Air conditioner indoor unit and air conditioner

By incorporating movable dampers and baffles in the indoor unit of the air conditioner, the discomfort and energy consumption issues caused by traditional air conditioning methods are resolved. This achieves gentler airflow, reduces the number of components and size, and improves air volume and heat exchange efficiency.

CN122305542APending Publication Date: 2026-06-30HISENSE (SHANDONG) AIR CONDITIONING CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
HISENSE (SHANDONG) AIR CONDITIONING CO LTD
Filing Date
2024-12-31
Publication Date
2026-06-30

AI Technical Summary

Technical Problem

Traditional air conditioners deliver air in a straight, unidirectional manner, resulting in a large temperature difference, increased airflow and energy consumption, and making it difficult to achieve miniaturized air conditioner design.

Method used

A movable damper is installed in the indoor unit of the air conditioner. The damper and the casing are separated to form a vortex cavity. The vortex cavity is divided into a vortex air duct and a return air duct by a movable partition. The airflow circulates in it and generates self-excited oscillation. Another part of the airflow forms a vortex airflow to change the air outlet angle.

Benefits of technology

It achieves gentle airflow, reduces the number of components, simplifies the structure, reduces the size of the indoor air conditioning unit, and improves airflow and heat exchange efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application discloses an indoor air conditioning unit and an air conditioner. The indoor air conditioning unit has a movable damper on its casing, which is used to open or close the first air outlet of the casing. The damper is located inside the casing, and the damper and the first side wall of the casing are spaced apart to form a vortex cavity. A movable baffle is provided inside the vortex cavity, which divides the vortex cavity into a vortex air duct and a return air duct. Part of the airflow entering the vortex cavity generates self-excited oscillation under the action of the baffle, achieving a gentle breeze. The other part of the airflow can circulate between the vortex air duct and the return air duct, thereby forming a vortex airflow, which changes the air outlet angle of the indoor air conditioning unit. Since the damper is used to open or close the first air outlet and also serves as the cavity wall of the vortex cavity, the number of components in the indoor air conditioning unit can be reduced, thereby reducing manufacturing processes and the overall size of the indoor air conditioning unit.
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Description

Technical Field

[0001] This application relates to the field of air conditioning technology, and in particular to an indoor air conditioning unit and an air conditioner. Background Technology

[0002] The air delivery method of an air conditioner affects indoor airflow distribution and comfort. Traditional air conditioners primarily control the direction and speed of the airflow. For example, by setting the airflow direction horizontally forward to create a gentle breeze, or setting it vertically downward to create a carpet-like breeze, the hot and cold air is directed away from the user. However, these air delivery modes are essentially linear unidirectional airflow, which has the following problems: First, the directional, beam-like airflow, due to reflection from the wall, still creates a large temperature difference and a blowing sensation, easily causing discomfort and potentially leading to air conditioning sickness; second, unidirectional airflow has low mixing efficiency, resulting in increased energy consumption due to prolonged operation of the air conditioner. Summary of the Invention

[0003] The air conditioner indoor unit and air conditioner provided in this application can reduce the size of the air conditioner indoor unit and achieve gentle airflow from the air conditioner indoor unit.

[0004] The first aspect of this application provides an indoor unit for an air conditioner, comprising:

[0005] The housing is provided with a first air outlet;

[0006] A duct component is disposed inside the housing, the duct component forms a fan duct, and the fan duct has a fan outlet;

[0007] A fan, wherein the fan is installed inside the fan duct;

[0008] The indoor unit of the air conditioner also includes:

[0009] A damper is movably connected to the housing and is located on the air outlet side of the fan duct. The damper is used to open or close the first air outlet.

[0010] The damper is spaced apart from at least a portion of the first sidewall of the housing to form a vortex cavity. The vortex cavity is connected to the fan duct through the fan outlet and is connected to the first outlet to deliver airflow to the outside of the housing.

[0011] A partition is movably disposed within the vortex cavity, the partition dividing the vortex cavity into a return air duct and a vortex air duct, the vortex air duct and the return air duct being used to circulate airflow within the vortex air duct and the return air duct;

[0012] With the damper open at the first air outlet, the baffle is configured to be movable relative to the first sidewall of the housing to change the airflow angle of the vortex duct.

[0013] The indoor unit of this air conditioner features a movable damper on its casing, which opens or closes the first air outlet of the casing. Simultaneously, the damper is spaced apart from the first side wall of the casing to form a vortex cavity. A movable baffle is installed within the vortex cavity, dividing it into a vortex duct and a return duct. Part of the airflow entering the vortex cavity undergoes self-excited oscillation under the action of the baffle, achieving diffused airflow. The other part of the airflow circulates between the vortex duct and the return duct, thus forming a vortex airflow. This vortex airflow allows the air outlet angle of the indoor unit to be changed.

[0014] Since the damper can be used to open or close the first air outlet, and when the damper is open, it can also be reused as part of the vortex cavity, that is, the damper can be formed as part of the cavity wall of the vortex cavity. Thus, while enabling the normal opening and closing of the first air outlet of the air conditioner indoor unit, the structural design of the oscillator of the air conditioner indoor unit is also simplified, which helps to reduce the number of parts and simplify the assembly of parts.

[0015] In addition, a portion of the vortex cavity wall is formed by a damper. When the damper is opened, the vortex cavity is also formed. This makes the vortex cavity resemble a retractable, movable cavity. When the indoor unit is not in use, closing the damper causes the vortex cavity to contract, reducing the overall size of the indoor unit.

[0016] In addition, since part of the damper is located inside the housing when the first air outlet is opened, the housing can be used to accommodate part of the damper, making the vortex cavity an embedded design, which helps to reduce the overall size of the air conditioner indoor unit.

[0017] In one possible implementation, the housing further includes:

[0018] The second sidewall is disposed opposite to the first sidewall, and the first air outlet is formed between the first sidewall and the second sidewall. The damper is located between the first sidewall and the second sidewall. The second sidewall and the damper are spaced apart to form a guide air duct. The guide air duct is connected to the fan air duct through the fan outlet.

[0019] The first air outlet includes:

[0020] The first sub-air outlet is formed between the first sidewall and the air damper, and the vortex air duct is connected to the first sub-air outlet to deliver airflow to the outside of the housing;

[0021] The second sub-outlet is formed between the second sidewall and the damper, and the air guide duct is connected to the second sub-outlet to deliver airflow to the outside of the housing.

[0022] By allowing the damper to form a guide air duct with the second side wall of the casing while the first air outlet is open, a vortex cavity and a guide air duct can be constructed in the space between the first and second side walls of the casing when the damper is open. Thus, when the fan of the indoor unit blows air, part of the airflow enters the vortex cavity, undergoes self-excited oscillation, and is then output as a gentle breeze from the first sub-outlet. The other part of the airflow directly enters the guide air duct, passes through it, and is output from the second sub-outlet, mixing with the gentle breeze from the first sub-outlet. This reduces the airflow loss caused by the vortex cavity, thereby increasing the air volume of the indoor unit and improving heat exchange efficiency.

[0023] As can be seen, by reusing the damper, this application creates a vortex cavity between the damper and the first side wall, and a guide air duct between the damper and the second side wall. Thus, while enabling the indoor unit of the air conditioner to achieve self-excited airflow oscillation and make the airflow gentler, it can also reduce the loss of airflow output by the fan in the vortex cavity, effectively compensate for the air volume, and thus help improve the air outlet effect of the indoor unit of the air conditioner.

[0024] In one possible implementation, the damper includes:

[0025] A first drainage segment having a first end and a second end opposite to each other; a second drainage segment having a third end and a fourth end opposite to each other, the third end being connected to the second end;

[0026] When the damper opens the first air outlet, the first guide section is located at the end of the second guide section near the air outlet of the fan. The first guide section is used to guide part of the airflow at the air outlet of the fan into the guide duct; the second guide section is used to guide the airflow to the second sub-air outlet.

[0027] When the damper opens the first air outlet, the first diversion section is located on the side of the second diversion section closer to the fan outlet. This allows for proper diversion of the airflow at the fan outlet, enabling some airflow to enter the guide duct, thus achieving the effect of compensating for the air volume output of the indoor unit of the air conditioner.

[0028] In one possible implementation, both the first drainage segment and the second drainage segment are arc-shaped segments, with the curvature at the location where the second end connects to the third end being c1, and the curvature at any location on the second drainage segment being c2, wherein...

[0029] c2≤c1.

[0030] By ensuring that the curvature at any point in the second diversion section is no greater than the curvature at the junction of the first and second diversion sections, the diversion surface of the second diversion section can be made relatively flat, which can reduce wind resistance during the diversion process and thus reduce airflow loss.

[0031] In one possible implementation, the second drainage segment includes:

[0032] The first sub-drainage segment has a fifth end and a sixth end opposite to each other, and the fifth end is connected to the second end;

[0033] The second sub-drainage section has a seventh end and an eighth end, the seventh end being connected to the sixth end, and the eighth end being configured with the first sidewall to form the first sub-air outlet.

[0034] The first sub-guide section is used to guide the airflow to the second sub-guide section. The second sub-guide section is located on the side of the first sub-guide section close to the second sub-outlet. The second sub-guide section is used to guide the airflow in the guide duct to mix with the airflow output by the vortex duct through the second sub-outlet.

[0035] After the airflow is guided from the first sub-flow section to the second sub-flow section, the airflow output from the second sub-air outlet can be guided to mix with the airflow output from the first sub-air outlet, thereby increasing the air volume of the indoor unit of the air conditioner.

[0036] In one possible implementation, both the first sub-drainage segment and the second sub-drainage segment are arc-shaped segments, the curvature of the first sub-drainage segment at any position is c2, and the curvature at the position where the sixth end and the seventh end are connected is c3, wherein c2≤c3.

[0037] By setting the curvature c2 at any position on the first sub-drainage section to be no greater than the curvature c3 at the connection point of the second sub-drainage section, the overall curvature change of the first sub-drainage section is small, and the overall curvature is relatively gentle, which is conducive to generating the wall effect and further effectively guiding the flow direction of the airflow.

[0038] In one possible implementation, the damper has a diversion section on the side facing the partition, which is used to divert the airflow in the vortex cavity at the first sub-outlet, so that part of the airflow in the vortex cavity enters the return air duct.

[0039] By setting a diversion section on the side of the damper facing the partition, when the airflow in the vortex duct flows to the first sub-outlet, the diversion section can divert the airflow, allowing some of the airflow to enter the return duct, so that some of the airflow in the vortex duct can circulate in the vortex duct and the return duct, so that the airflow can smoothly generate self-excited oscillation.

[0040] In one possible implementation, the partition has a ninth end and a tenth end opposite each other, the ninth end being close to the fan outlet and the tenth end being close to the first outlet. The partition is movable relative to the first sidewall, such that the tenth end is close to the first sidewall or the damper, to change the outlet angle of the airflow in the vortex duct.

[0041] Since the baffle can move relative to the first side wall, when the end of the baffle near the first air outlet approaches the first side wall or the damper, the position of the baffle relative to the first side wall or the damper changes, and the baffle can change the airflow direction inside the vortex duct, thereby changing the air outlet angle of the airflow output by the vortex duct through the first sub-air outlet, and thus achieving air outlet at different angles.

[0042] In one possible implementation, the indoor unit of the air conditioner includes a first air supply mode and a second air supply mode;

[0043] In the first air supply mode, part of the airflow in the vortex duct is discharged through the first air outlet, and another part of the airflow circulates in the vortex duct and the return duct, causing the airflow in the vortex duct to generate self-excited oscillation.

[0044] In the second air supply mode, the tenth end abuts against the first side wall or the damper to prevent the airflow in the vortex duct from circulating in the vortex duct and the return duct, so that the vortex duct outputs airflow that is biased towards the first side wall or the damper at the first air outlet.

[0045] As can be seen, in the first air supply mode, the airflow can generate self-excited oscillation under the influence of the vortex air duct and the return air duct separated by the baffle, thus achieving a gentle airflow. Based on this, this application moves the baffle to change its position relative to the first side wall or the damper, so that the tenth end of the baffle abuts against the first side wall or the damper, thereby blocking the return air duct and generating vortex airflow in the vortex air duct. Using the vortex airflow, the air outlet angle of the first sub-outlet can be changed, thereby switching the first air supply mode to the second air supply mode.

[0046] In one possible implementation, the partition includes:

[0047] First board;

[0048] The second sub-plate, at least one of the first sub-plate and the second sub-plate, is movably disposed within the vortex cavity, and the second sub-plate is spaced apart from the first sub-plate to form the vortex air duct;

[0049] The return air duct includes:

[0050] The first return air duct is formed by the first sub-plate and the first sidewall being spaced apart.

[0051] The second return air duct is located on the side of the first sub-plate away from the first sidewall, and the second sub-plate is spaced apart from the damper to form the second return air duct.

[0052] By setting two baffles, the vortex cavity can be divided into two return channels and a vortex air duct located between the two return channels. This increases the return flow of air in the vortex cavity, enhances the self-excited oscillation of the airflow, and can further optimize the effect of gentle airflow.

[0053] Furthermore, by movably arranging at least one of the two partitions within the vortex cavity, it can be ensured that the indoor unit of the air conditioner has at least two air supply modes, thereby enabling independent control of the movement of at least one of the two partitions relative to the first side wall according to actual needs, further facilitating the adjustment of the air supply mode.

[0054] In one possible implementation, a diversion section is provided on the side of the first sidewall near the first air outlet. This diversion section is configured to divert the airflow within the vortex duct when the damper opens the first air outlet, causing a portion of the airflow within the vortex duct to exit through the first air outlet, and another portion to return to the fan outlet through the first return duct; and / or

[0055] The damper is provided with a diversion section, which is configured to divert the airflow in the vortex duct when the damper opens the first air outlet, so that part of the airflow in the vortex duct is discharged through the first air outlet, and the other part of the airflow is returned to the fan outlet through the second return duct.

[0056] By setting up a diversion section, when the airflow in the vortex duct reaches the first air outlet, the diversion section can split the airflow, allowing a portion of the airflow to enter the return duct, thereby enabling part of the airflow in the vortex duct to circulate in the vortex duct and the return duct, so that the airflow can smoothly generate self-excited oscillation.

[0057] In one possible implementation, both the first sub-plate and the second sub-plate are movably disposed within the vortex cavity, and the indoor air conditioning unit includes a first air supply mode, a second air supply mode, and a third air supply mode; in the first air supply mode, the first sub-plate is spaced apart from the first side wall, and the second sub-plate is spaced apart from the damper, and part of the airflow in the vortex duct is discharged through the first air outlet, while another part of the airflow is returned to the fan outlet through the first return air duct and the second return air duct;

[0058] In the second air supply mode, the first sub-plate moves to the end near the first air outlet and abuts against the first sidewall. The airflow in the vortex duct flows through the second sub-plate toward the surface of the first sub-plate to the first air outlet. Part of the airflow exits through the first air outlet and flows along the side biased towards the first sidewall. Another part of the airflow flows through the first sidewall to the surface of the first sub-plate toward the second sub-plate, and then flows through the surface of the first sub-plate toward the second sub-plate to the fan outlet, so as to mix with the airflow at the fan outlet to form a vortex airflow.

[0059] In the third air supply mode, the second sub-plate moves to the end near the first air outlet and abuts against the damper. The airflow in the vortex duct flows from the surface of the first sub-plate toward the second sub-plate to the first air outlet. Part of the airflow exits through the first air outlet and flows along one side biased towards the damper. Another part of the airflow flows through the damper to the surface of the second sub-plate toward the first sub-plate, and then flows from the surface of the second sub-plate toward the first sub-plate to the fan outlet, so as to mix with the airflow at the fan outlet to form a vortex airflow.

[0060] By setting both the first sub-plate and the second sub-plate to be movable relative to the first side wall, the movement of the first sub-plate or the second sub-plate can be independently controlled to switch between two different air supply modes with different air outlet angles on the basis of the first air supply mode. This allows the indoor unit of the air conditioner to have more air supply modes and adapt to more usage scenarios.

[0061] In one possible implementation, the duct component includes: a volute; a volute tongue, the volute tongue being spaced apart from the volute to form the fan duct and the fan outlet. In the first air supply mode, the distance between the position of the volute tongue forming the fan outlet and the end of the damper near the fan outlet is d0; the distance between the end of the first sub-plate near the fan outlet and the end of the second sub-plate near the fan outlet is d1, wherein d0 < d1.

[0062] This configuration ensures that the airflow returning from the return duct to the fan outlet is deflected at the fan outlet, resulting in a different flow direction between the returned airflow and the airflow at the fan outlet. This ensures the mixing of airflows with different directions, generating self-excited oscillation. If d0 > d1, when the airflow in the return duct returns to the fan outlet, it may flow in the opposite direction to the airflow at the fan outlet. This would significantly weaken the airflow within the vortex cavity, causing substantial airflow loss and turbulence within the vortex cavity, which is detrimental to vortex formation.

[0063] In one possible implementation, the distance d0 between the volute tongue at the location forming the fan outlet and the end of the damper near the fan outlet, and the distance d1 between the end of the first sub-plate near the fan outlet and the end of the second sub-plate near the fan outlet, further satisfy: 1.1*d0 < d1, and / or, d1 < 2*d0.

[0064] When 1.1*d0 < d1, it ensures that the fan outlet is smaller than the inlet of the vortex duct formed by the first and second sub-plates. This avoids situations where the fan outlet is equal to or larger than the vortex duct inlet due to manufacturing tolerances or other reasons. This ensures that the recirculated airflow mixes with the airflow at the fan outlet and prevents the airflow output from the fan outlet from directly entering the recirculation duct at the fan outlet, thus avoiding a collision with the airflow in the recirculation duct. When d1 < 2*d0, it prevents the vortex duct inlet from being too large, preventing the airflow from failing to form circulation and vortex airflow between the first and second sub-plates and exiting directly from the first outlet.

[0065] In one possible implementation, the housing further includes:

[0066] A second sidewall is disposed opposite to the first sidewall, and a first air outlet is formed between the first sidewall and the second sidewall. The damper is configured to form a guide air duct with at least a portion of the second sidewall when the first air outlet is opened. The guide air duct is connected to the fan air duct through the fan outlet. The first air outlet includes: a first sub-air outlet, which is formed between the first sidewall and the damper, and the vortex air duct is connected to the first sub-air outlet to deliver airflow to the outside of the housing; and a second sub-air outlet, which is formed between the second sidewall and the damper, and the guide air duct is connected to the second sub-air outlet to deliver airflow to the outside of the housing.

[0067] By allowing the damper to form a guide air duct with the second side wall of the casing while the first air outlet is open, a vortex cavity and a guide air duct can be constructed in the space between the first and second side walls of the casing when the damper is open. Thus, when the fan of the indoor unit blows air, part of the airflow enters the vortex cavity, undergoes self-excited oscillation, and is then output as a gentle breeze from the first sub-outlet. The other part of the airflow directly enters the guide air duct, passes through it, and is output from the second sub-outlet, mixing with the gentle breeze from the first sub-outlet. This reduces the airflow loss caused by the vortex cavity, thereby increasing the air volume of the indoor unit and improving heat exchange efficiency.

[0068] A second aspect of this application provides an indoor air conditioning unit, comprising:

[0069] The air conditioning indoor unit further includes: a housing, the housing having a first air outlet; an air duct component, the air duct component being disposed inside the housing, the air duct component forming a fan air duct, the fan air duct having a fan air outlet; a fan, the fan being disposed within the fan air duct; the air conditioning indoor unit further includes: a damper, the damper being movably connected to the housing and partially disposed within the housing, the damper being located on the air outlet side of the fan air duct, the damper being used to open or close the first air outlet; the damper being spaced apart from at least a portion of the first sidewall of the housing to form a vortex cavity, the vortex cavity being connected to the fan air duct through the fan air outlet, the vortex cavity being connected to the first air outlet to deliver airflow to the outside of the housing; and a partition, the partition being movably disposed within the vortex cavity, the partition dividing the vortex cavity into a return air duct and a vortex air duct, and so on. The vortex duct and the return duct are used to circulate airflow within the vortex duct and the return duct, respectively. The indoor unit of the air conditioner includes a first air supply mode and a second air supply mode. When the damper is open at the first air outlet, the baffle is configured to move relative to the first side wall of the housing, allowing the indoor unit of the air conditioner to switch between the first air supply mode and the second air supply mode. In the first air supply mode, part of the airflow in the vortex duct circulates within the vortex duct and the return duct, and mixes with another part of the airflow to generate self-excited oscillation before being discharged through the first air outlet. In the second air supply mode, the baffle moves relative to the first side wall, causing the airflow in the vortex duct to form a vortex airflow within the vortex duct to change the air outlet angle before being delivered to the outside of the housing through the first air outlet.

[0070] Because the damper can be used to open or close the first air outlet, and when open, it can also be reused as part of the vortex cavity, meaning the damper can form part of the cavity wall, this simplifies the structural design of the air conditioner's oscillator while ensuring the normal opening and closing of the first air outlet. This reduces the number of components and simplifies assembly. Furthermore, by using the damper to form part of the vortex cavity wall, the vortex cavity is formed when the damper is opened. Also, since part of the damper is located within the housing when the first air outlet is open, the housing can accommodate part of the damper, creating an embedded vortex cavity design that reduces the overall size of the air conditioner's indoor unit. Additionally, by moving the partition within the vortex cavity, the air conditioner can switch between different airflow modes, maintaining a consistent appearance.

[0071] A third aspect of this application provides an air conditioner including an indoor unit of any of the above-mentioned components.

[0072] Compared with the prior art, the beneficial effects of the present invention are as follows:

[0073] The air conditioner indoor unit of this application features a movable damper on its casing, which opens or closes the first air outlet of the casing. When the damper is open relative to the first air outlet, the damper and the first side wall of the casing are spaced apart to form a vortex cavity. A movable baffle is installed within the vortex cavity, dividing it into a vortex duct and a return duct. Part of the airflow entering the vortex cavity circulates between the vortex duct and the return duct, generating self-excited oscillation and achieving diffused airflow. The other part of the airflow can form a vortex airflow under the action of the baffle, using the vortex airflow to change the air outlet angle of the air conditioner indoor unit. Since the damper is used both to open or close the first air outlet and as the cavity wall of the vortex cavity, the number of components in the air conditioner indoor unit can be reduced, thereby reducing manufacturing processes and the overall size of the air conditioner indoor unit. Attached Figure Description

[0074] Figure 1 This is a three-dimensional structural diagram of the air damper of the indoor unit of the air conditioner in the open state according to an embodiment of this application;

[0075] Figure 2 yes Figure 3 A front view of the indoor unit of the air conditioner shown;

[0076] Figure 3 yes Figure 2 The diagram shows a cross-sectional view of the indoor unit of the air conditioner along line A-A'.

[0077] Figure 4 yes Figure 3 Enlarged view of region A in the middle;

[0078] Figure 5 yes Figure 2 Another cross-sectional view of the indoor unit of the air conditioner along line A-A' is shown;

[0079] Figure 6 yes Figure 5 Enlarged view of region B in the middle;

[0080] Figure 7 This is a three-dimensional structural diagram of the air damper of the indoor unit of the air conditioner in the closed state according to an embodiment of this application;

[0081] Figure 8 yes Figure 7 A front view of the indoor unit of the air conditioner shown;

[0082] Figure 9 yes Figure 8 The diagram shows a cross-sectional view of the indoor unit of the air conditioner along line B-B'.

[0083] Figure 10 yes Figure 9 Enlarged view of region C in the middle;

[0084] Figure 11 yes Figure 8 Another cross-sectional view of the indoor unit of the air conditioner along line B-B' is shown;

[0085] Figure 12 yes Figure 11 Enlarged schematic diagram of region D in the middle;

[0086] Figure 13 This is a schematic diagram of the air damper of the indoor unit of the air conditioner in this application from the state of opening to closing;

[0087] Figure 14 This is a schematic diagram of airflow in the first air supply mode of the embodiments of this application;

[0088] Figure 15 This is another schematic diagram of airflow in the first air supply mode in this embodiment;

[0089] Figure 16 This is a schematic diagram of airflow in the second air supply mode of this application embodiment;

[0090] Figure 17 This is another schematic diagram of airflow in the second air supply mode of the embodiments of this application;

[0091] Figure 18 This is a three-dimensional structural diagram of the air damper of the indoor unit of the air conditioner according to an embodiment of this application;

[0092] Figure 19 yes Figure 18A front view of the damper shown;

[0093] Figure 20 yes Figure 19 The diagram shows a cross-sectional view of the damper along line CC'.

[0094] Figure 21 This is a cross-sectional schematic diagram of an air conditioner indoor unit with two partitions according to an embodiment of this application;

[0095] Figure 22 yes Figure 21 Enlarged schematic diagram of region E in the middle;

[0096] Figure 23 This is a schematic diagram of the gas flow in the first air supply mode of an indoor air conditioning unit with two partitions according to an embodiment of this application;

[0097] Figure 24 This is a schematic diagram of the gas flow in the second air supply mode of an indoor air conditioning unit with two partitions according to an embodiment of this application;

[0098] Figure 25 This is a schematic diagram of the gas flow in the third air supply mode of an indoor air conditioning unit with two partitions according to an embodiment of this application;

[0099] Figure 26 This is a schematic diagram of the structure of an air conditioner according to an embodiment of this application. Detailed Implementation

[0100] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of this application.

[0101] In this application, the terms "upper," "lower," "front," "rear," "bottom," "inner," "outer," and "middle," etc., indicate orientation or positional relationships based on the orientation or positional relationships shown in the accompanying drawings. These terms are primarily for the purpose of better describing the invention and its embodiments, and are not intended to limit the indicated devices, elements, or components to having a specific orientation, or to be constructed and operated in a specific orientation.

[0102] Furthermore, in addition to indicating direction or positional relationship, some of the aforementioned terms may also have other meanings. For example, the term "above" may also be used in certain situations to indicate a dependency or connection. Those skilled in the art can understand the specific meaning of these terms in this invention based on the specific circumstances.

[0103] Furthermore, the terms "installation," "setup," "equipped with," "opening," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable link, or an integral structure; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium, or an internal connection between two devices, components, or parts. Those skilled in the art can understand the specific meaning of these terms in this application based on the specific circumstances.

[0104] Furthermore, the terms "first," "second," etc., are primarily used to distinguish different devices, elements, or components (which may be the same or different in specific type and construction), and are not intended to indicate or imply the relative importance or quantity of the indicated devices, elements, or components. Unless otherwise stated, "a plurality of" means two or more.

[0105] The air delivery method of an air conditioner directly affects the distribution of indoor airflow and user comfort. Current air conditioners use a unidirectional, beam-like airflow method, which is essentially a mechanical, harsh breeze and can easily cause discomfort and lead to "air conditioning sickness." Therefore, related technologies control the airflow direction to avoid direct airflow onto the body. For example, setting the air conditioner's outlet direction to horizontal allows the airflow to naturally descend and create a gentle, refreshing breeze, or setting the outlet direction vertically downwards allows the airflow to flow over the floor, creating a carpet-like breeze. Furthermore, the airflow speed is controlled to reduce the feeling of a draft. For example, using perforated plates to apply air resistance reduces the airflow speed. However, these control methods still have problems: First, the beam-like airflow still generates a significant temperature difference after being reflected off the wall, affecting user comfort. Second, unidirectional airflow has low mixing efficiency, reducing heat exchange and increasing energy consumption during prolonged operation.

[0106] To address the aforementioned technical problems, the inventors attempted to incorporate a fluid oscillator connected to a fan into the air conditioner. When the airflow output from the fan enters the fluid oscillator, it undergoes self-excited oscillation under the influence of the oscillator, resulting in a multi-directional diffused airflow from the air conditioner, thus producing a gentler breeze. Furthermore, because the airflow is diffused, the local mixing efficiency is higher, improving the heat exchange effect in the local space, reducing the air conditioner's operating time, and thereby saving power consumption.

[0107] However, the inventors discovered through research that because the fluid oscillator is directly connected to the fan, it has significant wind resistance, resulting in a smaller designed airflow volume. This reduces the amount of air supplied by the air conditioner, affecting the cooling effect. Furthermore, the fluid oscillator requires additional space, increasing the overall size of the indoor unit and hindering its miniaturization design.

[0108] Based on this, the inventors further attempted to reduce the overall size of the air conditioner indoor unit by reducing the volume of the fluid oscillator or by using a combination of multiple small fluid oscillators. However, while miniaturization was achieved, reducing the fluid oscillator size further reduced the airflow output, significantly impacting the airflow performance. Furthermore, using a combination of multiple small fluid oscillators not only increased the complexity of the internal structure and the number of components in the air conditioner indoor unit but also wasted the unit's limited internal space.

[0109] Therefore, it is clear that none of the above methods can achieve the design requirements of minimizing structural improvements to reduce modification costs and achieving air conditioner miniaturization while taking into account the air volume and heat dissipation efficiency of the air conditioner.

[0110] In view of this, this application provides an indoor air conditioning unit and an air conditioner. The indoor air conditioning unit has a movable damper on its casing, which is used to open or close the first air outlet of the casing. When the damper is open relative to the first air outlet, it can be spaced apart from the first side wall of the casing to form a vortex cavity. A movable baffle is provided inside the vortex cavity, which divides the vortex cavity into a vortex air duct and a return air duct. Part of the airflow entering the vortex cavity circulates between the vortex air duct and the return air duct, generating self-excited oscillation and achieving diffused airflow. Another part of the airflow can form a vortex airflow under the action of the baffle, and the vortex airflow is used to change the air outlet angle of the indoor air conditioning unit. Since the damper is used to open or close the first air outlet and also serves as the cavity wall of the vortex cavity, the number of components in the indoor air conditioning unit can be reduced, thereby reducing manufacturing processes and the overall size of the indoor air conditioning unit.

[0111] The technical solution of this application will be further described below with reference to the embodiments and accompanying drawings.

[0112] Please see Figures 1 to 6 , Figure 1 This is a three-dimensional structural diagram of the air damper of the indoor unit of the air conditioner in the open state according to an embodiment of this application. Figure 2 This is a front view of the indoor unit of the air conditioner according to this application. Figure 3 for Figure 2 The diagram shows a cross-sectional view of the indoor unit of an air conditioner along line A-A'. Figure 4 for Figure 3 Enlarged diagram of region A in the middle. Figure 5 for Figure 2 The diagram shows another cross-sectional view of the indoor unit of the air conditioner along line A-A'. Figure 6 for Figure 5 Enlarged schematic diagram of region B in the middle.

[0113] In some embodiments, the indoor unit of the air conditioner may be, for example, a wall-mounted indoor unit, that is, the indoor unit can be mounted on a wall. Alternatively, the indoor unit may be, for example, a floor-standing indoor unit, that is, the indoor unit can be placed on the ground, a table, or the like.

[0114] This application takes the indoor unit of the air conditioner as an example, which is a wall-mounted indoor unit.

[0115] In some embodiments, the indoor unit 100 of the air conditioner includes a housing 110, an air duct component 120, and a fan 130. The housing 110 can be the casing of the indoor unit of the air conditioner, which includes an outer shell and a bottom shell. The outer shell and the bottom shell enclose an internal space for installing the air duct component 120, heat exchanger, and other devices.

[0116] In some embodiments, the housing 110 is provided with a first air outlet 111, which can connect the internal space of the housing 110 with the outside, so as to output the heat exchange airflow generated inside the air conditioner indoor unit 100 to the outside through the first air outlet 111.

[0117] In some embodiments, the air duct component 120 is disposed in the internal space of the housing 110, and the air duct component 120 forms a fan air duct 121. The fan air duct 121 has a fan outlet 121a, and the fan air duct 121 is connected to a first air outlet 111 through the fan outlet 121a, so as to blow the air from the internal space of the housing 110 out through the first air outlet.

[0118] In some embodiments, the duct component 120 includes a volute 122 and a volute tongue 123, which are arranged opposite to each other to form a fan duct 121 and a fan outlet 121a.

[0119] In some embodiments, the fan 130 is disposed in the fan duct 121, and the fan 130 is configured to blow the air after heat exchange by the heat exchanger out through the fan outlet 121a to the first outlet 111.

[0120] Please see also Figures 7 to 12 , Figure 7 This is a three-dimensional structural diagram of the air damper of the indoor unit of the air conditioner in the closed state according to an embodiment of this application. Figure 8 for Figure 7 The diagram shown is a front view of the indoor unit of the air conditioner. Figure 9 for Figure 8 The diagram shows a cross-sectional view of the indoor unit of an air conditioner along line B-B'. Figure 10 for Figure 9 Enlarged diagram of region C in the middle. Figure 11 for Figure 8 The diagram shows another cross-sectional view of the indoor unit of the air conditioner along line B-B'. Figure 12 for Figure 11A magnified diagram of region D in the middle.

[0121] In some embodiments, the housing includes a first sidewall 112 and a second sidewall 113 along its width direction W, with a first air outlet 111 defined between the first sidewall 112 and the second sidewall 113.

[0122] In some embodiments, the indoor unit 100 of the air conditioner further includes a damper 140, which is movably connected to the housing 110 and located on the air outlet side of the fan duct 121. When the damper 140 moves relative to the housing 110, it can open or close the first air outlet 111. For example, when the indoor unit 100 of the air conditioner is in a sleep state or a shutdown state, the damper 140 can move relative to the housing to cover the first air outlet 111, that is, the damper 140 closes the first air outlet 111. When the user starts the indoor unit 100 of the air conditioner, putting it into operation, the damper 140 can move relative to the housing 110 to expose the first air outlet 111, that is, the damper 140 opens the first air outlet 111. Therefore, the movable setting of the damper 140 enables the opening and closing of the first air outlet 111. When the indoor unit 100 of the air conditioner is not in use, the setting of the damper 140 can also prevent dust, debris, water vapor and other contaminants from entering the first air outlet 111, effectively achieving the waterproof and dustproof effect of the indoor unit 100 of the air conditioner.

[0123] In some embodiments, the damper 140 may be rotatably connected to the housing 110, or it may be slidably connected to the housing 110. For example, if the damper 140 is rotatably connected to the housing 110, the opening or closing of the first air outlet 111 can be achieved by rotating the damper 140. If the damper 140 is slidably connected to the housing 110, the opening or closing of the first air outlet 111 can be achieved by sliding the damper 140.

[0124] It is evident that, regardless of the method described above, as long as the damper 140 can open or close the first air outlet 111, this embodiment does not impose any specific limitations on it.

[0125] It is understandable that, since the damper 140 can be partially located in the internal space of the housing 110 when the first air outlet 111 is opened or closed, at least part of the damper 140 can be accommodated in the internal space of the air conditioner indoor unit 100, making the internal structure of the air conditioner indoor unit 100 more compact and facilitating the miniaturization design of the air conditioner indoor unit 100.

[0126] See also Figure 13 , Figure 13This is a schematic diagram of the air damper of the indoor unit of the air conditioner in an embodiment of this application, showing its movement from opening to closing.

[0127] In some embodiments, when the damper 140 is open at the first air outlet, the damper 140 is spaced apart from a portion of the first sidewall 112, thereby forming a vortex cavity 150 between the damper 140 and the first sidewall 112. The vortex cavity 150 is connected to the fan duct 121 via the fan outlet 121a, so that the fan 130 can input airflow into the vortex cavity 150 through the fan duct 121 and the fan outlet 121a. The vortex cavity 150 is also connected to the first air outlet 111, so that the airflow in the vortex cavity 150 can flow to the outside of the housing 110 through the first air outlet 111.

[0128] As can be seen, the damper 140 can not only open or close the first air outlet 111, but also can be reused as a component to form the vortex cavity 150. Therefore, there is no need to set up an independent dust door and fluid oscillator for the air conditioner indoor unit 100, which can reduce the number of components of the air conditioner indoor unit 100, reduce the manufacturing cost of the air conditioner indoor unit 100, save the internal space of the casing 110, and reduce the overall volume of the air conditioner indoor unit 100.

[0129] In some embodiments, the indoor unit 100 of the air conditioner further includes a partition 160, which is movably disposed inside the vortex cavity 150. The partition 160 divides the vortex cavity 150 into a vortex air duct 151 and a return air duct 152. The arrangement of the vortex air duct 151 and the return air duct 152 allows a portion of the airflow entering the vortex cavity 150 to circulate between the vortex air duct 151 and the return air duct 152.

[0130] When the damper 140 opens the first air outlet 111, the direction of airflow in the vortex duct 151 can be changed by moving the baffle 160 relative to the first side wall 112 of the housing 110, thereby changing the air outlet angle of the vortex duct 151 at the first air outlet 111.

[0131] This application incorporates a movable damper on the housing, which opens or closes the first air outlet of the housing. When the damper is open relative to the first air outlet, the damper and the first side wall of the housing are spaced apart to form a vortex cavity. A movable baffle is installed within the vortex cavity, dividing it into a vortex duct and a return duct. Part of the airflow entering the vortex cavity circulates between the vortex duct and the return duct, generating self-excited oscillation and achieving diffused airflow. Another part of the airflow forms a vortex airflow under the action of the baffle, which changes the air outlet angle of the indoor unit. Because the damper serves both to open or close the first air outlet and as the cavity wall of the vortex cavity, the number of components in the indoor unit can be reduced, thereby reducing manufacturing processes and the overall size of the indoor unit.

[0132] In some embodiments, the indoor unit 100 of the air conditioner may include a first air supply mode and a second air supply mode. When the damper 140 opens the first air outlet 111, the indoor unit 100 of the air conditioner can switch between the first air supply mode and the second air supply mode by moving the partition 160 relative to the first side wall 112.

[0133] In the first air supply mode, part of the airflow entering the vortex cavity 150 from the fan outlet 121a circulates in the vortex duct 151 and the return duct 152, and mixes with the airflow at the fan outlet 121a to generate self-excited oscillation, and flows from the first outlet 111 to the outside of the housing 110 to form a diffused airflow.

[0134] In the second air supply mode, the baffle 160 moves relative to the first side wall 112, causing the airflow entering the vortex cavity 150 to form a vortex airflow in the vortex air duct 151, thereby changing the airflow outlet angle at the first air outlet 111, and outputting the airflow with the changed outlet angle through the first air outlet 111.

[0135] As can be seen, the first air supply mode mentioned above refers to the following: when the damper 140 opens the first air outlet, the baffle 160 is spaced apart from the first side wall 112 and the damper 140, so that the vortex cavity 150 is divided into a vortex air duct 151 and a return air duct 152. As a result, the airflow can circulate between the vortex air duct 151 and the return air duct 152, and can mix with the airflow at the fan outlet 121a to generate self-excited oscillation, and then be discharged through the first air outlet 111 to form a diffused airflow mode.

[0136] Accordingly, the second air supply mode mentioned above refers to the following: when the damper 140 opens the first air outlet 111, the baffle 160 moves relative to either the first side wall 112 or the damper 140, causing the baffle 160 to move closer to the first side wall 112 or the damper 140, so that the airflow entering the vortex cavity 150 forms a vortex airflow in the vortex air duct 151, thereby changing the airflow outlet angle at the first air outlet 111, and outputting the airflow with the changed outlet angle through the first air outlet 111.

[0137] In some embodiments, the partition 160 may be a long strip, and the partition 160 may include two opposite ends along its own width direction. In the first air supply mode, one end of the partition 160 is close to the fan outlet 121a, and the other end is close to the first air outlet 111. When it is necessary to switch from the first air supply mode to the second air supply mode, the partition 160 can be moved relative to the first sidewall 112 and the end close to the first air outlet 111 can be close to the first sidewall 112 or the damper 140. At this time, the partition 160 can change the air outlet angle of the airflow of the vortex duct 151 at the first air outlet 111.

[0138] See also Figure 14 and Figure 15 , Figure 14 This is a schematic diagram of airflow in the first air supply mode of this application embodiment. Figure 15 This is another schematic diagram of airflow in the first air supply mode in this embodiment.

[0139] In the first air supply mode, the airflow entering the vortex duct 151 is divided into two parts. One part flows from the first air outlet 111 to the outside of the housing 110, and the other part enters the return air duct 152. It circulates in the vortex duct 151 and the return air duct 152, and after mixing with the airflow at the fan outlet 121a, it generates self-excited oscillation, forms diffused airflow, and is output from the first air outlet 111.

[0140] See also Figures 16 to 17 , Figure 16 This is a schematic diagram of airflow in a second air supply mode according to an embodiment of this application. Figure 17 This is a schematic diagram of airflow in another second air supply mode according to an embodiment of this application.

[0141] In the second air supply mode, the end of the partition 160 near the first air outlet 111 moves to be close to the first sidewall 112, such as... Figure 16 As shown, this reduces the return flow rate of the return air duct 152, causing the airflow entering the vortex air duct 151 to mainly form vortex airflow within the vortex air duct 151, thereby causing the vortex air duct 151 to output airflow deflected towards the first sidewall 112 at the first air outlet 111.

[0142] Alternatively, in the second air supply mode, the end of the partition 160 near the first air outlet 111 can be moved to be close to the damper 140, such as... Figure 17 As shown, this also reduces the return flow rate of the return air duct 152, so that the airflow entering the vortex air duct 151 mainly forms a vortex airflow within the vortex air duct 151, thereby causing the vortex air duct 151 to output airflow deflected towards the damper 140 at the first air outlet 111.

[0143] That's understandable. When the end of the partition 160 near the first air outlet 111 abuts against the first side wall 112 or the damper 140, it can block the return air duct 152, that is, reduce or prevent the airflow in the vortex air duct 151 from circulating in the vortex air duct 151 and the return air duct 152.

[0144] In some embodiments, when the end of the partition 160 near the first air outlet 111 abuts against the first sidewall 112, the airflow, after entering the vortex duct 151, flows along the surface of the damper 140 toward the partition 160 to the first air outlet 111. At this time, part of the airflow is delivered from the first air outlet 111 to the outside of the housing 110, and another part of the airflow flows along the inner surface of the first sidewall 112 to the surface of the partition 160 toward the damper 140, and flows along the surface of the partition 160 to the fan outlet 121a, where it mixes with the airflow at the fan outlet 121a to form a vortex airflow. The vortex airflow at the first air outlet 111 can drive the airflow output from the first air outlet 111 to the outside of the housing 110 to deflect, thereby changing the air outlet angle of the indoor unit 100 of the air conditioner, and thus achieving a large-angle, wide-range air outlet.

[0145] See you again Figures 15 to 17 In some embodiments, the housing 110 further includes a second sidewall 113, which is disposed opposite to the first sidewall 112, and the first sidewall 112 and the second sidewall 113 together form the first air outlet 111. When the damper 140 opens the first air outlet 111, the damper 140 can be located between the first sidewall 112 and the second sidewall 113, so that the damper 140 is spaced apart from both the first sidewall 112 and the second sidewall 113. Furthermore, the vortex cavity 150 is formed between the damper 140 and the first sidewall 112, and a guide air duct 153 is formed between the damper 140 and the second sidewall 113. The guide air duct 153 is connected to the fan duct 121 through the fan outlet 121a. In other words, when the damper 140 is in the state of opening the first air outlet 111, the damper 140 can divide the internal space enclosed between the first side wall 112 and the second side wall 113 into a vortex cavity 150 and a flow channel 153.

[0146] Because some airflow circulates within the vortex cavity 150 in the vortex duct 151 and the return channel 152, meaning that not all airflow entering the vortex duct 151 is delivered to the outside of the casing 110, there is a certain degree of loss in the airflow after it enters the vortex cavity 150 and is then output, resulting in a reduction in the air supply volume. Furthermore, since the airflow output after passing through the vortex cavity 150 is a diffused airflow, its velocity is significantly lower than the airflow velocity at the fan outlet 121a, affecting the overall air supply volume.

[0147] Based on this, this application utilizes the guide channel 153 formed between the damper 140 and the second sidewall 113, connecting the guide channel 153 to the fan outlet 121a. Simultaneously, the guide channel 153 can also connect to the first outlet 111. Thus, the airflow output from the fan outlet 121a can not only enter the vortex cavity 150 but also the guide channel 153. Specifically, part of the airflow from the fan outlet 121a enters the vortex cavity 150, while another part enters the guide channel 153 and is directly output to the first outlet 111. This output airflow mixes with the diffused airflow output from the vortex cavity 150, thereby compensating for the air volume and increasing the airflow velocity, effectively improving the heat exchange efficiency of the indoor unit 100.

[0148] In some embodiments, when the damper 140 opens the first air outlet 111, the first air outlet 111 may include a first sub-air outlet 111a and a second sub-air outlet 111b. The first sub-air outlet 111a can be constructed between the first sidewall 112 and the damper 140, and the vortex duct 151 communicates with the first sub-air outlet 111a, through which airflow in the vortex duct 151 is delivered to the outside of the housing 110. The second sub-air outlet 111b can be constructed between the second sidewall 113 and the damper 140, and the guide duct 153 communicates with the second sub-air outlet 111b.

[0149] By setting the first sub-air outlet 111a and the second sub-air outlet 111b, the airflow through the vortex cavity 150 and the guide air duct 153 can be discharged separately, avoiding the loss of airflow caused by the airflow in the guide air duct 153 entering the vortex cavity 150, and at the same time avoiding the airflow in the guide air duct 153 from disturbing the airflow inside the vortex cavity 150.

[0150] See you again Figures 15 to 17 In some embodiments, the edge portion of the first sidewall 112 forming the first sub-outlet 111a is provided with a first guide portion 112a. The first guide portion 112a is used to guide the airflow deflection at the first sub-outlet 111a. For example, when the airflow is delivered from the first sub-outlet 111a to the outside of the housing 110, the first guide portion 112a can deflect the airflow toward the damper 140. In this way, by using the first guide portion 112a, the airflow exiting through the first sub-outlet 111a can be deflected to achieve large-angle air delivery.

[0151] In some embodiments, the first guide portion 112a may be a protrusion protruding from the first sidewall, and the side of the first guide portion facing the fan outlet 121a is an arc-shaped concave surface, which is recessed toward the side away from the fan outlet 121a.

[0152] See you again Figures 15 to 17 In some embodiments, the edge portion of the damper 140 forming the first sub-outlet 111a is provided with a second guide portion 140a. The second guide portion 140a is used to guide the airflow deflection at the first sub-outlet 111a. For example, when the airflow is delivered from the first sub-outlet 111a to the outside of the housing 110, the second guide portion 140a can deflect the airflow toward the first sidewall 112. By using the second guide portion 140a, the airflow exiting through the first sub-outlet 111a can be deflected to achieve large-angle air delivery.

[0153] In some embodiments, the second guide portion 140a is an arc-shaped concave surface disposed on the side of the damper 140 facing the fan outlet 121a, and the arc-shaped concave surface is recessed towards the side away from the fan outlet 121a.

[0154] See also Figures 18 to 20 , Figure 18 This is a three-dimensional structural diagram of the air damper of the indoor unit of the air conditioner according to an embodiment of this application. Figure 19 for Figure 18 The diagram shown is a front view of the damper. Figure 20 for Figure 19 The diagram shows a cross-sectional view of the damper along line CC'.

[0155] In some embodiments, the damper 140 may include a first guide section 141. When the damper 140 opens the first air outlet 111, the first guide section 141 faces the fan outlet 121a and is inclined relative to the fan outlet 121a. For example, the first guide section 141 has a first end and a second end, the first end being close to the first sidewall 112 and the second end being close to the second sidewall 113. Along the direction of gas flow at the fan outlet 121a, the distance between the first end and the fan outlet 121a is less than the distance between the second end and the fan outlet 121a. Thus, the first guide section 141 can guide part of the airflow into the guide duct 153, so that the guide duct 153 has a certain air volume, ensuring that the guide duct 153 can compensate for the air volume of the indoor unit 100 of the air conditioner.

[0156] In some embodiments, the damper 140 further includes a second guide section, which is located on the side of the first guide section 141 near the first sub-outlet 111a when the damper 140 opens the first outlet 111. The second guide section has a third end and a fourth end, the third end of which connects to the second end of the first guide section 141, and the fourth end is used to form the first sub-outlet 111a. After the first guide section 141 guides part of the airflow into the guide duct 153, the second guide section can guide the airflow to the second sub-outlet 111b, through which the air is discharged.

[0157] In some embodiments, the first drainage segment 141 has a first drainage surface, and the second drainage segment has a second drainage surface. Both the first and second drainage surfaces are curved surfaces. The curvature of the first drainage surface at the junction of the second and third ends is c2. The curvature of any point on the second drainage surface is c2. Then, c1 and c2 satisfy the relationship: c2 ≤ c1. By ensuring that the curvature c2 at any position of the second drainage segment is not greater than the curvature c1 at the junction of the first and second drainage segments, the drainage surface of the second drainage segment can be made relatively gentle, which can reduce wind resistance during the drainage process and thus reduce airflow loss.

[0158] In some embodiments, the second drainage section includes a first sub-drainage section 142 and a second sub-drainage section 143. Specifically, the first sub-drainage section 142 has opposing fifth and sixth ends, and the second sub-drainage section 143 has opposing seventh and eighth ends, wherein the fifth and third ends are connected, the sixth and seventh ends are connected, and the eighth end, together with the first sidewall 112, forms a first sub-outlet 111a. It can be seen that the fifth end of the first sub-drainage section 142 can be considered as the third end of the second drainage section, and the eighth end of the second sub-drainage section 143 can be considered as the fourth end of the second drainage section.

[0159] The first sub-guide section 142 guides airflow to the second sub-guide section 143, which is located on the side of the first sub-guide section 142 near the second sub-outlet 111b. The second sub-guide section 143 guides the airflow within the guide duct 153 to mix with the airflow output from the vortex duct 151 through the second sub-outlet 111b. After the first sub-guide section 142 guides the airflow to the second sub-guide section 143, the second sub-guide section 143 can guide the airflow output from the second sub-outlet 111b to mix with the airflow output from the first sub-outlet 111a, thereby increasing the airflow volume of the indoor unit 100.

[0160] For example, the cross-sectional shape of the damper 140 perpendicular to the length direction L of the indoor unit 100 is approximately U-shaped. The first guide section 141 and the second sub-guide section 143 are the two arms of the U-shaped structure, and the first sub-guide section 142 is the bottom connecting the first guide section 141 and the second sub-guide section 143. When the damper 140 opens the first air outlet 111, the first guide section 141 and the second sub-guide section 143 extend toward the first sidewall 112, and the first end of the first guide section 141 can serve as a diversion point to divert the airflow at the fan outlet 121a. Thus, when the airflow output by the fan is delivered to the fan outlet 121a, the first end of the first guide section 141 allows part of the airflow to flow along the surface of the first guide section 141 and enter the guide duct 153.

[0161] In some embodiments, the first sub-drainage segment 142 has a first sub-drainage surface, and the second sub-drainage segment 143 has a second sub-drainage surface. Both the first and second sub-drainage surfaces are arc surfaces. The curvature of the third drainage surface at the junction of the sixth and seventh ends is c3, where c2 ≤ c3. By setting the curvature c2 at any position on the first sub-drainage segment 142 to be no greater than the curvature c3 at the junction of the second sub-drainage segment 143, the overall curvature change of the first sub-drainage segment 142 is small, and the overall surface is relatively smooth, which is conducive to generating a wall attachment effect and further effectively guiding the flow direction of the airflow.

[0162] See you again Figure 20 In some embodiments, the outer wall surface of the damper 140 may be provided with a clearance notch 144, thereby forming a mating step 145 on the outer wall surface of the damper 140. When the damper 140 closes the first air outlet 111, the mating step 145 can abut against the edge portion of the first side wall 112 forming the first sub-air outlet 111a. Since the edge portion of the damper 140 forming the first sub-air outlet 111a is recessed due to the clearance notch 144, the mating step 145 can extend into the inner side of the edge portion of the first side wall 112 forming the first sub-air outlet 111a, thus forming a zero-gap or near-zero-gap contact. This achieves good dustproof and waterproof effects and improves the uniformity of the appearance of the indoor air conditioning unit 100 after the damper 140 is closed.

[0163] See you again Figure 20 In some embodiments, the outer edge of the edge portion of the damper 140 constituting the first sub-air outlet 111a can be set as an arc edge 140b. When the damper 140 closes the first air outlet 111, the arc edge 140b can maintain a fixed distance from the endpoint of the edge portion of the first sidewall 112 constituting the first sub-air outlet 111a, so as to prevent interference and collision during the closing process of the damper 140.

[0164] See you again Figure 20 In some embodiments, when a return air duct 152 is formed between the damper 140 and the partition 160, a diversion section 146 can be provided on the side of the damper 140 facing the partition 160. When the airflow in the vortex air duct 151 flows to the first sub-outlet 111a, the diversion section 146 can divert the airflow at the sub-outlet 111a, so that part of the airflow in the vortex air duct 151 enters the return air duct 152.

[0165] In some embodiments, the diversion section 146 may be a protrusion protruding toward the partition 160, and the end point of the protrusion may form a diversion point, that is, the airflow may be diverted at this point. It is understood that, in order to reduce wind resistance, the protrusion may be set as an arc-shaped protrusion.

[0166] See you again Figure 20 In some embodiments, the damper 140 includes an outer shell 140c and an inner shell 140d. The outer shell 140c and the inner shell 140d are stacked, and a hollow region is formed between them. This hollow region can be a closed region, and it is filled with thermal insulation material 147. It is understood that when the indoor unit 100 of the air conditioner outputs cold air, the temperature of the inner shell 140d will drop significantly. Heat transfer between the inner shell 140d and the outer shell 140c may cause the temperature of the outer shell 140c to decrease, leading to condensation on the outer shell 140c. Therefore, this application reduces heat transfer between the outer shell 140c and the inner shell 140d by filling the space between them with thermal insulation material 147, thus preventing condensation on the outer shell 140c due to the influence of the inner shell 140d.

[0167] Optionally, the thermal insulation material 147 can be a material with good thermal insulation properties, such as thermal insulation sponge, felt, or foam. Furthermore, the outer shell 140c and the inner shell 140d can be fixed together by means of snap-fit, screw-fit, or adhesive. This application does not specifically limit the above settings.

[0168] Please see also Figures 21 to 22 , Figure 21 A cross-sectional view of an air conditioner indoor unit with two partitions, according to an embodiment of this application. Figure 22 for Figure 21 A magnified view of region E in the middle.

[0169] In some embodiments, the partition can be one or more. If there are multiple partitions, the partition 160 may include a first sub-plate 161 and a second sub-plate 162, at least one of which is movably disposed inside the vortex cavity 150. The first sub-plate 161 and the second sub-plate 162 are spaced apart, thereby forming a vortex airflow duct 151 between the first sub-plate 161 and the second sub-plate 162.

[0170] In some embodiments, the first sub-plate 161 and the first sidewall 112 are spaced apart, thereby forming a first return air duct 152a between the first sub-plate 161 and the first sidewall 112. The second sub-plate 162 is located on the side of the first sub-plate 161 opposite to the first sidewall 112 and is spaced apart from the damper 140, thereby forming a second return air duct 152b between the second sub-plate 162 and the damper 140. The first return air duct 152a and the second return air duct 152b together constitute the aforementioned return air duct 152. This arrangement can increase the return flow rate of the airflow in the vortex cavity 150, and the returned airflow includes two parts with opposite flow directions, which can further improve the oscillation effect of the airflow in the vortex air duct 151.

[0171] Understandably, when the second sub-plate 162 and the damper 140 form the second return air duct 152b, the diversion part 146 of the damper 140 protrudes toward the second sub-plate 162.

[0172] In some embodiments, the side of the first sidewall 112 facing the first sub-plate 161 may also be provided with the same diversion portion, in which case the diversion portion on the first sidewall 112 protrudes toward the first sub-plate 161.

[0173] In some embodiments, the gap between the first sub-plate 161 and the second sub-plate 162 increases in the direction from the fan outlet to the first outlet, that is, the vortex duct is flared on one side of the first outlet. In other words, the distance between the ends of the first sub-plate 161 and the second sub-plate 162 closest to the fan outlet 121a is less than the distance between the ends of the first sub-plate 161 and the second sub-plate 162 closest to the first sub-outlet 111a. With this configuration, when an oscillating airflow is formed within the vortex duct 151, as the airflow flows from the fan outlet 121a to the first sub-outlet 111a, the hydraulic diameter of the vortex duct 151 increases, the wind resistance decreases, and the airflow gradually diffuses, thereby optimizing the airflow effect.

[0174] In some embodiments, the first sub-plate 161 and the second sub-plate 162 can be configured to have the same shape and structure. For example, both the first sub-plate and the second sub-plate can be elongated plates. In this way, the first sub-plate 161 and the second sub-plate 162 can be manufactured using the same tool, thereby reducing the manufacturing cost of the air conditioner indoor unit 100. Of course, the first sub-plate 161 and the second sub-plate 162 can also have different shape and structure. This application uses the example of the first sub-plate 161 and the second sub-plate 162 having the same shape and structure for illustration.

[0175] See you again Figure 22 In some embodiments, the first sub-plate 161 includes a first arc-shaped segment 161a, which protrudes toward the first sidewall 112. One end of the first arc-shaped segment 161a is close to the fan outlet 121a, and the other end is close to the first sub-outlet 111a. The second sub-plate 162 includes a second arc-shaped segment 162a, which protrudes toward the damper 140. One end of the second arc-shaped segment 162a is close to the fan outlet 121a, and the other end is close to the first sub-outlet 111a. That is, the first arc-shaped segment 161a and the second arc-shaped segment 162a protrude in directions away from each other. This arrangement, in the first air supply mode, facilitates the generation of vortices between the first arc-shaped segment 161a and the second arc-shaped segment 162a, making it easier for the fluid to form an attached wall oscillation effect.

[0176] In some embodiments, the first sub-plate 161 further includes a first straight segment 161b, which has two opposing ends, one end of which is close to the fan outlet 121a and the other end of which is close to the first sub-outlet 111a. The first straight segment 161b is located on the side of the first arc segment 161a that is close to the fan outlet 121a, and the end of the first straight segment 161b that is close to the first sub-outlet 111a is connected to the end of the first arc segment 161a that is close to the fan outlet 121a.

[0177] Accordingly, the second sub-plate 162 also includes a second straight segment 162b, which has two opposite ends, one end of which is close to the fan outlet 121a and the other end of which is close to the first sub-outlet 111a. The second straight segment 162b is located on the side of the second arc-shaped segment 162a that is close to the fan outlet 121a, and the end of the second straight segment 162b that is close to the first sub-outlet 111a is connected to the end of the second arc-shaped segment 162a that is close to the fan outlet 121a.

[0178] By setting straight sections on the side of the first arc segment 161a and the second arc segment 162a near the fan outlet 121a, the airflow entering the vortex duct 151 from the fan outlet 121a is more likely to form a wall-attachment effect at the position of the first sub-plate 161 and the second sub-plate 162 near the fan outlet 121a, thereby effectively guiding the direction of airflow.

[0179] In some embodiments, the first sub-plate 161 further includes a third straight segment 161c, which has two opposing ends, one end of which is close to the fan outlet 121a and the other end of which is close to the first sub-outlet 111a. The third straight segment 161c is located on the side of the first arc-shaped segment 161a that is close to the first sub-outlet 111a, and the end of the third straight segment 161c that is close to the fan outlet 121a is connected to the end of the first arc-shaped segment 161a that is close to the first sub-outlet 111a.

[0180] Correspondingly, the second sub-plate 162 also includes a fourth straight segment 162c, which has two opposite ends, one end of which is close to the fan outlet 121a and the other end of which is close to the first sub-outlet 111a. The fourth straight segment 162c is located on the side of the second arc-shaped segment 162a that is close to the first sub-outlet 111a, and the end of the fourth straight segment 162c that is close to the fan outlet 121a is connected to the end of the second arc-shaped segment 162a that is close to the first sub-outlet 111a. By setting a straight segment on the side of the first arc-shaped segment 161a and the second arc-shaped segment 162a that is close to the first sub-outlet 111a, the airflow close to the surface of the first sub-plate 161 and the second sub-plate 162 in the vortex duct 151 can be guided to their respective return ducts by utilizing the wall attachment effect. This effectively guides the airflow into the return duct, forming a circulating airflow inside the vortex cavity 150, thereby causing the airflow to generate self-excited oscillation, which is beneficial for achieving diffused airflow.

[0181] See you again Figure 22 In some embodiments, the distance between the end of the first straight segment 161b near the fan outlet 121a and the end of the second straight segment 162b near the fan outlet 121a is d1; the distance between the end of the first arc-shaped segment 161a near the fan outlet 121a and the end of the second arc-shaped segment 162a near the fan outlet 121a is d2; the distance between the end of the first arc-shaped segment 161a near the first sub-outlet 111a and the end of the second arc-shaped segment 162a near the first sub-outlet 111a is d3; and the distance between the end of the third straight segment 161c near the first sub-outlet 111a and the end of the fourth straight segment 162c near the first sub-outlet 111a is d4. Wherein, d1, d2, d3, and d4 satisfy the following relationships: d1 < d2, and / or d1 < d3, and / or d1 < d4. Thus, in the direction from the fan outlet 121a to the first sub-outlet 111a, the distance between the first sub-plate 161 and the second sub-plate 162 is increased, forming an expanded opening. This allows the airflow between the first sub-plate 161 and the second sub-plate 162 to gradually diffuse as it flows from the fan outlet 121a to the first sub-outlet 111a. This facilitates the continued entry of some airflow into the return air duct 152 for circulation and also helps to achieve diffused airflow, reducing the feeling of being blown out.

[0182] In some embodiments, d2, d3, and d4 also satisfy the relationship: d2 < d3, and / or d2 < d4. Thus, an expansion port is also provided between the first arc segment 161a and the second arc segment 162a, which can gradually expand the vortex airflow between the first arc segment 161a and the second arc segment 162a, effectively guiding the airflow at the first sub-outlet 111a.

[0183] In some embodiments, d3 and d4 also satisfy the relationship: d3 < d4. Thus, when the indoor unit 100 of the air conditioner is in the first air supply mode, the third straight segment 161c can better guide the airflow to the first return air duct 152a, and the fourth straight segment 162c can better guide the airflow to the second return air duct 152b.

[0184] See you again Figure 22 In some embodiments, the distance between the diversion portion of the first sidewall 112 and the diversion portion 146 of the damper 140 is d5, and d4 and d5 satisfy the relationship: d4≥d5. This arrangement ensures that the airflow guided to the first sub-outlet 111a by the first straight segment 161c and the second straight segment 162c is diverted and partially diverted, thereby correspondingly entering the first return air duct 152a and the second return air duct 152b.

[0185] In some embodiments, both the first sub-plate 161 and the second sub-plate 162 are movable relative to the first sidewall 112. The first sub-plate 161 and the second sub-plate 162 can be linked together, or the first sub-plate 161 and the second sub-plate 162 can move independently of each other. This application describes the independent movement of the first sub-plate 161 and the second sub-plate 162.

[0186] Optionally, the first sub-plate 161 can move by rotating or sliding, and the position of the first straight segment 161b and the third straight segment 161c of the first sub-plate 161 relative to the first sidewall 112 can be changed by rotating or sliding.

[0187] Accordingly, the second subplate 162 can move by rotating or sliding, and by rotating or sliding, the positions of the second straight segment 162b and the fourth straight segment 162c of the second subplate 162 relative to the damper 140 can be changed.

[0188] Understandably, when the first sub-plate 161 and the second sub-plate 162 move by rotation, the rotation center of the first sub-plate 161 and the second sub-plate 162 can be set at their respective centers of gravity. In this way, the driving force required to drive the first sub-plate 161 and the second sub-plate 162 to rotate can be reduced, and the vibration during the rotation process can be reduced, thereby reducing the noise during the operation of the air conditioner indoor unit 100. On this basis, there is no need to carry out additional motion balance design for the first sub-plate 161 and the second sub-plate 162, which can also reduce the design cost.

[0189] See you again Figure 22In some embodiments, when the indoor unit 100 of the air conditioner is in the first air supply mode, in order to ensure that the diffused air has a large air volume, it is necessary to ensure that the inlet of the vortex duct 151 has an appropriate size, thereby increasing the air intake of the vortex duct 151. At this time, the distance between the position of the volute tongue 123 forming the fan outlet 121a and the end of the damper 140 near the fan outlet 121a is d6. d6 and the distance d1 between the ends of the first straight segment 161b and the second straight segment 162b near the fan outlet 121a in the first air supply mode satisfy the relationship: d6 < d1. This setting can ensure the air volume entering the vortex duct 151, and also ensure that the airflow returning from the first return duct 152a can mix with the airflow at the fan outlet 121a and drive the airflow direction to change.

[0190] In some embodiments, the distance d0 between the volute tongue 123 at the position forming the fan outlet 121a and the end of the damper near the fan outlet, and the distance d1 between the end of the first straight segment 161b near the fan outlet 121a and the end of the second straight segment 162b near the fan outlet 121a in the first air supply mode, also satisfy the relationship: 1.1*d0<d1, and / or, d1<2*d0.

[0191] When d0 and d1 satisfy the inequality 1.1*d0<d1, it can be ensured that the fan outlet 121a is smaller than the inlet of the vortex duct 151 formed by the first sub-plate 161 and the second sub-plate 162. This can avoid the situation where the fan outlet 121a is equal to or greater than the inlet of the vortex duct 151 due to manufacturing tolerances or other reasons. This ensures that the airflow after recirculation can mix with the airflow at the fan outlet 121a. It can also prevent the airflow output from the fan outlet 121a from directly entering the return duct 152 at the fan outlet 121a and causing it to collide with the airflow in the return duct 152.

[0192] When d1 < 2*d0, the inlet of the vortex duct 151 can be prevented from being too large, thus preventing the airflow from failing to form a circulation and vortex airflow between the first sub-plate 161 and the second sub-plate 162 and directly exiting from the first air outlet 111.

[0193] Please see also Figure 23 , Figure 23This is a schematic diagram of gas flow in the first air supply mode of an air conditioner indoor unit with two partitions according to an embodiment of this application. When the air conditioner indoor unit 100 is in the first air supply mode, the first sub-plate 161 is spaced apart from the first side wall 112, and the second sub-plate 162 is spaced apart from the damper 140. When the airflow enters the air supply chamber from the fan outlet 121a, the airflow is affected by the first guide section 141 of the damper 140 at the fan outlet 121a and is divided into two parts. One part enters the vortex chamber 150, and the other part enters the guide air duct 153 and is transported to the outside of the housing 110 from the second sub-outlet 111b. When the airflow entering the vortex cavity 150 reaches the first sub-outlet 111a, it is divided into three parts: one part is transported from the first sub-outlet 111a to the outside of the housing 110; one part flows back from the first return air duct 152a to the fan outlet 121a; and one part flows back from the second return air duct 152b to the fan outlet 121a. The two parts of airflow that flow back to the fan outlet 121a mix with the airflow at the fan outlet 121a, generating self-excited oscillation. After forming an oscillating airflow, it is transported to the outside of the housing 110 through the first sub-outlet 111a.

[0194] In some embodiments, the second air supply mode can be either an upward air supply mode or a downward air supply mode, while the other can be used as the third air supply mode of the air conditioner indoor unit 100. This application uses an upward air supply mode as the second air supply mode and a downward air supply mode as the third air supply mode for illustration. Specifically, the upward air supply mode means that when the air conditioner indoor unit 100 supplies air, the airflow is directed towards the first side wall 112, i.e., the air conditioner indoor unit 100 supplies air upwards along the height direction. The downward air supply mode means that when the air conditioner indoor unit 100 supplies air, the airflow is directed towards the second side wall 113, i.e., the air conditioner indoor unit 100 supplies air downwards along the height direction.

[0195] Please combine Figure 24 As shown, Figure 24This is a schematic diagram of gas flow in the second air supply mode of an air conditioner indoor unit with two partitions according to an embodiment of this application. When the air conditioner indoor unit 100 is in the second air supply mode, the first sub-plate 161 moves relative to the first side wall 112, while the second sub-plate 162 can remain stationary relative to the first side wall 112. When the first sub-plate 161 moves to the point where the end of the first straight segment 161b near the fan outlet 121a approaches the second sub-plate 162, and the end of the third straight segment 161c near the first sub-outlet 111a abuts against the first side wall 112, the first return air duct 152a is blocked, preventing return flow. Part of the airflow entering the vortex air duct 151 enters the space defined by the surface of the first sub-plate 161 away from the second sub-plate 162 and the first side wall 112. Since the first return air duct 152a cannot flow, static pressure is generated in this space. Another portion of the airflow entering the vortex duct 151 flows along the surface of the second sub-plate 162 toward the surface of the first sub-plate 161. When this portion of the airflow reaches the first sub-outlet 111a, it splits into two parts. One part is influenced by the second guide section 140a on the damper 140 and is transported to the outside of the housing 110 in a direction deflected toward the first sidewall 112. The other part flows along the first sidewall 112, guided by the first guide section 112a, and flows to the surface of the first sub-plate 161 toward the surface of the second sub-plate 162. It then flows again from the surface of the first sub-plate 161 to the surface of the second sub-plate 162 toward the surface of the first sub-plate 161, where it mixes with the airflow at the fan outlet 121a, thereby forming a vortex airflow. The vortex airflow can drive the airflow output from the first sub-outlet 111a to the outside of the housing 110 to continue to deflect toward the first sidewall 112, so as to achieve a larger angle of airflow.

[0196] It should be noted that the vortex airflow has the following main effects on the airflow within the vortex duct 151: First, the vortex airflow impacts the airflow between the first straight section 161b and the second straight section 162b, causing it to further adhere to the surface of the second sub-plate 162 facing the first sub-plate 161, and flow along the surface of the second sub-plate 162. Second, when the airflow flowing along the surface of the second sub-plate 162 to the first sub-outlet 111a is deflected by the second guide section 140a, the vortex airflow further drives the deflected airflow to deflect further in the same direction.

[0197] Understandably, when a portion of the airflow is influenced by the second guide section 140a on the damper 140 and is transported to the outside of the housing 110 in a direction deflected towards the first sidewall 112 at the first sub-outlet 111a, the angle between the airflow direction and the airflow direction at the fan outlet 121a is α1. The airflow at the first sub-outlet 111a, after being further deflected by the vortex airflow, has an angle α2 between its current direction and the airflow direction at the fan outlet 121a, where α1 < α2.

[0198] It should be noted that, in the second air supply mode, similar to the first air supply mode, a portion of the airflow entering the air supply chamber enters the guide duct 153 and is transported to the outside of the housing 110 from the second sub-outlet 111b. Because the airflow output from the first sub-outlet 111a deflects towards the first sidewall 112, a low-pressure area is formed in the second sub-guide section 143 of the damper 140. This allows the airflow at the connection between the first guide section 142 and the second sub-guide section 143 to deflect towards the first sidewall 112 under the influence of the air pressure difference, and mix with the airflow output from the first sub-outlet 111a.

[0199] See also Figure 25 , Figure 25 This is a schematic diagram of gas flow in the third air supply mode of an air conditioner indoor unit with two partitions according to an embodiment of this application. When the air conditioner indoor unit 100 is in the third air supply mode, the second sub-plate 162 moves relative to the damper 140, while the first sub-plate 161 can remain stationary relative to the first side wall 112. When the second sub-plate 162 moves to the point where the end of the second straight segment 162b near the fan outlet 121a approaches the first sub-plate 161, and the end of the fourth straight segment 162c near the first sub-outlet 111a abuts against the damper 140, the second return air duct 152b is cut off, preventing the formation of a return flow. Part of the airflow entering the vortex air duct 151 enters the space defined by the second sub-plate 162 away from the surface of the first sub-plate 161 and the damper 140. Since the second return air duct 152b cannot circulate, static pressure is generated in this space. Another portion of the airflow entering the vortex duct 151 flows along the surface of the first sub-plate 161 toward the second sub-plate 162. This portion of airflow splits into two parts upon reaching the first sub-outlet 111a. One part, influenced by the first guide section 112a on the first sidewall 112, is directed towards the outside of the housing 110 in a direction biased towards the damper. The other part flows along the damper 140, guided by the second guide section 140a, and flows to the surface of the second sub-plate 162 toward the first sub-plate 161. It then flows again from the surface of the second sub-plate 162 to the surface of the first sub-plate 161 toward the second sub-plate 162, mixing with the airflow at the fan outlet 121a to form a vortex airflow. This vortex airflow can further deflect the airflow output from the first sub-outlet 111a to the outside of the housing 110 toward the damper 140, achieving a larger angle of airflow. It should be noted that in the third air supply mode, the direction of the vortex airflow is opposite to that in the second air supply mode.

[0200] It is understandable that in the third air supply mode, the influence of the first guide section 112a and the vortex airflow on the airflow in the vortex duct 151 is the same as the influence of the second guide section 140a and the vortex airflow on the airflow in the vortex duct 151 in the second air supply mode, and will not be elaborated here.

[0201] In the third air supply mode, similar to the first air supply mode, a portion of the airflow entering the air supply chamber enters the guide duct 153 and is transported to the outside of the housing 110 from the second sub-outlet 111b. At the junction of the first sub-guide section 142 and the second sub-guide section 143 of the damper 140, due to the large curvature, the airflow undergoes boundary separation, thereby enabling it to change direction and mix with the airflow output from the first sub-outlet 111a.

[0202] Therefore, the air conditioner indoor unit 100 of this application can have different air supply modes, and the switching of different air supply modes can be achieved by simply driving the first sub-plate 161 or the second sub-plate 162 to make a small angle movement, so that the air conditioner indoor unit 100 has the characteristics of short switching time and fast response when switching different modes.

[0203] Meanwhile, this application utilizes the first sub-board 161 and the second sub-board 162 to form a first return air duct 152a and a second return air duct 152b inside the vortex cavity 150. Through the first return air duct 152a and the second return air duct 152b, part of the airflow is returned to the fan outlet 121a. The returned airflow can mix with the airflow output from the fan outlet 121a to generate self-excited oscillation, thereby realizing the diffused airflow of the air conditioner indoor unit 100, improving the heat exchange efficiency of the air conditioner indoor unit 100 during operation, and thus reducing power consumption.

[0204] In addition, by moving the first sub-plate 161 or the second sub-plate 162 relative to the first sidewall 112, this application enables the first sub-plate 161 and the second sub-plate 162 to change the direction of the airflow inside the vortex cavity 150, thereby forming a vortex airflow inside the vortex duct 151. The vortex airflow can be used to guide the airflow output from the fan outlet 121a, further increasing the air supply angle of the air conditioner indoor unit 100 to supply air upwards and / or downwards, thereby enabling the air conditioner indoor unit 100 to supply air at a large angle and over a wide range.

[0205] A second aspect of this application also provides an air conditioner 200, see [link to document]. Figure 26 It includes an outdoor unit 210 and an indoor air conditioner 100 as described in any of the above embodiments. The outdoor unit 210 can be connected to the indoor air conditioner 100 through pipes, cables, etc.

[0206] The air conditioner indoor unit and air conditioner provided in the embodiments of the present invention have been described in detail above. Specific examples have been used to illustrate the principles and implementation methods of the present invention. The description of the above embodiments is only for the purpose of helping to understand the idea of ​​the present invention. There may be changes in the specific implementation methods and application scope. Therefore, the content of this specification should not be construed as a limitation of the present invention.

Claims

1. An indoor unit for an air conditioner, characterized in that, include: The housing is provided with a first air outlet; A duct component is disposed inside the housing, the duct component forms a fan duct, and the fan duct has a fan outlet; A fan, wherein the fan is installed inside the fan duct; The indoor unit of the air conditioner also includes: A damper is movably connected to the housing and is located on the air outlet side of the fan duct. The damper is used to open or close the first air outlet. The damper is spaced apart from at least a portion of the first sidewall of the housing to form a vortex cavity. The vortex cavity is connected to the fan duct through the fan outlet and is connected to the first outlet to deliver airflow to the outside of the housing. A partition is movably disposed within the vortex cavity, the partition dividing the vortex cavity into a return air duct and a vortex air duct, the vortex air duct and the return air duct being used to circulate airflow within the vortex air duct and the return air duct; With the damper open at the first air outlet, the baffle is configured to be movable relative to the first sidewall of the housing to change the airflow angle of the vortex duct.

2. The indoor unit of the air conditioner according to claim 1, characterized in that, The housing also includes: The second sidewall is disposed opposite to the first sidewall, and the first air outlet is formed between the first sidewall and the second sidewall. The damper is configured to form a guide air duct with at least a portion of the second sidewall when the first air outlet is opened. The guide air duct is connected to the fan air duct through the fan outlet. The first air outlet includes: The first sub-air outlet is formed between the first sidewall and the air damper, and the vortex air duct is connected to the first sub-air outlet to deliver airflow to the outside of the housing; The second sub-outlet is formed between the second sidewall and the damper, and the air guide duct is connected to the second sub-outlet to deliver airflow to the outside of the housing.

3. The indoor unit of the air conditioner according to claim 2, characterized in that, The damper includes: The first drainage segment has a first end and a second end that are opposite each other; The second drainage section has a third end and a fourth end opposite to each other, the third end being connected to the second end; When the damper opens the first air outlet, the first guide section is located at the end of the second guide section near the air outlet of the fan. The first guide section is used to guide part of the airflow at the air outlet of the fan into the guide duct; the second guide section is used to guide the airflow to the second sub-air outlet.

4. The indoor unit of the air conditioner according to claim 3, characterized in that, Both the first drainage segment and the second drainage segment are arc-shaped segments. The curvature at the position where the second end connects to the third end is c1, and the curvature at any position of the second drainage segment is c2, where c2≤c1.

5. The indoor unit of the air conditioner according to claim 3, characterized in that, The second drainage segment includes: The first sub-drainage segment has a fifth end and a sixth end opposite to each other, and the fifth end is connected to the second end; The second sub-drainage section has a seventh end and an eighth end, the seventh end being connected to the sixth end, and the eighth end being configured with the first sidewall to form the first sub-air outlet. The first sub-guide section is used to guide the airflow to the second sub-guide section. The second sub-guide section is located on the side of the first sub-guide section close to the second sub-outlet. The second sub-guide section is used to guide the airflow in the guide duct to mix with the airflow output by the vortex duct through the first sub-outlet.

6. The indoor unit of the air conditioner according to claim 5, characterized in that, Both the first sub-drainage segment and the second sub-drainage segment are arc-shaped segments. The curvature of the first sub-drainage segment at any position is c2, and the curvature at the position where the sixth end and the seventh end connect is c3. c2≤c3.

7. The air conditioning indoor unit according to any one of claims 1-6, characterized in that, The partition has a ninth end and a tenth end, the ninth end being close to the air outlet of the fan and the tenth end being close to the first air outlet. The partition can move relative to the first sidewall, so that the tenth end is close to the first sidewall or the damper, thereby changing the air outlet angle of the vortex duct.

8. The indoor unit of the air conditioner according to claim 7, characterized in that, The indoor unit of the air conditioner includes a first air supply mode and a second air supply mode. In the first air supply mode, part of the airflow in the vortex duct is discharged through the first air outlet, and another part of the airflow circulates in the vortex duct and the return duct, causing the airflow in the vortex duct to generate self-excited oscillation. In the second air supply mode, the tenth end abuts against the first sidewall or the damper to reduce or prevent the airflow in the vortex duct from circulating in the vortex duct and the return duct, so that the vortex duct outputs airflow that is biased towards the first sidewall or the damper at the first air outlet.

9. The indoor unit of the air conditioner according to claim 1, characterized in that, The partition includes: First board; The second sub-plate, at least one of the first sub-plate and the second sub-plate, is movably disposed within the vortex cavity; The second sub-plate is spaced apart from the first sub-plate to form the vortex air duct; The return air duct includes: The first return air duct is formed by the first sub-plate and the first sidewall being spaced apart. The second return air duct is located on the side of the first sub-plate away from the first sidewall, and the second sub-plate is spaced apart from the damper to form the second return air duct.

10. The indoor unit of the air conditioner according to claim 9, characterized in that, A diversion section is provided on the side of the first sidewall near the first air outlet. This diversion section is configured to divert the airflow within the vortex duct when the damper opens the first air outlet, causing a portion of the airflow within the vortex duct to exit through the first air outlet, and another portion to return to the fan outlet through the first return duct; and / or, The damper is provided with a diversion section, which is configured to divert the airflow in the vortex duct when the damper opens the first air outlet, so that part of the airflow in the vortex duct is discharged through the first air outlet, and the other part of the airflow is returned to the fan outlet through the second return duct.

11. The indoor unit of the air conditioner according to claim 9, characterized in that, Both the first sub-plate and the second sub-plate are movably disposed within the vortex cavity, and the air conditioning indoor unit includes a first air supply mode, a second air supply mode, and a third air supply mode; In the first air supply mode, the first sub-plate is spaced apart from the first side wall, the second sub-plate is spaced apart from the air damper, part of the airflow in the vortex air duct is discharged through the first air outlet, and the other part of the airflow is returned to the fan air outlet through the first return air duct and the second return air duct. In the second air supply mode, the first sub-plate moves to the end near the first air outlet and abuts against the first sidewall. The airflow in the vortex duct flows through the second sub-plate toward the surface of the first sub-plate to the first air outlet. Part of the airflow exits through the first air outlet and flows along the side biased towards the first sidewall. Another part of the airflow flows through the first sidewall to the surface of the first sub-plate toward the second sub-plate, and then flows through the surface of the first sub-plate toward the second sub-plate to the fan outlet, so as to mix with the airflow at the fan outlet to form a vortex airflow. In the third air supply mode, the second sub-plate moves to the end near the first air outlet and abuts against the damper. The airflow in the vortex duct flows from the surface of the first sub-plate toward the second sub-plate to the first air outlet. Part of the airflow exits through the first air outlet and flows along one side biased towards the damper. Another part of the airflow flows through the damper to the surface of the second sub-plate toward the first sub-plate, and then flows from the surface of the second sub-plate toward the first sub-plate to the fan outlet, so as to mix with the airflow at the fan outlet to form a vortex airflow.

12. The indoor unit of the air conditioner according to claim 11, characterized in that, The air duct component includes: Snail shell; The volute tongue is spaced apart from the volute shell to form the fan duct and the fan outlet. In the first air supply mode, the distance between the position of the volute tongue forming the fan outlet and the end of the damper near the fan outlet is d0, and the distance between the end of the first sub-plate near the fan outlet and the end of the second sub-plate near the fan outlet is d1, where d0 < d1.

13. The indoor unit of the air conditioner according to claim 12, characterized in that, The distance d0 between the volute tongue at the position forming the fan outlet and the end of the damper near the fan outlet, and the distance d1 between the end of the first sub-plate near the fan outlet and the end of the second sub-plate near the fan outlet, also satisfy the following: 1.1d0 < d1, and / or, d1 < 2d0.

14. An indoor unit for an air conditioner, characterized in that, include: The housing is provided with a first air outlet; A duct component is disposed inside the housing, the duct component forms a fan duct, and the fan duct has a fan outlet; A fan, wherein the fan is installed inside the fan duct; The indoor unit of the air conditioner also includes: A damper is movably connected to the housing and is located on the air outlet side of the fan duct. The damper is used to open or close the first air outlet. The damper is spaced apart from at least a portion of the first sidewall of the housing to form a vortex cavity. The vortex cavity is connected to the fan duct through the fan outlet and is connected to the first outlet to deliver airflow to the outside of the housing. A partition is movably disposed within the vortex cavity, the partition dividing the vortex cavity into a return air duct and a vortex air duct, the vortex air duct and the return air duct being used to circulate airflow within the vortex air duct and the return air duct; The air conditioner indoor unit includes a first air supply mode and a second air supply mode. When the damper is open at the first air outlet, the partition is configured to be movable relative to the first side wall of the housing, so that the air conditioner indoor unit can switch between the first air supply mode and the second air supply mode. In the first air supply mode, part of the airflow in the vortex duct circulates in the vortex duct and the return duct, and mixes with another part of the airflow to generate self-excited oscillation before being discharged through the first air outlet. In the second air supply mode, the partition moves relative to the first side wall, causing the airflow in the vortex duct to form a vortex airflow in the vortex duct to change the air outlet angle, and then be delivered to the outside of the housing through the first air outlet.

15. An air conditioner, characterized in that, Including the air conditioning indoor unit as described in any one of claims 1-14.