Hanging type air conditioner indoor unit

By setting a limiting component and a guide on the push rod, and combining the design of the limiting component and the connecting component, the problem of unstable movement of the push rod of the indoor unit of the wall-mounted air conditioner is solved, and the stable extension of the air guide plate and the uniformity of air supply are achieved.

CN223596168UActive Publication Date: 2025-11-25HISENSE (SHANDONG) AIR CONDITIONING CO LTD
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Patent Information

Application Number
CN202423238160.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-26
Publication Date
2025-11-25
Estimated Expiration
2034-12-26

AI Technical Summary

Technical Problem

The push rod of the existing wall-mounted air conditioner indoor unit moves unevenly, the air guide plate is prone to shaking during the push-out process and has poor load-bearing capacity, making it difficult to drive a large air guide plate.

Method used

Limiting components and guide parts are set on the push rod. The design of the guide and limiting parts of the mechanism box ensures the smoothness and reliability of the push rod movement and prevents the limiting component from disengaging from the guide part. The connecting part abuts against the limiting part to stop the push rod movement. Combined with the design of the limiting rib and the recess, the movement of the limiting component is further constrained.

Benefits of technology

It effectively prevents the air guide plate from shaking during the push-out process, ensures the stability and reliability of the push rod movement, improves the load-bearing capacity of the air guide plate, enhances the uniformity of air delivery, and increases the flexibility for users to adjust the air delivery direction.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a hanging type air conditioner indoor unit, and relates to the technical field of household appliances, the hanging type air conditioner indoor unit comprises a machine shell, a heat exchanger, a heat exchange fan, an air deflector, a push rod and a mechanism box; the telescopic end of the push rod is connected to the air guide plate and arranged outside the machine shell. The push rod linearly reciprocates in the first direction. The connecting end of the push rod is arranged in the machine shell and connected with a limiting piece. The mechanism box comprises a first box and a second box; the first box is provided with a guide part, the guide part extends in the first direction, and the limiting piece is arranged in the guide part and slides along the guide part; the first box is also provided with a mounting part for arranging the limiting piece in the guide part, and the mounting part is arranged on an extension path of the guide part and is communicated with the guide part; the second box is detachably connected with the first box; the second box is provided with a limiting part, and the limiting part is arranged on the motion trail of the push rod; after the second box and the first box are mutually spliced, the limiting part is located in front of the mounting part along the movement track of the push rod so as to prevent the limiting piece from moving to the mounting part.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of household appliances, in particular to a hanging type air conditioner indoor unit. BACKGROUND

[0002] With the increasing requirement of air conditioner blowing performance, some hanging type air conditioner indoor units drive the air deflector to rotate through a rotating motor after pushing the air deflector out a distance through a push rod, so as to expand the coverage of air deflector blowing, make the cold air or warm air be able to be delivered more evenly to each corner of the room, reduce the unevenness of indoor temperature, improve the refrigeration / heating efficiency of the air conditioner, and also make the air deflector have a larger range of rotation angle, so that the user can more flexibly adjust the blowing direction and angle to meet the individualized blowing demand.

[0003] In the prior art, the push rod has poor movement stability, so that the air deflector is prone to shaking during the pushing process, and the carrying capacity is poor, so that it is difficult to drive the air deflector with large size to move.

[0004] Therefore, the present application is proposed. CONTENT OF THE UTILITY MODEL

[0005] In view of the deficiencies in the related art, the present application provides a hanging type air conditioner indoor unit, which guides the movement of the push rod through the setting of a guide part, so as to ensure the stability of the movement of the push rod and prevent the air deflector from shaking during the pushing process.

[0006] The present application provides a hanging type air conditioner indoor unit, which comprises:

[0007] A shell, a shell air inlet is arranged at the top of the shell, and a shell air outlet is arranged below the front side of the shell;

[0008] A heat exchanger, the heat exchanger is arranged inside the shell, and at least part of the windward side of the heat exchanger is arranged towards the shell air inlet;

[0009] A heat exchange fan, the heat exchange fan is arranged inside the shell; the heat exchange fan is located at the leeward side of the heat exchanger;

[0010] An air deflector, the air deflector is arranged at the shell air outlet in a rotatable manner; the rotation axis of the air deflector is arranged along the length direction of the shell;

[0011] A push rod, the telescopic end of the push rod is connected to the air deflector and arranged outside the shell; the push rod moves linearly along the first direction to drive the air deflector to push out in the direction away from the shell air outlet or to retract in the direction close to the shell air outlet; the connecting end of the push rod is arranged inside the shell, and the connecting end of the push rod is connected to a limiting piece;

[0012] A mechanism box, the mechanism box is arranged inside the shell, and the connecting end of the push rod is arranged inside the mechanism box; the mechanism box comprises:

[0013] The first box is provided with a guide portion extending in a first direction, and a limiting piece is slidably connected in the guide portion to guide and limit the movement of the push rod; the first box is further provided with a mounting portion for the limiting piece in the guide portion, and the mounting portion is arranged on the extension path of the guide portion and communicates with the guide portion;

[0014] The second box is detachably connected with the first box; the second box is provided with a limiting portion arranged on the movement track of the push rod to limit the movement position of the push rod;

[0015] After the second box is connected with the first box, the limiting portion is located in front of the mounting portion along the movement direction of the push rod to prevent the limiting piece arranged in the guide portion from moving to the mounting portion.

[0016] The technical scheme sets the guide portion on the mechanism box, sets the limiting piece on the push rod, arranges the limiting piece in the guide portion and makes it slide along the guide portion to guide the movement of the push rod; the mounting portion is arranged to make the limiting piece arranged in the guide portion from the mounting portion; the limiting portion is arranged to make the limiting portion located in front of the mounting portion along the movement track of the push rod to prevent the limiting piece arranged in the guide portion from moving to the mounting portion and prevent the limiting piece arranged in the guide portion from separating from the guide portion through the mounting portion; the mounting portion and the limiting portion are arranged in the first box and the second box respectively to prevent the limiting portion and the mounting portion from interfering with each other.

[0017] In some embodiments, the connecting end of the push rod is connected with a connecting piece, the connecting piece is located in the mechanism box, the width dimension of the connecting piece is greater than the width dimension of the push rod, and the connecting piece abuts against the limiting portion to prevent the push rod from continuing to move.

[0018] The technical scheme sets the connecting piece on the connecting end of the push rod, makes the connecting piece abut against the limiting portion to prevent the push rod from moving to the rear of the limiting portion, and thus prevents the limiting piece from moving into the mounting portion and avoids the limiting piece from separating from the guide portion.

[0019] In some embodiments, the inner wall of the guide portion is provided with a limiting rib arranged along the extension direction of the guide portion; the limiting piece is provided with a recess recessed in the peripheral wall of the limiting piece along the circumferential direction of the limiting piece, and the limiting rib is arranged in the recess to prevent the limiting piece from separating from the guide portion.

[0020] The technical scheme sets the limiting rib in the guide portion and sets the recess in the limiting piece, and arranges the limiting rib in the recess to constrain the limiting piece along the axial direction of the limiting piece and prevent the limiting piece from separating from the guide portion, so that the limiting piece can be reliably arranged in the guide portion.

[0021] In some embodiments, the opposite inner walls of the guide portion are respectively provided with limiting ribs, the distance between the two limiting ribs is greater than or equal to the outer diameter of the recess, and the distance between the two limiting ribs is less than or equal to the outer diameter of the limiting piece.

[0022] The distance between the two limiting ribs of the guide part is less than or equal to the outer diameter of the limiting member, so that the limiting member can freely pass through the gap between the two limiting ribs in the axial direction of the limiting member.

[0023] In some embodiments, the inner diameter of the mounting part is greater than or equal to the outer diameter of the limiting member, and the inner diameter of the mounting part is greater than the distance between the two limiting ribs.

[0024] The inner diameter of the mounting part is greater than or equal to the outer diameter of the limiting member, so that the limiting member can be arranged in the mounting part; and the mounting part is in communication with the guide part, so that the limiting member can be arranged in the guide part from the mounting part.

[0025] In some embodiments, when the second box is spliced with the first box, the limiting member moves along the guide part to a third position, and the third position is located behind the limiting part in the movement direction of the limiting member.

[0026] The limiting member is moved along the guide part to the third position when the second box is spliced with the first box, so that the limiting member is located behind the limiting part, preventing the limiting member from being located in front of the limiting part after the second box is spliced with the first box, and preventing the limiting part from playing a role in preventing the limiting member from moving to the mounting part.

[0027] In some embodiments, the length of the guide part is H1, the movement distance of the push rod is L1, and L1 and H1 satisfy the relationship H1≥L1.

[0028] The length H1 of the guide part is greater than or equal to the movement distance L1 of the push rod, so that the guide part can always play a guiding role for the push rod during the movement of the push rod, and the stability of the movement of the push rod is ensured.

[0029] In some embodiments, the size of the mounting part along the movement trajectory of the push rod is H2, the outer diameter of the limiting member is r2, and H2 and r2 satisfy the relationship H2≥2r2.

[0030] The size H2 of the mounting part is greater than or equal to the diameter of the limiting member, so that the limiting member can be arranged in the mounting part, and then the limiting member can be arranged in the guide part from the mounting part.

[0031] In some embodiments, the movement trajectory of the mounting part when the push rod is pushed out is located behind the limiting part, and the movement trajectory of the mounting part when the push rod is retracted is located in front of the limiting part.

[0032] The movement trajectory of the mounting part when the push rod is pushed out is located behind the limiting part, so that the mounting part is arranged close to the external part of the push rod that penetrates the shell, so that the limiting part can not only limit the movement of the limiting member to the mounting part, but also avoid the push rod from penetrating the shell.

[0033] In addition, the application also provides a wall-mounted air conditioner indoor unit, comprising:

[0034] A shell, a shell air inlet is arranged at the top of the shell, and a shell air outlet is arranged below the front side of the shell;

[0035] A heat exchanger, the heat exchanger is arranged inside the shell, and at least part of the windward side of the heat exchanger is arranged towards the shell air inlet;

[0036] A heat exchange fan, the heat exchange fan is arranged inside the shell; the heat exchange fan is located at the leeward side of the heat exchanger;

[0037] A guide vane, the guide vane is rotatably arranged at the shell air outlet; the rotation axis of the guide vane is arranged along the length direction of the shell;

[0038] A push-out assembly, used for driving the guide vane to push out in the direction away from the shell air outlet or to retract in the direction close to the shell air outlet; the push-out assembly comprises:

[0039] A push rod, one end of the push rod is arranged inside the shell, and the other end of the push rod is arranged outside the shell; the end of the push rod arranged outside the shell is connected to the guide vane; the end of the push rod arranged inside the shell is provided with a limiting piece;

[0040] A crank, the crank is connected to the end of the push rod arranged inside the shell, used for driving the push rod to move linearly to push out or retract the guide vane;

[0041] A mechanism box, the mechanism box is arranged inside the shell, used for accommodating the end of the push rod arranged inside the shell and mounting the crank; the mechanism box comprises:

[0042] A first box, the first box is provided with a guide portion, the guide portion extends along the movement track of the push rod, and the limiting piece is slidably connected in the guide portion to guide and limit the movement of the push rod; the first box is also provided with a mounting portion for the limiting piece arranged in the guide portion, and the mounting portion is arranged close to the position where the push rod passes out of the mechanism box;

[0043] A second box, the second box is provided with a limiting portion; the limiting portion is arranged on the movement track of the push rod, used for limiting the movement position of the push rod;

[0044] After the second box and the first box are spliced with each other, the limiting portion is located in front of the mounting portion along the movement track of the push rod when the push rod is pushed out, so as to prevent the limiting piece arranged in the guide portion from moving to the mounting portion.

[0045] The technical scheme sets the guide part in the mechanism box and the limiting piece in the push rod, sets the limiting piece in the guide part and makes it slide along the guide part to guide the movement of the push rod; sets the mounting part to make the limiting piece set in the guide part from the mounting part; sets the limiting part to make the limiting part be in front of the mounting part along the movement track of the push rod to prevent the limiting piece set in the guide part from moving to the mounting part and prevent the limiting piece set in the guide part from separating from the guide part; sets the mounting part and the limiting part in the first box and the second box to prevent mutual interference between the limiting part and the mounting part.

[0046] In the above embodiment, the indoor unit of the wall-mounted air conditioner sets the guide part and the limiting part in the first box and the second box by designing the mechanism box as a split structure, so that the push rod is assembled with the first box and then assembled with the second box, thereby making the limiting piece set in the guide part from the mounting part, then making the limiting part restrict the movement of the push rod, preventing the push rod from driving the limiting piece to move to the mounting part, preventing the limiting piece set in the guide part from separating from the guide part, ensuring the reliability, stability and smoothness of the movement of the push rod, and preventing the deflector from shaking during the pushing-out process. BRIEF DESCRIPTION OF DRAWINGS

[0047] Figure 1 is a structural schematic diagram of an embodiment of the indoor unit of the wall-mounted air conditioner of the present application;

[0048] Figure 2 is a structural schematic diagram of an embodiment of the indoor unit of the wall-mounted air conditioner of the present application when the deflector is not assembled;

[0049] Figure 3 is a structural schematic diagram of the inside of the casing of an embodiment of the indoor unit of the wall-mounted air conditioner of the present application;

[0050] Figure 4 is a structural schematic diagram of the push-out assembly in an embodiment of the indoor unit of the wall-mounted air conditioner of the present application Figure 1 ;

[0051] Figure 5 is a structural schematic diagram of the push-out assembly in an embodiment of the indoor unit of the wall-mounted air conditioner of the present application Figure 2 ;

[0052] Figure 6 is a structural schematic diagram of the mechanism box in an embodiment of the indoor unit of the wall-mounted air conditioner of the present application;

[0053] Figure 7 is a structural schematic diagram of an embodiment of the indoor unit of the wall-mounted air conditioner of the present application when the push rod is retracted;

[0054] Figure 8 is a structural schematic diagram of an embodiment of the indoor unit of the wall-mounted air conditioner of the present application when the push rod is retracted from another angle;

[0055] Figure 9is a structural schematic view of the push rod being pushed out in one embodiment of the indoor unit of the ceiling-mounted air conditioner of the present application;

[0056] Figure 10 is Figure 9 is an enlarged view of the structure at A in the above figure;

[0057] Figure 11 is a structural schematic view of the crank and the push rod being assembled with each other in one embodiment of the indoor unit of the ceiling-mounted air conditioner of the present application;

[0058] Figure 12 is a structural schematic view of the crank and the driving gear being connected with each other in one embodiment of the indoor unit of the ceiling-mounted air conditioner of the present application;

[0059] Figure 13 is a force analysis schematic view of the second connecting portion when the push rod is being retracted in one embodiment of the indoor unit of the ceiling-mounted air conditioner of the present application;

[0060] Figure 14 is a force analysis schematic view of the second connecting portion when the push rod is being pushed out in one embodiment of the indoor unit of the ceiling-mounted air conditioner of the present application;

[0061] Figure 15 is a size schematic view of the crank and the push rod when the push rod is being retracted in one embodiment of the indoor unit of the ceiling-mounted air conditioner of the present application;

[0062] Figure 16 is a structural schematic view of the second connecting portion in the first position and the push rod being retracted in one embodiment of the indoor unit of the ceiling-mounted air conditioner of the present application;

[0063] Figure 17 is a structural schematic view of the second connecting portion in the second position in one embodiment of the indoor unit of the ceiling-mounted air conditioner of the present application;

[0064] Figure 18 is a structural schematic view of the second connecting portion in the first position and the push rod being pushed out in one embodiment of the indoor unit of the ceiling-mounted air conditioner of the present application;

[0065] Figure 19 is a structural schematic view of the first box in one embodiment of the indoor unit of the ceiling-mounted air conditioner of the present application;

[0066] Figure 20 is a structural schematic view of the end of the guide portion being provided with the mounting portion in one embodiment of the indoor unit of the ceiling-mounted air conditioner of the present application;

[0067] Figure 21 is a sectional schematic view of the first box in one embodiment of the indoor unit of the ceiling-mounted air conditioner of the present application;

[0068] Figure 22 is a structural schematic view of the second box in one embodiment of the indoor unit of the ceiling-mounted air conditioner of the present application;

[0069] Figure 23 is a structural schematic diagram of a push rod in one embodiment of the indoor unit of the hanging air conditioner of the present application;

[0070] Figure 24 is a structural schematic diagram of a limiting piece in one embodiment of the indoor unit of the hanging air conditioner of the present application;

[0071] Figure 25 is a structural schematic diagram of the internal structure of the push rod in one embodiment of the indoor unit of the hanging air conditioner of the present application.

[0072] In the figure,

[0073] 100, a casing; 200, a guide vane; 300, a heat exchange fan; 400, a push rod; 500, a rotary motor; 600, a heat exchanger; 700, a mechanism box; 800, a driving motor; 900, a crank;

[0074] 101, a casing air inlet; 102, a casing air outlet;

[0075] 401, a first connecting part; 402, a passage; 410, a limiting piece; 420, a connecting piece;

[0076] 411, a recess;

[0077] 701, a through-out part;

[0078] 710, a first box; 720, a second box; 730, a rolling piece;

[0079] 711, a guide part; 712, a mounting part; 713, a first ear part; 714, a limiting rib; 715, an avoiding part; 716, a blocking part;

[0080] 721, a limiting part; 722, a second ear part;

[0081] 810, a driving gear;

[0082] 901, a first plane; 902, a second plane; 903, a third plane;

[0083] 910, a second connecting part; 920, a toothed part. DETAILED DESCRIPTION

[0084] In order to make the purpose and the embodiments of the present application more clear, the exemplary embodiments of the present application will be described clearly and completely below in combination with the drawings in the exemplary embodiments of the present application. Obviously, the described exemplary embodiments are only some of the embodiments of the present application, but not all the embodiments.

[0085] It should be noted that the brief description of the terms in this application is only for the convenience of understanding the embodiments described below, and is not intended to limit the embodiments of the application. Unless otherwise specified, these terms should be understood in accordance with their ordinary and general meanings.

[0086] The terms "first", "second", "third" and the like in the specification and claims of this application and the above-described drawings are used to distinguish similar or identical objects or entities, and do not necessarily mean to limit the specific order or sequence, unless otherwise noted. It should be understood that the terms used in this way can be interchanged under appropriate circumstances.

[0087] The terms "include" and "have" and any variations thereof are intended to cover but not exclusive inclusion, for example, a product or device including a series of components is not necessarily limited to all components clearly listed, but can include other components not clearly listed or inherent to these products or devices.

[0088] The hanging air conditioner indoor unit provided by the embodiments of the application can have various implementation forms, for example, it can be a hanging air conditioner indoor unit with fresh air function, or a hanging air conditioner indoor unit without fresh air function, etc. Figures 1-3 As a specific embodiment of the hanging air conditioner indoor unit of the application.

[0089] As shown in Figure 1 The shell 100 is used to form the overall appearance of the air conditioner indoor unit, and the shell 100 has a top and a bottom. The top of the shell 100 and the bottom of the shell 100 are opposite ends, and the height direction of the shell 100 is from the top of the shell 100 to the bottom of the shell 100. The left side of the shell 100 and the right side of the shell 100 are opposite sides, and the length direction of the shell 100 is from the left side of the shell 100 to the right side of the shell 100. The front side of the shell 100 and the back side of the shell 100 are opposite sides, and the thickness direction of the shell 100 is from the front side of the shell 100 to the back side of the shell 100.

[0090] In actual application, the shell 100 is usually arranged on the top of the room or the upper space of the room, wherein the back side of the shell 100 is arranged towards the wall, and the front side of the shell 100 is arranged towards the user.

[0091] The shell 100 is internally defined to form a first cavity, and the first cavity extends along the length direction of the shell 100. The shell 100 is formed with a shell air inlet 101, and the shell air inlet 101 is arranged on the top of the shell 100. The shell air inlet 101 is in communication with the first cavity, and indoor air enters the first cavity through the shell air inlet 101.

[0092] The shell air inlet 101 extends along the length direction of the shell 100, so that the shell air inlet 101 has a larger size, thereby enabling the air conditioner indoor unit to have a larger air inlet amount.

[0093] As shown in Figure 2 , the housing 100 is formed with a housing air outlet 102, which is arranged at the front side of the housing 100 and close to the bottom of the housing 100, i.e. the housing air outlet 102 is located at the front lower side of the housing 100, and the housing air outlet 102 is in communication with the first cavity, and the air in the first cavity is output to the room through the housing air outlet 102.

[0094] The housing air outlet 102 extends along the length direction of the housing 100, so that the housing air outlet 102 has a larger size, thereby increasing the air volume of the air conditioner indoor unit.

[0095] As shown in Figure 3 , the wall-mounted air conditioner indoor unit comprises a heat exchanger 600 arranged in the first cavity, which is used to exchange heat with the air passing through it to form air conditioning air to meet the cooling or heating needs of the user. The heat exchanger 600 is arranged close to the housing air inlet 101, and at least part of the windward side of the heat exchanger 600 is arranged to face the housing air inlet 101, so that the air entering the first cavity can contact the heat exchanger 600 as soon as possible.

[0096] It should be noted that the air conditioning air can be cold air, hot air, or even normal temperature air.

[0097] As shown in Figure 2 , the wall-mounted air conditioner indoor unit comprises a heat exchange fan 300 arranged in the first cavity, which is used to introduce indoor air into the first cavity and / or output the air in the first cavity to the room. The axial direction of the heat exchange fan 300 is arranged along the length direction of the housing 100, and the heat exchange fan 300 is located at the leeward side of the heat exchanger 600, and part of the heat exchanger 600 is located above the heat exchange fan 300.

[0098] Through the operation of the heat exchange fan 300, the indoor air is introduced into the first cavity from the housing air inlet 101, and after being exchanged by the heat exchanger 600 to form air conditioning air, the air conditioning air is output to the room through the housing air outlet 102.

[0099] It should be noted that in the wall-mounted air conditioner indoor unit, the heat exchange fan 300 is usually a cross-flow fan.

[0100] As shown in Figure 1 , the housing air outlet 102 is provided with an air guide plate 200, which is rotatably connected to the housing air outlet 102 to open or close the housing air outlet 102. In addition, the air guide plate 200 can also guide the air output to the room through the housing air outlet 102, or adjust the air outlet angle and air outlet direction of the housing air outlet 102, etc. The rotation axis of the air guide plate 200 is arranged along the length direction of the housing 100.

[0101] AsFigure 2 As shown in

[0102] As shown in Figure 2 and Figure 3 The hanging type air conditioner indoor unit comprises a push-out assembly for driving the air deflector 200 to push out in a direction away from the air outlet 102 of the cabinet or to retract in a direction close to the air outlet 102 of the cabinet, so that the air deflector 200 has a larger range of rotation angle.

[0103] In some embodiments, when the hanging type air conditioner indoor unit is running, the air deflector 200 is first pushed out and then rotated; when the hanging type air conditioner indoor unit stops running, the air deflector 200 is first rotated to reset and then retracted, which belongs to the conventional technical means in the art and will not be described here.

[0104] As shown in Figures 2-5 The push-out assembly comprises a push rod 400, one end of the push rod 400 is arranged inside the cabinet 100, the other end of the push rod 400 is arranged outside the cabinet 100, and the end of the push rod 400 arranged outside the cabinet 100 is connected to the air deflector 200. The push rod 400 is used to drive the air deflector 200 to push out in a direction away from the air outlet 102 of the cabinet or to retract the air deflector 200 in a direction close to the air outlet 102 of the cabinet.

[0105] As shown in Figure 4 The push-out assembly comprises a mechanism box 700 arranged inside the cabinet 100, and the mechanism box 700 is used to mount or accommodate the end of the push rod 400 arranged inside the cabinet 100.

[0106] As shown in Figure 6 The mechanism box 700 is provided with a through portion 701 for the push rod 400 to extend out of the mechanism box 700, so that one end of the push rod 400 is arranged inside the mechanism box 700 and the other end of the push rod 400 is arranged outside the mechanism box 700.

[0107] As shown in Figure 6 and Figure 7 The mechanism box 700 is provided with a rolling member 730 arranged inside the mechanism box 700 and close to the through portion 701, the rolling member 730 is arranged on both sides of the movement track of the push rod 400, and the rolling member 730 and the push rod 400 are in contact with each other to guide the movement of the push rod 400.

[0108] In some embodiments, the rolling member 730 is a roller, and when the push rod 400 moves, the roller rolls to reduce the friction between the push rod 400 and the rolling member 730.

[0109] For convenience of description, one end of the push rod 400 arranged in the mechanism box 700 is the connecting end of the push rod 400, and the other end of the push rod 400 arranged outside the mechanism box 700 is the telescopic end of the push rod 400. The connecting end and the telescopic end are arranged at two ends of the push rod 400 along the length direction of the push rod 400.

[0110] In some embodiments, a second cavity is formed inside the casing 100, and the second cavity is distributed along the length direction of the casing 100 and used for accommodating the mechanism box 700. The first cavity and the second cavity are separated from each other to prevent the air in the first cavity after being exchanged by the heat exchanger 600 from entering the second cavity, which not only may affect the working of the push-out assembly, but also may reduce the heat exchange efficiency of the heat exchanger 600.

[0111] It should be noted that the cavity wall of the second cavity is provided with a passing portion in communication with the second cavity, and the passing portion is arranged corresponding to the penetrating portion 701 to make the push rod 400 extend out of the casing 100 from the passing portion.

[0112] In some embodiments, the passing portion is a through port arranged below the front side of the casing 100, and the passing portion and the air outlet 102 of the casing 100 are distributed along the length direction of the casing 100.

[0113] As shown in Figures 7-9 , the push-out assembly comprises a crank 900 arranged in the mechanism box 700 and rotationally connected to the mechanism box 700, and the crank 900 is used for driving the push rod 400 to move linearly along the first direction to push out or retract the deflector 200.

[0114] As shown in Figure 10 and Figure 11 , the connecting end of the push rod 400 is provided with a first connecting portion 401 arranged along the second direction; as shown in Figure 12 , the outer edge of the crank 900 is provided with a second connecting portion 910 connected to the first connecting portion 401 to make the crank 900 connected to the push rod 400, so that the crank 900 drives the push rod 400 to move.

[0115] When the crank 900 rotates, the second connecting portion 910 moves, and the second connecting portion 910 is connected to the first connecting portion 401 arranged in the push rod 400, so that the second connecting portion 910 moves to drive the push rod 400 to move.

[0116] Since the second connecting portion 910 is arranged at the outer edge of the crank 900, when the crank 900 rotates, the second connecting portion 910 moves along an arc curve, as shown in Figure 13 and Figure 14As shown, the movement trajectory of the second connecting portion 910 is on a circle S with the rotation center of the crank 900 as the center and the distance from the second connecting portion 910 to the rotation center of the crank 900 as the radius, and the movement trajectory of the second connecting portion 910 is a part of the circle S.

[0117] Since the second connecting portion 910 moves along the arc-shaped curve and the push rod 400 reciprocates along the straight line, in the present application, the first connecting portion 401 is extended in the second direction, and the second connecting portion 910 is arranged in the first connecting portion 401 and slides along the first connecting portion 401, so as to prevent the movement of the second connecting portion 910 from interfering with the movement of the push rod 400.

[0118] The arc-shaped movement of the second connecting portion 910 is decomposed into a straight line movement in the first direction and a straight line movement in the second direction, wherein the movement of the second connecting portion 910 in the first direction drives the push rod 400 to move linearly in the first direction, and the movement of the second connecting portion 910 in the second direction is the sliding movement of the second connecting portion 910 along the first connecting portion 401.

[0119] It should be noted that the movement distance of the second connecting portion 910 in the first direction is the same as the linear movement distance of the push rod 400 in the first direction, and the movement distance of the second connecting portion 910 in the second direction is the sliding distance of the second connecting portion 910 along the first connecting portion 401.

[0120] As shown in Figure 13 and Figure 14 , the crank 900 applies a force F to the push rod 400 through the second connecting portion 910 to drive the push rod 400 to move, and the direction of the force F is tangent to the arc-shaped trajectory of the second connecting portion 910.

[0121] The force F applied by the crank 900 to the push rod 400 can be decomposed into a first component F1 and a second component F2, wherein the first component F1 is arranged in the first direction, and under the action of the first component F1, the push rod 400 moves linearly in the first direction; the second component F2 is arranged in the second direction, and under the action of the second component F2, the second connecting portion 910 slides along the first connecting portion 401.

[0122] As shown in Figure 15 , the distance from the second connecting portion 910 to the rotation center of the crank 900 is R, and the linear movement distance of the push rod 400 is L1, and the linear movement distance L1 of the push rod 400 and the distance R from the second connecting portion 910 to the rotation center of the crank 900 satisfy the relationship: L1≤2R.

[0123] The maximum movement distance of the second connecting part 910 in the first direction is 2R. If L1>2R, the second connecting part 910 can be separated from the first connecting part 401 during the movement of the push rod 400, which reduces the reliability of the movement of the push rod 400 and cannot realize the retraction of the push rod 400.

[0124] As shown in Figures 16-18 , the first connecting part 401 is formed with a first position and a second position, and the second connecting part 910 reciprocates linearly between the first position and the second position to push out or retract the push rod 400. It should be noted that the first position and the second position correspond to two end points of the arc trajectory of the second connecting part 910.

[0125] A plane passing through the rotation axis of the crank 900 and parallel to the first direction is a first plane 901, and one diameter of the crank 900 is located on the first plane 901. It should be noted that the first plane 901 is constant, and the position of the first plane 901 does not change with the rotation of the crank 900.

[0126] As shown in Figure 16 , when the second connecting part 910 is at the first position, as the crank 900 rotates, the second connecting part 910 moves in the second direction away from the first plane 901; as shown in Figure 17 , when the second connecting part 910 is at the second position, as the crank 900 rotates, the second connecting part 910 moves in the second direction towards the first plane 901. Therefore, on the arc trajectory of the second connecting part 910, when the second connecting part 910 is at the first position, the second connecting part 910 is closest to the first plane 901; when the second connecting part 910 is at the second position, the second connecting part 910 is farthest from the first plane 901.

[0127] As shown in Figure 16 , when the second connecting part 910 is at the first position, the distance from the second connecting part 910 to the first plane 901 is D1; as shown in Figure 17 , when the second connecting part 910 is at the second position, the distance from the second connecting part 910 to the first plane 901 is D2, and D2 and D1 satisfy the relationship: D2>D1.

[0128] It should be noted that on a circle S with the center of rotation of the crank 900 as the center and the distance R from the second connecting part 910 to the center of rotation of the crank 900 as the radius, the maximum distance from the second connecting part 910 to the first plane 901 is the distance R from the second connecting part 910 to the center of rotation of the crank 900. Therefore, on the trajectory of the second connecting part 910, the distance D2 from the second connecting part 910 to the first plane 901 is less than or equal to R.

[0129] The length of the first connecting portion 401 is L2, and L2, D1 and D2 satisfy the relationship L2≥D2-D1, so as to ensure the reliability of the sliding of the second connecting portion 910. If L2<D2-D1, the edge of the first connecting portion 401 will block the second connecting portion 910, so that the second connecting portion 910 cannot move to the second position or the first position.

[0130] It should be noted that, since the second connecting portion 910 moves along the arc-shaped track, according to the characteristics of the arc-shaped track, the first position and the second position do not necessarily correspond to the pushing out and retraction of the push rod 400, that is, when the second connecting portion 910 is in the second position, the push rod 400 does not necessarily be in the state of pushing out or retraction, which is the common technical knowledge in the art and will not be described here.

[0131] In some embodiments of the present application, as shown in Figure 16 , when the second connecting portion 910 is in the first position, the push rod 400 is retracted; as shown in Figure 17 , when the second connecting portion 910 is in the second position, the push rod 400 moves to an intermediate position of the pushing out movement or the retraction movement; when the push rod 400 is pushed out, the second connecting portion 910 is in the first position or a position between the first position and the second position.

[0132] In other words, when the push rod 400 is pushed out, the second connecting portion 910 first slides from the first position to the second position, and then slides from the second position to the first position, so as to push out the push rod 400 in the first direction. When the push rod 400 is retracted, the second connecting portion 910 first slides from the first position to the second position, and then slides from the second position to the first position, so as to retract the push rod 400.

[0133] That is, in the pushing out or retraction movement of the push rod 400, the second connecting portion 910 moves from the first position to the second position, and then moves from the second position to the first position.

[0134] By reciprocating the second connecting portion 910 between the first position and the second position, the pushing out and retraction movements of the push rod 400 are realized. In the case of the same movement distance of the push rod 400, such a design can reduce the activity range of the second connecting portion 910, that is, reduce the length of the first connecting portion 401, so as to reduce the occupied space of the first connecting portion 401 and facilitate the arrangement of the pushing out assembly.

[0135] In the present embodiment, as shown in Figure 16 and Figure 18 , when the second connecting portion 910 is in the first position, the push rod 400 is retracted or pushed out; as shown in Figure 17 , when the second connecting portion 910 is in the second position, the push rod 400 moves to an intermediate position of the pushing out movement or the retraction movement.

[0136] The linear motion distance L1 of the push rod 400, the distance R from the second connecting portion 910 to the rotation center of the crank 900, and the rotation angle θ of the crank 900 satisfy the relationship L1=R-R-cos θ.

[0137] The distance d from the second connecting portion 910 to the first position, the distance R from the second connecting portion 910 to the rotation center of the crank 900, and the rotation angle θ of the crank 900 satisfy the relationship d=R-sin θ.

[0138] It should be noted that the distance d from the second connecting portion 910 to the first position is not completely equal to the sliding distance of the second connecting portion 910. During the movement of the second connecting portion 910 from the first position to the second position, the distance d from the second connecting portion 910 to the first position is equal to the sliding distance of the second connecting portion 910. However, during the movement of the second connecting portion 910 from the second position to the first position, the distance d from the second connecting portion 910 to the first position is less than the sliding distance of the second connecting portion 910. At this time, the sliding distance of the second connecting portion 910 is equal to the sum of the length from the first position to the second position and the distance d from the second connecting portion 910 to the first position. This is because the second connecting portion 910 can only move from the first position to the second position before moving from the second position to the first position.

[0139] As shown in FIG. 4, the second connecting portion 910 is located on the second plane 902. Figure 15 As shown in FIG. 4, the second connecting portion 910 is located on the second plane 902.

[0140] The second plane 902 and the first plane 901 define an included angle A. The angle of the included angle A changes. When the crank 900 rotates, the angle of the included angle A changes synchronously, and the change amount of the included angle A is equal to the rotation angle θ of the crank 900.

[0141] When the second connecting portion 910 is at the first position, the angle of the included angle A is an initial angle. When the second connecting portion 910 is at the first position, the angle of the included angle A is α, where α can be 0° or other degrees.

[0142] In some embodiments, as shown in FIG. 4, when the second connecting portion 910 is at the second position, the included angle A is 90°. Figure 17

[0143] In some embodiments, as shown in FIG. 4, when the second connecting portion 910 is at the second position, the included angle A is 90°. Figure 16 Figure 18 ​​As shown, when the second connecting part 910 is in the first position, the angle A varies depending on the state of the push rod 400. The angle A is greater when the push rod 400 is pushed out than when the push rod 400 is retracted.

[0144] It should be noted that during the push-rod 400 push-out process, when the included angle A is less than or equal to 90°, the second connecting part 910 moves from the first position to the second position; when the included angle A is greater than 90°, the second connecting part 910 moves from the second position to the first position.

[0145] During the retraction of push rod 400, when the included angle A is greater than or equal to 90°, the second connecting part 910 moves from the first position to the second position; when the included angle A is less than 90°, the second connecting part 910 moves from the second position to the first position.

[0146] When the second connecting part 910 is in the first position, the distance D1 from the second connecting part 910 to the first plane 901 is R·sinα. Therefore, the length L2 of the first connecting part 401 is ≥ RR·sinα.

[0147] like Figure 16 As shown, the plane passing through the rotation axis of crank 900 and perpendicular to the trajectory of push rod 400 is the third plane 903, and one of the diameters of crank 900 lies on the third plane 903. It should be noted that the third plane 903 is constant, and its position does not change with the rotation of crank 900.

[0148] When the second connecting part 910 is in the first position, the distance s1 from the second connecting part 910 to the third plane 903 is R·sinα, and the linear motion distance L1 of the push rod 400 is ≤2R·cosα. This is because: when the second connecting part 910 is in the first position, the distance from the second connecting part 910 to the third plane 903 is the largest. During the movement of the second connecting part 910 from the first position to the second position, the movement distance of the second connecting part 910 along the first direction is less than or equal to R·cosα. Similarly, during the movement of the second connecting part 910 from the second position to the first position, the movement distance of the second connecting part 910 along the first direction is less than or equal to R·cosα. Therefore, the linear motion distance L1 of the push rod 400 is ≤2R·cosα.

[0149] Given that the linear motion distance L1 of push rod 400 and the initial angle α of included angle A are known, the distance R from the second connecting part 910 to the rotation center of crank 900 can be calculated, where R≤L1 / 2cosα.

[0150] According to the foregoing, the length L2 of the first connecting portion 401 is greater than or equal to R-R*sin a, and thus the linear motion distance L1 of the push rod 400, the length L2 of the first connecting portion 401, and the following relationship is satisfied: L2≥L1(1-sin a) / 2cos a.

[0151] According to the foregoing, the length L2 of the first connecting portion 401 is greater than or equal to R-R*sin a, and thus the linear motion distance L1 of the push rod 400, the length L2 of the first connecting portion 401, and the following relationship is satisfied: L2≥L1(1-sin a) / 2cos a.

[0152] In some embodiments, the length L2 of the first connecting portion 401 is calculated according to the linear motion distance L1 of the push rod 400 and the included angle A, so that the length of the first connecting portion 401 is within a suitable range under the premise of ensuring the reliability of the motion of the push rod 400, so as to reduce the occupied space of the push-out assembly.

[0153] In some embodiments, the outer diameter of the second connecting portion 910 is r1, and the length of the first connecting portion 401 is greater than or equal to R-R*cos a+2r1, so as to ensure that the second connecting portion 910 can reciprocate linearly between the first position and the second position when sliding in the first connecting portion 401.

[0154] As shown in Figure 4 and Figure 5 , the push-out assembly comprises a driving motor 800 for driving the crank 900 to rotate; the driving motor 800 is mounted in the mechanism box 700.

[0155] In some embodiments, the driving motor 800 is arranged outside the mechanism box 700, and a motor shaft of the driving motor 800 extends into the mechanism box 700 and is connected with the crank 900 to drive the crank 900 to rotate.

[0156] In another embodiment, as shown in Figure 12 , a driving gear 810 is connected with the motor shaft of the driving motor 800, and the driving gear 810 is arranged in the mechanism box 700; the outer edge of the crank 900 is provided with a tooth portion 920, and the tooth portion 920 is engaged with the driving gear 810. The driving motor 800 drives the crank 900 to rotate through the driving gear 810, so that the driving motor 800 can have a larger driving force.

[0157] The working principle of the push-out assembly is as follows: the driving motor 800 drives the crank 900 to rotate through the driving gear 810, the second connecting portion 910 rotates synchronously with the crank 900, the second connecting portion 910 slides along the first connecting portion 401, and at the same time, the second connecting portion 910 drives the push rod 400 to move linearly in the first direction, so as to retract the air deflector 200 towards the air outlet 102 of the casing or push out the air deflector 200 away from the air outlet 102 of the casing.

[0158] Since the second connecting part 910 moves along an arc-shaped track, in order to ensure that the push rod 400 moves linearly along the first direction, as shown in Figure 8 and Figure 19 illustrated, the present application is provided with a guide part 711 on the mechanism box 700, the guide part 711 extends along the first direction, the connecting end of the push rod 400 is connected with a limiting part 410, the limiting part 410 is arranged in the guide part 711 and slides along the guide part 711, so as to guide the movement of the push rod 400 and limit the movement track of the push rod 400, thereby ensuring that the push rod 400 moves linearly along the first direction reliably.

[0159] As shown in Figure 19 , the length of the guide part 711 is H1, and the movement distance of the push rod 400 is L1, and L1 and H1 satisfy the relationship: H1≥L1.

[0160] If H1<L1, the movement distance of the limiting part 410 is H1, and the limiting part 410 is connected to the push rod 400, when the limiting part 410 cannot continue to move to the end of the guide part 711, the push rod 400 cannot continue to move under the action of the limiting part 410, so that the movement distance of the push rod 400 is H1, which reduces the movement distance of the push rod 400.

[0161] When the crank 900 rotates, the push rod 400 will have a tendency to move along the second direction under the action of the second component force F2, in the present application, the guide part 711 exerts a pulling force on the limiting part 410 which is the same in size and opposite in direction to the second component force F2, so as to balance the force on the push rod 400 in the second direction, and make the push rod 400 move linearly and reciprocally, so as to push out or retract the deflector 200.

[0162] Specifically, as shown in Figure 21 , the inner wall of the guide part 711 is provided with a limiting rib 714 which extends along the extension direction of the guide part 711; as shown in Figure 24 , the limiting part 410 is provided with a recess 411 which is recessed in the peripheral wall of the limiting part 410 along the circumferential direction of the limiting part 410, and the limiting rib 714 is arranged in the recess 411, so as to prevent the limiting part 410 from disengaging from the guide part 711, thereby making the guide part 711 exert a force on the push rod 400 along the second direction, and ensuring that the push rod 400 is balanced in force in the second direction.

[0163] It should be noted that since the limiting rib 714 is arranged in the recess 411, the guide part 711 can also limit and constrain the axial direction of the limiting part 410 through the limiting rib 714, thereby limiting and constraining the axial direction of the push rod 400 through the limiting part 410, so as to prevent the push rod 400 from moving in the axial direction of the limiting part 410.

[0164] The guide portions 711 are provided in two, corresponding to the two sides of the movement track of the push rod 400; the limiting pieces 410 are connected to one end of the push rod 400 arranged in the mechanism box 700, and the limiting pieces 410 are also provided in two, and the limiting pieces 410 are arranged in the guide portions 711 one by one to guide and limit the linear movement of the push rod 400.

[0165] By providing two guide portions 711, two limiting pieces 410 are also provided, so that the push rod 400 slides relative to the mechanism box 700 through the two limiting pieces 410, so that the push rod 400 contacts and slides relative to the mechanism box 700 in the form of a line, increasing the reliability and stability of the sliding of the push rod 400 relative to the mechanism box 700.

[0166] The distances from the two limiting pieces 410 to the end of the push rod 400 arranged in the mechanism box 700 are different, so as to increase the stability and reliability of the sliding process of the push rod 400 relative to the mechanism box 700.

[0167] The limiting piece 410 close to the crank 900 is arranged closer to the end of the push rod 400 arranged in the mechanism box 700, so as to increase the stability and reliability of the sliding process of the push rod 400 relative to the mechanism box 700.

[0168] The two limiting pieces 410 are arranged corresponding to the two sides of the extension direction of the first connecting portion 401, so as to increase the stability and reliability of the sliding process of the push rod 400 relative to the mechanism box 700.

[0169] The ends of the two guide portions 711 are staggered along the movement track of the push rod 400, so as to increase the stability and reliability of the sliding process of the push rod 400 relative to the mechanism box 700.

[0170] As shown in Figure 21 The inner wall of the guide portion 711 towards the side of the push rod 400 is provided with a avoiding portion 715, the avoiding portion 715 extends along the arrangement direction of the guide portion 711, and the avoiding portion 715 is used to reduce the contact area of the limiting piece 410 and the guide portion 711.

[0171] In some embodiments, the mechanism box 700 is produced by the process of injection molding, and the limiting ribs 714 arranged on the inner wall of the guide portion 711 may not be convenient for the mold used to form the limiting ribs 714 to be demolded. By providing the avoiding portion 715 on the inner wall of the guide portion 711 towards the side of the push rod 400, the mold used to form the limiting ribs 714 can be demolded from the avoiding portion 715.

[0172] In some embodiments, the guide portion 711 is provided with lubricating oil or grease, so as to reduce the friction generated in the sliding process of the limiting piece 410 along the guide portion 711.

[0173] In some embodiments, as shown in Figure 21As shown, in order to prevent lubricating oil or grease from dripping from the relief part 715, a blocking part 716 is provided on the inner wall of the guide part 711 facing the push rod 400 to block the lubricating oil or grease, thereby preventing the lubricating oil or grease from dripping.

[0174] In some embodiments, the clearance portion 715 is an opening provided on the inner wall of the guide portion 711 facing the push rod 400, and the blocking portion 716 is the inner wall of the guide portion 711 facing the push rod 400. By designing the mechanism box 700 as a semi-hollow structure, the contact area between the limiting member 410 and the guide portion 711 can be reduced on the one hand, and the dripping of lubricating oil or grease can be prevented on the other hand.

[0175] like Figure 20 As shown, the mechanism box 700 is provided with a mounting part 712, which is located on the extension path of the guide part 711 and communicates with the guide part 711. The mounting part 712 is located at the end of the guide part 711, and the limiting member 410 is located in the guide part 711 through the mounting part 712.

[0176] The inner walls of the guide portion 711 on both sides are provided with limiting ribs 714. The distance between the two limiting ribs 714 is greater than or equal to the outer diameter of the recess 411, so that the limiting ribs 714 can be provided inside the recess 411. The distance between the two limiting ribs 714 is less than or equal to the outer diameter of the limiting member 410, so that the limiting ribs 714 can constrain the limiting member 410 and prevent the limiting member 410 from detaching from the guide portion 711.

[0177] The inner diameter of the mounting part 712 is greater than or equal to the outer diameter of the limiting member 410. The mounting part 712 is connected to the guide part 711. The inner diameter of the mounting part 712 is greater than the distance between the two limiting ribs 714, so that the limiting member 410 can be installed from the mounting part 712 into the guide part 711.

[0178] The dimension of the mounting portion 712 along the movement trajectory of the push rod 400 is H2, and the outer diameter of the limiting member 410 is r2. H2 and r2 satisfy the relationship: H2 ≥ 2r2, so that the limiting member 410 can be disposed within the mounting portion 712, and thus disposed within the guide portion 711 through the mounting portion 712. If H2 < 2r2, the limiting member 410 cannot be disposed within the mounting portion 712, and thus cannot be disposed within the guide portion 711 through the mounting portion 712.

[0179] It should be noted that when calculating the length H1 of the guide portion 711, the dimension H2 of the mounting portion 712 should not be included. This is common knowledge in the art and will not be elaborated further.

[0180] When the limiting member 410 arranged in the guide portion 711 moves to the mounting portion 712, the limiting member 410 is easy to be separated from the guide portion 711, and the reliability of the movement of the push rod 400 is reduced. Therefore, the limiting portion 721 is arranged in the mechanism box 700, and the limiting portion 721 is located in front of the mounting portion 712 along the movement direction of the push rod 400, so as to prevent the limiting member 410 arranged in the guide portion 711 from moving to the mounting portion 712.

[0181] It should be noted that when the push rod 400 moves along the part of the movement track in front of the limiting portion 721 along the movement direction of the push rod 400, the limiting member 410 will not move to the mounting portion 712, so as to ensure the reliability of the movement of the push rod 400.

[0182] Although the limiting portion 721 prevents the limiting member 410 from moving to the mounting portion 712, which can increase the reliability of the movement of the push rod 400, the limiting portion 721 also causes that the limiting member 410 cannot be detached from the mounting portion 712, and the limiting member 410 cannot move to the front of the limiting portion 721 after being arranged in the guide portion 711 from the mounting portion 712.

[0183] Therefore, in some embodiments of the present application, the mechanism box 700 is designed as a split structure, and the mounting portion 712 and the limiting portion 721 are arranged on different side walls, so as to ensure the limiting effect of the limiting portion 721 on the limiting member 410, and facilitate the installation of the push rod 400 in the mechanism box 700.

[0184] Specifically, as shown in Figure 19 and Figure 21 , the mechanism box 700 comprises a first box 710, and the guide portion 711 and the mounting portion 712 are arranged in the first box 710.

[0185] As shown in Figure 22 , the mechanism box 700 comprises a second box 720, and the second box 720 is spliced with the first box 710; the second box 720 is provided with the limiting portion 721; the limiting portion 721 is arranged on the movement track of the push rod 400, and is used for limiting the movement position of the push rod 400.

[0186] As shown in Figure 19 , the first box 710 is provided with a first ear portion 713, the first ear portion 713 is arranged at the outer edge of the first box 710, the first ear portion 713 is located outside the mechanism box 700, and the first ear portion 713 is connected with the second box 720 by a fastener such as a bolt or a screw.

[0187] As shown in Figure 22As shown, the second box 720 is provided with a second ear 722, which is arranged at the outer edge of the second box 720 and is located outside the mechanism box 700. The second ear 722 is arranged correspondingly to the first ear 713 and is connected to the first ear 713 by a fastener such as a bolt or a screw, so as to realize the splicing of the second box 720 and the first box 710.

[0188] After the second box 720 is spliced with the first box 710, the limiting part 721 is located in front of the mounting part 712 along the movement track of the push rod 400, so as to prevent the limiting part 410 arranged in the guide part 711 from moving to the mounting part 712.

[0189] As shown, Figure 23 The connecting end of the push rod 400 arranged in the mechanism box 700 is connected with a connecting part 420. The width dimension of the connecting part 420 is greater than the width dimension of the push rod 400. The connecting part 420 abuts against the limiting part 721, so as to prevent the push rod 400 from continuing to move.

[0190] It should be noted that the movement track of the push rod 400 is also the movement track of the limiting part 410.

[0191] In this embodiment, the mounting part 712 is arranged close to the position where the push rod 400 penetrates out of the mechanism box 700. The mounting part 712 is located behind the limiting part 721 along the movement direction of the push rod 400 when the push rod 400 is pushed out, and the mounting part 712 is located in front of the limiting part 721 along the movement track of the push rod 400 when the push rod 400 is retracted.

[0192] The mounting steps of the push rod 400 are as follows: first, connect the limiting part 410 to the push rod 400, and then arrange the limiting part 410 in the guide part 711 from the mounting part 712, so that the limiting part 714 is arranged in the recess 411, so as to realize the assembly of the push rod 400 and the first box 710; then, move the limiting part 410 along the guide part 711 to a third position away from the mounting part 712, so that the second box 720 is spliced with the first box 710, so as to realize the assembly of the push rod 400, the first box 710 and the second box 720.

[0193] It should be noted that the third position is located behind the limiting part 721 along the movement direction of the push rod 400.

[0194] In some embodiments of the present application, as shown, Figure 2 The rotating motor 500 is arranged at one end of the push rod 400 outside the cabinet 100.

[0195] As shown, Figure 25 The push rod 400 is internally defined with a channel 402. The rotating motor 500 is arranged in the channel 402. The motor shaft of the rotating motor 500 is connected to the air deflector 200 through the sidewall of one side of the channel 402, so as to drive the air deflector 200 to rotate.

[0196] Channel 402 extends along the length of push rod 400. The motor wires of rotary motor 500 are routed through channel 402, which not only hides the motor wires of rotary motor 500, but also protects them.

[0197] In some embodiments, two ejection components are configured, with the two ejection components located at opposite ends of the guide plate 200 along its length, so that the guide plate 200 is subjected to uniform force, thereby increasing the smoothness of the ejection and retraction movements of the guide plate 200; the two ejection components work synchronously to ensure the reliability of the movement of the guide plate 200.

[0198] The aforementioned wall-mounted air conditioner indoor unit utilizes a drive motor 800 to drive a crank 900 to rotate, which in turn causes the crank 900 to drive a push rod 400 in linear motion, thereby enabling the air guide plate 200 to be pushed out and retracted. By utilizing the motion principle of the crank-push rod mechanism, not only can the stability of the push rod 400's movement be increased, but the push rod 400 can also have a larger load-bearing capacity, allowing it to drive the larger air guide plate 200. Furthermore, the push rod 400 operates with low noise and high reliability.

[0199] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.

[0200] For ease of explanation, the above description has been provided in conjunction with specific embodiments. However, the above exemplary discussion is not intended to be exhaustive or to limit the embodiments to the specific forms disclosed above. Various modifications and variations can be obtained based on the above teachings. The selection and description of the above embodiments are for the purpose of better explaining the principles and practical applications, thereby enabling those skilled in the art to better utilize the described embodiments and various different variations of embodiments suitable for specific use considerations.

Claims

1. A wall-mounted air conditioner indoor unit, characterized in that, include: The housing has an air inlet on the top and an air outlet on the lower front side. A heat exchanger is disposed inside the casing, with at least a portion of the air-facing side of the heat exchanger facing the air inlet of the casing; A heat exchange fan is disposed inside the housing; the heat exchange fan is located on the leeward side of the heat exchanger; An air guide plate is rotatably disposed at the air outlet of the housing; the rotation axis of the air guide plate is arranged along the length direction of the housing. A push rod, the telescopic end of which is connected to the air guide plate and located outside the housing; the push rod reciprocates linearly along a first direction to drive the air guide plate to push out in a direction away from the air outlet of the housing or to retract in a direction close to the air outlet of the housing; the connecting end of the push rod is located inside the housing, and the connecting end of the push rod is connected to a limiting member; The mechanism box is disposed within the housing, and the connecting end of the push rod is disposed within the mechanism box; the mechanism box includes: The first box has a guide section that extends along the first direction. The limiting member is slidably connected inside the guide section to guide and limit the movement of the push rod. The first box also has a mounting section for the limiting member to be disposed inside the guide section. The mounting section is disposed on the extension path of the guide section and communicates with the guide section. The second box is detachably connected to the first box; the second box is provided with a limiting part, which is located on the movement trajectory of the push rod to limit the movement position of the push rod; After the second box and the first box are spliced ​​together, the limiting part is located in front of the mounting part along the movement direction of the push rod, so as to prevent the limiting member provided in the guide part from moving to the mounting part.

2. The wall-mounted air conditioner indoor unit according to claim 1, characterized in that, The push rod is connected to a connector at its connecting end. The connector is located inside the mechanism box. The width of the connector is greater than the width of the push rod. The connector abuts against the limiting part to prevent the push rod from moving further.

3. The wall-mounted air conditioner indoor unit according to claim 1, characterized in that, The inner wall of the guide portion is provided with a limiting rib, which is arranged along the extending direction of the guide portion; the limiting member is provided with a recess, which is recessed into the peripheral wall of the limiting member along the circumferential direction of the limiting member, and the limiting rib is provided in the recess to prevent the limiting member from detaching from the guide portion.

4. The wall-mounted air conditioner indoor unit according to claim 3, characterized in that, The inner walls on both sides of the guide portion are respectively provided with limiting ribs. The distance between the two limiting ribs is greater than or equal to the outer diameter of the recess, and the distance between the two limiting ribs is less than or equal to the outer diameter of the limiting member.

5. The wall-mounted air conditioner indoor unit according to claim 4, characterized in that, The inner diameter of the mounting part is greater than or equal to the outer diameter of the limiting member, and the inner diameter of the mounting part is greater than the distance between the limiting ribs on both sides.

6. The wall-mounted air conditioner indoor unit according to claim 1, characterized in that, When the second box is spliced ​​with the first box, the limiting member moves along the guide to the third position, and the third position is located behind the limiting part along the movement direction of the limiting member.

7. The wall-mounted air conditioner indoor unit according to claim 1, characterized in that, The length of the guide is H1, and the movement distance of the push rod is L1. L1 and H1 satisfy the relationship: H1≥L1.

8. The wall-mounted air conditioner indoor unit according to claim 1, characterized in that, The dimension of the mounting part along the movement trajectory of the push rod is H2, and the outer diameter of the limiting member is r2. H2 and r2 satisfy the relationship: H2≥2r2.

9. The wall-mounted air conditioner indoor unit according to claim 1, characterized in that, The mounting part is located behind the limiting part along the movement trajectory of the push rod when it is pushed out, and the mounting part is located in front of the limiting part along the movement trajectory of the push rod when it is retracted.

10. A wall-mounted air conditioner indoor unit, characterized in that, include: The housing has an air inlet on its top and an air outlet on its lower front side. A heat exchanger is disposed inside the casing, with at least a portion of the air-facing side of the heat exchanger facing the air inlet of the casing; A heat exchange fan is disposed inside the housing; the heat exchange fan is located on the leeward side of the heat exchanger; An air guide plate is rotatably disposed at the air outlet of the housing; the rotation axis of the air guide plate is arranged along the length direction of the housing. An ejection assembly is used to drive the air guide plate to extend away from the air outlet of the housing or retract towards the air outlet of the housing; the ejection assembly includes: A push rod, one end of which is located inside the housing and the other end of which is located outside the housing; the end of the push rod located outside the housing is connected to the air guide plate; and the end of the push rod located inside the housing is provided with a limiting component. A crank, connected to one end of the push rod located inside the housing, is used to drive the push rod to move linearly, so as to push out or retract the air guide plate; A mechanism housing, disposed inside the housing, for accommodating one end of the push rod located within the housing and for mounting the crank; the mechanism housing includes: The first box has a guide section that extends along the movement trajectory of the push rod. The limiting member is slidably connected inside the guide section to guide and restrict the movement of the push rod. The first box also has a mounting section for the limiting member to be located inside the guide section. The mounting section is located near the position where the push rod passes through the mechanism box. The second box is provided with a limiting part; the limiting part is provided on the movement trajectory of the push rod and is used to limit the movement position of the push rod. After the second box and the first box are spliced ​​together, the limiting part is located in front of the mounting part along the movement trajectory of the push rod when it is pushed out, so as to prevent the limiting member provided in the guide part from moving to the mounting part.