Gentle wind structure and air conditioner
By designing a soft-wind structure and utilizing multi-layered air outlet channels and staggered soft winds, the comfort issues caused by the micro-pores in the air conditioner are resolved, achieving a natural wind effect and uniform heat exchange, thus improving the air conditioner user experience.
Patent Information
- Application Number
- PCT/CN2025/088312
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-07-03
- Filing Date
- 2025-04-10
- Publication Date
- 2025-10-23
AI Technical Summary
The micropores on the existing air conditioning air deflector result in poor comfort and fail to achieve uniform heat exchange and natural wind effects.
The system adopts a soft wind structure, including the soft wind panel body and the soft wind panel itself. By setting the first air hole, the air passage cavity and the second air hole, a multi-layer air outlet channel is formed to achieve multi-splash and staggered soft wind, reduce wind speed and wind pressure, and thicken the air mixing layer.
It effectively reduces the wind speed and pressure of the airflow, improves the comfort of air conditioning, brings a wind feel similar to natural wind, and enhances the stability of indoor temperature.
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Figure CN2025088312_23102025_PF_FP_ABST
Abstract
Description
Air conditioner and soft wind structure
[0001] The present application claims priority to Chinese Patent Application No. 202410454279.4, filed on April 15, 2024, entitled "Soft Wind Structure and Air Conditioner", Chinese Patent Application No. 202420781661.1, filed on April 15, 2024, entitled "Soft Wind Structure and Air Conditioner", Chinese Patent Application No. 202410891646.7, filed on July 3, 2024, entitled "Soft Wind Structure and Air Conditioner", and Chinese Patent Application No. 202421569431.5, filed on July 3, 2024, entitled "Soft Wind Structure and Air Conditioner", all of which are incorporated herein by reference in their entirety. TECHNICAL FIELD
[0002] The present application belongs to the technical field of air conditioners, and in particular relates to a soft wind structure and an air conditioner. BACKGROUND
[0003] With the development of science and technology, air conditioners have gradually become essential household appliances, and users have increasingly high requirements for the comfort of air conditioners. In the process of air conditioning cooling or heating, if the wind with cold air or hot air directly blows on the human body, the person will feel that the wind force is strong and uncomfortable, which makes the comfort of the air conditioner worse, especially when the air conditioner is cooling, direct blowing of cold air on the human body can easily cause colds and other diseases in people with weak constitution such as women, the elderly, and children.
[0004] In related technologies, the no-wind effect of the air conditioner is achieved by setting micro-holes on the air deflector of the air conditioner, but the micro-holes on the air deflector can easily cause the problem of small mixed air layer and uneven heat exchange, and cannot achieve the comfortable natural wind effect. TECHNICAL SOLUTION
[0005] The embodiments of the present application provide a soft wind structure and an air conditioner to solve the problem of insufficient comfort when the existing air deflector adopts a micro-hole air outlet scheme.
[0006] In a first aspect, the embodiments of the present application provide a soft wind structure, which comprises a soft wind plate body and a soft wind plate body, the soft wind plate body is provided with a first air hole; the soft wind plate body is provided with a second air hole; the soft wind plate body is connected to the soft wind plate body, and the soft wind plate body and the soft wind plate body form a wind passing cavity, and the periphery of the wind passing cavity at least partially forms an air outlet gap; wherein the first air hole, the wind passing cavity and the second air hole form a first air outlet channel, and the first air hole, the wind passing cavity and the air outlet gap form a second air outlet channel.
[0007] In a second aspect, the embodiments of the present application further provide an air conditioner, which comprises a casing and the flexible air outlet structure described above, the casing is provided with an air outlet, and the flexible air outlet structure is arranged at the air outlet, and the flexible air outlet plate body of the flexible air outlet structure extends along the length direction of the air outlet and can rotate around the length direction of the air outlet.
[0008] In a third aspect, the embodiments of the present application further provide an air conditioner, which comprises a casing, a guide air baffle and the flexible air outlet structure described above, the casing is provided with an air outlet, and the casing is provided with an air duct which communicates with the air outlet; the flexible air outlet structure is arranged on the bottom wall of the air duct close to the air outlet, the guide air baffle is arranged on the top wall of the air duct close to the air outlet, and the guide air baffle is closer to the air outlet than the flexible air outlet structure; the flexible air outlet plate body of the flexible air outlet structure and the guide air baffle both extend along the length direction of the air outlet and can rotate around the length direction of the air outlet, and the rotation axis of the flexible air outlet plate body is arranged on one side of the flexible air outlet plate body, and the rotation axis of the guide air baffle is arranged on one side of the guide air baffle.
[0009] In a fourth aspect, the embodiments of the present application further provide an air conditioner, which comprises a casing, a guide air baffle and the flexible air outlet structure described above, the casing is provided with an air outlet, and the casing is provided with an air duct which communicates with the air outlet; the flexible air outlet structure is arranged at a position close to the air outlet of the air duct, and the inner wall of the air duct is provided with a receiving groove which can receive the flexible air outlet structure; the flexible air outlet plate body of the flexible air outlet structure and the guide air baffle both extend along the length direction of the air outlet and can rotate around the length direction of the air outlet, and the rotation axis of the flexible air outlet plate body is arranged on one side of the flexible air outlet plate body. Advantages
[0010] The flexible air outlet structure and the air conditioner provided by the embodiments of the present application have the following advantages: when the flexible air outlet structure is in the flexible air outlet position, the air outlet airflow of the air conditioner will first impact the inner surface of the flexible air outlet plate body and then flow to both sides of the flexible air outlet plate body and the first air holes, and then the airflow in the first air holes continues to impact the flexible air outlet plate body and then flows to the periphery of the flexible air outlet plate body and the second air holes of the flexible air outlet plate body, so that the air outlet airflow flows out through the first air outlet channel and the second air outlet channel, and in the process of the airflow impacting the inner surface of the flexible air outlet plate body and the flexible air outlet plate body, the wind speed and the wind pressure of the air outlet airflow can be effectively reduced, so that the human body is not caused to be uncomfortable, and when the airflow flows out from the air outlet gap, the mixed air layer can be thicker, and the surrounding air can be more easily sucked to perform heat exchange, so that the indoor temperature can be kept constant, and the overall air outlet airflow is fluctuant, so that the wind feeling similar to natural wind is brought, and the comfort of the air conditioner is further improved. BRIEF DESCRIPTION OF DRAWINGS
[0011] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the drawings needed to be used in the embodiments description will be briefly introduced. Obviously, the drawings in the following description only show some embodiments of the present application, and other drawings can be obtained by those skilled in the art without any creative effort based on these drawings. In the following description, the same reference numerals represent the same parts.
[0012] Fig. 1 is a structural schematic view of a wall-mounted air conditioner in a soft wind mode according to the first embodiment of the present application.
[0013] Fig. 2 is a structural schematic view of the wall-mounted air conditioner in an upper air guiding mode according to the first embodiment of the present application.
[0014] Fig. 3 is a structural schematic view of the wall-mounted air conditioner in a lower air guiding mode according to the first embodiment of the present application.
[0015] Fig. 4 is a structural schematic view of the wall-mounted air conditioner in a normal air outlet mode according to the first embodiment of the present application.
[0016] Fig. 5 is a structural schematic view of the wall-mounted air conditioner in a power-off state according to the first embodiment of the present application.
[0017] Fig. 6 is a structural schematic view of a stand-type air conditioner in a soft wind mode according to the first embodiment of the present application.
[0018] Fig. 7 is a transverse sectional view of the stand-type air conditioner shown in Fig. 6.
[0019] Fig. 8 is a structural schematic view of the stand-type air conditioner in a left air guiding mode according to the first embodiment of the present application.
[0020] Fig. 9 is a structural schematic view of the stand-type air conditioner in a right air guiding mode according to the first embodiment of the present application.
[0021] Fig. 10 is a structural schematic view of the stand-type air conditioner in a normal air outlet mode according to the first embodiment of the present application.
[0022] Fig. 11 is a transverse sectional view of the stand-type air conditioner shown in Fig. 10.
[0023] Fig. 12 is a first structural schematic view of a soft wind structure according to the first embodiment of the present application.
[0024] Fig. 13 is a structural schematic view of the soft wind structure shown in Fig. 12 from another perspective.
[0025] Fig. 14 is a structural schematic view of the soft wind structure shown in Fig. 12 from another perspective.
[0026] Fig. 15 is a dimensional schematic view of a soft wind plate body and a soft wind plate body according to the first embodiment of the present application.
[0027] Fig. 16 is a flow direction diagram of the air outflow provided by the first embodiment of the present application.
[0028] Fig. 17 is a diagram showing the rotation range of the soft air structure provided by the first embodiment of the present application.
[0029] Fig. 18 is a diagram showing a second structure of the soft air structure provided by the first embodiment of the present application.
[0030] Fig. 19 is a front view of the soft air structure shown in Fig. 18.
[0031] Fig. 20 is a rear view of the soft air structure shown in Fig. 19.
[0032] Fig. 21 is a right view of the soft air structure shown in Fig. 20.
[0033] Fig. 22 is a diagram showing a third structure of the soft air structure provided by the first embodiment of the present application.
[0034] Fig. 23 is a rear view of the soft air structure shown in Fig. 22.
[0035] Fig. 24 is a diagram showing a fourth structure of the soft air structure provided by the first embodiment of the present application.
[0036] Fig. 25 is a rear view of the soft air structure shown in Fig. 24.
[0037] Fig. 26 is a diagram showing a fifth structure of the soft air structure provided by the first embodiment of the present application.
[0038] Fig. 27 is a rear view of the soft air structure shown in Fig. 26.
[0039] Fig. 28 is a diagram showing a sixth structure of the soft air structure provided by the first embodiment of the present application.
[0040] Fig. 29 is a rear view of the soft air structure shown in Fig. 28.
[0041] Fig. 30 is a diagram showing a seventh structure of the soft air structure provided by the first embodiment of the present application.
[0042] Fig. 31 is a front view of the soft air structure shown in Fig. 30.
[0043] Fig. 32 is a bottom view of the soft air structure shown in Fig. 31.
[0044] Fig. 33 is a diagram showing a partial structure of the soft air structure shown in Fig. 30.
[0045] Fig. 34 is a second flow direction diagram of the air outflow provided by the first embodiment of the present application.
[0046] Fig. 35 is a diagram showing an eighth structure of the soft air structure provided by the first embodiment of the present application.
[0047] Fig. 36 is a rear view of the flexible wind structure shown in Fig. 35.
[0048] Fig. 37 is a ninth structure diagram of the flexible wind structure provided by the first embodiment of the present application.
[0049] Fig. 38 is a rear view of the flexible wind structure shown in Fig. 37.
[0050] Fig. 39 is a tenth structure diagram of the flexible wind structure provided by the first embodiment of the present application.
[0051] Fig. 40 is a rear view of the flexible wind structure shown in Fig. 39.
[0052] Fig. 41 is an eleventh structure diagram of the flexible wind structure provided by the first embodiment of the present application.
[0053] Fig. 42 is a rear view of the flexible wind structure shown in Fig. 41.
[0054] Fig. 43 is a structure diagram of the air conditioner provided by the second embodiment of the present application.
[0055] Fig. 44 is a structure diagram of the air conditioner provided by the second embodiment of the present application in the flexible wind mode.
[0056] Fig. 45 is a structure diagram of the air conditioner provided by the second embodiment of the present application in the upper air guide mode.
[0057] Fig. 46 is a structure diagram of the air conditioner provided by the second embodiment of the present application in the lower air guide mode.
[0058] Fig. 47 is a structure diagram of the air conditioner provided by the second embodiment of the present application in the normal air outlet mode.
[0059] Fig. 48 is a structure diagram of the flexible wind structure provided by the second embodiment of the present application.
[0060] Fig. 49 is a structure diagram of the air conditioner provided by the third embodiment of the present application.
[0061] Fig. 50 is a structure diagram of the air conditioner provided by the third embodiment of the present application in the flexible wind mode.
[0062] Fig. 51 is a structure diagram of the air conditioner provided by the third embodiment of the present application in the upper air guide mode.
[0063] Fig. 52 is a structure diagram of the air conditioner provided by the third embodiment of the present application in the lower air guide mode.
[0064] Fig. 53 is a structure diagram of the air conditioner provided by the third embodiment of the present application in the normal air outlet mode.
[0065] Fig. 54 is a structural schematic view of an air conditioner in a power-off state according to a third embodiment of the present application.
[0066] BRIEF DESCRIPTION OF DRAWINGS 100, soft wind structure; 110, soft wind plate body; 111, first air hole; 120, soft wind plate body; 121, second air hole; 122, first soft wind plate body; 123, second soft wind plate body; 130, connecting arm; 200, cabinet; 210, air outlet; 220, air duct; 230, movable door plate; 240, storage groove; 300, fan; 400, air deflector. EMBODIMENTS OF THE INVENTION
[0067] The technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all the other embodiments obtained by a person skilled in the art without any creative work fall within the scope of protection of the present application.
[0068] In the description of the present application, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, and are only for the purpose of facilitating the description of the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the present application. In addition, the terms "first", "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the technical features indicated. Therefore, the features limited by "first", "second" can explicitly or implicitly include one or more of the features. In the description of the present application, the meaning of "multiple" is two or more, unless otherwise specifically limited.
[0069] In this application, the word "exemplary" is used to mean "serving as an example, instance, or illustration." Any implementation described as "exemplary" is not necessarily to be construed as preferred or advantageous over other implementations. The term "and / or" includes any and all combinations of one or more of the associated listed items. The following description is presented to enable any person skilled in the art to make and use the application. In the following description, for purposes of explanation, specific details are set forth to provide a thorough understanding of the present application. It will be apparent to one skilled in the art, however, that the present application can be practiced without using these specific details. In other instances, well-known structures and processes are not elaborated in order not to obscure the description of the present application with unnecessary details. Thus, the present application is not intended to be limited by the embodiments shown, but is to be accorded with the widest scope consistent with the principles and features disclosed herein.
[0070] First embodiment
[0071] As shown in FIGS. 1-11, the air conditioner provided by the first embodiment of the present application comprises a casing 200 and a soft wind structure 100, the casing 200 is provided with an air outlet 210, the casing 200 is provided with an air duct 220 in communication with the air outlet 210, and the soft wind structure 100 is arranged at the air outlet 210; as shown in FIGS. 12-17, the soft wind structure 100 comprises a soft wind plate body 110, the soft wind plate body 110 extends along the length direction of the air outlet 210 and can rotate around the length direction of the air outlet 210.
[0072] The soft wind plate body 110 has an outer surface and an inner surface, the outer surface of the soft wind plate body 110 refers to the side of the soft wind plate body 110 facing the outside of the casing 200 when the air conditioner is in the soft wind mode, and the inner surface of the soft wind plate body 110 refers to the side of the soft wind plate body 110 facing the inside of the casing 200 when the air conditioner is in the soft wind mode, and the inner surface of the soft wind plate body 110 can guide the air flow of the air conditioner.
[0073] As shown in FIGS. 12-14, the soft wind structure 100 further comprises a soft wind plate body 120, the soft wind plate body 110 is provided with a first air hole 111; the soft wind plate body 120 is provided with a second air hole 121; the soft wind plate body 120 is connected to the soft wind plate body 110, and a through air chamber is formed between the soft wind plate body 120 and the soft wind plate body 110, and the periphery of the through air chamber at least partially forms an air outlet gap; wherein the first air hole 111, the through air chamber and the second air hole 121 form a first air outlet channel, and the first air hole 111, the through air chamber and the air outlet gap form a second air outlet channel. Specifically, the soft wind plate body 120 is located on the side of the outer surface of the soft wind plate body 110, and the soft wind plate body 120 is arranged in a spaced manner with the outer surface of the soft wind plate body 110.
[0074] The soft wind structure 100 and the air conditioner provided by the embodiments of the present application, when the soft wind structure 100 is in the soft wind position, the air outlet airflow of the air conditioner will first impact the inner surface of the soft wind plate body 110 and flow to both sides of the soft wind plate body 110 and the first air hole 111, then the airflow in the first air hole 111 continues to impact the soft wind plate body 120 and flow to the periphery of the soft wind plate body 120 and the second air hole 121, realizing that the air outlet airflow flows out through the first air outlet channel and the second air outlet channel, in the process of the airflow impacting the inner surface of the soft wind plate body 110 and the soft wind plate body 120 respectively, the wind speed and the wind pressure of the air outlet airflow can be effectively reduced, the human body is avoided from being caused to be uncomfortable, and when the airflow flows out from the air outlet gap of the periphery of the air passing cavity, the mixed air layer can be thicker, the surrounding air is more easily rolled and sucked for heat exchange, the indoor temperature can be kept constant, and the air outlet airflow as a whole is fluctuant, a wind feeling similar to natural wind is brought, and then the comfort of the air conditioner is improved.
[0075] Specifically, when the air conditioner is in the soft wind mode, the soft wind plate body 110 is rotated to make the inner surface of the soft wind plate body 110 face the air outlet airflow of the air conditioner, the air outlet airflow blown out from the air duct 220 of the air conditioner first impacts the inner surface of the soft wind plate body 110 and flows to both sides of the soft wind plate body 110 and the first air hole 111, then the airflow in the first air hole 111 continues to impact the soft wind plate body 120 and flows to the periphery of the soft wind plate body 120 and the second air hole 121. In the process of the air outlet airflow impacting the inner surface of the soft wind plate body 110 and the soft wind plate body 120 respectively, the multi-splashing soft wind of the high-speed jet flow of the air conditioner is realized, the wind speed and the wind pressure of the air outlet airflow can be effectively reduced, and the human body is avoided from being caused to be uncomfortable.
[0076] Optionally, in the soft wind mode, the second air outlet channel of the soft wind structure 100 is at least partially located outside the air outlet 210, so that the air outlet airflow can be more effectively blown to the indoor, and the comfort of the air conditioner is improved.
[0077] In some embodiments of the present application, a plurality of first air holes 111 are arranged on the soft wind plate body 110, the plurality of first air holes 111 are sequentially and spaced apart along the extension direction of the soft wind plate body 110, that is, the plurality of first air holes 111 are sequentially and spaced apart along the rotation axis of the soft wind plate body 110, and each first air hole 111 is correspondingly provided with a soft wind plate body 120. The number of the soft wind plate bodies 120 is at least one. For example, the number of the soft wind plate bodies 120 is a plurality, the plurality of first air holes 111 correspond to the plurality of soft wind plate bodies 120 one by one (that is, one first air hole 111 corresponds to one soft wind plate body 120); or the number of the soft wind plate bodies 120 is one, one soft wind plate body 120 corresponds to one first air hole 111; or the number of the soft wind plate bodies 120 is a plurality, and each soft wind plate body 120 corresponds to a plurality of first air holes 111.
[0078] It can be understood that in the embodiment in which the number of the soft wind plate bodies 120 is multiple, when the air conditioner is in the soft wind mode, the air outlet airflow of the air conditioner can not only realize the multiple-splashing soft wind, but also realize the staggered soft wind. Specifically, when the air outlet airflow flows from the periphery of the soft wind plate body 120 (i.e., the air outlet gap), the airflows between the adjacent two soft wind plate bodies 120 will impact each other, further reducing the wind speed and wind pressure of the air outlet airflow of the air conditioner, and forming the staggered soft wind of the air outlet airflow of the air conditioner.
[0079] Further, the airflows between the adjacent two soft wind plate bodies 120 impact each other and then converge together to continue to flow forward, so that in the length direction of the air outlet 210, there are multiple staggered jets and multiple main jets flowing out of the second air hole 121. Since the flow rate of the staggered jet after the staggered soft wind is lower than that of the main jet, the staggered jet finally converges to the main jet, but in the convergence process, the two side staggered jets will continuously interfere with the main jet, affecting the flow direction of the main jet, so that the main jet flows forward in a left-right fluctuation manner, forming the fluctuation soft wind of the air outlet airflow of the air conditioner. Since the flow rate of airflow in nature is generally fluctuating, compared with the constant mechanical wind of the conventional air conditioner, the fluctuating natural wind can bring a more comfortable body feeling to people, so that the air outlet airflow of the air conditioner after the fluctuation soft wind will bring a similar natural wind feeling, thereby improving the comfort of the air conditioner.
[0080] In some embodiments of the present application, as shown in FIGS. 12-29, the first air hole 111 and the second air hole 121 have the same shape, for example, the first air hole 111 and the second air hole 121 can be circular holes, strip-shaped holes or triangular holes, etc.
[0081] Optionally, the first air hole 111 and the second air hole 121 are both circular holes, and the diameter of the first air hole 111 is greater than that of the second air hole 121. For example, as shown in FIGS. 12-24, one first air hole 111 can correspond to one second air hole 121, and the center of the first air hole 111 and the center of the second air hole 121 are on the same straight line (i.e., the center axis of the first air hole 111 coincides with the center axis of the second air hole 121); or one first air hole 111 can correspond to multiple second air holes 121.
[0082] Optionally, as shown in FIGS. 22-25, the first air hole 111 and the second air hole 121 are both circular holes, and the diameter of the first air hole 111 is greater than that of the second air hole 121; the soft wind plate body 110 is provided with at least one first air hole 111, and the soft wind plate body 120 is provided with a plurality of second air holes 121, and each first air hole 111 corresponds to a plurality of second air holes 121. That is, one first air hole 111 can be provided on the soft wind plate body 110, and one first air hole 111 corresponds to a plurality of second air holes 121; or a plurality of first air holes 111 can be provided on the soft wind plate body 110, and each first air hole 111 corresponds to a plurality of second air holes 121. Among them, the diameters of the plurality of second air holes 121 are the same or different, that is, the diameters of the plurality of second air holes 121 can be the same (as shown in FIGS. 22 and 23) or different (as shown in FIGS. 24 and 25).
[0083] Optionally, as shown in FIGS. 26 and 27, the first air hole 111 and the second air hole 121 are both strip-shaped holes, the first air hole 111 and the second air hole 121 are parallel to each other, and the diameter of the first air hole 111 is greater than that of the second air hole 121 (that is, the length of the first air hole 111 is greater than that of the second air hole 121, and the width of the first air hole 111 is greater than that of the second air hole 121). Among them, one or more first air holes 111 can be provided on the soft wind plate body 110. For example, one first air hole 111 can be provided on the soft wind plate body 110, and one first air hole 111 corresponds to one second air hole 121; or a plurality of first air holes 111 can be provided on the soft wind plate body 110, and each first air hole 111 corresponds to one second air hole 121 (as shown in FIGS. 26 and 27); or a plurality of first air holes 111 can be provided on the soft wind plate body 110, and each first air hole 111 corresponds to a plurality of second air holes 121.
[0084] Optionally, as shown in FIG. 28 and FIG. 29, the first air hole 111 and the second air hole 121 are both strip-shaped holes, and the aperture of the first air hole 111 is larger than the aperture of the second air hole 121 (i.e. the length of the first air hole 111 is larger than the length of the second air hole 121, and the width of the first air hole 111 is larger than the width of the second air hole 121); at least one first air hole 111 is arranged on the soft wind plate body 110, and each first air hole 111 corresponds to a plurality of second air holes 121, and the first air hole 111 and the second air hole 121 are not parallel to each other. For example, one first air hole 111 can be arranged on the soft wind plate body 110, one first air hole 111 corresponds to a plurality of second air holes 121, and the first air hole 111 and the second air hole 121 are not parallel to each other; or a plurality of first air holes 111 can be arranged on the soft wind plate body 110, each first air hole 111 corresponds to a plurality of second air holes 121, and the first air hole 111 and the second air hole 121 are not parallel to each other (as shown in FIG. 28 and FIG. 29).
[0085] It can be understood that the soft wind structure 100 can include one or more soft wind plate bodies 120, when the soft wind structure 100 can include a plurality of soft wind plate bodies 120, the plurality of soft wind plate bodies 120 are arranged in sequence along the axial direction of the first air hole 111, the second air hole 121 on each soft wind plate body 120 is the same shape as the first air hole 111, and the aperture of the second air hole 121 on each soft wind plate body 120 is smaller than the aperture of the first air hole 111; among the two adjacent soft wind plate bodies 120, the aperture of the second air hole 121 on the outer soft wind plate body 120 is smaller than the aperture of the second air hole 121 on the inner soft wind plate body 120. Wherein, the "outer soft wind plate body 120" refers to the soft wind plate body 120 which is far away from the first air hole 111 among the two adjacent soft wind plate bodies 120, and the "inner soft wind plate body 120" refers to the soft wind plate body 120 which is close to the first air hole 111 among the two adjacent soft wind plate bodies 120.
[0086] Optionally, the second air holes 121 on the plurality of soft wind plate bodies 120 are parallel to each other (as shown in FIG. 41 and FIG. 42) or not parallel to each other (as shown in FIG. 43 and FIG. 44). For example, as shown in FIG. 12-FIG. 14, FIG. 26-FIG. 29, the soft wind structure 100 includes two soft wind plate bodies 120, the two soft wind plate bodies 120 and the soft wind plate body 110 are arranged in sequence along the axial direction of the first air hole 111, the first air hole 111 and the second air hole 121 are both circular holes; the soft wind plate body 120 close to the first air hole 111 is defined as the first soft wind plate body 122, and the soft wind plate body 120 far away from the first air hole 111 is defined as the second soft wind plate body 123, as shown in FIG. 18, the aperture D2 of the second air hole 121 on the first soft wind plate body 122 is smaller than the aperture D1 of the first air hole 111, and the aperture D3 of the second air hole 121 on the second soft wind plate body 123 is smaller than the aperture D2 of the second air hole 121 on the first soft wind plate body 122.
[0087] In some embodiments of the present application, as shown in FIGS. 30-40, the shape of the first air hole 111 is different from that of the second air hole 121, for example, the first air hole 111 is a circular hole and the second air hole 121 is a strip-shaped hole, or the first air hole 111 is a strip-shaped hole and the second air hole 121 is a circular hole.
[0088] Optionally, as shown in FIGS. 30-34, the first air hole 111 is a circular hole and the second air hole 121 is a strip-shaped hole, and the soft wind plate body 120 is provided with a plurality of groups of soft wind holes, each group of soft wind holes being composed of a plurality of second air holes 121 distributed radially on the soft wind plate body 120. Among them, the width of the second air hole 121 at both ends can be the same, that is, the width of the second air hole 121 remains the same from one end close to the center of the soft wind plate body 120 to one end away from the center of the soft wind plate body 120; or the width of the second air hole 121 gradually increases from one end close to the center of the soft wind plate body 120 to one end away from the center of the soft wind plate body 120 (as shown in FIGS. 30-33).
[0089] Optionally, as shown in FIGS. 35 and 36, the first air hole 111 is a circular hole and the second air hole 121 is a strip-shaped hole, the soft wind plate body 110 is provided with at least one first air hole 111, and the soft wind plate body 120 is provided with a plurality of second air holes 121, and each first air hole 111 corresponds to a plurality of second air holes 121. For example, the soft wind plate body 110 is provided with one first air hole 111, the soft wind plate body 120 is provided with a plurality of second air holes 121, and one first air hole 111 corresponds to a plurality of second air holes 121; or the soft wind plate body 110 is provided with a plurality of first air holes 111, the soft wind plate body 120 is provided with a plurality of second air holes 121, and each first air hole 111 corresponds to a plurality of second air holes 121 (as shown in FIGS. 35 and 36). Among them, the plurality of second air holes 121 can be arranged parallel to each other.
[0090] Optionally, the first air hole 111 is a circular hole and the second air hole 121 is a strip-shaped hole; the soft wind plate body 120 is provided with a plurality of groups of soft wind holes, each group of soft wind holes being composed of a plurality of second air holes 121 parallel to each other. Among them, the soft wind plate body 110 is provided with a plurality of first air holes 111. For example, the plurality of first air holes 111 and the plurality of groups of soft wind holes correspond one by one, that is, each group of soft wind holes corresponds to one first air hole 111; or each group of soft wind holes corresponds to a plurality of first air holes 111, that is, a plurality of first air holes 111 share a group of soft wind holes.
[0091] Optionally, as shown in FIG. 37 and FIG. 38, the first air hole 111 is a circular hole, and the second air hole 121 is a strip-shaped hole; the soft wind plate body 120 is provided with a plurality of groups of soft wind holes, and each group of soft wind holes is composed of one second air hole 121. Among them, the soft wind plate body 120 is provided with a plurality of second air holes 121. Exemplarily, a plurality of first air holes 111 can correspond to a plurality of groups of soft wind holes one by one, that is, each group of soft wind holes corresponds to one first air hole 111; or each group of soft wind holes corresponds to a plurality of first air holes 111, that is, a plurality of first air holes 111 share one group of soft wind holes (as shown in FIG. 37 and FIG. 38).
[0092] Optionally, as shown in FIG. 39 and FIG. 40, the first air hole 111 is a strip-shaped hole, and the second air hole 121 is a circular hole; the soft wind plate body 110 is provided with at least one first air hole 111, and the soft wind plate body 120 is provided with a plurality of second air holes 121, and each first air hole 111 corresponds to a plurality of second air holes 121. Exemplarily, the soft wind plate body 110 is provided with one first air hole 111, the soft wind plate body 120 is provided with a plurality of second air holes 121, one first air hole 111 corresponds to a plurality of second air holes 121; or, the soft wind plate body 110 is provided with a plurality of first air holes 111, the soft wind plate body 120 is provided with a plurality of second air holes 121, and each first air hole 111 corresponds to a plurality of second air holes 121 (as shown in FIG. 39 and FIG. 40).
[0093] In some embodiments of the present application, as shown in FIG. 41 and FIG. 42, the soft wind plate body 120 is multi-layered (i.e. at least two layers), and the multi-layered soft wind plate body 120 is sequentially and spacedly arranged along the axial direction of the first air hole 111; the first air hole 111 is a circular hole, and the second air hole 121 on the outermost soft wind plate body 120 is a circular hole with a smaller diameter than the first air hole 111, and the second air holes 121 on the remaining soft wind plate bodies 120 are strip-shaped holes. Among them, the soft wind plate body 110 is provided with at least one first air hole 111, and the outermost soft wind plate body 120 is provided with at least one second air hole 121. The “outermost soft wind plate body 120” refers to the soft wind plate body 120 farthest away from the first air hole 111 in the multi-layered soft wind plate body 120. Exemplarily, the soft wind plate body 110 is provided with one first air hole 111, the outermost soft wind plate body 120 is provided with one second air hole 121, and one first air hole 111 corresponds to one second air hole 121 on the outermost soft wind plate body 120; or, the soft wind plate body 110 is provided with one first air hole 111, the outermost soft wind plate body 120 is provided with a plurality of second air holes 121, and one first air hole 111 corresponds to a plurality of second air holes 121 on the outermost soft wind plate body 120; or, as shown in FIG. 41 and FIG. 42, the soft wind plate body 110 is provided with a plurality of first air holes 111, the outermost soft wind plate body 120 is provided with a plurality of second air holes 121, and each first air hole 111 corresponds to a plurality of second air holes 121 on the outermost soft wind plate body 120.
[0094] It can be understood that, in the embodiment in which the soft wind structure 100 comprises multiple layers of soft wind plate bodies 120, when the air conditioner is in the soft wind mode, the soft wind structure 100 is in the soft wind position, and the air outlet airflow of the air conditioner will first impact the inner surface of the soft wind plate body 110 and flow to both sides of the soft wind plate body 110 and the first air hole 111, respectively; then the airflow in the first air hole 111 continues to impact the first layer of soft wind plate bodies 120 (i.e., the soft wind plate bodies 120 closest to the first air hole 111) of the soft wind structure 100 and flow to the periphery of the first layer of soft wind plate bodies 120 and the second air hole 121 of the first layer of soft wind plate bodies 120, respectively; then the airflow in the second air hole 121 of the first layer of soft wind plate bodies 120 continues to impact the second layer of soft wind plate bodies 120 and flow to the periphery of the second layer of soft wind plate bodies 120 and the second air hole 121 of the second layer of soft wind plate bodies 120, respectively; and so on, until the air outlet airflow flows out from the periphery of the last layer of soft wind plate bodies 120 (i.e., the soft wind plate bodies 120 farthest from the first air hole 111) and the second air hole 121 of the last layer of soft wind plate bodies 120. In the process of the air outlet airflow impacting the inner surface of the soft wind plate body 110 and the multiple layers of soft wind plate bodies 120, the multiple-splashing soft wind of the high-speed jet flow of the air conditioner is achieved, which can effectively reduce the wind speed and wind pressure of the air outlet airflow, avoid causing human discomfort, and improve the comfort of the air conditioner.
[0095] In some embodiments of the present application, the soft wind structure 100 comprises at least two soft wind plate bodies 120, each of which forms a second air outlet channel together with the soft wind plate body 110, and the airflows blown out by adjacent second air outlet channels at least partially interfere with each other. Specifically, the soft wind structure 100 comprises multiple soft wind plate bodies 120, which are arranged at intervals along the extension direction of the soft wind plate body 110 on the outer surface of the soft wind plate body 110; when the air conditioner is in the soft wind mode, the air outlet airflow of the air conditioner flows out from the second air outlet channel corresponding to each soft wind plate body 120, and the airflows blown out by adjacent second air outlet channels at least partially interfere with each other (i.e., impact each other alternately), so as to further reduce the wind speed and wind pressure of the air outlet airflow of the air conditioner and form the alternating soft wind of the air outlet airflow of the air conditioner.
[0096] As shown in FIG. 20, a circle C is drawn with the distance between the rotation center of the soft wind plate body 110 and the outermost side edge of the soft wind plate body 110 as the radius and with the rotation center of the soft wind plate body 110 as the center, and the soft wind plate body 120 is within the range of the circle C, so as to avoid collision and interference between the soft wind plate body 120 and the shell 200 or other components of the air conditioner during the rotation of the soft wind plate body 110. Specifically, the two ends of the soft wind plate body 110 can be rotationally connected to the shell 200 through a rotating shaft structure, and the rotation axis of the soft wind plate body 110 is arranged at the middle part of the soft wind plate body 110.
[0097] In some embodiments of the present application, as shown in FIGS. 18-21, the flexible air deflector body 110 is divided into multiple segments, and adjacent two segments are connected by a connecting arm 130. It can be understood that when the air outlet 210 of the air conditioner is long, the length of the flexible air deflector body 110 is also correspondingly long, and the flexible air deflector body 110 is prone to bending and deforming when the length is long. The present application designs the flexible air deflector body 110 to be multiple segments, and adjacent two segments are connected by a connecting arm 130, which can effectively prevent the flexible air deflector body 110 from bending and deforming.
[0098] In some embodiments of the present application, as shown in FIGS. 1-5, the air outlet 210 extends in the horizontal direction (i.e., the length direction of the air outlet 210 is parallel to the horizontal direction), and the flexible air deflector body 110 has an initial position, a flexible air deflection position, an upper air deflection position, and a lower air deflection position during rotation around the length direction of the air outlet 210, i.e., the flexible air deflector body 110 can switch between the initial position, the flexible air deflection position, the upper air deflection position, and the lower air deflection position. Accordingly, the air conditioner has a flexible air deflection mode, an upper air deflection mode, a lower air deflection mode, and a normal air outlet mode. Hereinafter, taking a wall-mounted air conditioner as an example, the four modes are described:
[0099] As shown in FIG. 1, the air conditioner is configured to, in the flexible air deflection mode, rotate the flexible air deflector body 110 to the flexible air deflection position, at which time the inner surface of the flexible air deflector body 110 faces the air outlet airflow of the air conditioner, so that part of the air outlet airflow blows out through the first and second air outlet channels.
[0100] As shown in FIG. 2, the air conditioner is configured to, in the upper air deflection mode, rotate the flexible air deflector body 110 to the upper air deflection position, at which time the inner surface of the flexible air deflector body 110 faces upward, so that the air outlet airflow blows upward (i.e., upward air deflection).
[0101] As shown in FIG. 3, the air conditioner is configured to, in the lower air deflection mode, rotate the flexible air deflector body 110 to the lower air deflection position, at which time the inner surface of the flexible air deflector body 110 faces downward, so that the air outlet airflow blows downward (i.e., downward air deflection).
[0102] As shown in FIG. 4, the air conditioner is configured to, in the normal air outlet mode, rotate the flexible air deflector body 110 to the initial position, at which time the inner surface of the flexible air deflector body 110 faces downward, so that the air outlet airflow blows forward. In this mode, the air outlet airflow experiences the least resistance (i.e., the least wind resistance).
[0103] As shown in FIG. 5, when the air conditioner is turned off, the flexible air deflector body 110 is rotated to the initial position, at which time the inner surface of the flexible air deflector body 110 faces downward.
[0104] Optionally, as shown in FIGS. 1-5, the air conditioner further comprises a movable door plate 230 rotatably supported on the casing 200 in a length direction of the air outlet 210 and located outside the soft wind structure 100 to open or close the air outlet 210.
[0105] Specifically, as shown in FIG. 1, when the air conditioner is in the soft wind mode, the movable door plate 230 is in a state of opening the air outlet 210, and the soft wind plate body 110 is rotated to the soft wind position, at which time the inner surface of the soft wind plate body 110 faces the air outlet airflow of the air conditioner. As shown in FIG. 2, when the air conditioner is in the upper air guiding mode, the movable door plate 230 is in a state of opening the air outlet 210, and the soft wind plate body 110 is rotated to the upper air guiding position, so that the air outlet airflow blows upward (i.e., upward air guiding). As shown in FIG. 3, when the air conditioner is in the lower air guiding mode, the movable door plate 230 is in a state of opening the air outlet 210, and the soft wind plate body 110 is rotated to the lower air guiding position, so that the air outlet airflow blows downward (i.e., downward air guiding). As shown in FIG. 4, when the air conditioner is in the normal air outlet mode, the movable door plate 230 is in a state of opening the air outlet 210, and the soft wind plate body 110 is rotated to the initial position, so that the air outlet airflow blows forward. As shown in FIG. 5, when the air conditioner is turned off, the soft wind plate body 110 is rotated to the closed position, and the movable door plate 230 is in a state of closing the air outlet 210.
[0106] In other embodiments of the present application, as shown in FIGS. 6-11, the air outlet 210 extends in a vertical direction (i.e., the length direction of the air outlet 210 is parallel to the vertical direction), and the soft wind plate body 110 has a following wind position, a soft wind position, a left air guiding position, and a right air guiding position in the rotation process, i.e., the soft wind plate body 110 can be switched between the following wind position, the soft wind position, the left air guiding position, and the right air guiding position. Correspondingly, the air conditioner has a soft wind mode, a left air guiding mode, a right air guiding mode, and a normal air outlet mode. Hereinafter, the four modes are described by taking a floor-standing air conditioner as an example:
[0107] As shown in FIGS. 6 and 7, the air conditioner is configured to, in the soft wind mode, rotate the soft wind plate body 110 to the soft wind position, at which time the inner surface of the soft wind plate body 110 faces the air outlet airflow of the air conditioner, so that part of the air outlet airflow blows out through the first air outlet passage and the second air outlet passage of the soft wind structure 100.
[0108] As shown in FIG. 8, the floor-standing air conditioner is configured to, in the left air guiding mode, rotate the soft wind plate body 110 to the left air guiding position, at which time the inner surface of the soft wind plate body 110 faces the left rear, so that the air outlet airflow blows leftward.
[0109] As shown in FIG. 9, the floor-standing air conditioner is configured to, in the right air guiding mode, rotate the soft wind plate body 110 to the right air guiding position, at which time the inner surface of the soft wind plate body 110 faces the left front, so that the air outlet airflow blows rightward.
[0110] As shown in FIGS. 10 and 11, the vertical air conditioner is configured such that, in the normal air outlet mode, the soft wind plate body 110 is rotated to the wind following position, at which the inner surface of the soft wind plate body 110 faces the positive left direction, so that the air outlet flow is blown forward, and in this mode, the air outlet flow is subjected to the smallest resistance (i.e., the smallest wind resistance).
[0111] Optionally, as shown in FIGS. 6 and 10, the vertical air conditioner can include a plurality of soft wind structures 100, which are sequentially and spacedly arranged along the width direction of the air outlet 210. As shown in FIG. 7, in the soft wind mode, when the air outlet flow flows out from the periphery of the soft wind plate body 120 (i.e., the air outlet gap), the air flows between the soft wind plate bodies 120 of adjacent two soft wind structures 100 will interlacedly impact each other, and the air flows leaked from the gaps of the adjacent two soft wind structures 100 will also interlacedly impact the air flows blown from the periphery of the soft wind plate body 120 (i.e., the air outlet gap). After the air flows of different air outlet directions interlacedly impact each other, the air speed and the air pressure of the air outlet flow of the air conditioner can be further reduced, and the interlaced soft wind of the air outlet flow of the air conditioner can be formed.
[0112] Second Embodiment
[0113] As shown in FIGS. 43-48, the air conditioner provided by the second embodiment of the present application is basically the same as the air conditioner of the first embodiment, and the difference lies in that the soft wind structure 100 is arranged on the bottom wall of the air duct 220 close to the air outlet 210, and the rotation axis of the soft wind plate body 110 is arranged on one side of the soft wind plate body 110; the air conditioner further includes a guide vane 400, which is arranged on the top wall of the air duct 220 close to the air outlet 210, and the guide vane 400 is closer to the air outlet 210 than the soft wind structure 100; the guide vane 400 extends along the length direction of the air outlet 210 and can rotate around the length direction of the air outlet 210, and the rotation axis of the guide vane 400 is arranged on one side of the guide vane 400.
[0114] Among them, the soft wind plate body 110 has a first initial position, a soft wind position and an upper guide wind position in the rotation process, that is, the soft wind plate body 110 can switch between the first initial position, the soft wind position and the upper guide wind position; the guide vane 400 has a second initial position and a lower guide wind position in the rotation process, that is, the guide vane 400 can switch between the second initial position and the lower guide wind position.
[0115] As shown in FIG. 44, the air conditioner is configured such that, in the soft wind mode, the guide vane 400 is rotated to the second initial position, at which the inner surface of the guide vane 400 is substantially parallel to the top wall surface of the air duct 220, and the soft wind plate body 110 is rotated to the soft wind position, at which the inner surface of the soft wind plate body 110 faces the air outlet flow of the air conditioner, so that part of the air outlet flow is blown out through the first air outlet passage and the second air outlet passage of the soft wind structure 100.
[0116] Optionally, in the soft wind mode, the second air outlet channel of the soft wind structure 100 is at least partially located outside the air outlet 210, so that the air flow can be more effectively blown to the indoor space, improving the comfort of the air conditioner.
[0117] As shown in FIG. 45, the air conditioner is configured such that, in the upper air guiding mode, the air guiding plate 400 is rotated to the second initial position, at which time the inner surface of the air guiding plate 400 is substantially parallel to the top wall surface of the air duct 220, and the soft wind plate body 110 is rotated to the upper air guiding position, at which time the inner surface of the soft wind plate body 110 faces upward, so that the air flow is blown upward.
[0118] As shown in FIG. 46, the air conditioner is configured such that, in the lower air guiding mode, the soft wind plate body 110 is rotated to the first initial position, at which time the inner surface of the soft wind plate body 110 is substantially parallel to the bottom wall surface of the air duct 220, and the air guiding plate 400 is rotated to the lower air guiding position, at which time the inner surface of the air guiding plate 400 faces rearward or rearward and downward, so that the air flow is blown downward.
[0119] As shown in FIG. 47, the air conditioner is configured such that, in the normal air outlet mode, the soft wind plate body 110 is rotated to the first initial position, at which time the inner surface of the soft wind plate body 110 is substantially parallel to the bottom wall surface of the air duct 220, and the air guiding plate 400 is rotated to the second initial position, at which time the inner surface of the air guiding plate 400 is substantially parallel to the top wall surface of the air duct 220, so that the air flow is blown forward, and in this mode, the air flow suffers the least resistance (i.e., the wind resistance is the least).
[0120] When the air conditioner is turned off, the soft wind plate body 110 is rotated to the first initial position, at which time the inner surface of the soft wind plate body 110 is substantially parallel to the bottom wall surface of the air duct 220, and the air guiding plate 400 is rotated to the second initial position, at which time the inner surface of the air guiding plate 400 is substantially parallel to the top wall surface of the air duct 220.
[0121] Third Embodiment
[0122] As shown in FIGS. 49-54, the air conditioner provided by the third embodiment of the present application is basically the same as the air conditioner of the first embodiment, except that the soft wind structure 100 is arranged at a position of the air duct 220 close to the air outlet 210, the inner wall of the air duct 220 is provided with a receiving groove 240 capable of receiving the soft wind structure 100; the air conditioner further comprises an air guiding plate 400, the soft wind plate body 110 of the soft wind structure 100 and the air guiding plate 400 both extend along the length direction of the air outlet 210 and are capable of rotating about the length direction of the air outlet 210, and the rotation axis of the soft wind plate body 110 is arranged at one side of the soft wind plate body 110.
[0123] Optionally, the air duct 220 is provided with a receiving groove 240 on the bottom wall and the top wall close to the air outlet 210, and the number of the soft wind structure 100 is two, and the two soft wind structures 100 are correspondingly received in the two receiving grooves 240. It can be understood that the two soft wind structures 100 can be arranged in alignment or staggered.
[0124] Wherein, the soft wind plate body 110 has a soft wind position and a receiving position in the rotating process, that is, the soft wind plate body 110 can switch between the soft wind position and the receiving position, when the soft wind plate body 110 is in the receiving position, the soft wind structure 100 is received in the receiving groove 240; the air deflector 400 has an initial position, a front air deflector position, an upper air deflector position and a lower air deflector position in the rotating process, that is, the air deflector 400 can switch between the initial position, the front air deflector position, the upper air deflector position and the lower air deflector position.
[0125] As shown in FIG. 50, the air conditioner is configured: in the soft wind mode, the air deflector 400 is rotated to the front air deflector position, and the soft wind plate body 110 is rotated to the soft wind position, at this time, the inner surface of the soft wind plate body 110 is opposite to the air outlet airflow of the air conditioner, so that part of the air outlet airflow blows out through the first air outlet channel and the second air outlet channel of the soft wind structure 100.
[0126] As shown in FIG. 51, the air conditioner is configured: in the upper air deflector mode, the soft wind plate body 110 is rotated to the receiving position, and the air deflector 400 is rotated to the upper air deflector position, at this time, the inner surface of the air deflector 400 is directed upward or rearward and upward, so that the air outlet airflow blows upward.
[0127] As shown in FIG. 52, the air conditioner is configured: in the lower air deflector mode, the soft wind plate body 110 is rotated to the receiving position, and the air deflector 400 is rotated to the lower air deflector position, at this time, the inner surface of the air deflector 400 is directed rearward and downward, so that the air outlet airflow blows downward.
[0128] As shown in FIG. 53, the air conditioner is configured: in the normal air outlet mode, the soft wind plate body 110 is rotated to the receiving position, and the air deflector 400 is rotated to the front air deflector position, at this time, the inner surface of the air deflector 400 is substantially parallel to the top wall surface of the air duct 220, so that the air outlet airflow blows forward, and in this mode, the air outlet airflow receives the smallest resistance (i.e. the smallest wind resistance).
[0129] As shown in FIG. 54, when the air conditioner is turned off, the soft wind plate body 110 is rotated to the receiving position, and the air deflector 400 is rotated to the initial position, at this time, the inner surface of the air deflector 400 is directed rearward and downward of the cabinet 200.
[0130] It can be understood that, since the soft wind structure 100 and the air deflector 400 are independent of each other, the soft wind structure 100 can be completely accommodated in the accommodation groove 240 when the air conditioner is in the upper air deflection mode, the lower air deflection mode and the normal air outlet mode, and thus has no influence on the air supply range when the air conditioner is cooling or heating.
[0131] In the above embodiments, the description of each embodiment has its own focus, and the parts not described in detail in a certain embodiment can be referred to the relevant description of other embodiments.
[0132] The air deflector and the air conditioner provided by the embodiments of the present application are described in detail above, and the principles and implementation manners of the present application are described by applying specific examples. The above embodiment descriptions are only used to help understand the method of the present application and its core idea; meanwhile, for those skilled in the art, the specific implementation manners and application ranges can be changed according to the idea of the present application. In conclusion, the content of the specification should not be understood as a limitation of the present application.
Claims
1. A soft wind structure (100) comprising: a soft wind plate main body (110) provided with a first air hole (111) thereon; a soft wind plate body (120) provided with a second air hole (121) thereon; the soft wind plate body (120) is connected to the soft wind plate main body (110), and a through air cavity is enclosed between the soft wind plate body (120) and the soft wind plate main body (110), and a periphery of the through air cavity at least partially forms an air outlet gap; wherein the first air hole (111), the through air cavity and the second air hole (121) form a first air outlet channel, and the first air hole (111), the through air cavity and the air outlet gap form a second air outlet channel.
2. The flexible air structure (100) according to claim 1, wherein The first air hole (111) and the second air hole (121) are of the same shape.
3. The flexible air structure (100) according to claim 2, wherein The first air hole (111) and the second air hole (121) are both circular holes, and a diameter of the first air hole (111) is larger than a diameter of the second air hole (121).
4. The flexible air structure (100) according to claim 3, wherein Centers of the first air hole (111) and the second air hole (121) are on the same straight line.
5. The flexible air structure (100) according to claim 3, wherein, The soft wind plate main body (110) is provided with at least one first air hole (111), the soft wind plate body (120) is provided with a plurality of second air holes (121), and each first air hole (111) corresponds to a plurality of second air holes (121).
6. The flexible air structure (100) according to claim 2, wherein, The first air hole (111) and the second air hole (121) are both strip-shaped holes, and a diameter of the first air hole (111) is larger than a diameter of the second air hole (121).
7. The flexible air structure (100) according to claim 6, wherein The soft wind plate main body (110) is provided with at least one first air hole (111), and the first air hole (111) and the second air hole (121) are parallel to each other.
8. The flexible air structure (100) according to claim 6, wherein The soft wind plate main body (110) is provided with at least one first air hole (111), and each first air hole (111) corresponds to a plurality of second air holes (121), and the first air hole (111) and the second air hole (121) are not parallel to each other.
9. The flexible air structure (100) according to claim 1, wherein, The first air hole (111) and the second air hole (121) are not of the same shape.
10. The flexible air structure (100) according to claim 9, wherein The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The soft wind plate body (120) is provided with a plurality of groups of soft wind holes, and each group of soft wind holes is composed of a plurality of second air holes (121) distributed radially on the soft wind plate body (120).
11. The flexible air structure (100) according to claim 10, wherein Widths of two ends of the second air hole (121) are the same. Alternatively, the width of the second air hole (121) gradually increases from one end close to the center of the soft wind plate body (120) to the other end away from the center of the soft wind plate body (120).
12. The flexible air structure (100) according to claim 9, wherein, The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The soft wind plate body (120) is provided with a plurality of groups of soft wind holes, and each group of soft wind holes is composed of a plurality of second air holes (121) parallel to each other.
13. The flexible air structure (100) according to claim 9, wherein, The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole.
14. The flexible air structure (100) according to claim 9, wherein, The soft wind plate body (120) is provided with a plurality of groups of soft wind holes, and each group of the soft wind holes is composed of one second air hole (121). The first air hole (111) is a strip-shaped hole, and the second air hole (121) is a circular hole.
15. The flexible air structure (100) according to claim 9, wherein, The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole.
16. The flexible air structure (100) according to claim 1, wherein, The soft wind plate body (120) is multi-layered, and the multi-layered soft wind plate body (120) is sequentially and spacedly arranged along the axial direction of the first air hole (111). The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole.
17. The flexible air structure (100) according to claim 16, wherein The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole.
18. The air beam structure (100) according to any one of claims 1 to 17, wherein The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole.
19. The air beam structure (100) according to any one of claims 1 to 17, wherein The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole.
20. The air beam structure (100) according to any one of claims 1 to 17, wherein, The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole (121) is a strip-shaped hole. The first air hole (111) is a circular hole, and the second air hole 22. The air conditioner of claim 21, wherein, The air outlet (210) extends in a horizontal direction, and the rotation axis of the flexible air deflector body (110) is arranged at the middle part of the flexible air deflector body (110), and the flexible air deflector body (110) has an initial position, a flexible air position, an upper air deflection position and a lower air deflection position during rotation. The air conditioner is configured to: In the flexible air mode, the flexible air deflector body (110) is rotated to the flexible air position, so that part of the air flow is blown out through the first air outlet channel and the second air outlet channel of the flexible air structure (100); and / or, in the upper air deflection mode, the flexible air deflector body (110) is rotated to the upper air deflection position, so that the air flow is blown upwards; and / or, in the lower air deflection mode, the flexible air deflector body (110) is rotated to the lower air deflection position, so that the air flow is blown downwards; and / or, in the normal air outlet mode, the flexible air deflector body (110) is rotated to the initial position, so that the air flow is blown forward.
23. The air conditioner of claim 21, wherein, The air outlet (210) extends in a vertical direction, and the rotation axis of the flexible air deflector body (110) is arranged at the middle part of the flexible air deflector body (110), and the flexible air deflector body (110) has a straight air position, a flexible air position, a left air deflection position and a right air deflection position during rotation. The air conditioner is configured to: In the flexible air mode, the flexible air deflector body (110) is rotated to the flexible air position, so that part of the air flow is blown out through the first air outlet channel and the second air outlet channel of the flexible air structure (100); and / or, in the left air deflection mode, the flexible air deflector body (110) is rotated to the left air deflection position, so that the air flow is blown to the left; and / or, in the right air deflection mode, the flexible air deflector body (110) is rotated to the right air deflection position, so that the air flow is blown to the right; and / or, in the normal air outlet mode, the flexible air deflector body (110) is rotated to the straight air position, so that the air flow is blown forward.
24. The air conditioner of claim 23, wherein, The number of the flexible air structures (100) is multiple, and the multiple flexible air structures (100) are arranged in sequence along the width direction of the air outlet (210).
25. An air conditioner, comprising a shell (200), an air deflector (400) and the flexible air structure (100) according to any one of claims 1-20, the shell (200) is provided with an air outlet (210), and the shell (200) is provided with an air duct (220) communicating with the air outlet (210); The flexible air structure (100) is arranged on the bottom wall of the air duct (220) close to the air outlet (210), the air deflector (400) is arranged on the top wall of the air duct (220) close to the air outlet (210), and the air deflector (400) is closer to the air outlet (210) than the flexible air structure (100); The flexible air outlet plate body (110) and the air deflector (400) both extend along the length direction of the air outlet (210) and can rotate around the length direction of the air outlet (210), and the rotation axis of the flexible air outlet plate body (110) is arranged on one side of the flexible air outlet plate body (110), and the rotation axis of the air deflector (400) is arranged on one side of the air deflector (400).
26. The air conditioner of claim 25, wherein, The flexible air outlet plate body (110) has a first initial position, a flexible air outlet position and an upper air deflector position in the rotation process, and the air deflector (400) has a second initial position and a lower air deflector position in the rotation process. The air conditioner is configured to: In the flexible air outlet mode, the air deflector (400) is rotated to the second initial position, and the flexible air outlet plate body (110) is rotated to the flexible air outlet position, so that part of the air flow is blown out through the first air outlet channel and the second air outlet channel of the flexible air outlet structure (100); And / or, in the upper air deflector mode, the air deflector (400) is rotated to the second initial position, and the flexible air outlet plate body (110) is rotated to the upper air deflector position, so that the air flow is blown upwards; And / or, in the lower air deflector mode, the flexible air outlet plate body (110) is rotated to the first initial position, and the air deflector (400) is rotated to the lower air deflector position, so that the air flow is blown downwards; And / or, in the normal air outlet mode, the flexible air outlet plate body (110) is rotated to the first initial position, and the air deflector (400) is rotated to the second initial position, so that the air flow is blown forward.
27. The air conditioner according to any one of claims 21 to 26, wherein In the flexible air outlet mode, the second air outlet channel of the flexible air outlet structure (100) is at least partially located outside the air outlet (210).
28. An air conditioner, comprising a shell (200), an air deflector (400) and the flexible air outlet structure (100) of any one of claims 1-20, the shell (200) being provided with an air outlet (210), and the shell (200) being provided with an air duct (220) in communication with the air outlet (210); The flexible air outlet structure (100) is arranged at a position close to the air outlet (210) of the air duct (220), and the inner wall of the air duct (220) is provided with a receiving groove (240) capable of receiving the flexible air outlet structure (100); The flexible air outlet plate body (110) and the air deflector (400) both extend along the length direction of the air outlet (210) and can rotate around the length direction of the air outlet (210), and the rotation axis of the flexible air outlet plate body (110) is arranged on one side of the flexible air outlet plate body (110).
29. The air conditioner of claim 28, wherein, The air duct (220) is provided with the receiving groove (240) on the bottom wall and the top wall close to the air outlet (210), and the number of the flexible air outlet structure (100) is two, and the two flexible air outlet structures (100) can be correspondingly received in the two receiving grooves (240). 30.The air conditioner according to claim 28 or 29, wherein The flexible wind plate body (110) has a flexible wind position and a storage position in the rotation process, when the flexible wind plate body (110) is in the storage position, the flexible wind structure (100) is stored in the storage slot (240), and the air deflector (400) has an initial position, a front air deflector position, an upper air deflector position and a lower air deflector position in the rotation process; The air conditioner is configured to: In the flexible wind mode, the air deflector (400) is rotated to the front air deflector position, and the flexible wind plate body (110) is rotated to the flexible wind position, so that part of the air flow is blown out through the first air outlet channel and the second air outlet channel of the flexible wind structure (100); And / or, in the upper air deflector mode, the flexible wind plate body (110) is rotated to the storage position, and the air deflector (400) is rotated to the upper air deflector position, so that the air flow is blown upwards; And / or, in the lower air deflector mode, the flexible wind plate body (110) is rotated to the storage position, and the air deflector (400) is rotated to the lower air deflector position, so that the air flow is blown downwards; And / or, in the normal air outlet mode, the flexible wind plate body (110) is rotated to the storage position, and the air deflector (400) is rotated to the front air deflector position, so that the air flow is blown forward; And / or, when the air conditioner is turned off, the flexible wind plate body (110) is rotated to the storage position, and the air deflector (400) is rotated to the initial position, so as to close the air outlet (210).
Citation Information
Patent Citations
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