Air conditioner
By setting an anti-slip part on the air guide plate and connecting it with the anti-slip movement component, the reliability problem of the connection between the air guide plate and the motor is solved, a more reliable connection is achieved, axial movement is reduced, and the reliability of the air conditioner is improved.
Patent Information
- Application Number
- CN202520499713.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-20
- Publication Date
- 2026-01-30
- Estimated Expiration
- 2035-03-20
AI Technical Summary
In existing technologies, the connection between the air guide plate and the motor of a ceiling-mounted air conditioner is prone to axial movement, which reduces the reliability of the connection.
An anti-slip element is installed on the air guide plate, and it is connected to the motor shaft of the drive motor through an anti-slip component. The anti-slip component restricts the movement of the air guide plate along the motor axis, thereby enhancing the reliability of the connection.
The design of the anti-slip component reduces axial movement between the air guide plate and the motor, improving the reliability and stability of the connection.
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Figure CN223855737U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to an air treatment equipment technical field especially relates to a kind of air conditioners. BACKGROUND
[0002] Air conditioner is the electric appliance commonly used in people's daily life, and air conditioner is divided into cabinet air conditioner, wall-mounted air conditioner and ceiling type air conditioner according to installation mode.For ceiling type air conditioner, it is widely used because it can be installed in the space of roof by being hung in the roof of indoor.
[0003] Chinese patent publication No.CN216011040U discloses a kind of air deflector and air conditioner, air conditioner is hung in user's home by ceiling type installation mode.Air deflector configured by air conditioner is provided with air inlet and air outlet, heat exchanger and fan are arranged in air conditioner.In use, fan starts, under the action of fan, indoor air enters into air conditioner via air inlet, air is output from air outlet after heat exchange with heat exchanger.To adjust the air direction of air outlet, air deflector is also arranged in air outlet, air deflector rotates in air outlet to adjust air direction, thereby controlling the air direction of air outlet.Under normal circumstances, air deflector is rotated by motor drive, air deflector is connected with the rotating shaft of motor, and motor will drive air deflector to rotate in air outlet.
[0004] However, since motor is usually arranged at the end of air deflector, after the rotating shaft of motor is connected with air deflector, air deflector is easy to move along the axis direction of rotating shaft, thereby reducing the connection reliability of both.In view of this, how to design a kind of technology to reduce the axis movement between motor and air deflector to improve the connection reliability is the technical problem to be solved by the utility model.
[0005] The above information disclosed in the background is only used to increase the understanding of the background of the application, so it can include prior art known by those skilled in the art. UTILITY MODEL CONTENT
[0006] In view of the problems pointed out in the background, the utility model provides a kind of air conditioner, which realizes reducing the axis movement between motor and air deflector to improve the connection reliability.
[0007] To achieve the above utility model purposes, the utility model adopts the following technical solutions:
[0008] In some embodiments of the application, an air conditioner is provided, comprising:
[0009] The shell forms an installation cavity therein, and the shell is provided with an air inlet and an air outlet;
[0010] A heat exchanger configured to perform heat exchange treatment on an air flow flowing therethrough, the heat exchanger being disposed in the casing;
[0011] A fan configured to drive the air drawn in from the air inlet to flow through the heat exchanger for heat exchange, and the air after heat exchange being output from the air outlet, the fan being disposed in the casing;
[0012] A guide air assembly comprising:
[0013] A guide air baffle rotatably disposed on the casing, the guide air baffle being located at the air outlet;
[0014] A driving motor disposed on the casing, the driving motor being configured to drive the guide air baffle to rotate;
[0015] An anti-movement component, the anti-movement component being provided with an anti-movement matching part;
[0016] The first end portion of the guide air baffle is provided with an anti-movement part, the second end portion of the guide air baffle is provided with a support shaft, the first end portion and the second end portion of the guide air baffle are arranged away from each other, and the support shaft is rotatably disposed on the casing;
[0017] The anti-movement component is fixedly disposed on the motor shaft of the driving motor, the anti-movement matching part and the anti-movement part are connected together, and the anti-movement component is configured to limit the movement of the guide air baffle relative to the motor shaft along the axis of the motor shaft.
[0018] Compared with the prior art, the advantages and positive effects of the utility model are that: the anti-movement part is connected together with the guide air baffle and the motor shaft of the driving motor by arranging the anti-movement part on the guide air baffle, the anti-movement component is fixedly connected on the motor shaft of the driving motor, and then the anti-movement component is fixedly connected relative to the motor shaft of the driving motor, and after the anti-movement component is connected together with the anti-movement part through the anti-movement matching part, the anti-movement component is connected together with the guide air baffle and the two cannot move relative to the motor shaft of the driving motor in the axial direction, so that the guide air baffle can be more reliably connected on the motor shaft of the driving motor to reduce the axial movement between the motor and the guide air baffle and improve the connection reliability.
[0019] In an embodiment of the present application, the anti-movement clamping groove on the surface of the guide air baffle is the anti-movement part;
[0020] The anti-movement clamping claw on the anti-movement component is the anti-movement matching part;
[0021] The claw portion of the anti-movement clamping claw is clamped in the anti-movement clamping groove.
[0022] Compared with the prior art, the advantages and positive effects are that: by forming the anti-channeling clamping groove on the surface of the guide vane, and by setting the anti-channeling clamping claw on the anti-channeling component, the anti-channeling clamping claw can be assembled into the anti-channeling clamping groove on the guide vane along the axis of the motor shaft in the assembly process, the anti-channeling clamping claw is clamped in the anti-channeling clamping groove, so that the guide vane cannot move relative to the anti-channeling component in the axial direction of the motor shaft, thereby reducing the axial channeling between the motor and the guide vane to improve the connection reliability.
[0023] In an embodiment of the present application, the first end portion of the guide vane is further provided with a flanging structure, and a through hole is arranged on the flanging structure, and the anti-channeling clamping groove is arranged on the inner side of the through hole.
[0024] The anti-channeling component is inserted into the through hole.
[0025] Compared with the prior art, the advantages and positive effects are that: by setting the flanging structure on the first end portion of the guide vane, and by setting the through hole on the flanging structure, the anti-channeling component passes through the flanging structure through the through hole, so that the anti-channeling clamping claw can be clamped in the anti-channeling clamping groove, and the through hole cooperates with the anti-channeling component, and the anti-channeling component can be supported through the through hole, so as to ensure that the anti-channeling clamping claw can be clamped in the anti-channeling clamping groove firmly, and the connection reliability is improved.
[0026] In an embodiment of the present application, the through hole is a non-circular hole.
[0027] The outer peripheral wall of the anti-channeling component forms a contour matching portion configured to match the hole type of the through hole.
[0028] The contour matching portion is located in the through hole.
[0029] Compared with the prior art, the advantages and positive effects are that: the contour matching portion matching the hole wall contour of the through hole is formed on the outer peripheral wall of the anti-channeling component, and after the anti-channeling component is inserted into the through hole, the contour matching portion is located in the through hole, and since the through hole is a non-circular hole, in the process of rotating the anti-channeling component driven by the motor shaft of the driving motor, the contour matching portion and the through hole cooperate to drive the guide vane to rotate, thereby improving the assembly convenience. Moreover, the non-circular through hole can reduce the rotation of the guide vane relative to the axis of the motor shaft in the rotation process, so as to ensure that the anti-channeling clamping claw is clamped in the anti-channeling clamping groove firmly.
[0030] In an embodiment of the present application, the first end portion of the guide vane is further provided with a guide groove, and the guide groove extends from the through hole towards the anti-channeling clamping groove.
[0031] The anti-slip groove and the guide groove are separated by a baffle rib. The guide groove is configured to guide the claw portion of the anti-slip claw to slide towards the anti-slip groove.
[0032] The claw of the anti-slip claw rests against the retaining rib.
[0033] The advantages and positive effects compared with the existing technology are: by setting a guide groove on the air guide plate, the guide groove is arranged between the anti-slip card slot and the through hole. The guide groove can guide the anti-slip card to slide accurately in the direction of the anti-slip card slot after passing through the through hole. Furthermore, after the anti-slip card is installed in the anti-slip card slot, the claw part of the anti-slip card will be tightly attached to the baffle, so as to ensure that the anti-slip card is firmly engaged.
[0034] In one embodiment of this application, the first end of the air guide plate is provided with a plug hole, the plug hole having a first hole section and a second hole section, the diameter of the first hole section being smaller than the diameter of the second hole section, the connection between the first hole section and the second hole section forming a stepped surface, the first hole section being arranged outside the second hole section, and the stepped surface being the anti-channeling part;
[0035] The anti-slipping component is provided with at least two elastic parts, with a gap between two adjacent elastic parts, and a protrusion is provided on the outer wall of the elastic part, the protrusion being an anti-slipping mating part;
[0036] The anti-slip component is inserted into the first hole, and the protrusion is located in the second hole and abuts against the step surface.
[0037] The advantages and positive effects compared with the existing technology are as follows: By providing a plug hole at the first end of the air guide plate, the plug hole is a stepped hole structure to form a stepped surface. Correspondingly, two elastic parts are provided at the free end of the anti-movement component. After the elastic parts are inserted into the first hole section, the two elastic parts deform so that the protrusions move closer to each other. After the protrusions enter the second hole section, the two elastic parts move away from each other. At the same time, the protrusions will abut against the stepped surface so that the air guide plate and the anti-movement component are firmly connected together, thereby preventing the air guide plate from moving relative to the anti-movement component.
[0038] In one embodiment of this application, the anti-slip component is further provided with a limiting part, which abuts against the end face of the first end of the air guide plate.
[0039] Compared with the prior art, the advantages and positive effects are that: the limiting part is provided on the anti-movement part, and the limiting part can be a protruding structure or a positioning surface formed on the anti-movement part, so that after the anti-movement matching part and the anti-movement part are connected together, the limiting part is tightly attached to the end surface of the first end portion of the guide vane, on the one hand, the anti-movement matching part can be accurately inserted into place, and on the other hand, the limiting part can be limited, and the movement of the guide vane in the axial direction of the motor shaft is further limited.
[0040] In an embodiment of the present application, the anti-movement part is further provided with a limiting part, and the guide vane assembly further comprises a limiting piece, the limiting piece is arranged on the casing in a direction perpendicular to the axis of the anti-movement part, the limiting piece is provided with a through hole, the limiting piece is located between the guide vane and the driving motor, the anti-movement part is inserted into the through hole, and the limiting part is attached to the surface of the limiting piece away from the guide vane.
[0041] Compared with the prior art, the advantages and positive effects are that: the limiting part is provided on the anti-movement part, and the limiting part can be a protruding structure or a positioning surface formed on the anti-movement part, so that after the anti-movement matching part and the anti-movement part are connected together, the limiting part is tightly attached to the end surface of the first end portion of the guide vane, on the one hand, the anti-movement matching part can be accurately inserted into place, and on the other hand, the limiting part can be limited, and the movement of the guide vane in the axial direction of the motor shaft is further limited.
[0042] In an embodiment of the present application, the guide vane assembly further comprises:
[0043] The motor support is arranged on the casing, and the driving motor is arranged on the motor support.
[0044] Compared with the prior art, the advantages and positive effects are that: the driving motor is fixedly installed on the casing through the motor support, the motor support has sufficient structural strength and installation space to meet the installation requirements of the driving motor, so as to improve the reliability and convenience of assembly.
[0045] In an embodiment of the present application, the motor support is further provided with two limiting stops.
[0046] The anti-movement part is further provided with a limiting protrusion, the limiting protrusion is located between the two limiting stops, and the limiting protrusion is configured to cooperate with the two limiting stops to limit the rotation angle of the anti-movement part.
[0047] Compared with the prior art, the advantages and positive effects are that: by arranging the limiting protrusions on the anti-movement component and corresponding limiting stoppers on the motor support, the limiting protrusions will rotate in the space defined between the two limiting stoppers during the process that the driving motor drives the air deflector to rotate through the anti-movement component, so as to limit the rotating angle of the air deflector through the limiting stoppers.
[0048] In another embodiment of the present application, an air conditioner is also provided, comprising:
[0049] A casing, wherein an installation cavity is formed, and an air inlet and an air outlet are arranged on the casing;
[0050] A heat exchanger, which is arranged in the casing and is configured to perform heat exchange treatment on the airflow flowing therethrough;
[0051] A fan, which is arranged in the casing and is configured to drive the air sucked from the air inlet to flow through the heat exchanger for heat exchange, and the heat-exchanged air is output from the air outlet;
[0052] An air deflector assembly, which comprises:
[0053] An air deflector, which is rotatably arranged on the casing and located at the air outlet;
[0054] A driving motor, which is arranged on the casing and is configured to drive the air deflector to rotate;
[0055] An anti-movement component, which connects the air deflector and the motor shaft of the driving motor together, and is arranged between the air deflector and the motor shaft in a direction staggered with the axis of the motor shaft, and is configured to limit the movement of the air deflector relative to the motor shaft along the axis of the motor shaft.
[0056] Compared with the prior art, the advantages and positive effects of the present application are that: the air deflector and the motor shaft are connected together through the anti-movement component, and the anti-movement component is arranged between the air deflector and the motor shaft in a direction staggered with the axis of the motor shaft, so that the relative movement of the air deflector relative to the motor shaft of the driving motor in the axis direction of the motor shaft is limited through the anti-movement component, and the air deflector is more reliably connected to the motor shaft of the driving motor, so as to reduce the axial movement between the motor and the air deflector and improve the connection reliability.
[0057] Other features and advantages of the present application will become more apparent after reading the specific embodiments of the present application in conjunction with the accompanying drawings. BRIEF DESCRIPTION OF DRAWINGS
[0058] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings needed to be used in the embodiments or prior art description. Obviously, the drawings in the following description are some embodiments of the present application, and other drawings can also be obtained by those skilled in the art without creative labor under the premise of the drawings.
[0059] Figure 1 It is a structure schematic view of one embodiment of the air conditioner of the present application.
[0060] Figure 2 It is a structure schematic view of one embodiment of the air conditioner of the present application.
[0061] Figure 3 It is a sectional view of one embodiment of the air conditioner of the present application.
[0062] Figure 4 It is a structure schematic view of one embodiment of the air conditioner of the present application.
[0063] Figure 5 It is a sectional view of the middle panel assembly. Figure 1
[0064] It is a sectional view of the middle panel assembly. Figure 6 Figure 5 It is a sectional view of the middle panel assembly.
[0065] Figure 7 Figure 1 It is a sectional view of the middle panel assembly.
[0066] Figure 8 It is a sectional view of the middle panel assembly. Figure 1
[0067] It is a sectional view of the middle panel assembly. Figure 9 Figure 8 It is a sectional view of the middle panel assembly.
[0068] Figure 10 Figure 8 It is a sectional view of the middle panel assembly.
[0069] Figure 11 It is a sectional view of the middle panel assembly. Figure 9
[0070] It is a sectional view of the middle panel assembly. Figure 12 Figure 10 It is a sectional view of the middle panel assembly.
[0071] Figure 13 It is a structure schematic view of one embodiment of the air conditioner of the present application.
[0072] Figure 14 It is a structure schematic view of one embodiment of the air conditioner of the present application. Figure 13 Partial enlarged view of the middle F region;
[0073] Figure 15 For Figure 13 Assembly view of the middle water receiving tray and the bacteriostatic module;
[0074] Figure 16 For Figure 15 Assembly explosion view of the middle water receiving tray and the bacteriostatic module;
[0075] Figure 17 For Figure 16 Partial enlarged view of the middle G region;
[0076] Figure 18 For Figure 1 Assembly view of the middle air guide assembly;
[0077] Figure 19 For Figure 18 Assembly explosion view of the middle air guide assembly;
[0078] Figure 20 For Figure 19 Partial enlarged view of the middle H region;
[0079] Figure 21 For Figure 1 Partial assembly view of the middle air guide assembly and the mounting panel;
[0080] Figure 22 For Figure 21 Partial enlarged view of the middle G region;
[0081] Figure 23 For Figure 22 Structural view of the middle limiting piece.
[0082] Reference signs:
[0083] 1, outer shell; 11, access hole;
[0084] 2, heat exchanger;
[0085] 3, fan;
[0086] 4, panel assembly; 41, mounting panel; 42, air deflector; 43, grating cover plate; 44, cover plate; 45, driving motor; 46, anti-movement component; 47, motor support; 48, limiting piece;
[0087] 40, air guide assembly;
[0088] 411, air inlet; 412, first air outlet; 413, second air outlet; 414, air guide part; 415, rib plate; 416, auxiliary air outlet; 417, flow guide part; 4141, communication port; 4142, bending part;
[0089] 421, anti-channeling part; 422, support shaft; 423, flanging structure; 424, through hole; 425, guide groove; 426, blocking rib;
[0090] 451, motor shaft;
[0091] 461, anti-channeling matching part; 462, claw part; 463, contour matching part; 464, limiting part; 465, limiting protrusion;
[0092] 471, limiting stop;
[0093] 481, through hole;
[0094] 401, first air outlet interval; 402, second air outlet interval;
[0095] 5, water pan; 51, first ventilation part; 52, second ventilation part; 53, mounting and fixing part; 531, first clamping jaw; 532, positioning column; 533, guide sliding groove;
[0096] 6, bacteriostatic module; 61, positioning hole;
[0097] 100, machine shell. DETAILED DESCRIPTION
[0098] The technical solutions in the embodiments of the present application will be described clearly and completely 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 other embodiments obtained by those skilled in the art without creative work belong to the scope of protection of the present application.
[0099] In the description of the present application, it should be understood that the terms "center", "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 a limitation on the present application.
[0100] 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 defined with "first", "second" can explicitly or implicitly include one or more of the features. In the description of the present application, unless otherwise specified, "a plurality of" means two or more.
[0101] In the description of the present application, it is necessary to point out that unless otherwise explicitly specified and limited, the terms "mount", "connect", "connection" should be understood in a broad sense, for example, can be fixed connection, can also be detachable connection, or integrally connected; can be mechanical connection, can also be electrical connection; can be directly connected, can also be indirectly connected through an intermediate medium, can be the communication inside two elements. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances.
[0102] In the present application, unless otherwise explicitly specified and limited, the first feature is "on" or "under" the second feature can include that the first and second features are in direct contact, or can include that the first and second features are not in direct contact but are in contact through another feature between them. Moreover, the first feature is "on", "above" and "above" the second feature includes that the first feature is directly above and obliquely above the second feature, or only indicates that the horizontal height of the first feature is higher than that of the second feature. The first feature is "under", "below" and "below" the second feature includes that the first feature is directly below and obliquely below the second feature, or only indicates that the horizontal height of the first feature is less than that of the second feature.
[0103] The following disclosure provides many different embodiments or examples for implementing different structures of the present application. In order to simplify the disclosure of the present application, the components and settings of specific examples are described below. Of course, they are only examples, and the purpose is not to limit the present application. In addition, the present application can repeatedly refer to numbers and / or letters in different examples. Such repetition is for the purpose of simplification and clarity, and in itself does not indicate the relationship between the various embodiments and / or settings discussed. In addition, the present application provides examples of various specific processes and materials, but those skilled in the art can realize the application of other processes and / or the use of other materials.
[0104] The air conditioner in the present application generally includes a shell and a heat exchanger, a fan and a water pan arranged in the shell, the heat exchanger is in a ring structure to surround the outside of the fan, the heat exchanger forms an air inlet channel, the heat exchanger and the inner wall of the shell form an air outlet channel, and the water pan is located at the bottom of the heat exchanger for collecting condensate water of the heat exchanger.
[0105] The bottom of the shell is a normally open structure to form a mounting port, and the heat exchanger, the fan and the water pan are assembled into the shell through the mounting port.
[0106] The air conditioner further comprises a panel assembly, the panel assembly is provided with an air inlet and an air outlet, the panel assembly is arranged at the bottom of the shell and covers the mounting port, and the air inlet is communicated with the air inlet channel. The panel assembly and the shell are assembled to form a machine shell.
[0107] In use, after the fan is operated, under the action of the fan, external air enters the air inlet channel via the air inlet, exchanges heat with the heat exchanger, and then the air after heat exchange is transported to the air outlet direction via the air supply channel, and finally the air after heat exchange is output from the air outlet to the indoor space.
[0108] In an embodiment of the present application, as shown in Figure 1 、 Figure 3 、 Figure 18 、 Figure 19 and Figure 20 , the air conditioner comprises:
[0109] A casing 100, wherein an installation cavity is formed in the casing 100, and an air inlet 411 and an air outlet are arranged on the casing 100;
[0110] A heat exchanger 2, wherein the heat exchanger 2 is configured to perform heat exchange treatment on the airflow flowing therethrough, and the heat exchanger 2 is arranged in the casing 100;
[0111] A fan 3, wherein the fan 3 is configured to drive the air sucked from the air inlet 411 to flow through the heat exchanger 2 for heat exchange, and the air after heat exchange is output from the air outlet, and the fan 3 is arranged in the casing 100;
[0112] An air guide assembly 40, wherein the air guide assembly 40 comprises:
[0113] An air guide plate 42, wherein the air guide plate 42 is rotatably arranged on the casing 100, and the air guide plate 42 is located at the air outlet;
[0114] A driving motor 45, wherein the driving motor 45 is arranged on the casing 100, and the driving motor 45 is configured to drive the air guide plate 42 to rotate;
[0115] An anti-movement component 46, wherein the anti-movement component 46 is provided with an anti-movement matching part 461;
[0116] Wherein a first end part of the air guide plate 42 is provided with an anti-movement part 421, a second end part of the air guide plate 42 is provided with a support shaft 422, the first end part and the second end part of the air guide plate 42 are arranged away from each other, and the support shaft 422 is rotatably arranged on the casing 100;
[0117] The anti-movement component 46 is fixedly arranged on a motor shaft 451 of the driving motor 45, the anti-movement matching part 461 and the anti-movement part 421 are connected together, and the anti-movement component 46 is configured to limit the movement of the air guide plate 42 along the axis of the motor shaft 451 relative to the motor shaft 451.
[0118] Specifically, as shown in Figure 1 and Figure 3As shown, when the air conditioner is actually installed, the casing 100 is hoisted to the top of the building, and after the air conditioner is started, the indoor air is sucked into the casing 100 through the air inlet 411 under the action of the fan 3, and the air after heat exchange is output to the indoor from the air outlet. For the specific operation process of the air conditioner, please refer to the specific control process of the conventional air conditioning equipment, which is not limited here.
[0119] Wherein, the air after heat exchange is transported to the indoor through the air outlet, and the air guide assembly 40 arranged at the air outlet can guide the airflow output from the air outlet, and under the action of the air guide plate 42, the airflow is guided to flow in a specific direction from the air outlet.
[0120] As shown, Figures 18-20 The air guide plate 42 is rotatably arranged on the casing 100 through the support shaft 422 during assembly, and the driving motor 45 is connected with the anti-wandering part 421 arranged on the air guide plate 42 through the anti-wandering part 46.
[0121] The anti-wandering part 46 is assembled to the motor shaft 451 of the driving motor 45, and the anti-wandering part 46 extends along the axis direction of the motor shaft 451, and the anti-wandering part 46 and the anti-wandering part 421 can be assembled together along the axis direction of the motor shaft 451. After the anti-wandering part 46 and the anti-wandering part 421 are assembled and connected together, the air guide plate 42 cannot be moved relative to the anti-wandering part 46 in the axis direction of the motor shaft 451, so that the air guide plate 42 cannot be moved relative to the driving motor 45 during the rotation of the air guide plate 42 driven by the driving motor 45.
[0122] Compared with the prior art, the advantages and positive effects of the utility model are: the anti-wandering part 421 is arranged on the air guide plate 42, and the anti-wandering part 46 is connected with the motor shaft 451 of the driving motor 45, the anti-wandering part 46 is fixedly connected with the motor shaft 451 of the driving motor 45, so that the anti-wandering part 46 is fixedly connected with the motor shaft 451 of the driving motor 45, and the anti-wandering part 46 is connected with the air guide plate 42 and cannot move relative to the driving motor 45 along the axis direction of the motor shaft 451. In this way, the air guide plate 42 can be more reliably connected to the motor shaft 451 of the driving motor 45 to reduce the axial wandering between the motor and the air guide plate 42 and improve the connection reliability.
[0123] In order to realize reliable connection of the anti-movement component 46 and the anti-movement part 421 and meet the installation requirements of the movement of the air deflector 42, the anti-movement component 46 and the anti-movement part 421 can have various structural forms.
[0124] In an embodiment of the present application, the anti-movement component 46 and the anti-movement part 421 can also adopt a structure of plug-in assembly, as shown in the figure. Figure 20 As shown in the figure, the surface of the air deflector 42 is provided with an anti-movement clamping groove, and the anti-movement clamping groove is the anti-movement part 421.
[0125] The anti-movement component 46 is provided with an anti-movement clamping claw, and the anti-movement clamping claw is the anti-movement matching part 461.
[0126] The claw part 462 of the anti-movement clamping claw is clamped in the anti-movement clamping groove.
[0127] Specifically, in the process of assembling the air deflector 42 and the anti-movement component 46, the anti-movement clamping claw on the anti-movement component 46 is assembled to the air deflector 42 along the axis direction of the motor shaft 451, and after being assembled in place, the claw part 462 of the anti-movement component 46 is clamped in the anti-movement clamping groove.
[0128] After the claw part 462 is clamped in the anti-movement clamping groove, on the one hand, the claw part 462 can be reliably clamped and connected with the anti-movement clamping groove to ensure the reliability of the connection, and on the other hand, the claw part 462 clamped in the anti-movement clamping groove makes the air deflector 42 and the anti-movement component 46 not move.
[0129] By forming the anti-movement clamping groove on the surface of the air deflector 42, the anti-movement clamping claw is correspondingly arranged on the anti-movement part 421, and in the assembly process, the anti-movement clamping claw can be assembled to the anti-movement clamping groove on the air deflector 42 along the axis of the motor shaft 451, and the anti-movement clamping claw is clamped in the anti-movement clamping groove, so that the air deflector 42 cannot move relative to the anti-movement component 46 in the axis direction of the motor shaft 451, thereby reducing the axis movement between the motor and the air deflector 42 to improve the connection reliability.
[0130] In an embodiment, as shown in the figure, the first end part of the air deflector 42 is also provided with a flange structure 423, the flange structure 423 is provided with a through hole 424, and the anti-movement clamping groove is arranged on the inner side of the through hole 424. Figure 20
[0131] The anti-movement component 46 is plug-assembled in the through hole 424.
[0132] Specifically, in order to improve the structural strength of the air deflector 42, a flange structure 423 can be arranged at each end of the air deflector 42. In order to improve the connection reliability between the anti-wandering component 46 and the air deflector 42, a through hole 424 is formed on the flange structure 423 at the first end of the air deflector 42, which can meet the insertion requirement of the anti-wandering component 46.
[0133] During assembly, the anti-wandering component 46 is first inserted into the through hole 424, and the outer periphery of the anti-wandering component 46 is limited by the through hole 424, and the through hole 424 can also guide and support the anti-wandering component 46.
[0134] After the anti-wandering component 46 is inserted in place, the through hole 424 limits the anti-wandering component 46 from shifting relative to the air deflector 42, thereby ensuring that the anti-wandering fitting part 461 of the anti-wandering component 46 is stably located in the anti-wandering part 421, so that the claw part 462 can be reliably clamped in the anti-wandering slot without falling out.
[0135] By arranging the flange structure 423 at the first end of the air deflector 42, and arranging the through hole 424 on the flange structure 423, the through hole 424 is used to meet the anti-wandering component 46 passing through the flange structure 423, so that the anti-wandering claw can be clamped in the anti-wandering slot, and the through hole 424 cooperates with the anti-wandering component to support the anti-wandering component 46, thereby ensuring that the anti-wandering claw can be clamped in the anti-wandering slot, and the connection reliability is improved.
[0136] In an embodiment, the through hole 424 is a non-circular hole;
[0137] The outer peripheral wall of the anti-wandering component 46 forms a contour matching part 463, which is configured to match the hole type of the through hole 424;
[0138] The contour matching part 463 is located in the through hole 424.
[0139] Specifically, in order to ensure that the driving motor 45 can smoothly and reliably drive the air deflector 42 to rotate through the anti-wandering component 46, the anti-wandering component 46 can also cooperate with the through hole 424 to drive the air deflector 42 to rotate. For this purpose, the through hole 424 is a non-circular hole, such as a square hole, an oval hole, etc.
[0140] Correspondingly, the outer peripheral wall of the anti-creep component 46 forms a contour matching portion 463 to match the hole profile of the through hole 424. For example, the through hole 424 is square, and the longitudinal section of the contour matching portion 463 of the anti-creep component 46 is also square. After the anti-creep component 46 is inserted into the through hole 424, the contour matching portion 463 will be tightly attached to the hole wall of the through hole 424, so that the air deflector 42 can be smoothly rotated by the anti-creep component 46 after the driving motor 45 is energized and rotated.
[0141] The outer peripheral wall of the anti-creep component 46 forms a contour matching portion 463 to match the hole profile of the through hole 424, and after the anti-creep component 46 is inserted into the through hole 424, the contour matching portion will be located in the through hole 424. Since the through hole 424 is a non-circular hole, the contour matching portion 463 can also play a role in driving the air deflector 42 to rotate during the rotation of the motor shaft 451 of the driving motor 45 to drive the anti-creep component 46, thereby improving the convenience of assembly. Moreover, the non-circular through hole 424 can reduce the rotation of the air deflector 42 relative to the axis of the motor shaft 451 during rotation to ensure that the anti-creep pawl is securely clamped in the anti-creep clamping groove.
[0142] In an embodiment, as shown in Figure 20 The first end of the air deflector 42 is also provided with a guide groove 425, which extends from the through hole 424 towards the anti-creep clamping groove;
[0143] The anti-creep clamping groove and the guide groove 425 are separated by a blocking rib 426, and the guide groove 425 is configured to guide the pawl portion 462 of the anti-creep pawl to slide towards the anti-creep clamping groove;
[0144] The pawl portion 462 of the anti-creep pawl is attached to the blocking rib 426.
[0145] Specifically, in order to improve the assembly accuracy and convenience of the operator, a guide groove 425 can also be provided on the inner surface of the air deflector 42, and the guide groove 425 and the anti-creep clamping groove are separated by a rib.
[0146] During assembly, the anti-creep component 46 passes through the through hole 424, and the pawl portion 462 of the anti-creep component 46 will move along the guide groove 425 towards the anti-creep clamping groove, and the pawl portion 462 will be clamped in the anti-creep clamping groove by passing over the rib, at this time, the pawl portion 462 will be tightly attached to the blocking rib 426 to meet the anti-creep installation requirements.
[0147] By setting the guide groove 425 on the air deflector 42, the guide groove 425 is arranged between the anti-channeling clamping groove and the through hole 424, through the guide groove 425, the anti-channeling clamping claw can be guided to slide accurately towards the anti-channeling clamping groove direction after passing through the through hole 424, and after the anti-channeling clamping claw is clamped into the anti-channeling clamping groove, the claw part 462 of the anti-channeling clamping claw will be tightly attached to the blocking rib 426 to ensure that the anti-channeling clamping claw is clamped stably.
[0148] In another embodiment of the present application, the anti-channeling part 46 and the anti-channeling part 421 can also adopt a structure of plug-in fit,
[0149] The first end of the air deflector 42 is provided with a plug-in hole (not shown), the plug-in hole has a first hole section (not shown) and a second hole section (not shown), the diameter of the first hole section is smaller than the diameter of the second hole section, the connecting part of the first hole section and the second hole section forms a step surface, the first hole section is arranged outside the second hole section, and the step surface is the anti-channeling part 421;
[0150] The anti-channeling part 46 is provided with at least two elastic parts (not shown), a space is formed between the adjacent two elastic parts, and a protruding part (not shown) is arranged on the outer wall of the elastic part, the protruding part is the anti-channeling fitting part 461;
[0151] The anti-channeling part 46 is inserted into the first hole section, and the protruding part is located in the second hole section and abuts against the step surface.
[0152] Specifically, the first end of the air deflector 42 is provided with a stepped plug-in hole, and correspondingly, the anti-channeling part 46 is provided with at least two elastic parts to form an elastic plug structure. In the assembly process, the elastic part is inserted into the first hole section of the plug-in hole, the hole diameter of the first hole section is small, so that the two elastic parts are elastically deformed under extrusion; and after the protruding part slides into the second hole section, the elastic part resets so that the protruding part is clamped between the first hole section and the second hole section to form a step surface, thereby realizing that the air deflector 42 and the anti-channeling part 46 are plug-in fitted together, and the air deflector 42 cannot move.
[0153] By setting the plug-in hole at the first end of the air deflector 42, the plug-in hole is a stepped hole structure to form a step surface, and correspondingly, the free end of the anti-channeling part is provided with two elastic parts, the two elastic parts are deformed to make the protruding parts close to each other after being inserted into the first hole section, and after the protruding parts enter the second hole section, the two elastic parts are away from each other, at the same time, the protruding parts will abut against the step surface to make the air deflector 42 and the anti-channeling part 46 firmly connected together to avoid the air deflector 42 moving relative to the anti-channeling part 46.
[0154] In an embodiment of the present application, as shown in Figure 20 The anti-creep component 46 is further provided with a limiting portion 464 abutting against the end surface of the first end portion of the deflector panel 42.
[0155] Specifically, after the anti-creep fitting portion 461 of the anti-creep component 46 and the anti-creep portion 421 are assembled in place, the limiting portion 464 of the anti-creep component 46 further abuts against the end surface of the first end portion of the deflector panel 42. The limiting portion 464 can limit the anti-creep component 46 in the axial direction of the motor shaft 451, on the one hand, the limiting portion 464 can limit the assembly position of the anti-creep fitting portion 461 to ensure the precise connection of the anti-creep fitting portion 461 and the anti-creep portion 421, on the other hand, the limiting portion 464 can further cooperate with the end surface of the deflector panel 42 to meet the anti-creep installation requirement.
[0156] The limiting portion 464 can have various forms, for example, the limiting portion 464 can be a limiting surface formed in the middle portion of the anti-creep component 46, or the limiting portion 464 can be an outward protruding structure formed on the anti-creep component 46, which can abut against the end surface of the first end portion of the deflector panel 42.
[0157] By providing the limiting portion 464 on the anti-creep component 46, the limiting portion 464 can be a protruding structure or a positioning surface formed on the anti-creep component 46, so that after the anti-creep fitting portion and the anti-creep portion are connected together, the limiting portion 464 will abut against the end surface of the first end portion of the deflector panel 42, on the one hand, the anti-creep fitting portion can be precisely inserted and assembled in place, on the other hand, the limiting portion 464 can limit the movement of the deflector panel 42 in the axial direction of the motor shaft 451.
[0158] In an embodiment of the present application, as shown in Figures 21-23 The anti-creep component 46 is further provided with a limiting portion 464.
[0159] The air deflector assembly 40 further comprises a limiting member 48 provided on the mounting panel 41 perpendicular to the axial direction of the anti-creep component 46, the limiting member 48 is provided with a through hole 481, the limiting member 48 is located between the deflector panel 42 and the driving motor 45, the anti-creep component 46 is inserted in the through hole 481, and the limiting portion 464 abuts against the surface of the limiting member 48 away from the deflector panel 42.
[0160] Specifically, after the anti-tunneling fitting part 461 of the anti-tunneling part 46 and the anti-tunneling part 421 are assembled in place, the limiting part 464 on the anti-tunneling part 46 will abut against the limiting part 48. The limiting part 464 can limit the position of the anti-tunneling fitting part 461 in the anti-tunneling part 46 in the axial direction of the motor shaft 451 on the outer side of the air deflector 42, which can limit the assembly position of the anti-tunneling fitting part 461 in the anti-tunneling part 46 to ensure accurate connection of the anti-tunneling fitting part 461 and the anti-tunneling part 421, and further serve the anti-tunneling installation requirement by cooperating with the limiting part 48.
[0161] The limiting part 464 can have various forms, for example, the limiting part 464 can be a limiting surface formed in the middle position of the anti-tunneling part 46, or the limiting part 464 can be an outward protruding structure formed on the anti-tunneling part 46, which can abut against the limiting part 48.
[0162] In addition, the limiting part 48 can be clamped to the mounting panel 41 by a clamping groove or the like, and the air deflector 42, the limiting part 48 and the anti-tunneling part 46 are pre-assembled together and then mounted on the mounting panel 41 to improve assembly convenience. Alternatively, the limiting part 48 can be integrated on the mounting panel 41, and the limiting part 48 and the mounting panel 41 are in an integrated structure.
[0163] In an embodiment of the present application, the air deflector assembly 40 further comprises:
[0164] The motor support 47 is arranged on the casing 100, and the driving motor 45 is arranged on the motor support 47.
[0165] Specifically, the driving motor 45 is fixedly mounted on the casing 100 through the motor support 47, and the motor support 47 is generally made of sheet metal or hard plastic, which can provide sufficient support for the driving motor 45. During installation, the motor support 47 is connected with the casing 100, and the motor support 47 can be designed according to the installation space in the casing 100, which is more convenient for on-site assembly.
[0166] The driving motor 45 is fixedly mounted on the casing 100 through the motor support 47, and the motor support 47 has sufficient structural strength and installation space to meet the installation requirements of the driving motor 45, thereby improving the reliability and convenience of assembly.
[0167] In an embodiment, two limiting stops 471 are further arranged on the motor support 47.
[0168] The anti-jumping component 46 is further provided with a limiting protrusion 465 located between two limiting stops, and the limiting protrusion 465 is configured to cooperate with the two limiting stops to limit the rotation angle of the anti-jumping component 46.
[0169] Specifically, for the air deflector 42, during air deflection, the air deflector 42 will rotate within a certain range to guide the airflow to be output from the air outlet. In order to facilitate the limitation of the rotation angle of the air deflector 42, the limiting stop 471 is arranged on the motor bracket 47, and the limiting protrusion 465 is arranged on the anti-jumping component 46 to move between the two limiting stops to limit the rotation angle of the air deflector 42.
[0170] By arranging the limiting protrusion 465 on the anti-jumping component 46 and the limiting stop on the motor bracket 47, during the rotation of the air deflector 42 driven by the driving motor 45 through the anti-jumping component 46, the limiting protrusion 465 will rotate within the space defined by the two limiting stops to limit the rotation angle of the air deflector 42 through the limiting stop 471.
[0171] Another embodiment of the present application further provides an air conditioner, comprising:
[0172] A cabinet 100, wherein an installation cavity is formed in the cabinet 100, and the cabinet 100 is provided with an air inlet 411 and an air outlet;
[0173] A heat exchanger 2 configured to perform heat exchange treatment on the airflow passing through, and the heat exchanger 2 is arranged in the cabinet 100;
[0174] A fan 3 configured to drive the air sucked from the air inlet 411 to pass through the heat exchanger 2 for heat exchange, and the heat-exchanged air is output from the air outlet, and the fan 3 is arranged in the cabinet 100;
[0175] An air deflection assembly 40, comprising:
[0176] An air deflector 42 rotatably arranged on the cabinet 100, and the air deflector 42 is located at the air outlet;
[0177] A driving motor 45 arranged on the cabinet 100, and the driving motor 45 is configured to drive the air deflector 42 to rotate.
[0178] In order to limit the jumping of the air deflector 42 relative to the driving motor 45, the anti-jumping component 46 of the air deflection assembly 40 is configured to connect the air deflector 42 and the motor shaft 451 in a direction intersecting the axial direction of the motor shaft 451.
[0179] Specifically, the anti-movement component 46 connects the air deflector 42 and the motor shaft 451 of the driving motor 45 together, the anti-movement component 46 is connected to the air deflector 42 and the motor shaft 451 in a direction staggered with the axis of the motor shaft 451, and the anti-movement component 46 is configured to limit the movement of the air deflector 42 along the axis of the motor shaft 451 relative to the motor shaft 451.
[0180] During the assembly process, the motor shaft 451 extends to the air deflector 42, and the anti-movement component 46 is connected to the overlapping part between the motor shaft 451 and the air deflector 42. Since the installation direction of the anti-movement component 46 is staggered with the movement direction of the air deflector 42, the movement of the air deflector 42 relative to the motor shaft 451 is limited by the anti-movement component 46.
[0181] For example, the anti-movement component 46 can be a latch, which is connected to the air deflector 42 and the motor shaft 451 in a direction perpendicular to the axis of the motor shaft 451. Alternatively, the anti-movement component 46 can be a locking screw, which is connected to the air deflector 42 and the motor shaft 451 in a direction perpendicular to the axis of the motor shaft 451.
[0182] Compared with the prior art, the advantages and positive effects of the present application are as follows: the air deflector 42 and the motor shaft 451 are connected together by the anti-movement component 46, and since the anti-movement component 46 is installed between the air deflector 42 and the motor shaft 451 in a direction staggered with the axis of the motor shaft 451, the relative movement of the air deflector 42 relative to the motor shaft 451 of the driving motor 45 in the axis direction of the motor shaft 451 is limited by the anti-movement component 46, so that the air deflector 42 is more reliably connected to the motor shaft 451 of the driving motor 45, and the axial movement between the motor and the air deflector 42 is reduced, thereby improving the connection reliability.
[0183] In another embodiment of the present application, for the cabinet 100, it can include a housing 1 and a panel assembly 4, and the bottom of the housing 1 forms a mounting opening. The panel assembly 4 includes a mounting panel 41, which forms an air inlet 411 and an air outlet, and is arranged at the bottom of the housing 1 and covers the mounting opening, and forms a mounting cavity between the mounting panel 41 and the housing 1.
[0184] The heat exchanger 2 and the fan 3 are arranged in the housing 1, and the air deflector assembly 40 is arranged on the mounting panel.
[0185] In an embodiment of the present application, in order to increase the coverage range of the air supply, the panel assembly 4 is improved and designed as follows.
[0186] As Figures 1-6 shown, the air conditioner provided by an embodiment of the present application comprises:
[0187] a housing 1, a bottom of the housing 1 forms a mounting port.
[0188] a heat exchanger 2 configured to perform heat exchange treatment on air flow passing therethrough, the heat exchanger 2 is arranged in the housing 1; a supply air passage is formed between the heat exchanger 2 and an inner wall of the housing 1, the heat exchanger 2 surrounds the supply air passage.
[0189] a fan 3 located in the supply air passage.
[0190] a panel assembly 4 arranged at the bottom of the housing 1.
[0191] The panel assembly 4 comprises: a mounting panel 41, a bottom of the mounting panel 41 is provided with an air inlet 411 and a first air outlet 412, a side of the mounting panel 41 is provided with a second air outlet 413, the first air outlet 412 is arranged outside the air inlet 411.
[0192] The panel assembly 4 comprises: an air deflector 42 rotatably arranged in the first air outlet 412.
[0193] The mounting panel 41 is arranged at the bottom of the housing 1 and covers the mounting port, the air inlet 411 communicates with the supply air passage, and the first air outlet 412 communicates with the supply air passage.
[0194] The mounting panel 41 is provided with an air deflector 414 between the first air outlet 412 and the second air outlet 413, the air deflector 414 is provided with a communication port 4141, and the communication port 4141 communicates with the supply air passage.
[0195] One side of the air deflector 414 forms a first air outlet channel, the other side of the air deflector 414 forms a second air outlet channel, the first air outlet 412 communicates with the supply air passage through the first air outlet channel, and the second air outlet 413 communicates with the communication port 4141 through the second air outlet channel.
[0196] Specifically, as Figure 3 shown, the panel assembly 4 in the present application forms an air outlet area arranged in an up-down manner on the mounting panel 41, air is outletted outward from the bottom of the mounting panel 41 through the first air outlet 412, and air is outletted outward from the side of the mounting panel 41 through the second air outlet 413.
[0197] As Figure 6As shown, the first air outlet 412 is arranged at the bottom of the air supply channel and directly communicates with the air supply channel, the first air outlet 412 and the second air outlet 413 are spaced apart by the air guide part 414, and the second air outlet 413 communicates with the air supply channel through the communication opening 4141 arranged on the air guide part 414.
[0198] The airflow after heat exchange through the heat exchanger 2 is conveyed downward in the air supply channel, and the airflow after heat exchange can be directly discharged to the lower side of the mounting panel 41 through the first air outlet 412 at the bottom. At the same time, the airflow conveyed in the air supply channel flows to the air guide part 414 and can also be conveyed toward the second air outlet 413 direction through the communication opening 4141 to be discharged outward through the second air outlet 413.
[0199] Since the second air outlet 413 discharges air laterally and the airflow in the air supply channel flows vertically downward, in order to improve the air discharge speed of the second air outlet 413 to increase the coverage range of the airflow output by the second air outlet 413, the air discharge cross-sectional area of the second air outlet along the air discharge direction has a decreasing trend.
[0200] Specifically, during the air supply process, when it is needed to convey the airflow after heat exchange outward through the second air outlet 413, the air discharge area of the first air outlet 412 can be reduced or the first air outlet 412 can be closed through the air guide plate 42, so that the airflow conveyed by the air supply channel enters the second air outlet through the communication opening 4141.
[0201] Since the air discharge cross-sectional area of the second air outlet has a decreasing trend, the flow speed of the airflow will increase during the flow of the airflow in the second air outlet, and finally the flow speed of the airflow output from the second air outlet 413 is large to increase the air discharge coverage range of the second air outlet 413.
[0202] By arranging the air guide part 414 on the mounting panel 41, the air guide part separates the first air outlet 412 and the second air outlet 413, and the communication opening 4141 is arranged on the air guide part 414 to satisfy the communication of the second air outlet 413 with the air supply channel through the communication opening 4141, and the first air outlet and the second air outlet form the first air outlet and the second air outlet on both sides of the air guide part 414. For the second air outlet 413 connected to the second air outlet, the air discharge cross-sectional area of the second air outlet has a decreasing trend, so that the airflow flowing into the second air outlet through the communication opening 4141 can be accelerated to improve the air discharge speed of the second air outlet 413, thereby increasing the air supply range.
[0203] In an embodiment of the present application, the air guide part 414 extends obliquely outward from top to bottom.
[0204] Specifically, for the air guide portion 414 arranged on the mounting panel 41, the air guide portion 414 extends in an inclined manner, the upper portion of the air guide portion 414 extends to the lower outer edge of the air supply channel, and the lower portion of the air guide portion 414 extends outwardly in an inclined manner.
[0205] In this way, after the airflow conveyed by the air supply channel flows to the bottom of the mounting panel 41, on one hand, the airflow can be directly output from the first air outlet 412, and on the other hand, the airflow has a tendency to flow outwardly under the guidance of the air guide portion 414, thereby making it easier for part of the airflow to flow to the second air outlet 413 through the communication port 4141.
[0206] Furthermore, in the case where the first air outlet 412 and the second air outlet 413 are both in an open state to supply air outwardly, the second air outlet 413 can still have sufficient air volume to supply the air volume of the second air outlet 413, thereby greatly increasing the air supply coverage of the second air outlet 413.
[0207] By arranging the air guide portion 414 on the mounting panel 41, the air guide portion separates the first air outlet 412 and the second air outlet 413, and the communication port 4141 is arranged on the air guide portion 414 to satisfy the communication between the second air outlet 413 and the air supply channel through the communication port 4141. The air guide portion 414 extends outwardly in an inclined manner from top to bottom, so that the airflow conveyed by the air supply channel can flow into the side of the air guide portion 414 close to the second air outlet 413 through the guidance of the air guide portion 414 from the communication port 4141, so as to increase the air volume of the second air outlet 413, thereby increasing the air supply range.
[0208] In an embodiment, the communication port 4141 is arranged opposite to the second air outlet 413; the communication port 4141 is configured to convey the airflow toward the direction of the second air outlet 413.
[0209] Specifically, for the airflow flowing toward the direction of the second air outlet 413 through the communication port 4141, in order to reduce the air resistance of the airflow in the second air outlet, the communication port 4141 and the second air outlet 413 are arranged in an opposite manner. In this way, after the airflow enters the communication port 4141, it can directly flow toward the direction of the second air outlet 413, so as to improve the air speed of the second air outlet 413.
[0210] By arranging the communication port 4141 opposite to the second air outlet 413, the airflow input from the communication port 4141 can directly flow toward the direction of the second air outlet 413, thereby improving the air supply efficiency of the second air outlet 413. Especially in the case where the air guide panel 42 closes the first air outlet 412, the airflow output by the air supply channel is guided by the air guide portion 414 to flow to the communication port 4141, so that the airflow can more smoothly flow toward the direction of the second air outlet 413 through the communication port 4141.
[0211] In an embodiment, as shown in Figures 8-9 and Figure 11 The air guide portion 414 is further provided with a bending portion 4142 which extends upwardly and obliquely towards the second air outlet 413.
[0212] Specifically, in order to better guide the air flow to flow towards the second air outlet 413, the air flow conveyed through the air supply channel and entering the second air outlet 413 through the communication port 4141 still has a downward flow trend. Therefore, the bending portion 4142 is formed at the lower portion of the air guide portion 414 to guide the air flow entering through the communication port 4141.
[0213] The bending portion 4142 extends obliquely upwards towards the second air outlet 413 to guide the air flow to flow smoothly towards the second air outlet 413 through the bending portion 4142.
[0214] By additionally providing the bending portion 4142 which extends upwardly and obliquely on the air guide portion 414, the bending portion 4142 extends towards the second air outlet 413, so that the air flow conveyed through the communication port 4141 flows towards the second air outlet 413 under the guidance of the bending portion 4142, thereby further improving the air outlet efficiency of the second air outlet 413.
[0215] In an embodiment, a plurality of parallelly arranged rib plates 415 are further provided at the second air outlet 413, the rib plates 415 are vertically arranged and connected between the mounting panel 41 and the bending portion 4142.
[0216] Specifically, the second air outlet 413 on the mounting panel 41 is in a strip-shaped structure as a whole. In order to make the air outlet amount at different positions of the second air outlet 413 uniform, a plurality of rib plates 415 are sequentially arranged on the mounting panel 41 along the length direction of the second air outlet 413. The rib plates 415 can divide the air flow flowing into the second air outlet 413 to ensure that the air outlet amount at different positions of the second air outlet 413 remains substantially uniform.
[0217] By increasing a plurality of parallelly arranged rib plates 415 at the second air outlet 413, the air flow flowing towards the second air outlet 413 can be guided by the vertically arranged rib plates 415. Meanwhile, the air flow output by the second air outlet 413 can be divided under the action of the plurality of rib plates 415 to ensure uniform distribution.
[0218] In one embodiment of the present application, as shown in Figures 1-12 The air conditioner comprises a housing 1, a heat exchanger 2, a fan 3 and a panel assembly 4.
[0219] The bottom of the housing 1 forms a mounting opening, the heat exchanger 2 is configured to perform heat exchange treatment on the airflow passing through, and the heat exchanger 2 is arranged in the housing 1; an air supply passage is formed between the heat exchanger 2 and the inner wall of the housing 1, the heat exchanger 2 surrounds the air supply passage, and the fan 3 is located in the air supply passage.
[0220] The panel assembly 4 comprises a mounting panel 41, the bottom of the mounting panel 41 is provided with an air inlet 411 and an air outlet portion, and the air outlet portion is annular and distributed on the outer side of the air inlet 411.
[0221] The air outlet portion is configured to communicate with the air supply passage and output the airflow after heat exchange via the heat exchanger 2 from the side and corner portions of the mounting panel 41, respectively.
[0222] Specifically, the mounting panel 41 is formed with the annularly distributed air outlet portion around the air inlet 411, and the airflow after heat exchange supplied by the air supply passage can be outputted outward through the air outlet portion. Since the air outlet portion has an annular structure, the air outlet portion can supply the airflow after heat exchange outward from all directions of the mounting panel 41, thereby effectively increasing the coverage of air outlet to achieve 360-degree comprehensive air supply.
[0223] By forming the annularly distributed air outlet portion on the mounting panel 41, in use, the airflow after heat exchange treatment via the heat exchanger 2 flows to the air outlet portion through the air supply passage, and the annular design of the air outlet portion can supply the airflow after heat exchange outward from the side and corner portions of the mounting panel 41, so that the mounting panel 41 can supply air outward in 360 degrees. Thus, the technical problem of small air supply coverage caused by no air output at the corner position of the mounting panel 41 can be solved, and the air outlet portion can effectively increase the coverage of air outlet to improve the air supply effect of the air conditioner.
[0224] In one embodiment, the side position of the mounting panel 41 is provided with a first air outlet 412, and the edge and corner positions of the mounting panel 41 are provided with auxiliary air outlets 416; a rotatable air deflector 42 is arranged in the first air outlet 412;
[0225] The mounting panel 41 is arranged at the bottom of the housing 1 and covers the mounting opening, the air inlet 411 communicates with the air inlet passage, the first air outlet 412 communicates with the air supply passage, and the auxiliary air outlets 416 communicate with the air supply passage.
[0226] The first air outlet 412 is configured to communicate with the air supply channel and output the airflow after heat exchange via the heat exchanger 2 from the side of the mounting panel 41.
[0227] The auxiliary air outlet 416 is configured to communicate with the air supply channel and output the airflow after heat exchange via the heat exchanger 2 from the corner of the mounting panel 41.
[0228] Specifically, for the lower surface of the mounting panel 41, the first air outlet 412 is arranged at a position close to the side edge of the mounting panel 41, and the auxiliary air outlet 416 is arranged at the edge corner position of the mounting panel 41.
[0229] The first air outlet 412 and the auxiliary air outlet 416 respectively communicate with the air supply channel, and the airflow after heat exchange conveyed by the air supply channel can be respectively outputted outwardly through the first air outlet 412 and the auxiliary air outlet 416 during use, so that the air supply outwardly can be realized in the side area and the corner area of the mounting panel 41, and then the air supply treatment can be realized in the four surrounding edges and edge corners of the mounting panel 41.
[0230] By increasing the auxiliary air outlet 416 at the corner of the mounting panel 41, the auxiliary air outlet 416 communicates with the air supply channel, and then the airflow after heat exchange can also be outputted outwardly through the auxiliary air outlet 416, and then the air supply outwardly can be realized in the corner area of the mounting panel 41, which is more conducive to improving the coverage range of the air supply.
[0231] In an embodiment, as shown in the drawings, the panel assembly 4 further comprises a grille cover plate 43 arranged on the mounting panel 41 and covering the air inlet 411, and a side portion of the grille cover plate 43 and the mounting panel 41 form a first air outlet interval 401, and the first air outlet 412 is arranged opposite to the corresponding first air outlet interval 401. Figure 7
[0232] The panel assembly 4 further comprises a grille cover plate 44 which is arranged outside the auxiliary air outlet 416, and a second air outlet interval 402 is formed between the grille cover plate 44 and the mounting panel 41.
[0233] The adjacent two first air outlet intervals 401 are communicated through the second air outlet interval 402 at the corresponding corner to form a ring-shaped air outlet portion.
[0234] Specifically, the panel assembly 4 covers the air inlet 411 through the grille cover plate 43, and the first air outlet interval 401 is formed between the grille cover plate 43 and the mounting panel 41, the first air outlet 412 outputs the airflow outwardly through the first air outlet interval 401, and the air deflector 42 is further arranged in the first air outlet interval 401.
[0235] The auxiliary air outlet 416 is shielded by the cover plate 44, and a second air outlet interval 402 is formed between the cover plate 44 and the mounting panel 41. The airflow output by the auxiliary air outlet 416 is output outward through the second air outlet interval 402.
[0236] The first air outlet interval 401 and the second air outlet interval 402 are in communication with each other, so that an air outlet portion in a ring shape is formed around the air inlet 411 on the mounting panel 41, thereby achieving 360-degree air outlet.
[0237] By increasing the cover plate 44, the cover plate 44 can shield the auxiliary air outlet 416 at the corner position of the mounting panel 41. Under the action of the cover plate 44, the airflow output from the auxiliary air outlet 416 is not blown vertically but is output from the edge of the shielding plate, so that the airflow can be output horizontally and outward from the corner of the mounting panel 41. Therefore, the coverage range of the air outlet is improved.
[0238] In an embodiment, the cover plate 44 is detachably arranged at the corresponding corner of the grille cover plate 43; or the cover plate 44 and the grille cover plate 43 are an integral structure.
[0239] Specifically, the cover plate 44 can be an independent component or an integral structure with the grille cover plate 43.
[0240] For the cover plate 44 in an independent structure, it can be installed on the grille cover plate 43 by clamping or screwing or the like.
[0241] The cover plate 44 is detachably installed on the grille cover plate 43, which can facilitate the installation and removal of the cover plate 44 by the operator. By processing the grille cover plate 43 and the cover plate 44 as an integral structure, the process of installing the cover plate 44 can be saved, thereby improving the assembly efficiency.
[0242] In an embodiment, the mounting panel 41 can be provided with a second air outlet 413 at the side portion to meet the requirement of air outlet at the side portion of the mounting panel 41. The structure design and air outlet mode of the second air outlet 413 can refer to the description in the above embodiments, which is not limited herein.
[0243] In an embodiment, the air conditioner further comprises a water pan 5, which is in a ring shape and arranged in the mounting opening. The water pan 5 is located below the heat exchanger 2 and above the mounting panel 41.
[0244] The corner of the water pan 5 is provided with a first ventilation portion 51, and the auxiliary air outlet 416 is in communication with the air supply channel through the first ventilation portion 51.
[0245] Specifically, the water pan 5 is arranged in the mounting port of the shell 1 and needs to meet the requirement of receiving the condensed water of the heat exchanger 2. Therefore, the water pan 5 is annular in structure, and the air inlet 411 and the first air outlet 412 are spaced apart by the water pan 5. In addition, the water pan 5 needs to avoid the air inlet 411 to ensure that the airflow input by the air inlet 411 enters the air inlet channel, and the water pan 5 meets the requirement that the airflow in the air supply channel can flow to the auxiliary air outlet 416 through the first ventilation part 51 arranged at the corner of the water pan 5, thereby ensuring the smoothness of the air supply of the auxiliary air outlet 416.
[0246] By arranging the first ventilation part 51 on the water pan 5, the water pan 5 can realize the mutual communication between the auxiliary air outlet 416 and the air supply channel formed outside the heat exchanger 2 through the first ventilation part 51 arranged at the corner of the water pan 5, thereby realizing the supply of the heat-exchanged airflow to the auxiliary air outlet 416 through the first ventilation part 51 arranged on the water pan 5, to ensure the smoothness of the air supply.
[0247] In an embodiment, the side portion of the water pan 5 is provided with a second ventilation part 52, and the first air outlet 412 and the second air outlet 413 are communicated with the air supply channel through the second ventilation part 52.
[0248] Specifically, since the water pan 5 is arranged in the mounting port and spaced apart from the first air outlet 412 and the air inlet 411, the second ventilation part 52 is formed at the side portion of the water pan 5, and the second ventilation part 52 avoids the first air outlet 412 and the second air outlet 413, to meet the requirement that the first air outlet 412 and the second air outlet 413 are communicated with the air supply channel.
[0249] By arranging the second ventilation part 52 at the side portion of the water pan 5, the second ventilation part 52 can communicate the first air outlet 412 and the second air outlet 413 with the air supply channel, thereby ensuring the smoothness of the air supply of the air supply channel.
[0250] In another embodiment of the present application, as shown in Figures 1-12 To avoid the condensation of the panel assembly 4, the panel assembly 4 is improved in structure as follows.
[0251] The panel assembly 4 comprises a mounting panel 41, the bottom of the mounting panel 41 is provided with an air inlet 411, and the side edge of the mounting panel 41 is provided with a first air outlet 412; the mounting panel 41 is arranged at the bottom of the shell 1 and covers the mounting port, the air inlet 411 is communicated with the air inlet channel, and the first air outlet 412 is communicated with the air supply channel;
[0252] The panel assembly 4 comprises a grid cover plate 43 arranged on the mounting panel 41 and covering the air inlet 411, and a side portion of the grid cover plate 43 and the mounting panel 41 form a first air outlet space 401, and the first air outlet 412 is arranged opposite to the corresponding first air outlet space 401;
[0253] The panel assembly 4 comprises a cover plate 44 arranged between the mounting panel 41 and the cover plate 44 form a second air outlet space 402;
[0254] The first air outlet space 401 is in communication with the adjacent second air outlet space 402, and the first air outlet space 401 is configured to output air flow towards the corresponding corner portion of the mounting panel 41.
[0255] Specifically, during operation of the air conditioner, the air flow delivered by the air supply channel flows through the first air outlet 412 and is outputted outwardly via the first air outlet space 401. Since the first air outlet space 401 and the second air outlet space 402 are in communication with each other, part of the air flow outputted from the first air outlet space 401 also expands into the second air outlet space 402 and flows towards the corner direction of the mounting panel 41 from the edge of the cover plate 44.
[0256] The air flow outputted from the second air outlet space 402 can blow towards the mounting panel 41, and the air flow can cover the surface of the corner portion of the mounting panel 41, so that condensation is reduced at the corner portion of the mounting panel 41 under the action of the air flow.
[0257] By arranging the cover plate 44 on the mounting panel 41, the cover plate 44 and the mounting panel 41 form the second air outlet space 402 at the corner portion, and during use, the air flow outputted from the first air outlet 412 is outputted to the indoor environment via the first air outlet space 401, and the first air outlet space 401 is in communication with the adjacent second air outlet space 402, so that part of the air flow outputted from the second air outlet 413 also flows into the second air outlet space 402, and then flows towards the corner direction of the mounting panel 41 under the action of the second air outlet space 402. In this way, the corner portion of the mounting panel 41 is also flowed by the air flow, so that condensation is reduced at the corner portion of the mounting panel 41, and the user experience is improved.
[0258] In an embodiment, as shown in Figure 12 The mounting panel 41 and the cover plate 44 opposite to each other are further provided with a raised flow guide portion 417 on the outer surface; the flow guide portion 417 is configured to guide the air flow to flow towards the corner direction of the mounting panel 41 from the second air outlet space 402.
[0259] Specifically, for the air flow flowing between the cover plate 44 and the mounting panel 41, in order to guide the air flow to be evenly dispersed after being output from the second air outlet interval 402 towards the corner position of the mounting panel 41. Then a raised flow guide part 417 is arranged on the mounting panel 41, the flow guide part 417 extends towards the corner position of the mounting panel 41, so that the air flow will be evenly dispersed under the action of the flow guide part 417, and further better cover the corner position of the mounting panel 41.
[0260] By forming the flow guide part 417 on the surface of the mounting panel 41 opposite to the cover plate 44, the air flow output from the auxiliary air outlet 416 can be guided to be output from the edge of the cover plate 44 via the flow guide part 417, and the flow guide part 417 can guide the air flow to flow out smoothly to improve the uniformity of the distribution of the air flow.
[0261] In an embodiment, the outer surface of the mounting panel 41 opposite to the cover plate 44 forms a recessed part, and the flow guide part 417 is formed in the recessed part.
[0262] Specifically, the recessed part is arranged on the mounting panel 41 opposite to the cover plate 44, and the distance between the recessed part and the cover plate 44 is large enough to form sufficient space to buffer the air flow. The buffered air flow is divided by the flow guide part 417 to ensure that the air flow is uniformly output from the second air outlet interval 402.
[0263] By forming the recessed part on the mounting panel 41 opposite to the cover plate 44, the air flow can be buffered between the recessed part and the cover plate 44, and the flow guide part 417 is used to guide the air flow to be uniformly output, so as to improve the anti-condensation processing capability of the corner position of the mounting panel 41.
[0264] In an embodiment, the recessed part forms an arc-shaped concave surface.
[0265] Specifically, by designing the recessed part as an arc-shaped concave surface, the arc-shaped concave surface has smaller wind resistance and is more conducive to guiding the air flow to flow, so as to improve the smoothness of the air flow output.
[0266] In an embodiment, the corner position of the mounting panel 41 is provided with an auxiliary air outlet 416, and the auxiliary air outlet 416 is in communication with the air supply channel.
[0267] The cover plate 44 blocks the outside of the auxiliary air outlet 416.
[0268] Specifically, in order to effectively increase the air volume of the second air outlet interval 402 and improve the anti-condensation capability, an auxiliary air outlet 416 is additionally arranged at the corner position of the mounting panel 41. The auxiliary air outlet 416 can communicate with the air supply channel, so that the airflow conveyed by the air supply channel is output through the auxiliary air outlet 416. The airflow output from the auxiliary air outlet 416 is guided by the cover plate 44 and the flow guide part 417, and a larger airflow is output towards the corner of the mounting panel 41, which is more conducive to reducing condensation at the corner of the mounting panel 41.
[0269] The auxiliary air outlet 416 is located in the recess, so that the auxiliary air outlet 416 has a sufficient distance from the cover plate 44, thereby buffering the airflow output from the auxiliary air outlet 416, and then cooperating with the flow guide part 417 to guide the airflow to be output more smoothly.
[0270] In an embodiment, a plurality of flow guide parts 417 are arranged around the auxiliary air outlet 416 on the mounting panel 41, and the flow guide parts 417 are configured to guide the airflow output through the auxiliary air outlet 416 to flow towards the corresponding corner of the mounting panel 41.
[0271] Specifically, for the case where the auxiliary air outlet 416 is arranged, the flow guide parts 417 arranged on the recess are arranged around the auxiliary air outlet 416, and the plurality of flow guide parts 417 are arranged in a fan shape around the auxiliary air outlet 416.
[0272] In use, the airflow output from the auxiliary air outlet 416 can be guided by the fan-shaped flow guide parts 417 to flow uniformly to the second air outlet interval 402, so as to more comprehensively cover the corners of the mounting panel 41 with the airflow.
[0273] By arranging the flow guide parts 417 in a fan shape on the mounting panel 41, the plurality of flow guide parts 417 cooperate to guide the airflow to be uniformly output from the edge of the cover plate 44, thereby improving the uniformity of the airflow distribution at the corner area of the mounting panel 41.
[0274] In an embodiment of the present application, as shown in Figures 13-17 The water pan 5 is arranged in the mounting opening and is located below the heat exchanger 2 and above the panel assembly 4. The bacteriostatic module 6 is arranged in the water pan 5.
[0275] The water pan 5 is provided with a mounting fixed part 53, the bacteriostatic module 6 is arranged on the mounting fixed part 53, the side of the shell 1 is provided with an openable and closable maintenance opening 11, and the maintenance opening 11 is arranged close to the mounting fixed part 53.
[0276] Specifically, the mounting fixed part 53 is arranged in the water pan 5, and the mounting fixed part 53 meets the mounting requirement of the bacteriostatic module 6. In order to facilitate the disassembly and maintenance of the bacteriostatic module 6, the maintenance opening 11 is arranged on the shell 1, and the maintenance opening 11 is arranged close to the mounting fixed part 53.
[0277] When the bacteriostatic module 6 needs to be disassembled and maintained, the maintenance opening 11 on the shell 1 can be opened, and the bacteriostatic module 6 mounted on the mounting fixed part 53 can be disassembled. Similarly, the new bacteriostatic module 6 is placed into the water pan 5 through the maintenance opening 11 and fixed on the mounting fixed part 53.
[0278] During the maintenance, the operator does not need to disassemble the water pan 5 from the shell 1 to maintain and replace the bacteriostatic module 6, so that the operator can conveniently maintain later.
[0279] The maintenance opening 11 is arranged close to the mounting fixed part 53 in the water pan 5. When the bacteriostatic module 6 needs to be replaced and maintained, the maintenance opening 11 only needs to be opened, and the operator can disassemble the bacteriostatic module 6 mounted in the water pan 5 through the maintenance opening 11, and then does not need to disassemble the water pan 5, so that the maintenance difficulty of the bacteriostatic module 6 can be effectively reduced, the bacteriostatic module 6 can be conveniently replaced, and the maintenance convenience is improved.
[0280] In an embodiment, the maintenance opening 11 is located outside the mounting fixed part 53. Specifically, the maintenance opening 11 can be arranged on the side wall of the shell 1. During the maintenance, the operator opens the maintenance opening 11 from the side of the shell 1 to maintain the bacteriostatic module 6 in the water pan 5.
[0281] In another embodiment, the maintenance opening 11 is arranged above the mounting fixed part 53. Specifically, the maintenance opening 11 can be arranged on the top of the shell 1. During the maintenance, the operator opens the maintenance opening 11 from the top of the shell 1 to maintain the bacteriostatic module 6 in the water pan 5.
[0282] In an embodiment, as shown in Figure 15 In order to conveniently and quickly disassemble and assemble the bacteriostatic module 6, the bacteriostatic module 6 is clamped on the mounting fixed part 53.
[0283] Specifically, the bacteriostatic module 6 is clamped on the mounting fixed part 53, and then screw connection is not needed, so that the convenience of disassembly and assembly is improved.
[0284] By connecting the clamping mode of the bacteriostatic module 6 with the installation fixing part 53, on the one hand, it is convenient for the operator to clamp the bacteriostatic module 6 on the installation fixing part 53 during assembly, and on the other hand, it is also convenient for the operator to disassemble the bacteriostatic module 6 from the installation fixing part 53 during disassembly, so as to realize screwless connection.
[0285] In an embodiment, as shown in Figure 16 and Figure 17 , the installation fixing part 53 is provided with a first clamping jaw 531, and the bacteriostatic module 6 is clamped on the first clamping jaw 531.
[0286] Specifically, in order to realize the clamping connection of the bacteriostatic module 6 and the installation fixing part 53, the installation fixing part 53 can be clamped and matched with the bacteriostatic module 6 through the first clamping jaw 531.
[0287] By setting the first clamping jaw 531 to clamp the bacteriostatic module 6, when installing the bacteriostatic module 6, the bacteriostatic module 6 abuts against the first clamping jaw 531, and finally the first clamping jaw 531 is clamped on the bacteriostatic module 6 to facilitate the assembly.
[0288] In an embodiment, the installation fixing part 53 is also provided with a positioning column 532, and the positioning column 532 is arranged at the side of the first clamping jaw 531.
[0289] The bacteriostatic module 6 is provided with a positioning hole 61.
[0290] The positioning column 532 is inserted into the positioning hole 61, and the first clamping jaw 531 is clamped on the edge of the bacteriostatic module 6.
[0291] Specifically, in order to meet the clamping requirements of the bacteriostatic module 6 through the single-sided first clamping jaw 531, the installation fixing part 53 is provided with the positioning column 532 to cooperate with the positioning hole 61 in the bacteriostatic module 6. In this way, during the installation of the bacteriostatic module 6, the positioning column 532 is inserted into the positioning hole 61, and the bacteriostatic module 6 is pressed to the bottom of the water pan 5, so that the first clamping jaw 531 is clamped on the edge of the bacteriostatic module 6, thereby completing the clamping assembly.
[0292] By arranging the positioning column 532 at the side of the first clamping jaw 531, during the installation of the bacteriostatic module 6, the positioning column 532 is inserted into the positioning hole 61 for positioning, so that the first clamping jaw 531 can be reliably clamped on the bacteriostatic module 6, thereby improving the reliability of the clamping.
[0293] In another embodiment, the mounting fixing part 53 is further provided with a guide sliding groove 533 arranged vertically opposite to the first clamping jaw 531, and the end of the bacterium inhibition module 6 is located in the guide sliding groove 533.
[0294] Specifically, the edge of one end of the bacterium inhibition module 6 is clamped by the first clamping jaw 531, and the positioning column 532 is further inserted into the positioning hole 61. In order to improve the assembly accuracy, the mounting fixing part 53 is further provided with a guide sliding groove 533 to guide the other end of the bacterium inhibition module 6, so that the bacterium inhibition module 6 is guided to slide along the guide sliding groove 533 during assembly, so that the positioning column 532 can be accurately inserted into the positioning hole 61.
[0295] By arranging the guide sliding groove 533 on the opposite surface of the first clamping jaw 531, the bacterium inhibition module 6 can be assembled into the water tray 5 along the guide sliding groove 533 during the installation of the bacterium inhibition module 6, and the positioning column 532 can be accurately inserted into the positioning hole 61, so as to improve the assembly convenience.
[0296] In some embodiments, a clamping groove can be further arranged on the mounting fixing part 53, and a second clamping jaw is arranged on the bacterium inhibition module 6 and clamped in the clamping groove.
[0297] By arranging the second clamping jaw on the bacterium inhibition module 6, the bacterium inhibition module 6 is clamped in the clamping groove by the second clamping jaw during the installation of the bacterium inhibition module 6, so as to conveniently complete the assembly operation of the bacterium inhibition module 6.
[0298] In the description of the above embodiments, specific features, structures, materials or characteristics can be combined in any one or more embodiments or examples in a suitable manner.
[0299] The above is only a specific implementation manner of the present application, but the protection scope of the present application is not limited to this, any person skilled in the art can easily think of changes or replacements within the technical range disclosed by the present application, which should be covered in the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.
Claims
1. An air conditioner characterized by comprising: The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component.
2. The air conditioner according to claim 1, wherein The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component.
3. The air conditioner according to claim 2, wherein The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component.
4. The air conditioner according to claim 3, wherein The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component.
5. The air conditioner according to claim 4, wherein The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component.
6. The air conditioner according to claim 1, wherein The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component.
7. The air conditioner according to claim 1, wherein The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat exchanger, a fan, a guide plate, a driving motor and an anti-movement component. The application relates to an air conditioner, which comprises the following components: a casing, an air inlet and an air outlet, a heat The limiting part is attached to the end surface of the first end of the guide vane; or the guide vane assembly further comprises a limiting member, which is arranged on the casing perpendicularly to the axis direction of the anti-movement component, and a through hole is arranged on the limiting member, the limiting member is located between the guide vane and the driving motor, the anti-movement component is inserted into the through hole, and the limiting part is attached to the surface of the limiting member away from the guide vane.
8. The air conditioner according to any one of claims 1 to 7, characterized by The guide vane assembly further comprises: A motor support is arranged on the casing, and the driving motor is arranged on the motor support.
9. The air conditioner according to claim 8, wherein Two limiting stops are further arranged on the motor support; A limiting protrusion is further arranged on the anti-movement component, the limiting protrusion is located between the two limiting stops, and the limiting protrusion is configured to cooperate with the two limiting stops to limit the rotation angle of the anti-movement component.
10. An air conditioner characterized by comprising: Comprise: A casing in which an installation cavity is formed, and an air inlet and an air outlet are arranged on the casing; A heat exchanger configured to perform heat exchange treatment on the flowing air, the heat exchanger being arranged in the casing; A fan configured to drive the air sucked from the air inlet to flow through the heat exchanger for heat exchange, and the heat-exchanged air being output from the air outlet, the fan being arranged in the casing; A guide vane assembly comprising: A guide vane rotatably arranged on the casing, the guide vane being located at the air outlet; A driving motor arranged on the casing, the driving motor being configured to drive the guide vane to rotate; An anti-movement component connecting the guide vane and the motor shaft of the driving motor together, the anti-movement component being connected to the guide vane and the motor shaft in a direction staggered with the axis of the motor shaft, and the anti-movement component being configured to limit the movement of the guide vane relative to the motor shaft along the axis of the motor shaft.
Citation Information
Patent Citations
Air guide panel and air conditioner
CN216011040U