplifying the complexity of the driving structure of the first air deflector 2 and the second air deflector 3 and reducing the production cost of the air conditioner 100. As shown in the specific example, the upper and lower ends of the second air deflector 3 are also formed with the first rotating shaft 23, thereby the first rotating shaft 23 at the upper end of the first air deflector 2 is in transmission connection with the driving motor 44, and the first rotating shaft 23 below the first air deflector 2 is connected with the first rotating shaft 23 at the upper end of the second air deflector 3 through the intermediate rotating shaft 26. When the driving motor 44 drives one first air deflector 2 to rotate, two first air deflectors 2 can rotate synchronously.
[0063] In some embodiments of the present application, as shown in Figure 1 and Figure 10 The second air deflector 3 includes the first sub-air deflector 31 and the second sub-air deflector 32, the lower end of the first sub-air deflector 31 and the upper end of the second sub-air deflector 32 are respectively formed with the second rotating shaft, and the two second rotating shafts are connected through the intermediate rotating shaft 26. The panel 1 is formed with the second installation groove matched with the second rotating shaft. That is, the first sub-air deflector 31 and the second sub-air deflector 32 can be connected through the intermediate rotating shaft 26 to make the first sub-air deflector 31 and the second sub-air deflector 32 rotate synchronously. In addition, the second air deflector 3 composed of the first sub-air deflector 31 and the second sub-air deflector 32 can increase the air deflection area of the second air deflector 3 to a certain extent, while reducing the processing difficulty of the second air deflector 3.
[0064] Optionally, as shown in Figure 10 and Figure 11As shown, when the first air deflector 2 or the second air deflector 3 is longer than the predetermined length, a third rotating shaft 25 is formed on the first air deflector 2 or the second air deflector 3, and a third mounting groove matched with the third rotating shaft 25 is formed on the panel 1. In one example, when the length of the first air deflector 2 is longer than the predetermined length, if the first air deflector 2 is only rotated by the first rotating shaft 23 arranged at the upper and lower ends of the first air deflector 2, the first air deflector 2 is unstable when rotating due to the excessive length of the first air deflector 2. Therefore, the third rotating shaft 25 can be arranged on the first air deflector 2, for example, the third rotating shaft 25 can be arranged at the middle position of the first air deflector 2, and specifically, the third rotating shaft 25 is arranged on the second reinforcing ring 212 of the first micro-porous plate 21. Here, the third rotating shaft 25 can divide the micro-holes on the first micro-porous plate 21 into two parts, which is equivalent to arranging a reinforcing structure at the middle of the first micro-porous plate 21, thereby improving the structural strength of the first micro-porous plate 21 and making the first micro-porous plate 21 or the first air deflector 2 have a better rotating effect.
[0065] Similarly, when the length of the second air deflector 3 is longer than the predetermined length, the third rotating shaft 25 can also be arranged to divide the micro-holes on the second micro-porous plate 33 into two parts, which is equivalent to arranging a reinforcing structure at the middle of the second micro-porous plate 33, thereby improving the structural strength of the second micro-porous plate 33 and making the second micro-porous plate 33 or the second air deflector 3 have a better rotating effect.
[0066] In addition, when the first micro-porous plate 21 or the second micro-porous plate 33 is arranged with the third rotating shaft 25, the first rotating blade plate 22 and the second rotating blade plate 34 can also be arranged correspondingly according to the structure of the first micro-porous plate 21 and the second micro-porous plate 33, so that the first rotating blade plate 22 can better cooperate with the first micro-porous plate 21 and the second rotating blade plate 34 can better cooperate with the second micro-porous plate 33.
[0067] In some embodiments of the present application, as shown in Figure 1 , Figure 2 and Figure 3 As shown, the air conditioner 100 further comprises a first sensor 41 and a second sensor 42 arranged along the height direction of the air outlet, the first sensor 41 is arranged below the second sensor 42, and the first air deflector 2 and the second air deflector 3 each have a closed state and a sweeping state. When the first sensor 41 is triggered, the first air deflector 2 is in the sweeping state and the second air deflector 3 is in the closed state. When the first sensor 41 and the second sensor 42 are both triggered, the first air deflector 2 and the second air deflector 3 are both in the closed state, or the first air deflector 2 is in the closed state and the second air deflector 3 is in the sweeping state. When the first sensor 41 and the second sensor 42 are both not triggered, the first air deflector 2 and the second air deflector 3 are both in the sweeping state, or the first air deflector 2 and the second air deflector 3 are both in the closed state.
[0068] For example Figure 1 As shown, the second air deflector 3 includes a first sub-air deflector 31 and a second sub-air deflector 32, so that the length of the second air deflector 3 is twice the length of the first air deflector 2, so that the micro-holes on the second micro-hole plate 33 of the second air deflector 3 can be divided into two parts by the first sub-air deflector 31 and the second sub-air deflector 32, and the air deflector cover plate can be matched with the second mounting groove between the first sub-air deflector 31 and the second sub-air deflector 32 to limit the rotation angle of the first sub-air deflector 31 and the second sub-air deflector 32.
[0069] Among them, the first sensor 41 is installed on the air deflector cover plate between the first sub-air deflector 31 and the second sub-air deflector 32, and the second sensor 42 can be installed on the air deflector cover plate between the first air deflector 2 and the second air deflector 3, so that when the user is a child and the height is not high, only the first sensor 41 can be triggered, and the second sensor 42 is not triggered due to the higher height, so that in order to prevent the cold air or hot air blown by the air conditioner from blowing to the child, the first air deflector 2 can continue to maintain the air sweeping state, at this time, the air blown along the first air deflector 2 will not blow to the child, and the cooling or heating efficiency of the air conditioner 100 can be guaranteed, and the second air deflector 3 is in a closed state, at this time, the air blown from the second air deflector 3 is in a windless state, so that the cold air or hot air blown by the air conditioner will not blow to the child.
[0070] When the user is tall, the first sensor 41 and the second sensor 42 are triggered at the same time, at this time, in order to ensure the user's experience, the first air deflector 2 and the second air deflector 3 can be in a closed state, that is, the air blown from the air outlet of the air conditioner 100 is blown in a windless state.
[0071] Or, the user can also set according to the actual situation, for example, when the first sensor 41 and the second sensor 42 are triggered at the same time, the user only needs to ensure that the air blown by the air conditioner does not directly blow to the user's face, and whether the air blown by the second air deflector 3 is windless does not affect the user's sense, at this time, in order not to affect the cooling or heating effect of the air conditioner 100, the first air deflector 2 corresponding to the user's face can be in a closed state to perform windless operation, and the second air deflector 3 can be in a sweeping state to perform better cooling or heating.
[0072] In still another example, when the first sensor 41 and the second sensor 42 are not triggered, the first air deflector 2 and the second air deflector 3 can be in a sweeping state or in a closed state, so that the air conditioner 100 always maintains a windless operation effect.
[0073] A specific embodiment of the air conditioner 100 of the present application is described below with reference to the accompanying drawings.
[0074] The air conditioner 100 comprises a panel 1, which comprises a panel body and a panel support, and is integrally formed. The panel 1 is provided with an upper air outlet area and a lower air outlet area. The first air deflector 2 is correspondingly installed in the upper air outlet area, and the second air deflector 3 is correspondingly installed in the lower air outlet area. The first air deflector 2 is provided with three in the width direction of the air outlet, and the second air deflector 3 is correspondingly provided with three in the width direction of the air outlet. The three first air deflectors 2 can synchronously rotate, and the three second air deflectors 3 can synchronously rotate.
[0075] The first air deflector 2 comprises a first microporous plate 21 and a first rotary vane plate 22. In the air outlet direction, the first microporous plate 21 is fixed outside the first rotary vane plate 22. The second air deflector 3 comprises a second microporous plate 33 and a second rotary vane plate 34. In the air outlet direction, the second microporous plate 33 is fixed outside the second rotary vane plate 34. The first rotary vane plate 22 comprises a rotary vane support 221, an air deflector rotary vane 222, and a first reinforcing ring 223. The air deflector rotary vane 222 is installed on the rotary vane support 221, the first reinforcing ring 223 is arranged along the circumference of the rotary vane support 221, and the first reinforcing ring 223 is provided with a first buckle part 224. The first microporous plate 21 comprises a microporous mesh 211 and a second reinforcing ring 212. The second reinforcing ring 212 is arranged along the circumference of the microporous mesh 211, and the second reinforcing ring 212 is provided with a second buckle part 213 matched with the first buckle part 224. The second reinforcing ring 212 is provided with a flange 214, and the flange 214 and the microporous mesh 211 form an assembly groove. The rotary vane plate is assembled in the assembly groove. The outer wall of the flange 214 is formed in a circular arc shape. The microporous mesh 211 and the rotary vane support 221 are spaced apart, and the distance between the microporous mesh 211 and the rotary vane support 221 gradually decreases in the direction from the middle to both sides of the air deflector.
[0076] A motor mounting seat is formed on the panel support. The driving motor 44 can be installed on the motor mounting seat, and the driving motor 44 can drive the first air deflector 2 and the second air deflector 3 to rotate, respectively. Specifically, the upper and lower ends of the first air deflector 2 are respectively provided with a first rotating shaft 23. Correspondingly, two first mounting grooves are formed on the panel support. The first rotating shaft 23 can be installed in the first mounting groove. The upper and lower ends of the second air deflector 3 can also be provided with a first rotating shaft 23. The first rotating shaft 23 at the lower end of the first air deflector 2 and the first rotating shaft 23 at the upper end of the second air deflector 3 can be installed in the same first mounting groove. Then, a deflector cover plate is covered in the first mounting groove. The deflector cover plate can be provided with a second sensor 42, which is an infrared sensor.
[0077] The second air deflector 3 comprises a first sub-air deflector 31 and a second sub-air deflector 32, the lower end of the first sub-air deflector 31 and the upper end of the second sub-air deflector 32 are respectively formed with a second rotating shaft, the two second rotating shafts are connected through the intermediate rotating shaft 26, the panel 1 is formed with a second mounting slot matched with the second rotating shaft, the air deflector cover plate can be matched with the second mounting slot to cover the second rotating shaft in the second mounting slot, and the rotating angle of the second air deflector 3 is limited, and the first sensor 41 can be arranged on the air deflector cover plate.
[0078] Other configurations and operations of the air conditioner 100 according to the embodiments of the present application are known to those skilled in the art, and will not be described in detail herein.
[0079] In the description of the present specification, the description of the terms "some embodiments", "optionally", "further", or "some examples" and the like means that the specific features, structures, materials or characteristics described in connection with the embodiments or examples are contained in at least one embodiment or example of the present application. In the present specification, the illustrative description of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.
[0080] Although the embodiments of the present application have been shown and described, those skilled in the art can understand that various changes, modifications, replacements and variations can be made to the embodiments without departing from the principles and spirit of the present application, and the scope of the present application is defined by the claims and their equivalents.
Claims
1. An air conditioner characterized by comprising: Comprise: Panel, the panel is formed with air outlet; First air deflector, the first air deflector is rotatably installed in the air outlet, to open or cover the air outlet, the first air deflector includes first microporous plate and first rotary blade plate, in the air outlet direction, the first microporous plate is fixed at the outer side of the first rotary blade plate; The first rotary blade plate includes rotary blade support, air deflector rotary blade and first reinforcing ring, the air deflector rotary blade is installed on the rotary blade support, the first reinforcing ring is arranged along the circumference of the rotary blade support, and the first reinforcing ring is formed with first buckle part; Wherein, the air deflector rotary blade is circular, and the air deflector rotary blade is formed with inner ring rotary blade and outer ring rotary blade, the outer ring rotary blade is arranged at the outer periphery of the inner ring rotary blade, and the inner ring rotary blade and the outer ring rotary blade are both composed of a plurality of rotary blades, and each rotary blade is arranged obliquely; The first microporous plate includes microporous net and second reinforcing ring, the second reinforcing ring is arranged along the circumference of the microporous net, and the second reinforcing ring is formed with second buckle part matched with the first buckle part; The second reinforcing ring is formed with flange, the flange and the microporous net constitute assembly groove, and the rotary blade plate is assembled in the assembly groove, wherein the outer wall of the flange is formed in arc shape.
2. The air conditioner of claim 1, wherein The microporous net and the rotary blade support are spaced apart, and in the direction from the middle to both sides of the air deflector, the distance between the microporous net and the rotary blade support gradually decreases.
3. The air conditioner of claim 1, wherein The panel is formed with first mounting groove, the first air deflector is formed with first rotating shaft, the first rotating shaft is rotatably arranged in the first mounting groove, and the air conditioner further comprises air deflector pressing plate, the air deflector pressing plate and the first mounting groove are matched to limit the rotation angle of the first rotating shaft.
4. The air conditioner of claim 1, wherein The first air deflector is provided with a plurality of, a plurality of the first air deflector is uniformly spaced apart along the width direction of the air outlet, and a plurality of the first air deflector is transmission connected.
5. The air conditioner of claim 1, wherein Further comprising second air deflector, the second air deflector is rotatably installed in the air outlet, and is located at the lower end of the first air deflector, the second air deflector includes first sub-air deflector and second sub-air deflector, the lower end of the first sub-air deflector and the upper end of the second sub-air deflector are respectively formed with second rotating shaft, and two second rotating shafts are connected through intermediate rotating shaft, and the panel is formed with second mounting groove matched with the second rotating shaft.
6. The air conditioner of claim 5, wherein The first sub-air deflector and the second sub-air deflector are both composed of second microporous plate and second rotary blade plate, and the second microporous plate and the second rotary blade plate are fixedly connected in the air outlet direction, and the second microporous plate is arranged at the outer side of the second rotary blade plate.
7. The air conditioner of claim 5, wherein When the first air deflector or the second air deflector is greater than a predetermined length, a third rotating shaft is formed on the first air deflector or the second air deflector, and a third mounting groove matched with the third rotating shaft is formed on the panel.
8. The air conditioner of claim 5, wherein Further comprising first sensor and second sensor arranged along the height direction of the air outlet, the first sensor is arranged below the second sensor, the first air deflector and the second air deflector both have closed state and air sweeping state, When the first sensor is triggered, the first deflector is in a sweeping state and the second deflector is in a closed state; When the first sensor and the second sensor are both triggered, the first deflector and the second deflector are both in a closed state, or the first deflector is in a closed state and the second deflector is in a sweeping state.
Citation Information
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