Indoor air control system and air conditioner

By designing movable air outlet ducts and drive components, the energy waste problem caused by the fixation of air outlets in indoor air conditioning equipment is solved, flexible air outlet adjustment and efficient air conditioning in user areas are achieved, and comfort and energy-saving effects are improved.

CN120385151APending Publication Date: 2025-07-29QINGDAO HAIER AIR CONDITIONING ELECTRONICS CO LTD +2
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Patent Information

Application Number
CN202510113027.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-01-23
Publication Date
2025-07-29

AI Technical Summary

Technical Problem

The air outlets of existing indoor air conditioning equipment are usually fixed, which makes it take a long time for other areas of the room to meet the set air parameter standards, increasing power consumption.

Method used

An indoor air control system is designed, including a heat exchange assembly, an air duct assembly and a fan. The air duct assembly includes an air duct body, an air inlet and a movable air outlet duct. The air duct is moved along the length of the air duct body by moving the air duct and driving assembly to achieve flexible adjustment of the air outlet.

Benefits of technology

The air outlet position can be adjusted according to the user's location, improve the comfort of the user area, reduce overall power consumption and save energy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of air conditioning, in particular to an indoor air control system, and aims to solve the problem that an air outlet of existing equipment for conditioning indoor air generally cannot be moved. In order to achieve the purpose, the indoor air control system comprises a heat exchange assembly, an air duct assembly and a draught fan, and the heat exchange assembly is arranged on the outdoor side or the indoor side and the outdoor side; the air duct assembly is connected with the heat exchange assembly and comprises an air duct body, an air inlet, an air outlet pipeline and a moving assembly, and the air outlet pipeline can move in the length direction of the air duct body under the action of the moving assembly; the fan is arranged in the air duct assembly and used for driving air to enter from the air inlet and be exhausted from the air outlet pipeline. By means of the arrangement mode, in the process that the air control system adjusts indoor air, the position of the air outlet pipeline can be adjusted according to the position of a user, so that the indoor air control system can directly blow the area where the user is located, and the comfort of the user is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of air conditioning, and particularly provides an indoor air control system and an air conditioner. Background Art

[0002] The air outlets of existing devices for adjusting indoor air are usually fixed. For example, after an air conditioner or a fresh air system is installed in place, the position of the air outlet of the air conditioner or the fresh air system is often fixed. In this way, the air conditioner or the fresh air system can only quickly adjust the air parameters in the corresponding area of the room, while it takes a longer time for other areas to reach the set air parameter standard, thus increasing power consumption.

[0003] For this reason, people have carried out long-term explorations and proposed various solutions. For example, the refrigerant pipeline between the indoor unit and the outdoor unit of the air conditioner is set to be telescopic so that the indoor unit of the air conditioner can move. However, due to the poor sealing and stability of the telescopic refrigerant pipeline, a large amount of manual maintenance costs are required, and thus the above-mentioned air conditioner with a telescopic refrigerant pipeline cannot be widely applied in the market.

[0004] Correspondingly, a new technical solution is needed in this field to solve the above problems. Summary of the Invention

[0005] The present invention aims to solve the above technical problems, that is, to solve the problem that the air outlets of existing devices for adjusting indoor air are usually immovable.

[0006] In a first aspect, the present invention provides an indoor air control system, which includes:

[0007] A heat exchange component, which is arranged on the outdoor side or both the indoor side and the outdoor side;

[0008] An air duct component, which includes an air duct main body, an air inlet, an air outlet duct and a moving component. At least part of the air duct main body is laid on the side wall of the wall on the indoor side. The air duct component is connected to the heat exchange component. The air inlet is arranged on the air duct main body so that the air entering the air inlet can exchange heat with the heat exchange component. The air outlet duct is movably connected to the air duct main body. The moving component is correspondingly connected to the air outlet duct and the air duct main body. The moving component is configured to be able to drive the air outlet duct to move relative to the air duct main body along the length direction of the air duct main body, so that the air outlet duct can become a moving air outlet on the air duct main body; and

[0009] A fan, which is arranged inside the air duct main body and / or the air outlet duct and is used to drive air to enter from the air inlet and be discharged from the air outlet.

[0010] In the preferred technical solution of the above indoor air control system, the moving assembly includes:

[0011] A flexible sealing member, which extends along the length direction of the duct main body. The flexible sealing member includes a first flexible sealing strip, a second flexible sealing strip and a sealing assembly. The first flexible sealing strip, the second flexible sealing strip and the sealing assembly are located on both sides of the air outlet duct. The sealing assembly is configured to enable the first flexible sealing strip and the second flexible sealing strip to switch between a sealed state and a non-sealed state during the process of the air outlet duct sliding relative to the duct main body, and is also configured to enable the opening between the first flexible sealing strip and the second flexible sealing strip to move along with the air outlet duct, and the opening can surround the outer wall of the air outlet duct;

[0012] A sliding assembly, which is correspondingly connected to the duct main body and the air outlet duct, so that the air outlet duct can slide relative to the duct main body along the length direction of the duct main body through the sliding assembly; and

[0013] A driving assembly, which is correspondingly connected to the air outlet duct and the duct main body, and is used to drive the air outlet duct to move relative to the duct main body.

[0014] In the preferred technical solution of the above indoor air control system, the sealing assembly includes:

[0015] A first flexible chain, which extends along the length direction of the first flexible sealing strip and is arranged at the end of the first flexible sealing strip close to the second flexible sealing strip;

[0016] A second flexible chain, which extends along the length direction of the second flexible sealing strip and is arranged at the end of the second flexible sealing strip close to the first flexible sealing strip;

[0017] A first pull head, which is correspondingly connected to the first flexible chain and the second flexible chain, and is configured to enable the first flexible chain and the second flexible chain to merge or separate; and

[0018] A second pull head, which is correspondingly connected to the first flexible chain and the second flexible chain, and is configured to enable the first flexible chain and the second flexible chain to merge or separate;

[0019] Wherein, when the first slider and the second slider are configured to move towards each other, the first flexible chain and the second flexible chain between them can be gradually merged, and when the first slider and the second slider are configured to move away from each other, the first flexible chain and the second flexible chain between them can be gradually separated, and the air outlet duct is correspondingly connected to the first slider and the second slider, so that the first slider and the second slider can move relative to the air duct main body following the air outlet duct.

[0020] In the preferred technical solution of the above indoor air control system, the sealing assembly includes:

[0021] A first flexible magnetic member, which is arranged at an end of the first flexible sealing strip close to the second flexible sealing strip along the length direction of the first flexible sealing strip; and

[0022] A second flexible magnetic member, which is arranged at an end of the second flexible sealing strip close to the first flexible sealing strip along the length direction of the second flexible sealing strip, and the first flexible magnetic member and the second flexible magnetic member are configured to be able to attract each other.

[0023] In the preferred technical solution of the above indoor air control system, the sliding assembly is configured to be able to make the extension line of the axis of the air outlet duct perpendicular to and intersect with the axis of the air duct main body, and the sliding assembly is also configured to be able to make the included angle between the axis of the air outlet duct and the line in the direction of gravity remain unchanged.

[0024] In the preferred technical solution of the above indoor air control system, the sliding assembly includes:

[0025] A sliding sleeve, which is sleeved on the inner wall of the air duct main body, and the sliding sleeve is configured to be able to slidably connect with the inner wall of the air duct main body, and the sliding sleeve is also configured to be able to make the included angle between the axis of the air outlet duct and the line in the direction of gravity remain unchanged.

[0026] In the preferred technical solution of the above indoor air control system, the driving assembly includes:

[0027] A driving motor, which is fixedly connected to the outer wall of the air outlet duct;

[0028] A driving gear, which is fixedly connected to the output shaft of the driving motor; and

[0029] A driving rack, which is arranged on the outer wall of the air duct main body along the length direction of the air duct main body, and the position of the driving motor is configured such that after the driving gear is installed in place, the driving gear can be meshed and connected with the driving rack.

[0030] In the preferred technical solution of the above indoor air control system, the indoor air control system further includes a wind deflector assembly, which is correspondingly arranged at the end of the air outlet duct away from the duct main body for adjusting the air outlet direction of the air outlet duct.

[0031] In the preferred technical solution of the above indoor air control system, it is characterized in that the number of the air outlet ducts is multiple.

[0032] In the preferred technical solution of the above indoor air control system, the number of the fans is multiple, and the multiple fans are correspondingly arranged in the multiple air outlet ducts, or the multiple fans are correspondingly arranged at the air inlet and in the multiple air outlet ducts.

[0033] In a second aspect, the present invention provides an air conditioner, which includes the above air control system.

[0034] In the case of adopting the above technical solution, the duct main body of the duct assembly of the present invention is laid on the side wall of the indoor wall, and a movable air outlet duct is arranged on the duct main body so that the air outlet duct can become a movable air outlet on the duct main body, thereby enabling the indoor air control system of the present invention to adjust the position of the air outlet according to needs. In this way, the air parameters in a partial range of the room can be adjusted targeted. For example, during the process of adjusting the indoor air by the air control system of the present invention, the position of the air outlet can be adjusted according to the position of the user, so that the indoor air control system can directly blow the area where the user is located to improve the comfort of the user.

[0035] In addition, in this way, it is not necessary to wait until the air parameters in other areas of the room reach the set standard, and the air parameters in the area where the user is located can reach the set standard, so that the power consumption can be saved while meeting the user's usage requirements. BRIEF DESCRIPTION OF THE DRAWINGS

[0036] The preferred embodiments of the present invention will be described below with reference to the drawings, in which:

[0037] Figure 1 is a schematic structural view of the bottom view of the indoor air control system of the present invention;

[0038] Figure 2 is a schematic structural view of the side view of the indoor air control system of the present invention.

[0039] List of Reference Numerals:

[0040] 100, Indoor air control system; 1, Heat exchange component; 11, Evaporator; 12, Compressor; 13, Condenser; 2, Air duct component; 21, Air duct main body; 22, Air inlet; 23, Air outlet duct; 24, Moving component; 241, Flexible sealing member; 2411, First flexible sealing strip; 2412, Second flexible sealing strip; 2413, Sealing assembly; 24131, First flexible chain; 24132, Second flexible chain; 24133, First pull head; 24134, Second pull head; 242, Driving component; 2421, Driving motor; 2422, Driving rack; 2423, Driving gear; 243, Sliding component; 2431, Sliding sleeve; 3, Fan. Detailed implementation manners

[0041] The preferred implementation manners of the present invention will be described below with reference to the accompanying drawings. Those skilled in the art should understand that these implementation manners are only used to explain the technical principle of the present invention, and are not used to limit the protection scope of the present invention. Those skilled in the art can make adjustments according to needs to adapt to specific application scenarios. For example, although the specification is described in combination with an air conditioner, it is obviously also applicable to devices such as a fresh air system, an air purifier, and a dehumidifier.

[0042] It should be noted that in the description of the present invention, the terms indicating the direction or positional relationship such as "upper", "lower", "inner" and "outer" are based on the direction or positional relationship shown in the drawings. This is only for convenience of description, and does not indicate or imply that the device or component must have a specific orientation, be constructed and operated in a specific orientation, and therefore cannot be understood as a limitation to the present invention. In addition, the terms "first" and "second" are only used for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more features. In the description of the present invention, "a plurality" means two or more, unless otherwise specifically defined.

[0043] In addition, it should also be noted that in the description of the present invention, unless otherwise clearly specified and limited, the terms "installation", "connection" and "connection" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection, or an electrical connection; it can be directly connected, or indirectly connected through an intermediate medium, and it can be the communication inside two components. For those skilled in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.

[0044] In order to solve the problem that the air outlets of existing devices for regulating indoor air usually cannot move.

[0045] Figure 1 It is a schematic structural diagram of a bottom view of an indoor air control system 100 according to an embodiment of the present invention. Figure 2 It is a schematic structural diagram of a side view of an indoor air control system 100 according to an embodiment of the present invention.

[0046] As Figure 1 shown, reference can also be made to Figure 2, the present invention provides an indoor air control system 100. Specifically, in an embodiment of the present invention, the indoor air control system 100 is applied to an air conditioner. The air conditioner includes a heat exchange component 1, an air duct component 2, and a fan 3. The heat exchange component 1 is disposed on the outdoor side. Specifically, the heat exchange component 1 mainly includes an evaporator 11, a condenser 13, and a compressor 12. The compressor 12, the condenser 13, and the evaporator 11 are connected through a refrigerant pipeline. The evaporator 11 is used to absorb heat from the air, and the condenser 13 is used to release heat to the air. More specifically, when the present invention is specifically implemented, the compressor 12, the condenser 13, and the evaporator 11 are all installed on the outdoor side. The air duct component 2 includes an air duct main body 21, an air inlet 22, an air outlet pipe, and a moving component 24. At least a part of the air duct main body 21 is laid on the side wall of the indoor wall. Specifically, when the present invention is specifically implemented, when the evaporator 11 and the condenser 13 are both installed on the outdoor side, the main part of the air duct main body 21 is laid on the indoor wall. The heat exchange part of the air duct main body 21 passes through the wall and is located on the outdoor side. Specifically, the evaporator 11 or the condenser 13 is disposed on the part of the air duct main body 21 located on the outdoor side, so that the evaporator 11 or the condenser 13 can exchange heat with the air entering the air duct main body 21. The air inlet 22 is disposed on the part of the air duct main body 21 located on the indoor side. Specifically, the first end of the air duct main body 21 is disposed on the indoor side, and the air inlet 22 is disposed at the first end of the air duct main body 21, so that the indoor air can enter the air duct main body 21 through the air inlet 22, and the second end of the air duct main body 21 is in a closed state, so that the air entering the air duct main body 21 through the air inlet 22 can be blown out through the air outlet pipe 23. The air outlet pipe 23 is movably connected to the air duct main body 21. The moving component 24 is correspondingly connected to the air outlet pipe 23 and the air duct main body 21. The moving component 24 is configured to be able to drive the air outlet pipe to move relative to the air duct main body 21 along the length direction of the air duct main body 21, so that the air outlet pipe 23 can become a movable air outlet on the air duct main body 21. The fan 3 is disposed at the air inlet 22 of the air duct main body 21, and is used to drive the air to enter the interior of the air duct main body 21 from the air inlet 22 of the air duct main body 21 and be discharged into the room from the air outlet of the air duct main body 21. Through the above setting method, the air conditioner of the present invention can adjust the position of the air outlet according to needs, so that the air temperature in a local area of the room can be adjusted first in a targeted manner, so that the air conditioner can directly blow the area where the user is located, thereby improving the comfort of the user. In addition, in this way, it is not necessary to wait until the air temperature in other areas of the room reaches the set standard, and the air temperature in the area where the user is located can reach the set standard, so that the power consumption can be saved while meeting the user's usage requirements.

[0047] It should be noted that, although the above combination Figure 1 and Figure 2The described evaporator 11 and condenser 13 are installed on the outdoor side, but this is not restrictive. In other embodiments of the present invention, the evaporator 11 or the condenser 13 can also be installed on the indoor side. At this time, the air duct main body 21 can be entirely installed on the indoor side, which can reduce the installation difficulty of the air duct main body 21.

[0048] In addition, in other embodiments of the present invention, the evaporator 11 and the condenser 13 of the heat exchange assembly 1 can be switched with the switching between the cooling mode and the heating mode. In this way, the evaporator 11 or the condenser 13 of the heat exchange assembly 1 can always be located in the air inlet 22 of the air duct main body 21, so that the air conditioner of the present invention can be applicable to the cooling mode or the heating mode, thereby improving the versatility of the air conditioner.

[0049] Furthermore, although the Figure 1 described fan 3 is installed at the air inlet 22 of the air duct main body 21, this is not restrictive. In the specific implementation of the present invention, the fan 3 can also be installed in the air outlet duct 23, but this is not restrictive either. In other embodiments of the present invention, the number of fans 3 is multiple. At this time, the multiple fans 3 can be correspondingly installed at the air inlet 22 and the air outlet duct 23 of the air duct main body 21 to increase the air flow speed in the air duct, thereby improving the working efficiency of the air conditioner.

[0050] Finally, it is worth noting that in the specific implementation of the present invention, the air duct main body 21 can be distributed in multiple rooms on the indoor side. In this way, when using the air conditioner of the present invention, only one heat exchange assembly 1 can be used to adjust the air temperature in multiple rooms on the indoor side, which can reduce the cost of the air conditioner and the long-term operation cost, and can also reduce the later maintenance cost. Moreover, the air duct main body 21 of the air conditioner can also be installed at the connection between the indoor ceiling and the wall to serve as the decoration of the cornice, saving indoor space and making the indoor more beautiful and tidy.

[0051] As a possible implementation manner, such as Figure 1As shown, the moving component 24 includes a flexible sealing component 241, a sliding component 243, and a driving component 242. The flexible sealing component 241 extends along the length direction of the air duct main body 21. Specifically, the flexible sealing component 241 includes a first flexible sealing strip 2411, a second flexible sealing strip 2412, and a sealing component 2413. The first flexible sealing strip 2411, the second flexible sealing strip 2412, and the sealing component 2413 are located on both sides of the air outlet duct 23. The sealing component 2413 is configured to enable the first flexible sealing strip 2411 and the second flexible sealing strip 2412 to switch between a sealed state and a non-sealed state during the process of the air outlet duct 23 sliding relative to the air duct main body 21, and is also configured to enable the opening between the first flexible sealing strip 2411 and the second flexible sealing strip 2412 to move along with the air outlet duct 23, and the opening can surround the outer wall of the air outlet duct 23. In this way, the air outlet position on the air duct main body 21 is always located at the air outlet duct 23, so that the air entering the air duct main body 21 can be blown out by the air outlet duct 23, and the situation that the air entering the interior of the air duct main body 21 is blown out from other places except the air outlet duct 23 is avoided. Furthermore, the air conditioner of the present invention can adjust the position of the air outlet duct 23 as needed, so that the air temperature in a local range of the room can be adjusted targeted.

[0052] Continue to refer to Figure 1 , the sliding component 243 is correspondingly connected to the air duct main body 21 and the air outlet duct 23, so that the air outlet duct 23 can slide relative to the air duct main body 21 along the length direction of the air duct main body 21 through the sliding component 243. The driving component 242 is correspondingly connected to the air outlet duct 23 and the air duct main body 21, and is used to drive the air outlet duct 23 to move relative to the air duct main body 21, so that the air outlet duct 23 can slide on the air duct main body 21 under the action of the sliding component 243 and the driving component 242.

[0053] As a possible implementation manner, as Figure 1As shown, the sealing assembly 2413 includes a first flexible chain 24131, a second flexible chain 24132, a first pull head 24133, and a second pull head 24134. The first flexible chain 24131 is disposed along the length direction of the first flexible sealing strip 2411 at the end of the first flexible sealing strip 2411 close to the second flexible sealing strip 2412. The second flexible sealing strip 2412 is disposed along the length direction of the second flexible sealing strip 2412 at the end of the second flexible sealing strip 2412 close to the first flexible sealing strip 2411. The first pull head 24133 is correspondingly connected to the first flexible chain 24131 and the second flexible chain 24132, and is configured to be able to merge or separate the first flexible chain 24131 and the second flexible chain 24132. The second pull head 24134 is correspondingly connected to the first flexible chain 24131 and the second flexible chain 24132, and is configured to be able to merge or separate the first flexible chain 24131 and the second flexible chain 24132. Specifically, when the first pull head 24133 and the second pull head 24134 move towards each other, the first flexible chain 24131 and the second flexible chain 24132 between them can be gradually merged. The first pull head 24133 and the second pull head 24134 are also configured that when they move away from each other, the first flexible chain 24131 and the second flexible chain 24132 between them can be gradually separated, and the air outlet duct 23 is correspondingly connected to the first pull head 24133 and the second pull head 24134 so that the first pull head 24133 and the second pull head 24134 can move relative to the air duct main body 21 following the air outlet duct 23.Through the above setting method, when the air outlet duct 23 slides relative to the air duct main body 21 under the action of the driving component 242 and the sliding component 243, the first pull head 24133 and the second pull head 24134 can slide relative to the first flexible chain 24131 and the second flexible chain 24132 under the drive of the air outlet duct 23, so that the first flexible chain 24131 and the second flexible chain 24132 on both sides of the first pull head 24133 and the second pull head 24134 can always be in a merged state under the action of the first pull head 24133 and the second pull head 24134, and also enables the first flexible chain 24131 and the first flexible chain 24131 between the first pull head 24133 and the second pull head 24134 to always be in a separated state under the action of the first pull head 24133 and the second pull head 24134. In this way, a movable opening can be formed between the first flexible chain 24131 and the second flexible chain 24132 when the first pull head 24133 and the second pull head 24134 move following the air outlet duct 23, and the air outlet duct 23 is located in the opening. In this way, the air in the air duct main body 21 can be stably blown out through the air outlet duct 23, reducing the risk of the air in the air duct main body 21 being blown out from other positions except the air outlet duct 23, and improving the stability of the air conditioner.

[0054] Specifically, in the specific implementation of the present invention, corresponding first teeth and second teeth that can mesh with each other are provided on the first flexible chain 24131 and the second flexible chain 24132, and the first teeth and the second teeth can be separated or meshed with each other under the action of the first pull head 24133 or the second pull head 24134. The first teeth and the second teeth are configured to be hermetically connected when they mesh with each other, and the first teeth and the second teeth are also configured to be separable only under the action of the first pull head 24133 and the second pull head 24134. Through the above setting method, the first teeth and the second teeth can further improve the sealing performance of the first flexible chain 24131 and the second flexible chain 24132 in the merged state, and this can also avoid the situation where the first flexible chain 24131 and the second flexible chain 24132 are separated under the action of the air thrust due to the relatively large air pressure in the air duct, thereby ensuring the stability of the air conditioner.

[0055] It should be noted that although the above combination Figure 1The described sealing assembly 2413 includes a first flexible chain 24131, a second flexible chain 24132, a first pull head 24133, and a second joint, but this is not restrictive. When the present invention is specifically implemented, the sealing assembly 2413 may further include a first flexible magnetic member and a second flexible magnetic member. The first flexible magnetic member extends along the length direction of the first flexible strip and is disposed at the end of the first flexible sealing strip 2411 close to the second flexible sealing strip 2412. The second flexible magnetic member extends along the length direction of the second flexible sealing strip 2412 and is disposed at the end of the second flexible sealing strip 2412 close to the first flexible sealing strip 2411. The first flexible magnetic member and the second flexible magnetic member are configured to be able to attract each other. Specifically, the first flexible magnetic member and the second flexible magnetic member are configured to be able to seal and connect when attracted to each other. Through the above setting method, during the process of the air outlet duct 23 moving relative to the air duct main body 21, the first flexible magnetic member and the second flexible magnetic member located on both sides of the air outlet duct 23 and in contact with the outer wall of the air outlet duct 23 are in a separated state, and the first flexible magnetic member and the second flexible magnetic member located on both sides of the air outlet duct 23 and not in contact with the outer wall of the air outlet duct 23 can attract each other under the action of magnetic force. In this way, during the process of the air outlet duct 23 moving relative to the air duct main body 21 under the action of the sliding assembly 243 and the driving assembly 242, an opening that follows the movement of the air outlet duct 23 can be formed between the first flexible magnetic member and the second flexible magnetic member, and the air outlet duct 23 is in the opening. In this way, the air in the air duct main body 21 can be stably blown out from the air outlet duct 23, reducing the risk of the air in the air duct main body 21 being blown out from other positions except the air outlet duct 23, and improving the stability of the air conditioner.

[0056] In addition, although the sealing assembly 2413 described above includes the first flexible sealing strip 2411, the second flexible sealing strip 2412 and the sealing assembly 2413, this is not restrictive. In other embodiments of the present invention, the sealing assembly 2413 may further include a plurality of first elastic sliding members (not shown), a plurality of second elastic sliding members (not shown), a third flexible sealing strip (not shown), and a fourth flexible sealing strip (not shown). Specifically, the plurality of first elastic sliding members and the plurality of second elastic sliding members are respectively elastically slidably connected to the air duct main body 21. The plurality of first elastic sliding members and the plurality of second elastic sliding members are both arranged to extend along the length direction of the air duct main body 21. The plurality of first elastic sliding members and the plurality of second elastic sliding members are located on both sides of the air outlet duct 23. The sliding direction of the plurality of first elastic sliding members and the plurality of second elastic sliding members relative to the air duct main body 21 is perpendicular to the moving direction of the air outlet duct 23 relative to the air duct main body 21. The plurality of first elastic sliding members and the plurality of second elastic sliding members are configured to be able to abut against each other under the action of their own elastic members, and the plurality of first elastic sliding members can be hermetically connected, and the plurality of second elastic sealing members can be hermetically connected. The third flexible sealing strip is arranged to extend along the length direction of the air duct main body 21, and the third flexible sealing strip is connected to the end of the first elastic sliding member away from the air duct main body 21. The fourth flexible sealing strip is arranged to extend along the length direction of the air duct main body 21, and the fourth flexible sealing strip is connected to the end of the second elastic sliding member away from the air duct main body 21. The third flexible sealing strip and the fourth flexible sealing strip are configured to be able to be hermetically connected to each other under the push of the first elastic sliding member and the second elastic sliding member.

[0057] Through the above arrangement, during the process of the air outlet duct 23 moving relative to the air duct main body 21, the third flexible sealing strip and the fourth flexible sealing strip located on both sides of the air outlet duct 23 and in contact with the outer wall of the air outlet duct 23 can be separated from each other under the extrusion of the outer wall of the air outlet duct 23, while the third flexible sealing strip and the fourth flexible sealing strip located on both sides of the air outlet duct 23 and not in contact with the outer wall of the air outlet duct 23 can abut against each other under the action of the third elastic sliding member and the fourth elastic sliding member. In this way, during the process of the air outlet duct 23 moving relative to the air duct main body 21 under the action of the sliding assembly 243 and the driving assembly 242, an opening that follows the movement of the air outlet duct 23 can be formed between the third flexible sealing strip and the fourth flexible sealing strip, and the air outlet duct 23 is in the opening. In this way, it can also make the air in the air duct main body 21 be stably blown out from the air outlet duct 23, reducing the risk of the air in the air duct main body 21 being blown out from other positions except the air outlet duct 23, and improving the stability of the air conditioner.

[0058] As a possible implementation, the sliding component 243 is configured to enable the extension line of the axis of the air outlet duct 23 to be perpendicular to and intersect with the axis of the air duct main body 21, and is also configured to keep the angle between the axis of the air outlet duct 23 and the line of the gravity direction unchanged. Specifically, as Figure 1 shown, the sliding component 243 includes a sliding sleeve 2431, and the sliding sleeve 2431 is sleeved on the inner wall of the air duct main body 21 so that the sliding sleeve 2431 can be slidably connected to the inner wall of the air duct main body 21. The sliding sleeve 2431 is fixedly connected to the outer wall of the air outlet duct 23, and the sliding sleeve 2431 is configured to keep the angle between the axis of the air outlet duct 23 and the line of the gravity direction unchanged. Specifically, the outer wall of the sliding sleeve 2431 has the same contour as the inner wall of the air duct main body 21, and the air duct main body 21 is a rectangular duct. In this way, the sliding sleeve 2431 can slide relative to the air duct main body 21 along the length direction of the air duct main body 21, and can also keep the angle between the axis of the air outlet duct 23 and the line of the gravity direction unchanged. In this way, the connection structure between the driving component 242 and the air outlet duct 23 and the air duct main body 21 can be relatively simple, the number of parts is reduced, the cost of the air conditioner is reduced, and the stability of the air conditioner is improved.

[0059] It should be noted that although the above-described air duct main body 21 is rectangular, this is not restrictive. The air duct main body 21 can also be a circular duct. Then, the outer wall of the sliding sleeve 2431 is circular. At this time, a limiting structure can be correspondingly provided on the air duct main body 21 and the sliding sleeve 2431 to keep the angle between the axis of the air outlet duct 23 and the line of the gravity direction unchanged. Specifically, the limiting structure includes a first rib and a second rib. The first rib is provided on the inner wall of the air duct main body 21. The second rib is provided on the outer wall of the sliding sleeve 2431 along the axis direction of the sliding sleeve 2431. The second rib is configured to be cooperatively connected with the first rib when the sliding sleeve 2431 is sleeved on the inner wall of the air duct main body 21 to avoid relative rotation between the slideway and the air duct main body 21.

[0060] In addition, although the above combination Figure 1The described sliding component 243 includes a sliding sleeve 2431, but this is not restrictive. When the present invention is specifically implemented, the sliding component 243 may also include a slide rail and a connecting member. The slide rail extends along the length direction of the air duct main body 21, and the connecting member is connected to the slide rail and the air outlet duct 23. Specifically, the connecting member is slidably connected to the slide rail, and the connecting member and the slide rail are configured to enable the air outlet duct 23 to extend along the length direction of the air duct main body 21, and are also configured to enable the extension line of the axis of the air outlet duct 23 to be perpendicular to and intersect with the axis of the air duct main body 21, and to keep the included angle between the axis of the air outlet duct 23 and the line in the direction of gravity unchanged. Among them, the setting manner of the slide rail and the connecting member is not the focus of the present invention. As long as the air outlet duct 23 can be slid relative to the air duct main body 21 along the length direction of the air duct main body 21 through the sliding component 243, it will not be elaborated here. More specifically, the slide rail can be arranged outside the air duct main body 21, or the slide rail can also be arranged inside the air duct main body 21. Such an adjustment does not deviate from the principle of the present invention, and thus will also fall within the protection scope of the present invention.

[0061] As a possible implementation manner, as Figure 1 shown, the driving component 242 includes a driving motor 2421, a driving gear 2423, and a driving rack 2422. The driving motor 2421 is fixedly connected to the outer wall of the air outlet duct 23. The driving gear 2423 is fixedly connected to the output shaft of the driving motor 2421. The driving rack 2422 extends along the length direction of the air duct main body 21 on the outer wall of the air duct main body 21. The position of the driving motor 2421 is configured such that after the driving gear 2423 is installed in place, the driving gear 2423 can be meshed and connected with the driving rack 2422. In this way, the air conditioner can control the rotation of the output shaft of the driving motor 2421, so that the driving motor 2421 moves relative to the air duct main body 21 under the action of the driving gear 2423 and the driving rack 2422. Since the driving motor 2421 is fixedly connected to the air outlet duct 23, the driving motor 2421 can drive the air outlet duct 23 to move relative to the air duct main body 21. Through the above setting manner, the driving component 242 has a simple structure and reduces the number of parts.

[0062] Preferably, when the present invention is specifically implemented, the air conditioner further includes a camera component. The camera component is arranged indoors and connected to the controller of the air conditioner. The camera component is used to detect the position information of the indoor user and transmit the detected position information of the user to the controller. The controller controls the driving component 242 to drive the air outlet duct 23 to move relative to the air duct main body 21 based on the position information of the user, so that the air conditioner can adjust the air temperature in a local range indoors targeted according to the position information of the indoor user.

[0063] As a possible implementation, the air conditioner further includes an air deflector assembly (not shown). The air deflector assembly is correspondingly disposed at the end of the air outlet duct 23 away from the air duct main body 21, and is used to adjust the air outlet direction of the air outlet duct 23, so that while the air conditioner can targetedly adjust the air temperature in a local range of the room, it can also improve the blowing range of the air conditioner by controlling the air outlet direction of the air outlet duct 23, so that the air conditioner can more targetedly adjust the air temperature in a local range of the room according to the position information of the users in the room, so as to improve the user's satisfaction.

[0064] As a possible implementation, in the specific implementation of the present invention, the number of the air outlet ducts 23 is multiple, so that when there are multiple users in the room, the air conditioner can correspondingly control the multiple air outlet ducts 23 to blow air to the areas where the multiple users are located according to the position information of the multiple users, so as to further improve the user's satisfaction.

[0065] So far, the technical solution of the present invention has been described in conjunction with the preferred implementation shown in the drawings. However, it is easy for those skilled in the art to understand that the protection scope of the present invention is obviously not limited to these specific implementations. Without departing from the principle of the present invention, those skilled in the art can make equivalent changes or substitutions to the relevant technical features, and the technical solutions after these changes or substitutions will all fall within the protection scope of the present invention.

Claims

1. An indoor air control system, characterized in that, The indoor air control system (100) includes: a heat exchange component (1) provided on the outdoor side or on both the indoor side and the outdoor side; a duct component (2) including a duct main body (21), an air inlet (22), an air outlet duct (23), and a moving component (24). The duct main body (21) is at least partially laid on the side wall of the indoor wall. The duct component (2) is connected to the heat exchange component (1). The air inlet (22) is provided on the duct main body (21) such that the air entering the air inlet (22) can exchange heat with the heat exchange component (1). The air outlet duct (23) is movably connected to the duct main body (21). The moving component (24) is correspondingly connected to the air outlet duct (23) and the duct main body (21). The moving component (24) is configured to drive the air outlet duct (23) to move relative to the duct main body (21) along the length direction of the duct main body (21) so that the air outlet duct (23) can become a movable air outlet on the duct main body (21); and a fan (3) provided inside the duct main body (21) and / or the air outlet duct (23) for driving air to enter from the air inlet (22) and be discharged from the air outlet.

2. The indoor air control system according to claim 1, wherein, The moving component (24) includes: a flexible sealing component (241) extending along the length direction of the duct main body (21). The flexible sealing component (241) includes a first flexible sealing strip (2411), a second flexible sealing strip (2412), and a sealing assembly (2413). The first flexible sealing strip (2411), the second flexible sealing strip (2412), and the sealing assembly (2413) are located on both sides of the air outlet duct (23). The sealing assembly (2413) is configured to enable the first flexible sealing strip (2411) and the second flexible sealing strip (2412) to switch between a sealed state and a non-sealed state during the sliding of the air outlet duct (23) relative to the duct main body (21), and is also configured to enable the opening between the first flexible sealing strip (2411) and the second flexible sealing strip (2412) to move with the air outlet duct 23, and the opening can surround the outer wall of the air outlet duct (23); a sliding component (243) correspondingly connected to the duct main body (21) and the air outlet duct (23) such that the air outlet duct (23) can slide relative to the duct main body (21) along the length direction of the duct main body (21) through the sliding component (243); and a driving component (242) correspondingly connected to the air outlet duct (23) and the duct main body (21) for driving the air outlet duct (23) to move relative to the duct main body (21).

3. The indoor air control system according to claim 2, wherein The sealing assembly (2413) includes: A first flexible chain (24131) is arranged at an end of the first flexible sealing strip (2411) close to the second flexible sealing strip (2412) along the length direction of the first flexible sealing strip (2411); A second flexible chain (24132) is arranged at an end of the second flexible sealing strip (2412) close to the first flexible sealing strip (2411) along the length direction of the second flexible sealing strip (2412); A first pull head (24133) is correspondingly connected to the first flexible chain (24131) and the second flexible chain (24132), and is configured to be able to merge or separate the first flexible chain (24131) and the second flexible chain (24132); and A second pull head (24134) is correspondingly connected to the first flexible chain (24131) and the second flexible chain (24132), and is configured to be able to merge or separate the first flexible chain (24131) and the second flexible chain (24132); wherein, when the first pull head (24133) and the second pull head (24134) are configured to move towards each other, the first flexible chain (24131) and the second flexible chain (24132) between them can be gradually merged, and when the first pull head (24133) and the second pull head (24134) are configured to move away from each other, the first flexible chain (24131) and the second flexible chain (24132) between them can be gradually separated, and the air outlet duct (23) is correspondingly connected to the first pull head (24133) and the second pull head (24134) so that the first pull head (24133) and the second pull head (24134) can move relative to the air duct main body (21) following the air outlet duct (23).

4. The indoor air control system according to claim 2, wherein The sealing assembly (2413) includes: A first flexible magnetic member is arranged at an end of the first flexible sealing strip (2411) close to the second flexible sealing strip (2412) along the length direction of the first flexible sealing strip (2411); and A second flexible magnetic member is arranged at an end of the second flexible sealing strip (2412) close to the first flexible sealing strip (2411) along the length direction of the second flexible sealing strip (2412), and the first flexible magnetic member and the second flexible magnetic member are configured to be able to attract each other.

5. The indoor air control system according to claim 2, wherein, The sliding assembly (243) is configured to be able to keep the extension line of the axis of the air outlet duct (23) perpendicular and intersecting with the axis of the air duct main body (21), and the sliding assembly (243) is further configured to be able to keep the included angle between the axis of the air outlet duct (23) and the line in the direction of gravity unchanged; The sliding component (243) includes a sliding sleeve (2431) sleeved on the inner wall of the air duct main body (21). The sliding sleeve (2431) is configured to be slidably connected to the inner wall of the air duct main body (21), and is further configured to keep the included angle between the axis of the air outlet duct (23) and the line of the gravity direction unchanged.

6. The indoor air control system according to claim 2, characterized in that, The driving component (242) includes: a driving motor (2421) fixedly connected to the outer wall of the air outlet duct (23); a driving gear (2423) fixedly connected to the output shaft of the driving motor (2421); and a driving rack (2422) extending along the length direction of the air duct main body (21) and arranged on the outer wall of the air duct main body (21). The position of the driving motor (2421) is configured such that after the driving gear (2423) is installed in place, the driving gear (2423) can be meshed with the driving rack (2422).

7. The indoor air control system according to claim 1, wherein The indoor air control system (100) further includes a wind deflector assembly, which is correspondingly arranged at the end of the air outlet duct (23) away from the air duct main body (21) for adjusting the air outlet direction of the air outlet duct (23).

8. The indoor air control system according to any one of claims 1-7, characterized in that, The number of the air outlet ducts (23) is multiple.

9. The indoor air control system according to claim 8, wherein The number of the fans (3) is multiple. The multiple fans (3) are correspondingly arranged in the multiple air outlet ducts (23), or the multiple fans (3) are correspondingly arranged at the air inlet (22) and in the multiple air outlet ducts (23).

10. An air conditioner, characterized in that, The air conditioner includes the indoor air control system (100) according to any one of claims 1-9.