Air supply control method and device of a standing air conditioner and standing air conditioner
By installing movable air guide components in vertical air conditioners and adjusting the air guide gap and duct area, the problem of the single air supply mode of bladeless vertical air conditioners is solved, and flexible air supply control and expanded coverage are achieved.
Patent Information
- Application Number
- CN202010908164.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2020-09-02
- Publication Date
- 2025-11-07
- Estimated Expiration
- 2040-09-02
AI Technical Summary
Existing bladeless vertical air conditioners have a single air supply method, low circumferential air volume, and narrow coverage area.
By installing movable air guide components, including a first air guide component and a second air guide component, in a vertical air conditioner, the air guide gap and duct area can be adjusted to achieve flexible control of the air supply direction and air volume.
It enriches the air supply methods of vertical air conditioners, expands the air supply coverage, and allows for flexible switching of air supply modes as needed, thereby improving the air supply effect.
Smart Images

Figure CN114198892B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the air conditioning technical field, for example, relates to a vertical air conditioner air supply control method and device and vertical air conditioner. BACKGROUND
[0002] With the development of air conditioning field related technology, air conditioning products are also constantly updated, from the evolution process of air conditioner model, the earliest air conditioner model is an integrated window air conditioner, and now it is mainly split type air conditioner, and vertical air conditioner and hanging air conditioner are two important model branches of split type air conditioner, as the name implies, the indoor unit structure of vertical air conditioner is columnar and is placed on the ground in the form of "sitting", and the hanging air conditioner is hung on the wall through the back plate hanging bracket and other components. In recent years, air conditioner manufacturers have launched a new type of vertical air conditioner with fanless air outlet design in the market, such as Haier's "Tianzun air conditioner" series products.
[0003] The existing vertical air conditioner with fanless air outlet design mainly includes an air duct arranged in the inside of the shell and a centrifugal fan for driving air, and an annular air outlet arranged on the shell. Its working mode is that the air after heat exchange is blown out from the circumference of the annular air outlet through the internal air duct, and the air flow in the room without passing through the heat exchanger flows into the air inlet side of the annular air outlet, and the two air flows are mixed to form uniform air flow, and then blown out to the indoor environment.
[0004] In the process of implementing the embodiments of the present disclosure, it is found that at least the following problems exist in the related art:
[0005] In the above vertical air conditioner, the path from the internal air duct to the annular air outlet is mainly concentrated in the middle and rear part of the annular air outlet, so that the mixed air flow is generally blown out in the axial straight line direction defined by the annular air duct, and the air flow blown out in the circumferential direction is less, and the air flow coverage is narrow, so that the air supply form is single. SUMMARY
[0006] To have a basic understanding of some aspects of the disclosed embodiments, a brief summary is given below. The summary is not a general review, nor is it intended to determine key / important elements or delineate the scope of protection of these embodiments.
[0007] The air supply control method and device of the vertical air conditioner and the vertical air conditioner are provided to solve the technical problems of low air supply volume in the circumferential direction and single air supply form of the existing vertical air conditioner with fanless air outlet design in the related art.
[0008] In some embodiments, the air supply control method of a standing air conditioner, the standing air conditioner comprising an air conditioner body and a guide air component, the air conditioner body being configured with an annular bladeless air supply port penetratingly formed in a horizontal direction from front to back; the guide air component comprising a first guide air member, the first guide air member being movably arranged on the air supply port in an axial direction at an air outlet side of the air supply port, and together with the air outlet side forming a guide air gap at an angle with the air supply port and communicating with an internal air duct of the air conditioner body; wherein the first guide air member is capable of moving between at least a first position opening the guide air gap and a second position closing the guide air gap.
[0009] The air supply control method comprises:
[0010] obtaining a current operation mode of the standing air conditioner;
[0011] adjusting an opening and closing state of the guide air gap in response to the operation mode; wherein the adjustment of the opening and closing state comprises controlling a moving position of the first guide air member.
[0012] In some optional embodiments, adjusting the opening and closing state of the guide air gap in response to the operation mode comprises:
[0013] when the operation mode is a first mode, the first guide air member is controlled to move to the first position or a position between the first position and the second position, so that the guide air gap is in an open state;
[0014] when the operation mode is a second mode, the first guide air member is controlled to move to the second position, so that the guide air gap is in a closed state.
[0015] In some optional embodiments, when the operation mode is the first mode, the air supply control method further comprises:
[0016] adjusting an air supply area of the guide air gap in the open state based on an air supply parameter corresponding to the first mode.
[0017] In some optional embodiments, the air supply parameter comprises an air supply volume and an air supply speed;
[0018] wherein the air supply volume and the air supply area of the guide air gap are in a positive correlation relationship; and the air supply speed and the air supply area of the guide air gap are in a negative correlation relationship.
[0019] In some optional embodiments, a periphery of the air supply port is formed with one or more air outlet gaps communicating with the internal air duct; the guide air component further comprises a second guide air member arranged in the internal air duct and separating the internal air duct into a first air duct corresponding to the air outlet gap and a second air duct corresponding to the guide air gap, the second guide air member being controllable to change air duct areas of the first air duct and the second air duct;
[0020] The air supply control method further comprises: adjusting the air duct area of the first air duct and the second air duct in response to the operation mode;
[0021] The adjustment of the air duct area of the first air duct and the second air duct comprises controlling the action state of the second air guide member.
[0022] In some optional embodiments, the adjustment of the air duct area of the first air duct and the second air duct in response to the operation mode comprises:
[0023] When the operation mode is the first mode, the air duct area of the first air duct is reduced or the first air duct is closed by controlling the second air guide member.
[0024] In some optional embodiments, when the operation mode is the first mode, the method further comprises:
[0025] The reduction ratio of the air duct area of the first air duct is adjusted based on the air supply parameter corresponding to the first mode.
[0026] In some optional embodiments, the air supply control method further comprises:
[0027] When the temperature of the environment in which the floor air conditioner is located meets the set temperature requirement, the operation mode of the floor air conditioner is set to the first mode.
[0028] In some embodiments, the air supply control device of the floor air conditioner comprises a processor and a memory storing program instructions, wherein the processor is configured to execute the air supply control method of any one of the above embodiments when executing the program instructions.
[0029] In some embodiments, the floor air conditioner disclosed in the embodiments of the present disclosure comprises the air supply control device as shown in the above embodiments.
[0030] The air supply control method of the floor air conditioner provided by the embodiments of the present disclosure can achieve the following technical effects:
[0031] The air supply control method of the floor air conditioner provided by the embodiments of the present disclosure can achieve the following technical effects:
[0032] The general description above and the following description below are exemplary and explanatory only and are not restrictive of the present application. BRIEF DESCRIPTION OF DRAWINGS
[0033] One or more embodiments are illustrated by way of example, in which elements having the same reference number designate the same or similar elements. These examples and illustrations serve to explain principles of the embodiments. The figures are not to scale, and are merely schematic illustrations of typical embodiments of the present disclosure. In the figures:
[0034] Figure 1a is a front overall structure schematic diagram of a vertical air conditioner provided by an embodiment of the present disclosure;
[0035] Figure 1b is a back overall structure schematic diagram of a vertical air conditioner provided by an embodiment of the present disclosure;
[0036] Figure 2 is a side sectional view of a vertical air conditioner provided by an embodiment of the present disclosure;
[0037] Figure 3 is an exploded structure diagram of a vertical air conditioner provided by an embodiment of the present disclosure;
[0038] Figure 4 is an axial sectional view of a supply air outlet portion of a vertical air conditioner provided by an embodiment of the present disclosure;
[0039] Figure 5 is a component schematic diagram of an air guide assembly provided by an embodiment of the present disclosure;
[0040] Figure 6 is a perspective view of a first air guide member provided by an embodiment of the present disclosure;
[0041] Figure 7 is a side schematic diagram of a first air guide member provided by an embodiment of the present disclosure;
[0042] Figure 8 is a cooperation schematic diagram of a first air guide member and a telescopic moving mechanism provided by an embodiment of the present disclosure;
[0043] Figure 9 is a partial enlarged view of A of Figure 8 ;
[0044] Figure 10a is a schematic diagram of a first air guide member in a first position provided by an embodiment of the present disclosure;
[0045] Figure 10b is a schematic diagram of a first air guide member in a second position provided by an embodiment of the present disclosure;
[0046] Figure 11 is a perspective view of a second air guide member provided by an embodiment of the present disclosure;
[0047] Figure 12 is a cooperation schematic diagram of a second air guide member and a second driving component provided by an embodiment of the present disclosure;
[0048] Figure 13 is Figure 12 a partial enlarged view of B part of
[0049] Figure 14a is a schematic view of the second air guide member in a first action state according to an embodiment of the present disclosure;
[0050] Figure 14b is a schematic view of the second air guide member in a second action state according to an embodiment of the present disclosure;
[0051] Figure 15 is a flowchart of a method for air supply control of a standing air conditioner according to an embodiment of the present disclosure;
[0052] Figure 16 is a flowchart of a method for air supply control of a standing air conditioner according to another embodiment of the present disclosure;
[0053] Figure 17a is a schematic view of an internal structure of a standing air conditioner in a first mode according to an embodiment of the present disclosure;
[0054] Figure 17b is a schematic view of an internal structure of a standing air conditioner in a second mode according to an embodiment of the present disclosure;
[0055] Figure 18 is a schematic view of an air supply control device of a standing air conditioner according to an embodiment of the present disclosure;
[0056] Figure 19 is a schematic view of an air supply control device of a standing air conditioner according to another embodiment of the present disclosure.
[0057] The reference signs, 1, a casing; 11, a front side panel; 12, a back side panel; 13, a side panel; 14, a vertical standing plate; 21, an air supply port; 211, an annular air outlet plate; 212, an air outlet gap; 22, an air inlet port; 31, a first air guide member; 311, a large-diameter end; 312, a small-diameter end; 313, an air guide gap; 32, a second air guide member; 41, a telescopic moving mechanism; 411, a slide rail; 412, a rack structure; 413, a first motor; 421, a second motor; 422, a worm wheel; 423, a worm; 5, an internal air duct; 51, a first air duct; 52, a second air duct; 61, a fan; 62, a heat exchanger. DETAILED DESCRIPTION
[0058] In order to enable a more detailed understanding of the features and technical content of the embodiments of the present disclosure, the implementation of the embodiments of the present disclosure is described in detail below, and the accompanying drawings are used for reference only and do not limit the embodiments of the present disclosure. In the following technical description, in order to facilitate explanation, a plurality of details are provided to provide a full understanding of the disclosed embodiments. However, one or more embodiments can still be implemented without these details. In other cases, well-known structures and devices can be simplified to facilitate the drawings.
[0059] The terms "first", "second", and the like in the specification and claims of the embodiments of the present disclosure and the above-mentioned drawings are used to distinguish similar objects and do not necessarily describe a specific order or sequence. It should be understood that the data used in this way can be interchanged under appropriate circumstances to implement the embodiments of the present disclosure described herein. In addition, the terms "include" and "have" and any variations thereof are intended to cover non-exclusive inclusion.
[0060] Unless otherwise specified, the term "a plurality of" means two or more.
[0061] In the embodiments of the present disclosure, the character " / " represents an "or" relationship between the objects before and after it. For example, A / B means: A or B.
[0062] The term "and / or" is a description of the relationship between the objects, which means that there can be three relationships. For example, A and / or B means: A or B, or, A and B, the three relationships.
[0063] Figure 1a And Figure 1b are overall structural schematic diagrams of the vertical air conditioner from different viewing angles provided by the embodiments of the present disclosure, Figure 2 is a side sectional view of the vertical air conditioner provided by the embodiments of the present disclosure.
[0064] In combination with Figure 1a , Figure 1b and Figure 2 , the embodiments of the present disclosure provide a vertical air conditioner, which mainly includes an air conditioner body and a guide air assembly arranged on the air conditioner body; the air conditioner body includes a casing 1 and an internal air duct 5 formed inside the casing 1, and an annular bladeless air outlet 21 arranged above the casing 1; the guide air assembly cooperates with the air outlet 21 and the internal air duct 5 to at least achieve the function of circumferential large-angle air supply adjustment.
[0065] In combination with Figure 1a , Figure 1b to Figure 4The air conditioner body structure is described as follows. The air conditioner body in the embodiment comprises a columnar cabinet 1. The upper part of the cabinet 1 is configured with an air outlet 21, and the back lower part is configured with an air inlet 22. The internal space between the air outlet 21 and the air inlet 22 of the cabinet 1 is defined as an internal air duct 5. In the embodiment, the internal air duct 5 at least contains a fan 61 and a heat exchanger 62. The fan 61 is used to drive the airflow to flow from the air inlet 22 to the air outlet 21. The heat exchanger 62 is arranged on the airflow path, so that the airflow can be cooled or heated when flowing through the heat exchanger 62, thereby playing a role of cooling or heating the airflow in the cooling mode or the heating mode. The cooled or heated airflow is blown out through the air outlet 21.
[0066] Optionally, the fan 61 is a centrifugal fan 61.
[0067] Figure 3 is an exploded structural view of the vertical air conditioner provided by the embodiment of the present disclosure, Figure 4 is an axial sectional view of the air outlet 21 part of the vertical air conditioner provided by the embodiment of the present disclosure.
[0068] In the embodiment, the air outlet 21 is formed along the horizontal direction from front to back through the air conditioner body, and the back side corresponds to the air inlet side, and the front side corresponds to the air outlet side. The normal temperature airflow can flow through the air outlet 21 from back to front, and mix with the cooled or heated airflow sent out by the internal air duct 5 in the process of flowing, and then blow out to the indoor environment together. Optionally, the overall profile of the air outlet 21 is approximately annular, and the annular shape can be any one of a standard circular ring, an elliptical ring, a track ring, and a square ring. The embodiment of the drawing 1 shows a standard circular ring air outlet 21.
[0069] The air outlet 21 adopts a bladeless design. One or more hollow annular air outlet plates 211 are arranged in the axial direction along the inner periphery of the air outlet 21. The first or more air outlet gaps 212 are formed between adjacent annular air outlet plates 211 and between the annular air outlet plate 211 and the side edge of the adjacent air outlet 21. The air outlet gap 212 is connected with the internal air duct 5, so that the cooled or heated airflow sent out by the internal air duct 5 can be blown out to the air outlet 21 through the air outlet gap 212, and then mixed with the normal temperature airflow. In the embodiment, the inner ring edge of the annular air outlet is flush with the inner periphery of the air outlet 21 or slightly protrudes inwardly from the inner periphery. The outer ring edge extends to the internal air duct 5. Since the air outlet gap 212 is also defined as an annular shape, the cooled or heated airflow is blown out to the air outlet 21 from various positions of the entire inner periphery. In the embodiment, the annular air outlet plate 211 is arranged obliquely to the air outlet side, so that when the airflow flows through the air outlet gap 212, the airflow direction tends to be towards the air outlet side.
[0070] Figure 5 is a component schematic view of the air guide assembly provided by the embodiment of the present disclosure, Figure 6is a perspective view of the first air guide member 31 provided by the embodiment of the present disclosure, Figure 7 is a side view of the first air guide member 31 provided by the embodiment of the present disclosure;
[0071] In some optional embodiments, in combination with Figure 5 to Figure 7 As shown, the air guide assembly includes a first air guide member 31, which can be used to achieve the circumferential wide-angle air supply of the airflow after heat exchange at the air outlet side of the air supply port 21.
[0072] Here, the first air guide member 31 is arranged at the air outlet side of the air supply port 21, and the first air guide member 31 and the air outlet side jointly enclose an air guide gap 313. The air inlet side of the air guide gap 313 communicates with the internal air duct 5 of the air conditioner body, so that the airflow in the internal air duct 5 can be blown out through the air guide gap 313. Meanwhile, the air guide gap 313 is arranged at an included angle with the air supply port 21 in the axial direction, so that the airflow after blowing out is blown out in a diagonal direction intersecting the air supply port 21, thereby achieving air supply in the circumferential direction.
[0073] In the present embodiment, the first air guide member 31 can be telescopically moved relative to the air outlet side of the air supply port 21, and the telescopic moving direction is along the axial direction of the air supply port 21. The telescopic moving position state includes at least moving outwardly to the front side to a first position and moving inwardly to the rear side to a second position. When the first air guide member 31 moves to the first position, the first air guide member 31 gradually moves away from the air supply port 21, and when the first air guide member 31 moves to the second position, the first air guide member 31 gradually moves close to the air supply port 21. Here, when the first air guide member 31 moves to the first position, the first air guide member 31 is farthest from the air supply port 21, and the air guide gap 313 formed by the first air guide member 31 and the air outlet side of the air supply port 21 is in a maximum air outlet area state, as shown in Figure 10a ; and when the first air guide member 31 moves to the second position, the air guide gap 313 is closest to the air supply port 21, at which time the first air guide member 31 is in close contact with the peripheral edge of the air outlet side of the air supply port 21 adjacent thereto, the air guide gap 313 is completely closed or only has a small gap, and no airflow or only a small amount of airflow is blown out from the air guide gap 313, as shown in Figure 10b .
[0074] By adjusting the position of the first air guide member 31, the opening / closing control of the axial air supply function of the vertical air conditioner can be achieved. For example, when circumferential air supply is needed, the first air guide member 31 can be controlled to move from the second position to the first position, so that it is in the first position or a position between the first position and the second position, so as to open the air guide gap 313, and the airflow can be supplied in the circumferential direction along the air guide gap 313; and when circumferential air supply is not needed, the first air guide member 31 can be controlled to be in the second position, at which time the air guide gap 313 is closed, and no airflow is supplied in the circumferential direction along the air guide gap 313.
[0075] Meanwhile, by adjusting the actual position of the first air guide member 31 relative to the first position and the second position, the air outlet area of the air guide gap 313 is changed, thereby realizing the adjustment of the circumferential air supply air volume sent through the air guide gap 313; generally, the closer the position of the first air guide member 31 to the first position, the larger the caliber width of the air guide gap 313, the air supply area is increased, and the circumferential air supply air volume can be increased; on the contrary, the farther the position of the first air guide member 31 to the first position, the smaller the circumferential air supply air volume can be.
[0076] In some optional embodiments, in combination with Figure 6 As shown, the first air guide member 31 is configured as a nearly trumpet-shaped cylindrical structure, and the annular solid wall surface of the cylindrical structure is one of the components for defining the air guide gap 313; and the axial two ends of the cylindrical structure are communicated, and the hollow internal space is communicated with the air outlet 21 coaxially to serve as the main air outlet channel of the normal temperature airflow or the mixed airflow.
[0077] The nearly trumpet-shaped first air guide member 31 has a small-caliber end 312 and a large-caliber end 311, wherein the small-caliber end 312 is located at the air outlet side of the air outlet 21 and extends reversely to the inside of the air outlet 21 in the axial direction, and the inner diameter size of the small-caliber end 312 is matched with the inner circumferential size of the air outlet 21, so that the airflow can smoothly flow through the air outlet 21 and the intermediate passage of the first air guide member 31 in sequence; the large-caliber end 311 is located at the air outlet side of the air outlet 21 and is arranged at an angle to the axial direction, and compared with the main air supply airflow of the axial flow defined by the main flow path of the air outlet 21, the large-caliber end 311 and the air outlet side of the air outlet 21 together define a circumferential air supply airflow inclined to the main air supply direction.
[0078] Optionally, the large-caliber end 311 is arranged at an angle to the axial direction in a linear extension inclined shape; and further optionally, the large-caliber end 311 is arranged at an angle to the axial direction in a curved extension inclined shape. In the embodiment, the angle between the large-caliber end 311 and the axial direction can be 30°, 45°, 60°, etc., which can be flexibly set according to actual needs by those skilled in the art, and the application is not limited thereto.
[0079] In some optional embodiments, the vertical two sides or the horizontal two sides of the large-caliber end 311 of the first air guide member 31 are protruded outwardly from the end face, compared with the other sides which are not protruded and flush with the end face, the protruded sides can expand the relative width between the position of the large-caliber end 311 and the air outlet side of the air outlet 21, so as to increase the actual air supply area at the position, thereby increasing the air supply air volume in the corresponding spatial orientation, for example, Figure 7The upper and lower sides of the first air guide member 31 in the air conditioner are curved outward compared to the left and right sides, so that when the air guide gap 313 is opened, more air flows out through the upper and lower sides, allowing the air conditioner to achieve better air sweeping effect in the vertical direction. The large-diameter outwardly convex structure can be determined according to actual needs, such as setting the vertical and horizontal sides to the outwardly convex form to increase the air supply effect in four spatial directions, which is not limited in the present application.
[0080] In the embodiment, the side edges of the large-diameter end 311 are formed in a smooth curve, so that the outwardly convex side edges smoothly transition to the remaining parts. In terms of the relative width of the air guide gap 313, the increase and decrease is gradually changed in a relatively stable form, so as to ensure that the air flow in each direction through the air guide gap 313 does not have too obvious air flow difference, and improves the air supply experience of the user.
[0081] Figure 8 is a schematic view of the cooperation between the first air guide member 31 and the telescopic moving mechanism 41 provided by the embodiment of the present disclosure, Figure 9 is Figure 8 A partial enlarged view of A of the air guide assembly.
[0082] In some embodiments, in combination with Figure 8 and Figure 9 As shown, the air guide assembly further comprises a telescopic moving mechanism 41 for realizing the telescopic movement of the first air guide member 31 relative to the air outlet 21.
[0083] In the embodiment, the telescopic moving mechanism 41 comprises a first moving part and a second moving part, wherein the first moving part is arranged on the first air guide member 31 and synchronously moves with the first air guide member 31; the second moving part is arranged on the air conditioner body, and the first moving part cooperates with the second moving part and moves relative to the second moving part during the telescopic movement of the first air guide member 31. Here, the first moving part and the second moving part jointly define a relative movement route extending along the air outlet 21, so that the first air guide member 31 is also defined to move along the relative movement route.
[0084] Optionally, the first moving part is one or more sliding rails 411 extending along the air outlet 21, wherein the plurality of sliding rails 411 can be arranged along the circumference of the first air guide member 31, Figure 8The first air guide member 31 in the air conditioner is provided with two slide rails 411, which are respectively arranged on the vertically opposite two side edges of the first air guide member 31, so that when the slide rails are driven by external driving force to move the first air guide member 31, the first air guide member 31 can be balanced in overall stress, reducing the occurrence of deflection and misplacement of the first air guide member 31 during axial movement, thereby making the circumferential positions uniform when moving to the first position, and being able to close tightly and reduce the occurrence of air leakage when moving to the second position.
[0085] In the present embodiment, one or more slide rails 411 are integrally formed with the first air guide member 31, so that the combination and connection strength between the two can be maintained well during long-term use.
[0086] Correspondingly, the second moving part is also a slide rail formed along the axial direction of the air outlet 21, and the slide rail 411 is slidably arranged in the slide rail. Through the sliding cooperation of the slide rail 411 and the slide rail, the first air guide member 31 can slide and move along the axial direction of the air outlet 21 relative to the air conditioner body. Here, the number of slide rails is the same as the number of slide rails 411, and they are arranged one by one.
[0087] It should be understood that the above-mentioned embodiment shows that the telescopic moving mechanism 41 in the form of slide rail 411 and slide rail is only an exemplary description, and is not the only implementation of the telescopic moving mechanism 41. Those skilled in the art can use other structures in the prior art to realize the relative movement of the two, which should also be covered within the protection scope of the present application.
[0088] In some optional embodiments, the telescopic movement of the first air guide member 31 relative to the air outlet 21 by the telescopic moving mechanism 41 can be realized manually by the user, that is, the user manually pulls the first air guide member 31 to move relative to the air conditioner body. Here, the first moving part and the second moving part are also provided with a limiting structure to prevent the first air guide member 31 from completely falling off the air conditioner body when it is pulled out.
[0089] Optionally, at least one side wall of the slide rail is formed with a limiting groove extending in the axial direction, and the outermost end of the limiting groove is closed. Correspondingly, the innermost end of the slide rail 411 is provided with a slide rod extending into the limiting groove. When the slide rail 411 and the slide rail slide relative to each other, the slide rod and the limiting groove also slide relative to each other, and stop when the slide rod moves to the outermost end of the limiting groove. In this way, the first air guide member 31 cannot be continuously pulled out. Here, when the slide rod and the limiting groove form a stop, the first air guide member 31 is in the first position.
[0090] In some alternative embodiments, the telescopic movement of the first air guide member 31 relative to the air outlet 21 can be achieved by automatic movement driven by the driving component. In the embodiments, the telescopic movement mechanism 41 further comprises a first driving component, which is drivingly connected with the first moving part or the first air guide member 31 and configured to drive the first air guide member 31 to move telescopically.
[0091] Optionally, the first driving component comprises a first motor 413, which is capable of bidirectional operation to switch to the corresponding direction of rotation when the first air guide member 31 moves in the two opposite directions of extension or retraction. For example, the first motor 413 operates in the first direction of rotation when the first air guide member 31 moves outwardly, and operates in the second direction of rotation when the first air guide member 31 moves inwardly. The output end of the first motor 413 is provided with a gear, and the first moving part is formed with a rack structure 412 arranged in the axial direction, which is engaged with the gear. In this way, the driving force generated by the operation of the first motor 413 can be transmitted to the first air guide member 31 via the cooperation of the gear and the rack structure 412.
[0092] In the embodiments, each first moving part is respectively provided with a first motor 413. Taking the first motor 413 corresponding to the first moving part arranged in the vertical lower part in the drawings as an example, the output shaft of the first motor 413 is arranged in the vertical direction towards the upper part, and the rotation plane of the corresponding installed gear is a horizontal plane. The rack structure 412 arranged on the slide of the first air guide member 31 is formed on the vertical side wall on the side of the corresponding gear and arranged in the axial direction. Therefore, after the gear and the rack structure 412 are engaged, when the first motor 413 operates in the clockwise direction (from the top view), the first air guide member 31 is driven to move outwardly, and when the first motor 413 operates in the counterclockwise direction, the first air guide member 31 is driven to move inwardly.
[0093] Figure 11 FIG. 4 is a perspective view of the second air guide member 32 according to the embodiments of the present disclosure.
[0094] As can be seen from the above embodiments, the air guide gap 313 for circumferential air supply and the air outlet gap 212 for axial air supply are both connected with the internal air duct 5 of the air conditioner body, and the total amount of air flow delivered by the internal air duct 5 under the set parameters is fixed. Therefore, the amount of air flow distributed by the air guide gap 313 and the air outlet gap 212 respectively can affect the air supply effect of the circumferential air supply and the axial air supply. In some alternative embodiments, for example, Figure 11As shown, the air guide assembly further comprises a second air guide member 32 arranged in the internal air duct 5 and separating the internal air duct 5 into a first air duct 51 corresponding to the air outlet gap 212 and a second air duct 52 corresponding to the air guide gap 313 along the air outlet 21. The second air guide member 32 can be controlled to change the air duct area of the first air duct 51 and the second air duct 52.
[0095] In some optional embodiments, the second air guide member 32 is configured as a plate structure, such as a thin plate, which separates the internal air duct 5 into two air ducts. The first air duct 51 is composed of the plate structure, the back side panel 12 of the cabinet 1 and the front half of the two side panels 13, and the second air duct 52 is composed of the plate structure, the front side panel 11 of the cabinet 1 and the rear half of the two side panels 13. The air flow delivered from bottom to top can flow into the two air ducts respectively. In the embodiments, the air duct horizontal cross-sectional areas of the first air duct 51 and the second air duct 52 are equal or unequal, depending on the position of the demarcation line of the second air guide member 32. Generally, the demarcation line is located between the annular air outlet plate 211 at the most front side and the first air guide member 31, so that the two separated air ducts independently supply air to the corresponding gaps.
[0096] In some embodiments, the second air guide member 32 can rotate along its vertical side edge relative to the air outlet 21 in the axial direction. After the rotation of the second air guide member 32, the air flow inlet diameter of the first air duct 51 and the second air duct 52 corresponding to the internal air duct 5 changes respectively, that is, the air flow inlet area of the first air duct 51 and the second air duct 52 changes, so that the air volume distributed to the first air duct 51 and the second air duct 52 changes, thereby achieving the air volume adjustment purpose of the first air duct 51 and the second air duct 52.
[0097] For example, a vertical stand plate 14 perpendicular to the axial direction is arranged at the air outlet 21. The vertical stand plate 14 is hollow in the middle to serve as an air flow passage. The lower side edge of the vertical stand plate 14 is rotationally connected to the second member. The second air guide member 32 takes the top side edge as the first side edge of the rotation center and the bottom side edge as the free side edge. Therefore, when the bottom side edge swings left and right in the axial direction, the air duct areas of the first air duct 51 and the second air duct 52 change accordingly. Specifically, when the bottom side edge swings to the front side panel 11, the air duct area of the second air duct 52 decreases and the air duct area of the first air duct 51 increases, so that the circumferential air volume blown out through the air guide gap 313 decreases and the axial air volume blown out through the air outlet gap 212 increases. Conversely, when the bottom side edge swings to the back side panel 12, the air duct area of the second air duct 52 increases and the air duct area of the first air duct 51 decreases, so that the air volume blown out through the air guide gap 313 increases and the axial air volume blown out through the air outlet gap 212 decreases.
[0098] Optionally, the second air guide member 32 is designed to have a specific size, which is configured to abut against the air conditioner shell 1 on the corresponding side when the free side of the second air guide member 32 is turned to a certain angle on both sides of the axial direction, so that the air duct on the side is relatively closed, and no air flow or only a small amount of air flow flows into the air duct.
[0099] For example, when the second air guide member 32 swings to the side of the back panel 12 and abuts against the back panel 12, the first air duct 51 is relatively closed, and all the air flow of the internal air duct 5 is delivered to the second air duct 52, so that the air flow is blown out in the circumferential air supply mode, and this state is defined as the first action state, as shown in Figure 14a ; or, the plate surface of the second air guide member 32 is parallel to the vertical direction, so that the air flow of the internal air duct 5 flows into the first air duct 51 and the second air duct 52, respectively, and the vertical air conditioner can simultaneously perform axial air supply and circumferential air supply, and this state is defined as the second action state, as shown in Figure 14b ; or, when the second air guide member 32 swings to the side of the front panel 11 and abuts against the front panel 11, the second air duct 52 is relatively closed, and all the air flow of the internal air duct 5 is delivered to the first air duct 51, so that the air flow is blown out in the axial air supply mode, and this state is defined as the third action state.
[0100] Figure 12 is a schematic view of the cooperation between the second air guide member 32 and the second driving member provided by the embodiment of the present disclosure, Figure 13 is a B part enlarged view of Figure 12 .
[0101] Here, in combination with Figure 12 and Figure 13 , the air guide assembly drives the second air guide member 32 to rotate through the second driving member, and here, the second driving member is arranged at the top of the internal air duct 5, and the second driving member is drivingly connected with the first side of the second air guide member 32, which is configured to drive the second air guide member 32 to rotate on both sides of the axial direction relative to the air outlet 21 with the first side as the center, so as to change the air duct area of the first air duct 51 and the second air duct 52.
[0102] For example, the rotating mechanism includes a second motor 421 and a worm 423, wherein the second motor 421 is capable of bidirectional rotation to drive the second air guide member 32 to switch to a corresponding steering direction when rotating in a corresponding axial direction, such as the first steering direction when the second motor 421 operates in the first steering direction when the second air guide member 32 swings to the front panel 11, and the second steering direction when the second motor 421 operates in the second steering direction when the second air guide member 32 swings to the back panel 12. The output shaft end of the second motor 421 is provided with a worm wheel 422, and the first side of the second air guide member 32 is connected to the worm 423. The worm 423 and the second air guide member 32 do not rotate relative to each other but rotate synchronously, and the helical teeth of the worm 423 are engaged with the worm wheel 422. In this way, the driving force generated by the operation of the second motor 421 can be transmitted to the second air guide member 32 through the cooperation of the worm wheel 422 and the worm 423.
[0103] In an example, the output shaft of the second motor 421 is parallel to the axial direction of the air outlet 21, so the rotating plane of the worm wheel 422 is a vertical plane perpendicular to the axial direction of the air outlet 21. Since the defined rotating direction of the second air guide member 32 is also along the axial direction of the air outlet 21, the cooperation of the worm wheel 422 and the worm 423 can achieve 90° rotating switching to meet the requirement that the second air guide member 32 can swing forward and backward under the above-mentioned arrangement of the second motor 421.
[0104] In an embodiment, a slotted structure is formed on the first side of the second air guide member 32 to accommodate the worm 423, and the two ends of the worm 423 are fixed to the slot side edges. Meanwhile, a limiting structure is further arranged between the second air guide member 32 and the air conditioner body to keep the position of the first side of the second air guide member 32 unchanged under the cooperation of the worm 423 and the worm wheel 422, for example, the limiting structure includes a limiting rotating shaft formed at the two ends of the first side, and a limiting shaft seat formed at the two ends of the first side of the air conditioner body, and the limiting rotating shaft extends into the limiting shaft seat and can rotate relative to the limiting shaft seat.
[0105] Of course, in another embodiment not shown in the accompanying drawings, the second motor 421 can also be arranged with the output shaft perpendicular to the axial direction of the air outlet 21, and the output shaft of the second motor 421 is directly connected to the second air guide member 32 to directly drive the second air guide member 32 to rotate in the forward and backward directions along the axial direction. The present application is not limited thereto.
[0106] Figure 15 is a flowchart of the air supply control method of the vertical air conditioner provided by the embodiment of the present disclosure.
[0107] In still another optional embodiment, the embodiment of the present disclosure further provides an air supply control method of a vertical air conditioner, which can be applied to the air supply control of one or more vertical air conditioners shown in the above-mentioned embodiments; here, the air supply control method is described in combination with Figure 15As shown, the control flow of the method includes:
[0108] S101, obtaining a current operation mode of the standing air conditioner;
[0109] In the embodiment, the operation mode of the standing air conditioner can be a conventional operation mode, such as a cooling mode, a heating mode, and a dehumidifying mode, etc. Each operation mode can be pre-set with a corresponding air supply state, so that subsequent air supply mode adjustment can be performed according to the air supply state of different operation modes.
[0110] Alternatively, the operation mode of the standing air conditioner can also be different operation stages in the same heat exchange mode, such as a cooling mode divided into a temperature lowering stage and a temperature maintaining stage. The temperature lowering stage is the corresponding operation stage when the environment of the standing air conditioner does not reach the set cooling temperature, and the temperature maintaining stage is the corresponding operation stage when the environment of the standing air conditioner reaches the set cooling temperature. Therefore, different air supply forms can be set for different operation stages in the same mode.
[0111] Alternatively, the operation mode of the standing air conditioner can be a setting for the air supply mode, such as an axial air supply form defined by a conventional air supply mode, or a circumferential air supply form defined by a circumferential air supply mode, or a form of simultaneous axial air supply and circumferential air supply defined by a mixed air supply mode.
[0112] In this way, when step S101 is performed, the relevant setting parameters of the air conditioner can be obtained, and the current operation mode can be determined according to the relevant setting parameters.
[0113] S102, adjusting the opening and closing state of the air guide gap in response to the operation mode; wherein the adjustment of the opening and closing state includes controlling the moving position of the first air guide member.
[0114] In some optional embodiments, the opening and closing state of the air guide gap at least includes an open state and a closed state, wherein the open state can further include multiple states of different air supply areas after the air guide gap is opened.
[0115] As mentioned in the foregoing embodiments, the first air guide member can be telescopically moved relative to the air outlet side of the air supply port, and the telescopically moving positions at least include a first position, a second position, and a position between the first position and the second position. When the current position of the first air guide member is the first position, the air guide gap formed between the first air guide member and the air outlet side of the air supply port is in a completely open state and can blow air with a maximum air outlet area. When the current position of the first air guide member is the second position, the air guide gap formed between the first air guide member and the air outlet side of the air supply port is in a completely closed state. When the current position of the first air guide member is a position between the first position and the second position, the air guide gap formed between the first air guide member and the air outlet side of the air supply port is in an open state, and the actual air outlet area can be variable according to the specific position.
[0116] Therefore, in the present embodiment, when the current operation mode of the air conditioner involves the control requirement of the circumferential air supply, the opening and closing state of the air guide gap can be controlled by adjusting the moving position of the first air guide member, thereby realizing the start-stop control of the circumferential air supply function and the air volume adjustment during the circumferential air supply. The circumferential air supply can expand the air supply coverage range of the floor air conditioner, enrich the air supply forms of the floor air conditioner, and enable flexible control switching in different air supply forms as required.
[0117] In some optional embodiments, the step S102 of adjusting the opening and closing state of the air guide gap in response to the operation mode comprises: when the operation mode is the first mode, the first air guide member is controlled to move to the first position or a position between the first position and the second position, so that the air guide gap is in the open state; and when the operation mode is the second mode, the first air guide member is controlled to move to the second position, so that the air guide gap is in the closed state.
[0118] For example, in combination with the foregoing embodiments, the first mode and the second mode are air supply forms corresponding to different operation stages in the same heat exchange mode. The heat exchange mode can be a cooling mode, which is divided into a temperature reduction stage and a temperature maintenance stage. The first mode corresponds to the air supply form of the temperature maintenance stage, and the second mode corresponds to the air supply form of the temperature reduction stage.
[0119] That is, in the present embodiment, when the floor air conditioner operates in the cooling mode, and the temperature sensor detects that the temperature of the environment in which the floor air conditioner is located does not reach the set cooling temperature, the first air guide member is controlled to move to the second position, so that the air guide gap is in the closed state. The air flow after the whole heat exchange of the floor air conditioner is blown out from the air outlet gap to the indoor environment in the axial direction, the air volume is concentrated, the air supply distance is long, and the overall temperature of the indoor environment can be reduced quickly. When the temperature sensor detects that the temperature of the environment in which the floor air conditioner is located reaches the set cooling temperature, the first air guide member is controlled to move to the first position or a position between the first position and the second position, so that the air guide gap is in the open state. At this time, part or all of the air flow after the heat exchange of the floor air conditioner is blown out through the air guide gap, thereby realizing a larger circumferential wide-angle air supply, covering a large range, and being conducive to maintaining the temperature of the indoor environment at the set cooling temperature.
[0120] For another example, in combination with the foregoing another embodiment, the first mode and the second mode are different air supply modes set, such as the first mode being a circumferential air supply mode and the second mode being an axial air supply mode. Here, the different air supply modes can be built-in programs of the internal control system of the floor air conditioner. The user can select the required air supply mode from the built-in programs through a control device such as a remote controller or a display panel.
[0121] That is, in the embodiment, when the obtained air conditioner operation mode is the circumferential air supply mode, the first air guide member is controlled to move to the first position or a position between the first position and the second position, so that the air guide gap is in the open state, and air supply is performed on the indoor environment in the circumferential direction. Compared with the axial air supply form, the air supply airflow coverage area is obviously increased; and when the obtained air conditioner operation mode is the axial air supply mode, the first air guide member is controlled to move to the second position, so that the air guide gap is in the closed state, and the entire heat-exchanged air of the floor air conditioner is blown out from the air outlet gap to the indoor environment in the axial direction.
[0122] It should be understood that the first mode and the second mode and the respective air supply forms thereof set in the above embodiments are only exemplary and do not limit the expansion of the technical solution of the present application. Those skilled in the art can set other operation modes and respective air supply forms on the basis of the technical concept of the present application, which should also be covered within the protection scope of the present application.
[0123] In still other optional embodiments, since the air supply area of the air guide gap can affect the circumferential air supply effect, the air supply area of the air guide gap can also be adjusted according to the actual air supply needs of the floor air conditioner during the implementation of the technical solution of the present application, so as to change the circumferential air supply effect. Here, the adjustment of the air supply area of the air guide gap includes adjustment of the specific position of the first air guide member between the first position and the second position.
[0124] Therefore, the air supply control method of the present application further includes: when the operation mode is the first mode, adjusting the air supply area of the air guide gap in the open state based on the air supply parameters corresponding to the first mode. In the embodiment, the adjustment of the air supply area of the air guide gap according to the air supply parameters can achieve more accurate circumferential air supply adjustment.
[0125] Optionally, the air supply parameters include air supply volume and air supply speed. Here, the air supply volume can be divided into several air volume levels such as large air volume air supply, medium air volume air supply and low air volume air supply; similarly, the air supply speed can be divided into several air speed levels such as high air speed air supply, medium air speed air supply and low air speed air supply. Therefore, by means of experiments and the like, a correlation between different types of air supply parameters and the air supply area of the air guide gap can be constructed and pre-set in the control system of the floor air conditioner, so that during the operation of the floor air conditioner, the corresponding air supply area of the air guide gap can be adjusted according to the set air supply parameters according to the correlation. Exemplarily, Table 1 shows an optional correlation between air supply speed and air supply area of the air guide gap, as shown in the following table:
[0126]
[0127] Table 1
[0128] S is the maximum air supply area of the air guide gap corresponding to the first position of the first air guide member.
[0129] In Table 1, the air supply speed and the air supply area of the air guide gap are negatively correlated, that is, the larger the air supply speed is set, the smaller the air supply area of the air guide gap is controlled. This embodiment is based on the Venturi effect, and the relative width of the air flow through the air guide gap is changed to increase the flow rate of the air flow.
[0130] In other embodiments, the air supply volume and the air supply area of the air guide gap also have an associated relationship, and the air supply volume and the air supply area of the air guide gap are positively correlated in the associated relationship, that is, the larger the air supply volume is set, the larger the air supply area of the air guide gap is controlled, so as to expand the relative width of the air guide gap and increase the air flow through the air guide gap.
[0131] In still other embodiments, the air supply control method of the present application further comprises adjusting the air duct area of the first air duct and the second air duct in response to the operation mode. By changing the air duct area of the first air duct and the second air duct, the air supply volume of one or both of the axial air supply or the circumferential air supply of the upright air conditioner in the operation mode can be corresponded, so as to assist in adjusting the air supply effect of the upright air conditioner.
[0132] The adjustment of the air duct area of the first air duct and the second air duct comprises controlling the action state of the second air guide member.
[0133] Here, in combination with the foregoing embodiments, the action state of the second air guide member includes a plurality of states, such as a first action state: the free side edge of the second air guide member abuts against the back side panel, the first air duct is relatively closed, and all air flow of the internal air duct is transported to the second air duct, so that the air flow is blown out in the form of circumferential air supply; a second action state: the panel of the second air guide member is parallel to the vertical direction, so that the air flow of the internal air duct is relatively evenly flowed into the first air duct and the second air duct, and then the upright air conditioner can simultaneously perform axial air supply and circumferential air supply; a third action state: the free side edge of the second air guide member abuts against the front side panel, the second air duct is relatively closed, and all air flow of the internal air duct is transported to the first air duct, so that the air flow is blown out in the form of axial air supply; a fourth working state: the free side edge of the second air guide member is inclined to the back side panel, compared with the second working state, the air volume of the second air duct is increased, and the air volume of the first air duct is decreased; a fifth action state: the free side edge of the second air guide member is inclined to the front side panel, compared with the second working state, the air volume of the second air duct is decreased, and the air volume of the first air duct is increased. The specific inclination angle of the fourth and fifth working states can be variable, that is, the increase and decrease values of the first air volume and the second air volume can be further refined and adjusted.
[0134] In this way, by adjusting the different action states of the second air guide member, the air supply volume of one or both of the axial air supply or the circumferential air supply of the vertical air conditioner can be changed, so that the air supply effect of different operation modes of the vertical air conditioner can be adjusted more accurately.
[0135] For example, when the first mode is set as the mixed air supply mode, during operation of the first mode, the first air duct and the second air duct can respectively deliver air to the air guide gap and the air outlet gap by controlling the air guide member to be in any one of the second action state, the fourth action state or the fifth action state, so that the vertical air conditioner simultaneously performs axial air supply and circumferential air supply to the indoor environment.
[0136] In addition, when the second mode is set as the circumferential air supply mode, during operation of the second mode, the axial air supply volume delivered to the air outlet gap via the first air duct is reduced or becomes zero air supply by controlling the second air guide member to be in the first action state or the fourth action state to close the first air duct or reduce the air duct area of the first air duct, so that the airflow after heat exchange is mainly blown out from the air guide gap in the form of axial air supply.
[0137] In some other optional embodiments, since the air supply areas of the two air ducts can affect the actual air supply effect of different air supply forms, the air supply areas of the air ducts can be adjusted according to the actual air supply needs of the vertical air conditioner during implementation of the technical solution of the present application, so as to change the air supply effect. Here, the adjustment of the air supply area is realized by adjusting the specific action state of the second air guide member.
[0138] Therefore, the air supply control method of the present application further comprises: when the operation mode is the first mode, adjusting the reduction ratio of the air duct area of the first air duct based on the air supply parameters corresponding to the first mode. In this embodiment, by adjusting the reduction ratio of the air duct area of the first air duct according to the air supply parameters, more accurate axial and circumferential air supply control can be realized.
[0139] Similar to the foregoing embodiments, the air supply parameters include the air supply volume and the air supply speed of the axial or circumferential air supply. The technical solution of the present application can also establish a correlation between different types of air supply parameters and the reduction ratio of the air duct area of the first air duct, so that the air duct area of the first air duct can be adjusted according to the set air supply parameters according to the correlation. For example, Table 2 shows an optional correlation between the circumferential air supply volume and the reduction ratio of the first air supply area, as shown in the following table:
[0140]
[0141] Table 2
[0142] As can be seen from Table 2, the circumferential air supply air volume is in positive correlation with the reduction ratio of the first air duct air supply area, that is, the smaller the circumferential air supply air volume, the smaller the reduction ratio of the first air duct air supply area, and the larger the actual area of the first air duct, so that less air flow is distributed to the second air duct corresponding to the circumferential air supply, so as to achieve the purpose of reducing the circumferential air supply air volume.
[0143] In some optional embodiments described above, the first mode of the standing air conditioner is a working mode in the form of complete circumferential air supply or containing circumferential air supply (such as the mixed air supply mode described above), and the triggering condition of this mode is that the temperature of the environment where the standing air conditioner is located meets the set temperature requirement. Therefore, in the case that the temperature of the environment meets the set temperature requirement, the indoor environment is supplied in a larger range through the air supply form containing the circumferential air supply mode, which helps to maintain the indoor temperature in the set temperature range for a long time.
[0144] Here, the set temperature requirement corresponding to the cooling mode of the standing air conditioner includes that the indoor environment temperature is less than or equal to the target cooling temperature; the set temperature requirement corresponding to the heating mode of the standing air conditioner includes that the indoor environment temperature is greater than or equal to the target heating temperature, etc. The specific set temperature requirement can be set separately according to different modes of the standing air conditioner, and the present application is not limited thereto.
[0145] Figure 16 is a flowchart of the air supply control method of the standing air conditioner provided by another embodiment of the present disclosure.
[0146] As Figure 16 shown, the control flow of the air supply control method of the standing air conditioner disclosed by the present application includes:
[0147] S201, acquiring the current running mode of the standing air conditioner;
[0148] Here, the running mode of the standing air conditioner includes a cooling mode or a heating mode, and different running modes correspond to different running parameter settings; in this embodiment, the cooling mode is taken as an example for illustration.
[0149] S202, determining that the current running mode of the standing air conditioner is the cooling mode;
[0150] S203, judging whether Tp≤T 制冷 , if yes, executing step S204, and if no, executing step S206;
[0151] In this embodiment, Tp≤T 制冷 is the set temperature requirement corresponding to the cooling mode, wherein Tp is the indoor environment temperature, and T 制冷 is the set target cooling temperature;
[0152] S204, running the first mode, specifically including executing step S205;
[0153] S205, controlling the first air guide member to move to a first position, and the second air guide member is in a first action state;
[0154] wherein, in combination Figure 17a as shown, the first position is that the air guide gap formed by the first air guide member and the air outlet side of the air outlet is in a fully open state and can blow air with the maximum air outlet area; the first action state is that the free side of the second air guide member abuts against the back side panel, the first air duct is relatively closed, all air flows of the internal air duct are transported to the second air duct, so that all air flows are blown out in the circumferential air supply manner.
[0155] In the figure, the arrows show the flow direction of the air flow after heat exchange in the standing air conditioner.
[0156] S206, running a second mode, specifically including executing step S207;
[0157] S207, controlling the first air guide member to move to a second position, and the second air guide member is in a third action state.
[0158] wherein, in combination Figure 17b as shown, the second position is that the air guide gap formed by the first air guide member and the air outlet side of the air outlet is in a fully closed state; the third action state is that the free side of the second air guide member abuts against the front side panel, the second air duct is relatively closed, all air flows of the internal air duct are transported to the first air duct, so that all air flows are blown out in the axial air supply manner.
[0159] The standing air conditioner air supply control method provided by the embodiments of the present disclosure realizes the adjustment of the working state of the standing air conditioner under different environmental conditions through the joint action of the first air guide member and the second air guide member, can intelligently realize the switching of different air supply forms of the standing air conditioner, and further makes the air supply performance after switching meet the air supply demand of the indoor environment.
[0160] Figure 18 is a schematic view of a standing air conditioner air supply control device provided by the embodiments of the present disclosure.
[0161] in combination Figure 18 as shown, the present disclosure provides a standing air conditioner air supply control device 500, which can be applied to the air supply control of one or more standing air conditioners shown in the above embodiments.
[0162] Optionally, the standing air conditioner air supply control device 500 includes:
[0163] a mode acquisition unit 510 configured to acquire the current running mode of the standing air conditioner;
[0164] The first response unit 521 is configured to adjust the opening and closing state of the air guiding gap in response to the operation mode; wherein the adjustment of the opening and closing state comprises controlling the moving position of the first air guiding member.
[0165] In some optional embodiments, the first response unit 521 is specifically configured to:
[0166] When the operation mode is the first mode, the first air guiding member is controlled to move to the first position or a position between the first position and the second position, so that the air guiding gap is in the open state;
[0167] When the operation mode is the second mode, the first air guiding member is controlled to move to the second position, so that the air guiding gap is in the closed state.
[0168] In some optional embodiments, the air supply control device 500 of the upright air conditioner further comprises a first adjustment unit 531 configured to, when the operation mode is the first mode, adjust the air supply area of the air guiding gap in the open state based on the air supply parameter corresponding to the first mode.
[0169] In some optional embodiments, the air supply parameter comprises an air supply volume and an air supply speed;
[0170] Wherein the air supply volume and the air supply area of the air guiding gap are in a positive correlation relationship; the air supply speed and the air supply area of the air guiding gap are in a negative correlation relationship.
[0171] In some optional embodiments, the air supply control device 500 of the upright air conditioner further comprises a second response unit 522 configured to adjust the air duct area of the first air duct and the second air duct in response to the operation mode;
[0172] Wherein the adjustment of the air duct area of the first air duct and the second air duct comprises controlling the action state of the second air guiding member.
[0173] In some optional embodiments, the second response unit 522 is specifically configured to, when the operation mode is the first mode, control the second air guiding member to reduce the air duct area of the first air duct or close the first air duct.
[0174] In some optional embodiments, the air supply control device 500 of the upright air conditioner further comprises a second adjustment unit 532 configured to, when the operation mode is the first mode, adjust the reduction ratio of the air duct area of the first air duct based on the air supply parameter corresponding to the first mode.
[0175] In some optional embodiments, when the temperature of the environment in which the upright air conditioner is located meets the set temperature requirement, the operation mode of the upright air conditioner is set to the first mode.
[0176] In combination Figure 19As shown, the air supply control device of the vertical air conditioner provided by the embodiments of the present disclosure includes a processor 600 and a memory 601. Optionally, the device can also include a communication interface 602 and a bus 603. The processor 600, the communication interface 602 and the memory 601 can communicate with each other through the bus 603. The communication interface 602 can be used for information transmission. The processor 600 can invoke the logical instructions in the memory 601 to execute the air supply control method of the above-mentioned embodiments.
[0177] In addition, the logical instructions in the memory 601 described above can be implemented in the form of a software functional unit and sold or used as an independent product, which can be stored in a computer readable storage medium.
[0178] The memory 601 as a computer readable storage medium can be used to store software programs, computer executable programs, such as program instructions / modules corresponding to the method in the embodiments of the present disclosure. The processor 600 executes the program instructions / modules stored in the memory 601, thereby performing functional applications and data processing, that is, implementing the air supply control method in the above-mentioned embodiments.
[0179] The memory 601 can include a program storage area and a data storage area, wherein the program storage area can store an operating system and application programs required by at least one function; the data storage area can store data created according to the use of the terminal device, etc. In addition, the memory 601 can include a high-speed random access memory, and can also include a non-volatile memory.
[0180] The embodiments of the present disclosure provide a vertical air conditioner including the above-mentioned air supply control device.
[0181] The embodiments of the present disclosure provide a computer readable storage medium storing computer executable instructions, which are configured to execute the above-mentioned air supply control method.
[0182] The embodiments of the present disclosure provide a computer program product, which includes a computer program stored on a computer readable storage medium, and the computer program includes program instructions, which, when executed by a computer, cause the computer to execute the above-mentioned air supply control method.
[0183] The above-mentioned computer readable storage medium can be a transitory computer readable storage medium or a non-transitory computer readable storage medium.
[0184] The technical solutions of the embodiments of the present disclosure can be embodied in the form of a software product. The computer software product is stored in a storage medium and includes one or more instructions for causing a computer device (which can be a personal computer, a server, or a network device, etc.) to execute all or part of the steps of the method disclosed in the embodiments of the present disclosure. The aforementioned storage medium can be a non-transitory storage medium, including: a U disk, a mobile hard disk, a read-only memory (ROM), a random access memory (RAM), a magnetic disk or an optical disk, and various media that can store program codes, and can also be a transitory storage medium.
[0185] The above description and drawings sufficiently illustrate the embodiments of the present disclosure to enable one skilled in the art to practice them. Other embodiments can include structural, logical, electrical, process, and other changes. The embodiments represent only a few of the possible variations. Individual components and functions are optional unless explicitly required, and the order of operations can be changed. Parts and features of some embodiments can be included in or replace parts and features of other embodiments. Also, the words used in this application are used only to describe the embodiments and not to limit the claims. As used in the description of the embodiments and the claims, unless the context clearly requires otherwise, the singular forms "a," "an," and "the" are intended to include the plural forms as well. Similarly, the term "and / or" as used in this application refers to any and all possible combinations of one or more associated listed items. In addition, when used in this application, the term "comprise" and its variations "comprises" and / or comprises" and the like mean the presence of the stated features, integers, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or groups thereof. Without more limitations, the element defined by the phrase "comprising a" does not exclude the presence of additional identical elements in the process, method, or device including the stated element. In this document, each embodiment focuses on the differences from other embodiments, and the same or similar parts between embodiments can be referred to each other. For the method, product, etc. disclosed in the embodiments, if it corresponds to the method part disclosed in the embodiments, the relevant part can be referred to the description of the method part.
[0186] Those skilled in the art can understand that the units and algorithm steps of each example described in combination with the embodiments disclosed herein can be realized by electronic hardware or a combination of computer software and electronic hardware. Whether the functions are realized in hardware or software depends on the specific application and design constraints of the technical solution. The skilled person can use different methods for each specific application to realize the described functions, but such implementation should not be considered beyond the scope of the embodiments of the present disclosure. The skilled person can clearly understand that, for the convenience and brevity of description, the specific working processes of the above-described system, device and unit can refer to the corresponding processes in the foregoing method embodiments, which will not be repeated here.
[0187] In the embodiments disclosed herein, the disclosed methods, products (including but not limited to devices, equipment, etc.) can be implemented in other ways. For example, the above-described device embodiments are only schematic, for example, the division of the units can only be a logical function division, and actual implementation can have another division manner, for example, a plurality of units or components can be combined or integrated into another system, or some features can be ignored or not executed. In addition, the coupling or direct coupling or communication connection between the units shown or discussed can be indirect coupling or communication connection through some interface, device or unit, and can be electrical, mechanical or other forms. The units described as separate components can or can not be physically separate, and the components shown as units can or can not be physical units, that is, they can be located in one place, or can be distributed on a plurality of network units. Part or all of the units can be selected according to actual needs to implement the embodiments. In addition, each functional unit in the embodiments of the present disclosure can be integrated in one processing unit, or each unit can be a physically independent unit, or two or more units can be integrated in one unit.
[0188] The computer program instructions can also be loaded onto a computer, other programmable data processing apparatus, or other processing device to cause a series of operational steps to be performed on the computer, other programmable apparatus or other processing device to produce a computer implemented process such that the instructions which execute on the computer or other programmable apparatus provide processes for implementing the functions / acts specified in the flowchart and / or block diagram block or blocks.
Claims
1. A method for controlling the air supply of a vertical air conditioner, characterized in that, The vertical air conditioner comprises an air conditioner body and a guide air component, the air conditioner body is configured with an annular bladeless air outlet which is formed through in the horizontal direction; the guide air component comprises a first guide air component, the first guide air component is arranged on the air outlet side of the air outlet in the axial direction and cooperates with the air outlet side to form a guide air gap which is connected with the internal air duct of the air conditioner body and forms an angle with the air outlet in the axial direction, the guide air gap is used for realizing the air supply in the circumferential direction; wherein the first guide air component can at least be moved between the first position which opens the guide air gap and the second position which closes the guide air gap; the periphery of the air outlet is formed with one or more air outlet gaps which are connected with the internal air duct, the air direction of the air outlet gap is towards the air outlet side; the guide air component further comprises a second guide air component which is arranged in the internal air duct and separates the internal air duct into a first air duct corresponding to the air outlet gap and a second air duct corresponding to the guide air gap in the axial direction of the air outlet, the second guide air component can controllably change the air duct area of the first air duct and the second air duct; the second guide air component is configured as a panel structure, the panel structure can separate the internal air duct into two air ducts, wherein the first air duct is composed of the panel structure, the back panel of the shell of the air conditioner body and the front half of the two side panels, the second air duct is composed of the panel structure, the front panel of the shell and the rear half of the two side panels, the airflow which is transported from bottom to top can flow into the two air ducts respectively; The air supply control method comprises: obtaining the current operation mode of the vertical air conditioner; in response to the operation mode, adjusting the opening and closing state of the guide air gap; wherein the adjustment of the opening and closing state comprises controlling the moving position of the first guide air component; and in response to the operation mode, adjusting the air duct area of the first air duct and the second air duct; wherein the adjustment of the air duct area of the first air duct and the second air duct comprises controlling the action state of the second guide air component.
2. The air supply control method according to claim 1, characterized by, in response to the operation mode, adjusting the opening and closing state of the guide air gap, comprising: when the operation mode is the first mode, the first guide air component is controlled to move to the first position or a position between the first position and the second position, so that the guide air gap is in the open state; when the operation mode is the second mode, the first guide air component is controlled to move to the second position, so that the guide air gap is in the closed state.
3. The air supply control method according to claim 2, wherein when the operation mode is the first mode, further comprising: based on the air supply parameters corresponding to the first mode, adjusting the air supply area of the guide air gap in the open state.
4. The air supply control method according to claim 3, wherein The air supply parameters include air supply volume and air supply speed; wherein the air supply volume and the air supply area of the guide air gap are in a positive correlation; the air supply speed and the air supply area of the guide air gap are in a negative correlation.
5. The air supply control method according to claim 4, wherein in response to the operation mode, adjusting the air duct area of the first air duct and the second air duct, comprising: when the operation mode is the first mode, the second guide air component is controlled to reduce the air duct area of the first air duct or close the first air duct.
6. The air supply control method according to claim 5, wherein when the operation mode is the first mode, further comprising: adjusting a reduction ratio of the air duct area of the first air duct based on the air supply parameter corresponding to the first mode.
7. The air supply control method according to any one of claims 2 to 6, characterized by, further comprising: when the temperature of the environment where the standing air conditioner is located meets a set temperature requirement, setting the operation mode of the standing air conditioner as the first mode. 8.A supply air control apparatus of a floor air conditioner, comprising a processor and a memory storing program instructions, wherein The processor is configured to execute the program instructions to perform the air supply control method according to any one of claims 1 to 7.
9. A standing type air conditioner, characterized by, The air supply control device according to claim 8.
Citation Information
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