Air duct shunt adjustment structure and air conditioning equipment

By setting up a split plate assembly between the air ducts of the air conditioning main unit and adjusting its position to control the air duct air outlet area, the problem of uneven air duct flow distribution in the prior art is solved, and the uniform distribution of air duct flow and the uniformity of ambient temperature are achieved.

CN112944462BActive Publication Date: 2025-06-17BEIJING HYPERSTRONG TECH CO LTD
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Patent Information

Application Number
CN202110316243.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2021-03-24
Publication Date
2025-06-17
Estimated Expiration
2041-03-24

AI Technical Summary

Technical Problem

The air duct flow distribution of existing energy storage container air conditioners is uneven, resulting in uneven distribution of ambient temperature.

Method used

By setting a diversion plate assembly between the air ducts of the air conditioner main unit, the internal cavity of the housing is divided into the first air chamber and the second air chamber, the position of the diversion plate assembly is adjusted to control the air outlet area of ​​the air duct, and the uniform distribution of the air duct flow is achieved.

Benefits of technology

The uniform distribution of air duct flow is achieved, the uniformity of ambient temperature in the energy storage container is improved, the cost of air duct manufacturing is saved, and the adjustment process is simplified.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention provides an air duct shunt adjustment structure and an air conditioning device. The air duct shunt adjustment structure is used to be installed between a first air duct and a second air duct of an air conditioning main unit, and includes: a housing and a shunt plate assembly. The shunt plate assembly is movably installed in the inner cavity of the housing. First air outlets and second air outlets that are respectively communicated with the first air duct and the second air duct are provided on the circumferential side of the housing. The housing is connected to the air outlet of the air conditioning main unit. The shunt plate assembly divides the housing into a first air cavity and a second air cavity. The air outlet is connected to the first air outlet through the first air cavity, and the air outlet is connected to the second air outlet through the second air cavity. When the shunt plate assembly moves, the volumes of the first air cavity and the second air cavity change accordingly. The air duct shunt adjustment structure provided by the present invention can adjust the flow rates of the first air duct and the second air duct by adjusting the position of the movable shunt plate assembly, thereby saving the manufacturing cost of the air duct and making the adjustment more convenient.
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Description

Technical Field

[0001] The present invention relates to the field of air conditioner device design, and particularly to an air duct shunt adjustment structure and an air conditioner device. Background Art

[0002] Energy storage containers are important components in energy storage systems. Energy storage devices can be placed inside energy storage containers. For example, power battery modules are placed inside the energy storage container. Generally, in order to ensure the temperature and humidity inside the energy storage container, an air conditioner is installed in the energy storage container to ensure the temperature inside the energy storage container.

[0003] The existing air conditioners for energy storage containers include an air conditioner main unit and an outdoor unit of the air conditioner. The air conditioner main unit is located inside the energy storage container. In order to ensure the uniformity of the air discharged from each part of the air conditioner inside the energy storage container, multiple air ducts are usually connected to the air outlet of the air conditioner main unit, and the air discharged from the air conditioner is guided through different air ducts, so as to maximize the impact of the air conditioner on each part of the energy storage container.

[0004] In the existing air conditioners for energy storage containers, the flow distribution of each air duct is uneven, and the flow rates of the air duct branches vary greatly, resulting in uneven distribution of the ambient temperature inside the entire container. Summary of the Invention

[0005] An embodiment of the present invention provides an air duct shunt adjustment structure and an air conditioner device. The air duct shunt adjustment structure controls the air outlet area of the air duct by setting a shunt plate assembly, saving the adjustment cost and making the adjustment process more convenient and fast.

[0006] In a first aspect, the present invention provides an air duct shunt adjustment structure for being installed between a first air duct and a second air duct of an air conditioner main unit, including: a housing and a shunt plate assembly. The shunt plate assembly is movably installed in the internal cavity of the housing. First air outlets and second air outlets communicating with the first air duct and the second air duct respectively are opened on the circumferential side of the housing.

[0007] The housing is connected to the air outlet of the air conditioner main unit. The shunt plate assembly divides the housing into a first air cavity and a second air cavity. The air outlet is connected to the first air outlet through the first air cavity, and the air outlet is connected to the second air outlet through the second air cavity.

[0008] When the shunt plate assembly moves, the volumes of the first air cavity and the second air cavity change accordingly.

[0009] In a specific embodiment of the present invention, the shunt plate assembly includes a shunt plate and a sliding member. The sliding member is fixed to the inner wall of the housing. The shunt plate is provided with a connecting member matching the sliding member, and the shunt plate can move inside the housing along the extending direction of the sliding member.

[0010] The extending direction of the sliding member is the length direction of the shell.

[0011] In a specific embodiment of the present invention, the sliding member includes a plurality of slide rails, the inner wall of the housing includes a first inner wall and a second inner wall on which the first air outlet and the second air outlet are not provided, and the first inner wall and the second inner wall are arranged opposite to each other;

[0012] The plurality of slide rails are respectively arranged on the first inner wall and the second inner wall;

[0013] The connecting members are provided in plurality, and the connecting members are respectively arranged on both sides of the diverter plate in the width direction of the shell, and the connecting members correspond to the slide rails, and the connecting members are slidably arranged in the slide rails.

[0014] In a specific embodiment of the present invention, at least two of the slide rails are spaced apart on a first side of an inner wall of the shell, at least two of the slide rails are parallel to each other relative to the shell, and the diverter plate and the slide rails are perpendicularly disposed to each other.

[0015] In a specific embodiment of the present invention, two slide rails are arranged on a first side of the inner wall of the shell, and the notches of the two slide rails are arranged opposite to each other.

[0016] In a specific embodiment of the present invention, a movable groove is provided on the second side of the shell and passes through the side wall of the shell. An adjusting member is provided on the side of the diverter plate facing the movable groove. The adjusting member extends toward the outside of the shell through the movable groove. The adjusting member moves back and forth in the movable groove to drive the diverter plate to move.

[0017] In a specific embodiment of the present invention, the portion of the adjusting member located outside the shell is provided with an extension portion, the plane where the extension portion is located is parallel to the shell surface, and a locking component is provided on the extension portion.

[0018] In a specific embodiment of the present invention, the locking accessory comprises a screw-in end and an abutting end, a threaded hole matching the screw-in end is provided on the bent portion, a first end of the screw-in end is inserted into the threaded hole, and a second end of the screw-in end is connected to the abutting end;

[0019] The abutting end is located at a side of the bent portion away from the shell, and the first end of the screw-in end abuts against the shell to form a fixed state of the diverter plate.

[0020] In a specific embodiment of the present invention, the first end of the screw-in end is sleeved with an insulating cap.

[0021] In a second aspect, the present invention further provides an air conditioning device, which includes an air conditioning main unit, a first air duct, a second air duct, and the above-mentioned air duct shunt adjustment structure. The air duct shunt adjustment structure is arranged at the air outlet of the air conditioning main unit, and the air outlet of the air conditioning main unit is respectively connected to the first air duct and the second air duct.

[0022] This embodiment provides an air duct shunt adjustment structure and an air conditioning device. The air duct shunt adjustment structure includes a housing and a shunt plate assembly. The shunt plate assembly is movably installed in the inner cavity of the housing. The shunt plate assembly divides the inner cavity of the housing into a first air cavity and a second air cavity. The first air cavity and the second air cavity are respectively communicated with the air outlet of the air conditioning main unit. By adjusting the position of the movable shunt plate assembly, the air outlet areas of the first air cavity and the second air cavity respectively communicating with the air outlet can be adjusted. When the air discharge volumes in the first air duct and the second air duct are uneven, by adjusting the position of the movable shunt plate assembly, the air flow rates in the first air duct and the second air duct can be adjusted to make their distribution uniform, saving the manufacturing cost of the air duct and making the adjustment more convenient. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the drawings in the following description are some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0024] Figure 1 It is a schematic diagram of the overall structure of the air duct shunt adjustment structure provided by the embodiment of the present invention;

[0025] Figure 2 It is a side view of the air duct shunt adjustment structure provided by the embodiment of the present invention;

[0026] Figure 3 It is an assembly drawing of the air duct shunt adjustment structure and the air conditioning device provided by the embodiment of the present invention.

[0027] Description of the reference numerals:

[0028] 1 - Air duct shunt adjustment structure;

[0029] 2 - Air conditioning main unit;

[0030] 3 - First air duct;

[0031] 4 - Second air duct;

[0032] 5 - Air outlet;

[0033] 10 - Housing;

[0034] 11 - First air outlet;

[0035] 12 - Second air outlet;

[0036] 13 - First air cavity;

[0037] 14 - Second air cavity;

[0038] 15 - Activity slot;

[0039] 20 - Flow - dividing plate assembly;

[0040] 21 - Flow - dividing plate;

[0041] 22 - Sliding part;

[0042] 221 - Slide rail;

[0043] 23 - Connecting part;

[0044] 24 - Adjusting part;

[0045] 241 - Extension part;

[0046] 242 - Locking accessory;

[0047] 2421 - Screwing - in end;

[0048] 2422 - Abutting end. Detailed implementation manners

[0049] To make the objectives, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention. Apparently, the described embodiments are some, but not all, of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art without making creative efforts based on the embodiments of the present invention belong to the scope of protection of the present invention.

[0050] Those skilled in the art should understand that these implementation manners are only used to explain the technical principle of the present invention and are not intended to limit the protection scope of the present invention. Those skilled in the art can make adjustments according to needs to adapt to specific application scenarios.

[0051] It should be noted that in the description of the present invention, terms indicating directions or positional relationships such as "inner" and "outer" are based on the directions or positional relationships shown in the drawings. This is only for the convenience of description and does not indicate or imply that the device or component must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it should not be construed as a limitation of the present invention.

[0052] It should also be noted that in the description of the present invention, unless otherwise clearly specified and defined, the terms "connected" and "coupled" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be directly connected, or indirectly connected through an intermediate medium, and can be the communication inside two components. For those skilled in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.

[0053] The air conditioners of existing energy storage containers include an air conditioner main unit and an outdoor unit of the air conditioner, and the air conditioner main unit is located inside the energy storage container. In order to ensure the uniformity of the gas discharged from the air conditioners in each part of the energy storage container, multiple air ducts are usually connected to the air outlet of the air conditioner main unit, and the gas discharged from the air conditioner is guided through different air ducts, so as to maximize the guarantee that each part of the energy storage container will be affected by the air conditioner. However, the battery configurations of existing energy storage containers are diverse, and many battery cabinets arranged inside the container are not evenly symmetrical, resulting in uneven flow distribution of the main air duct of the air conditioner entering the branch air ducts, and a large difference in the flow rates of the air duct branches, thereby leading to uneven distribution of the environmental temperature inside the entire container.

[0054] In view of this, an embodiment of the present invention provides an air duct shunt adjustment structure, which includes a housing and a shunt plate assembly. The shunt plate assembly divides the housing into a first air cavity and a second air cavity. The air outlet is connected to the first air outlet through the first air cavity, and the air outlet is connected to the second air outlet through the second air cavity; when the shunt plate assembly moves, the volumes of the first air cavity and the second air cavity change accordingly, and by adjusting the position of the movable shunt plate assembly, the flow rates of the first air duct and the second air duct can be adjusted to make their distribution uniform.

[0055] Figure 1 It is a schematic diagram of the overall structure of the air duct shunt adjustment structure provided by the embodiment of the present invention; Figure 2 It is a side view of the air duct shunt adjustment structure provided by the embodiment of the present invention; Figure 3 It is an assembly drawing of the air duct shunt adjustment structure and the air conditioning equipment provided by the embodiment of the present invention.

[0056] As Figures 1 to 3 shown, this embodiment provides an air duct shunt adjustment structure 1, which is used to be installed between the first air duct 3 and the second air duct 4 of the air conditioner main unit 2, and includes: a housing 10 and a shunt plate assembly 20. The shunt plate assembly 20 is movably installed in the internal cavity of the housing 10. First air outlets 11 and second air outlets 12 communicating with the first air duct 3 and the second air duct 4 respectively are provided on the periphery of the housing 10; the housing 10 is connected to the air outlet 5 of the air conditioner main unit 2. The shunt plate assembly 20 divides the housing 10 into a first air cavity 13 and a second air cavity 14. The air outlet 5 is connected to the first air outlet 11 through the first air cavity 13, and the air outlet 5 is connected to the second air outlet 12 through the second air cavity 14.

[0057] Specifically, the housing 10 has a hollow structure and is connected to the air outlet 5 of the air conditioner main unit 2. A first air outlet 11 and a second air outlet 12 are respectively formed on the housing 10 and are connected to the first air duct 3 and the second air duct 4. The gas discharged from the air outlet 5 is split in the housing 10 and enters the first air duct 3 and the second air duct 4 respectively. A flow splitting plate assembly 20 is further provided in the housing 10 to divide the internal cavity of the housing 10 into two parts. The flow splitting plate assembly 20 divides the internal cavity of the housing 10 into a first air cavity 13 and a second air cavity 14. The air outlet 5 is connected to the first air outlet 11 through the first air cavity 13, and the air outlet 5 is connected to the second air outlet 12 through the second air cavity 13. It can be understood that the first air outlet 11 and the second air outlet 12 are located at different positions on the housing 10. The first air outlet 11 is only communicated with one side of the first air cavity 13, and the other side of the first air cavity 13 is only communicated with a part of the air outlet 5. The second air outlet 12 is only communicated with one side of the second air cavity, and the other side of the second air cavity 14 is communicated with another part of the air outlet 5. The gas discharged from the air outlet 5 enters the first air cavity 13 and the second air cavity 14 respectively through the splitting action of the flow splitting plate assembly 20, thereby completing the splitting of the gas.

[0058] Among them, the first air outlet 11 and the second air outlet 12 can be arranged on the same side of the housing 10, or the first air outlet 11 and the second air outlet 12 can be arranged on different sides of the housing 10. For example, the first air outlet 11 and the second air outlet 12 are oppositely arranged on the side surface of the housing 10. The flow splitting plate assembly 20 is arranged between the first air outlet 11 and the second air outlet 12 and can divide the cavity of the housing 10 into the first air cavity 13 and the second air cavity 14. This embodiment does not limit this.

[0059] It should be noted that in this embodiment, the flow splitting plate assembly 20 is movably arranged. During the movement of the flow splitting plate assembly 20, the volumes of the first air cavity 13 and the second air cavity 14 change accordingly. Exemplarily, when the flow splitting plate assembly 20 moves towards the first air outlet 11, the volume of the first air cavity 13 gradually decreases, and the volume of the second air cavity 14 increases accordingly. When the flow splitting plate 20 moves towards the second air outlet 12, the volume of the first air cavity 13 gradually increases, and the volume of the second air cavity 14 decreases accordingly. By adjusting the position of the flow splitting plate 20 inside the housing 10, the volumes of the first air cavity 13 and the second air cavity 14 can be adjusted. When the gas discharged from the air outlet 5 enters the first air cavity 13 and the second air cavity 14 respectively, due to the presence of the flow splitting plate assembly 20, the air outlet area when the gas enters the first air cavity 13 and the second air cavity 14 is adjusted by the flow splitting plate assembly 20, and the air velocity and flow rate are associated with the air outlet area. By moving the flow splitting plate assembly 20, the air volume entering the first air cavity 13 and the second air cavity 14 can be adjusted.

[0060] Exemplarily, when in use in this embodiment, the air outlet 5 of the air conditioner main unit 2 discharges gas towards the inside of the housing 10. The flow dividing plate assembly 20 is arranged at the air outlet 5 and divides the cavity of the housing 10 into a first air cavity 13 and a second air cavity 14. The gas enters the first air cavity 13 and the second air cavity 14 respectively. Since the flow velocity of the gas discharged from the air outlet 5 is the same, the air velocity flow rates entering the first air cavity 13 and the second air cavity 14 correspond to the connection areas of the first air cavity 13 and the second air cavity 14 with the air outlet 5 respectively. When it is necessary to adjust the air flow velocities of the first air outlet 11 and the second air outlet 12, by moving the flow dividing plate assembly 20, the volumes of the first air cavity 13 and the second air cavity 14 can be changed, so as to change their connection areas corresponding to the air outlet 5. When the air flows from the first air duct 3 and the second air duct 4 are uneven, if the air flow from the first air duct 3 is less than that from the second air duct 4, move the flow dividing plate assembly 20 towards the direction of the first air outlet 11 until the air flows from the first air duct 3 and the second air duct 4 are the same; if the air flow from the first air duct 3 is greater than that from the second air duct 4, move the flow dividing plate assembly 20 towards the direction of the second air outlet 12 until the air flows from the first air duct 3 and the second air duct 4 are the same, so as to complete the uniform adjustment of the air flows from the first air duct 3 and the second air duct 4.

[0061] This embodiment provides an air duct flow dividing and adjusting structure 1, which includes a housing 10 and a flow dividing plate assembly 20. The flow dividing plate assembly 20 is movably installed in the internal cavity of the housing 10. The flow dividing plate assembly 20 divides the internal cavity of the housing 10 into a first air cavity 13 and a second air cavity 14. The first air cavity 13 and the second air cavity 14 are respectively communicated with the air outlet 5 of the air conditioner main unit. By adjusting the position of the movable flow dividing plate assembly 20, the air outlet areas of the first air cavity 13 and the second air cavity 14 with respect to the air outlet 5 can be adjusted. When the air discharge volumes in the first air duct 3 and the second air duct 4 are uneven, by adjusting the position of the movable flow dividing plate assembly 20, the air flows in the first air duct 3 and the second air duct 4 can be adjusted to make their distribution uniform, saving the air duct manufacturing cost and making the adjustment more convenient.

[0062] The following describes various possible implementation manners of the air duct flow dividing and adjusting structure 1.

[0063] In order to ensure that the flow dividing plate assembly 20 can complete the adjustment of the air flows in the first air duct 3 and the second air duct 4 when moving, and ensure the stability of the flow dividing plate assembly 20 when moving, optionally, the flow dividing plate assembly 20 includes a flow dividing plate 21 and a sliding member 22. The sliding member 22 is fixed to the inner wall of the housing 10. The flow dividing plate 21 is provided with a connecting member 23 that matches the sliding member 22. The flow dividing plate 21 can move inside the housing 10 along the extending direction of the sliding member 22, where the extending direction of the sliding member 22 is the length direction of the housing 10.

[0064] Specifically, the sliding member 22 is disposed on the inner wall of the housing 10. The flow dividing plate 21 is connected to the sliding member 22 through a connecting member 23, so that the flow dividing plate 21 can slide along the sliding member 22 as an orbit, thereby completing the movement of the flow dividing plate 21 inside the housing 10.

[0065] It should be noted that here, the sliding member 22 and the connecting member 23 cooperate with each other. The sliding member 22 and the connecting member 23 can be ordinary sliding structures. For example, the sliding member 22 can be a sliding groove, and the connecting member 23 can be set as a clamping groove or a sliding wheel that matches the sliding groove. The connecting member 23 is disposed on the side of the flow dividing plate 21 facing the sliding member 22 to connect with the sliding member 22, thereby moving the flow dividing plate 21; alternatively, the sliding member 22 and the connecting member 23 can be mechanical transmission structures. For example, a drive shaft drives a drive wheel to rotate to complete the movement of the flow dividing plate 21, and the movement of the flow dividing plate 21 can be completed. This embodiment does not limit this.

[0066] Optionally, the sliding member 22 includes a plurality of slide rails 221. The inner wall of the housing 10 includes a first inner wall and a second inner wall where the first air outlet 11 and the second air outlet 12 are not provided. The first inner wall and the second inner wall are oppositely disposed; the plurality of slide rails 221 are respectively disposed on the first inner wall and the second inner wall; the connecting member 23 is provided in a plurality, and the plurality of connecting members 23 are respectively disposed on both sides of the flow dividing plate 21 facing the width direction of the housing 10. The plurality of connecting members 23 correspond to the slide rails 221, and the connecting member 23 is slidably disposed in the slide rail 221.

[0067] Among them, the sliding member 22 is the slide rail 221, the connecting member 23 is slidably disposed in the slide rail 221, and the connecting member 23 can drive the movement of the flow dividing plate 21 when sliding. Among them, the slide rails 221 are respectively disposed on the opposite sides of the inner wall of the housing 10 that do not have the first air outlet 11 and the second air outlet 12. It can be understood that the first air outlet 11 and the second air outlet 12 are respectively disposed on two opposite surfaces of the inner wall of the housing 10, then the slide rails 221 are fixed on the other two opposite surfaces of the inner wall of the housing 10. The two ends of the flow dividing plate 21 are also provided with connecting members 23 corresponding to the slide rails 221. When the flow dividing plate 21 moves, the slide rails 221 provide support for the two ends of the flow dividing plate 21 through the connecting members 23, thereby ensuring the stability of the sliding of the flow dividing plate 21.

[0068] It should be noted that in order to ensure the moving range of the flow dividing plate 21, so as to better adjust the gas flow rates of the first air duct 3 and the second air duct 4, the length of the slide rail 221 is usually not less than half of the width of the housing 10, or the length of the slide rail 221 is equal to the width of the housing 10, so that the flow dividing plate 21 can move within the entire width range of the housing 10. This embodiment does not limit this.

[0069] Optionally, at least two slide rails 221 are spaced apart on the first side of the inner wall of the housing 10, and at least two slide rails 221 are arranged parallel to each other relative to the housing 10. When the flow dividing plate 21 moves in the slide rails 221, the flow dividing plate 21 is arranged perpendicular to the slide rails 221.

[0070] Among them, at least two slide rails 221 are arranged on the first side of the inner wall of the housing 10, so at least two slide rails 221 are arranged on the same side of the inner wall of the housing 10, and the multiple slide rails 221 are parallel to each other and spaced relative to the housing 10. On the first side of the flow dividing plate 21 facing the inner wall of the housing 10, connecting pieces 23 are also correspondingly arranged at intervals. During the movement of the flow dividing plate 21, the flow dividing plate 21 is ensured to be perpendicular to the slide rails 221, so that the internal cavity of the housing 10 can be better adjusted. When the flow dividing plate 21 is moved, one side of the flow dividing plate 21 is fixed by multiple slide rails 221, ensuring that the flow dividing plate 21 will not tilt, thereby improving the stability of the movement of the flow dividing plate 21. Exemplarily, two slide rails 221 can be arranged on the first side of the inner wall of the housing 10, and the notches of the two slide rails 221 are arranged opposite to each other, that is, the two slide rails 221 are parallel to each other and have a certain interval. When the chutes of the two slide rails 221 are arranged opposite to each other, the two connecting pieces 23 on one side of the flow dividing plate 21 will be clamped between the chutes of the two slide rails 221 in the vertical direction, preventing the flow dividing plate 21 from generating displacement in the vertical direction due to the influence of wind force or the like.

[0071] When moving the flow dividing plate 21, usually an external driving force is required to provide power for the movement of the flow dividing plate 21. Among them, a motor or the like can be arranged inside the housing 10 to drive the movement of the flow dividing plate 21, but this will increase the cost of the air duct flow dividing adjustment structure and is more troublesome to manufacture. For this reason, in another embodiment provided by the present invention, optionally, an activity slot 15 is opened on the second side of the housing 10 and penetrates through the side wall of the housing 10. A regulating member 24 is arranged on the side of the flow dividing plate 21 facing the activity slot 15. The regulating member extends out of the housing 10 through the activity slot 15, and the regulating member 24 reciprocates in the activity slot 15 to drive the movement of the flow dividing plate 21.

[0072] Specifically, the activity slot 15 is opened on the second side of the housing 10 and penetrates through the side wall of the housing 10. A regulating member 24 extends out of the side of the flow dividing plate 12 facing the activity slot 15 to the outside of the housing 10, that is, a regulating member 24 is arranged at the corresponding position of the side of the flow dividing plate 12 facing the activity slot 15 and the activity slot 15. The regulating member 24 can be rod-shaped or sheet-shaped, etc., and the regulating member 24 extends out of the housing 10 through the activity slot 15. When it is necessary to adjust and move the flow dividing plate 12, only need to manually move the position of the regulating member 24 on the outside of the housing 10 to drive the movement of the flow dividing plate 12, thereby completing the adjustment of the air duct flow division.

[0073] It should be noted that the opening of the movable groove 15 may cause a certain degree of air leakage. Therefore, in order to avoid making the movable groove 15 too large, the adjusting member 24 can be set to be sheet-shaped, and the movable groove 15 can be set to be a slot with a smaller opening for the sheet-shaped adjusting member 24 to pass through. Retractable sealing rubber can also be provided at the upper and lower ends of the movable groove 15 to ensure the smooth movement of the adjusting member 24. This embodiment does not impose any restrictions on this.

[0074] Furthermore, in order to fix the position of the diverter plate 12 after the adjusting member 24 is moved, the portion of the adjusting member 24 located outside the shell 10 has an extension portion 241 arranged parallel to the surface of the shell 10, and a locking component 242 is arranged on the extension portion 241. After the adjusting member 24 is moved to the set position, the locking component 242 on the extension portion 241 is connected or abutted against the shell 10 for locking, thereby completing the fixation of the position of the diverter plate 12.

[0075] Exemplarily, the locking attachment may be a locking screw, etc. The locking attachment 242 includes a screw-in end 2421 and an abutting end 2422. A threaded hole matching the screw-in end 2421 is provided on the extension 241. The first end of the screw-in end 2421 is inserted into the threaded hole, and the second end of the screw-in end 2421 is connected to the abutting end 2422. The abutting end 2422 is located on the side of the extension 241 away from the housing 10. When the first end of the screw-in end 2421 abuts against the housing 10, the manifold 21 is fixed.

[0076] After the lock attachment 242 is fixed, the first end of the screw-in end 2421 is usually against the housing 10. In order to prevent the end of the screw-in end 2421 from scratching the surface of the housing 10, an insulating cap is optionally provided on the first end of the screw-in end 2421. After the lock attachment 242 is fixed, the outside of the insulating cap is against the housing 10. The insulating cap can be made of plastic or flexible rubber, etc., so as to provide protection for the housing 10.

[0077] An embodiment of the present invention also provides an air-conditioning device, including an air-conditioning host 2, a first air duct 3, a second air duct 4 and the above-mentioned air duct diversion adjustment structure 1, the air duct diversion adjustment structure 1 is arranged at the air outlet 5 of the air-conditioning host 2, and the air outlet 5 of the air-conditioning host 2 is respectively connected to the first air duct 3 and the second air duct 4.

[0078] Among them, the air duct diversion adjustment structure in this embodiment is the same as the air duct diversion adjustment structure in the above embodiment, and its implementation principle is also the same, which will not be repeated here one by one, and the details can be referred to the description of the above embodiment.

[0079] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements on some or all of the technical features; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of the present invention.

Claims

1. An air duct shunt adjustment structure, which is used to be installed between a first air duct and a second air duct of an air conditioner main unit, and is characterized in that, include: A shell and a splitter plate assembly, wherein the splitter plate assembly is movably mounted in an internal cavity of the shell, and a first air outlet and a second air outlet are respectively provided on a peripheral side of the shell and are connected to the first air duct and the second air duct; The housing is connected to the air outlet of the air conditioner host, the splitter plate assembly divides the housing into a first air cavity and a second air cavity, the air outlet is connected to the first air outlet through the first air cavity, and the air outlet is connected to the second air outlet through the second air cavity; When the splitter plate assembly moves, the volumes of the first air cavity and the second air cavity change accordingly; The second side of the shell is provided with a movable groove that runs through the side wall of the shell, and the side of the diverter plate facing the movable groove is provided with an adjusting member, and the adjusting member extends toward the outside of the shell through the movable groove, and the adjusting member reciprocates in the movable groove to drive the diverter plate to move; the portion of the adjusting member located outside the shell is provided with an extension portion, the plane where the extension portion is located is parallel to the surface of the shell, and the extension portion is provided with a locking member; wherein the adjusting member is in the form of a sheet, and the movable groove is provided as a small opening slot for the sheet-shaped adjusting member to pass through, and telescopic sealing rubbers are provided at the upper and lower ends of the movable groove; The splitter plate assembly comprises a splitter plate and a sliding member, wherein the sliding member is fixed to the inner wall of the housing, the splitter plate has a connecting member matching the sliding member, and the splitter plate can move inside the housing along the extending direction of the sliding member; The extending direction of the sliding member is the length direction of the housing; The sliding member includes a plurality of slide rails, the inner wall of the housing includes a first inner wall and a second inner wall on which the first air outlet and the second air outlet are not provided, and the first inner wall and the second inner wall are arranged opposite to each other; The plurality of slide rails are respectively arranged on the first inner wall and the second inner wall; The connecting members are provided in plurality, and the connecting members are respectively provided on both sides of the diverter plate in the width direction of the shell, and the connecting members correspond to the slide rails, and the connecting members are slidably provided in the slide rails; At least two of the slide rails are arranged at intervals on the first side of the inner wall of the shell, at least two of the slide rails are arranged parallel to each other relative to the shell, and the diverter plate and the slide rails are arranged perpendicular to each other; The locking accessory comprises a screw-in end and an abutting end, a threaded hole matching the screw-in end is provided on the extension portion, a first end of the screw-in end penetrates into the threaded hole, and a second end of the screw-in end is connected to the abutting end; The abutting end is located at a side of the extension portion away from the shell, and the first end of the screw-in end abuts against the shell to form a fixed state of the diverter plate; the first end of the screw-in end is sleeved with an insulating cap.

2. The air duct shunt adjustment structure according to claim 1, characterized in that, Two slide rails are arranged on a first side of the inner wall of the shell, and the notches of the two slide rails are arranged opposite to each other.

3. An air conditioning device, characterized in that, It includes an air-conditioning main unit, a first air duct, a second air duct, and an air duct shunt adjustment structure as described in any one of claims 1-2. The air duct shunt adjustment structure is provided at the air outlet of the air-conditioning main unit, and the air outlet of the air-conditioning main unit is respectively connected to the first air duct and the second air duct.

Citation Information

Patent Citations

  • Efficient air distribution valve

    CN212377354U

  • Air duct shunting adjusting structure and air conditioning equipment

    CN215637555U