Air conditioner control methods, devices and air conditioners
By installing a cross-flow fan and multiple air supply fans in the air conditioner, and controlling the air supply fans to rotate around the inner diameter of the air outlet using preset speed and operating mode, the problems of airflow distance and user airflow feel of the air conditioner are solved, and more efficient indoor temperature control is achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-07-01
- Publication Date
- 2026-03-10
AI Technical Summary
Existing air conditioners either have a long airflow distance but users feel a strong airflow, or a short airflow distance but users feel a weak airflow, and their efficiency in controlling indoor temperature is low.
By installing a cross-flow fan and multiple air supply fans in the air conditioner, the air supply fans can be controlled to rotate around the inner diameter of the air outlet using preset speed and operating mode, thereby adjusting the gas direction and speed to optimize the air delivery effect.
Without increasing the user's feeling of being blown out, the air outlet range and airflow distance of the air conditioner are increased, thereby improving the heat exchange efficiency and the efficiency of indoor temperature control.
Smart Images

Figure CN115218423B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of household appliance technology, and in particular to a control method, device and air conditioner for an air conditioner. Background Technology
[0002] In modern life, air conditioners are an essential piece of equipment in indoor spaces. By controlling the indoor ambient temperature, air conditioners can provide users with a comfortable living or working environment.
[0003] Typically, air conditioners operate in the following modes: cooling mode, heating mode, fan mode, defrost mode, and self-cleaning mode. The airflow distance of an air conditioner refers to the farthest distance that the cool air, hot air, or natural wind it blows out can reach during operation.
[0004] In existing technologies, air conditioners typically rely on built-in centrifugal or cross-flow fans for airflow. Centrifugal fans have higher air pressure, allowing for a longer airflow distance, but resulting in a stronger draft and less comfortable user experience. Cross-flow fans, on the other hand, have lower air pressure, providing a weaker draft, but with a shorter airflow distance. Furthermore, traditional air conditioners usually deliver air at a fixed speed, which is insufficient for optimal temperature control in real-world scenarios, leading to low efficiency in regulating indoor temperature. Therefore, achieving a longer airflow distance with a weaker draft, while simultaneously providing more efficient indoor temperature control, is a pressing technical challenge in this field. Summary of the Invention
[0005] This invention provides a control method, device, and air conditioner for an air conditioner, which solves the shortcomings of existing technologies such as difficulty in achieving a long air blowing distance and weak air blowing sensation for users, as well as low efficiency in regulating indoor ambient temperature. The invention achieves a long air blowing distance and weak air blowing sensation for users, and more efficient regulation of indoor ambient temperature.
[0006] This invention provides a control method for an air conditioner, comprising:
[0007] When the air conditioner is turned on, obtain the operating mode of the air conditioner;
[0008] Based on the operating mode and preset speed, the air supply device in the air conditioner is controlled;
[0009] The air conditioner includes a first number of air outlets; the air supply device includes a cross-flow fan and the first number of supplementary air fans; the first number is not less than 2; the supplementary air fans have a one-to-one correspondence with the air outlets; the supplementary air fans can rotate around the inner diameter of the corresponding air outlet.
[0010] According to a control method for an air conditioner provided by the present invention, the step of controlling the air supply device in the air conditioner based on the operating mode and a preset speed includes:
[0011] When the air conditioner is in cooling mode, a first target speed and a second target speed are determined based on the preset speed.
[0012] The blades of the cross-flow fan and the air supply fan are controlled to rotate clockwise. The angle between the direction of the air blown out by the air supply fan and the vertical upward direction is controlled to be less than 90°. The speed of the blades of the cross-flow fan is controlled to execute the preset speed. The speed of the blades of the air supply fan is controlled to execute the first target speed. The speed of the air supply fan rotating around the inner diameter of the corresponding air outlet is controlled to execute the second target speed.
[0013] According to a control method for an air conditioner provided by the present invention, the step of controlling the air supply device in the air conditioner based on the operating mode and a preset speed includes:
[0014] When the air conditioner is in heating mode, a third target speed and a fourth target speed are determined based on the preset speed.
[0015] The blades of the cross-flow fan and the air supply fan are controlled to rotate clockwise. The angle between the direction of the air blown out by the air supply fan and the vertical downward direction is controlled to be less than 90°. The speed of the blades of the cross-flow fan is controlled to execute the preset speed. The speed of the blades of the air supply fan is controlled to execute the third target speed. The speed of the air supply fan rotating around the inner diameter of the corresponding air outlet is controlled to execute the fourth target speed.
[0016] The third target rotational speed is less than the first target rotational speed.
[0017] According to a control method for an air conditioner provided by the present invention, the step of controlling the air supply device in the air conditioner based on the operating mode and a preset speed includes:
[0018] When the air conditioner is in the air supply mode, the fifth target speed and the sixth target speed are determined based on the preset speed.
[0019] The blades of the cross-flow fan and the air supply fan are controlled to rotate clockwise. The angle between the direction of the air supply fan blowing out gas and the vertical downward direction is controlled to be less than 90°. The speed of the blades of the cross-flow fan is controlled to execute the preset speed. The speed of the blades of the air supply fan is controlled to execute the fifth target speed. The speed of the air supply fan rotating around the inner diameter of the corresponding air outlet is controlled to execute the sixth target speed.
[0020] The fifth target rotational speed is greater than the first target rotational speed.
[0021] According to a control method for an air conditioner provided by the present invention, the step of controlling the air supply device in the air conditioner based on the operating mode and a preset speed includes:
[0022] When the air conditioner is in target mode, the seventh target speed and the eighth target speed are determined based on the preset speed.
[0023] The blades of the cross-flow fan and the air supply fan are controlled to rotate counterclockwise. The angle between the direction of the air blown out by the air supply fan and the vertical upward direction is controlled to be less than 90°. The speed of the blades of the cross-flow fan is controlled to execute the preset speed. The speed of the blades of the air supply fan is controlled to execute the seventh target speed. The speed of the air supply fan rotating around the inner diameter of the corresponding air outlet is controlled to execute the eighth target speed.
[0024] The target mode includes: defrosting mode or self-cleaning mode.
[0025] According to the control method of an air conditioner provided by the present invention, the rotation of each of the air supply fans around the inner diameter of each of the air outlets is synchronized.
[0026] The present invention also provides a control device for an air conditioner, comprising:
[0027] The data acquisition module is used to acquire the operating mode of the air conditioner when it is turned on.
[0028] An air supply control module is used to control the air supply device in the air conditioner based on the operating mode and preset speed.
[0029] The air conditioner includes a first number of air outlets; the air supply device includes a cross-flow fan and the first number of supplementary air fans; the first number is not less than 2; the supplementary air fans have a one-to-one correspondence with the air outlets; the supplementary air fans can rotate around the inner diameter of the corresponding air outlet.
[0030] The present invention also provides an air conditioner, comprising: an air conditioner body and an air conditioner control processor; the air conditioner control processor is connected to the air conditioner body; and further comprising a memory and a program or instructions stored in the memory and executable on the air conditioner control processor, wherein when the program or instructions are executed by the air conditioner control processor, the air conditioner control method as described in any of the preceding claims is performed.
[0031] According to an air conditioner provided by the present invention, the air conditioner body includes: an air supply device and a first number of air outlets; the air supply device includes a cross-flow fan and the first number of supplementary air fans; the first number is not less than 2; the supplementary air fans have a one-to-one correspondence with the air outlets; the supplementary air fans can rotate around the inner diameter of the corresponding air outlets.
[0032] According to an air conditioner provided by the present invention, the air conditioner body further includes: a first number of first stepper motors and a first number of ring gear mechanisms; the air outlet, the first stepper motor, and the ring gear mechanism have a one-to-one correspondence.
[0033] The ring gear mechanism is arranged along the inner diameter of the corresponding air outlet, the air supply fan corresponding to the air outlet is connected to the ring gear mechanism, and the first stepper motor is driven by the ring gear mechanism.
[0034] According to an air conditioner provided by the present invention, the air supply fan further includes: a rotary motor, fan blades, and a filter screen;
[0035] The rotary motor is connected to the fan blades via a transmission. The fan blades rotate around a second rotation axis under the drive of the rotary motor. The second rotation axis is the central axis of the air supply fan and is perpendicular to the plane in which the air supply fan is located.
[0036] The filter screen is located on the side of the fan blade closest to the indoor space;
[0037] The rotary motor, the fan blades, and the filter are designed as a single unit.
[0038] The present invention also provides an electronic device, including a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor executes the program to implement the control method of any of the above-described air conditioners.
[0039] The present invention also provides a non-transitory computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, implements the control method of the air conditioner as described above.
[0040] The present invention also provides a computer program product, including a computer program that, when executed by a processor, implements the control method of any of the above-described air conditioners.
[0041] The air conditioner control method, device, and air conditioner provided by the present invention control the air supply device in the air conditioner based on the air conditioner's operating mode and preset speed. The air supply device includes a cross-flow fan and multiple air supply fans. The air conditioner includes multiple air outlets. The air supply fans can rotate around the inner diameter of the corresponding air outlets. This can increase the air outlet range and air supply distance of the air conditioner without increasing the user's feeling of being blown by the air, thereby improving the heat exchange efficiency of the air conditioner and enhancing the user's perception. Attached Figure Description
[0042] To more clearly illustrate the technical solutions in this invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this invention. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0043] Figure 1 This is a flowchart illustrating the control method for an air conditioner provided by the present invention;
[0044] Figure 2 This is one of the perspective views of the air conditioner in the air conditioner control method provided by the present invention;
[0045] Figure 3 This is a front view of the air conditioner in the air conditioner control method provided by the present invention;
[0046] Figure 4 This is a cross-sectional view of the air conditioner in the air conditioner control method provided by the present invention;
[0047] Figure 5 This is the second perspective view of the air conditioner in the air conditioner control method provided by the present invention;
[0048] Figure 6 This is the third perspective view of the air conditioner in the air conditioner control method provided by the present invention;
[0049] Figure 7 This is the fourth perspective view of the air conditioner in the air conditioner control method provided by the present invention;
[0050] Figure 8 This is the fifth perspective view of the air conditioner in the air conditioner control method provided by the present invention;
[0051] Figure 9 This is a schematic diagram of the structure of the control device for the air conditioner provided by the present invention;
[0052] Figure 10 This is a schematic diagram of the structure of the electronic device provided by the present invention. Detailed Implementation
[0053] To make the objectives, technical solutions, and advantages of this invention clearer, the technical solutions of this invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this invention. All other embodiments obtained by those skilled in the art based on the embodiments of this invention without creative effort are within the scope of protection of this invention.
[0054] In the description of the invention, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0055] Figure 1 This is a flowchart illustrating the control method for an air conditioner provided by the present invention. The following is a summary of the process. Figure 1 The control method of the air conditioner of the present invention is described. For example... Figure 1 As shown, the method includes: Step 101, obtaining the operating mode of the air conditioner when it is turned on.
[0056] It should be noted that the execution subject of this embodiment of the invention is the control device of an air conditioner.
[0057] Typically, users can control the air conditioner's compressor to start, its operating mode to control, or its shutdown to control its operation, according to their actual needs. User control can be based on user-inputted commands. For example, the air conditioner's controller can receive a first user-inputted command and, in response, start the compressor for cooling; or, the controller can receive a second user-inputted command and, in response, operate the air conditioner in fan mode; or, the controller can receive a third user-inputted command and, in response, shut down the air conditioner.
[0058] It should be noted that user input can take the form of touch input on the target interface, including but not limited to click, swipe, and press input. User input can also be expressed as physical button input or voice input. The target interface can be the user terminal's display interface or the air conditioner's control interface. The physical buttons can be located on the air conditioner itself or on the air conditioner's external controller.
[0059] It is understood that the inputs listed above are merely exemplary examples, meaning that the embodiments of this application include, but are not limited to, the inputs listed above. In actual implementation, user input may include any other possible inputs, which can be specifically determined according to actual usage needs, and the embodiments of this application do not impose any limitations.
[0060] In this embodiment of the invention, when the air conditioner is started, the operating mode of the air conditioner can be obtained in a variety of ways. For example, the operating mode of the air conditioner can be obtained by detecting the control commands received by the air conditioner's controller.
[0061] The operating modes of an air conditioner may include, but are not limited to: cooling mode, heating mode, fan mode, defrost mode, and self-cleaning mode. In cooling mode, the air conditioner blows out cold air to lower the indoor temperature; in heating mode, it blows out hot air to raise the indoor temperature; in fan mode, it blows out natural air to increase indoor air circulation; in defrost mode, it automatically defrosts; and in self-cleaning mode, it performs self-cleaning.
[0062] Step 102: Control the air supply device in the air conditioner based on the operating mode and preset speed.
[0063] The air conditioner includes a first number of air outlets; the air supply device includes a cross-flow fan and a first number of supplementary air fans; the first number is not less than 2; the supplementary air fans and the air outlets have a one-to-one correspondence; the supplementary air fans can rotate around the inner diameter of the corresponding air outlet.
[0064] It should be noted that, because cross-flow fans have the characteristics of long airflow distance but small airflow range, resulting in a weaker airflow sensation for users, the air supply device in the air conditioner of this embodiment includes a cross-flow fan and multiple rotatable supplementary air fans. Compared to air conditioners using centrifugal fans, cross-flow fans can increase the airflow distance of the air conditioner. At the same time, by utilizing multiple rotatable supplementary air fans, the airflow range of the air conditioner can be increased. Thus, it is possible to increase the airflow range and airflow distance of the air conditioner without increasing the user's airflow sensation.
[0065] Figure 2 This is one of the perspective views of the air conditioner in the air conditioner control method provided by the present invention. Figure 3 This is a front view of the air conditioner in the air conditioner control method provided by the present invention. Figure 4 This is a cross-sectional view of the air conditioner in the air conditioner control method provided by the present invention. Figure 2 , Figure 3 and Figure 4As shown, the air supply device in the air conditioner includes a cross-flow fan 401 and a first number of supplementary air fans 201.
[0066] The surface of the air conditioner housing 203 is provided with a first number of air outlets 204. The first number is not less than 2; in this embodiment of the invention, a value of 2 is used as an example for explanation.
[0067] Each air outlet 204 is provided with an air supply fan 201, which can rotate clockwise or counterclockwise around the inner diameter of the corresponding air outlet 204.
[0068] It should be noted that the structures of each air outlet 204 are identical. In this embodiment of the invention, an air outlet 204 and the air supply fan 201 disposed at the air outlet 204 are used as examples to describe the air conditioner and the control method of the air conditioner provided by the present invention. The air outlet 204 and the air supply fan 201 mentioned in the following description can refer to any air outlet 204 in the air conditioner and the air supply fan 201 disposed at the air outlet 204.
[0069] The supplementary air fan 201 is rotatably connected to the support structure. In this embodiment of the invention, the central axis of the support structure perpendicular to the plane where the air outlet 204 is located can be used as the first axis of rotation, and the horizontal plane where the first axis of rotation is located can be used as the reference horizontal plane. The supplementary air fan 201 can rotate relative to the first axis of rotation. By controlling the rotation angle of the supplementary air fan 201 relative to the first axis of rotation, the direction of the air blown out or drawn in by the supplementary air fan 201 can be controlled.
[0070] Optionally, the aforementioned support structure can be a support frame, a support shaft, or a support plate. The embodiments of the present invention do not limit the specific structure of the aforementioned support structure.
[0071] Optionally, the supplementary air fan 201 may include an integrated filter, fan blades, and a rotary motor. The rotary motor can drive the fan blades to rotate clockwise or counterclockwise. The filter is located on the outer side of the fan blades and can be used to filter the air blown out or drawn in by the supplementary air fan 201. The outer side of the fan blades refers to the side closest to the indoor space.
[0072] Optionally, a ring gear mechanism 301 can be provided within the housing 203 along the inner diameter of the air outlet 204. The diameter of the ring gear mechanism 301 is slightly larger than the diameter of the air outlet 204, and the difference between the diameter of the ring gear mechanism 301 and the diameter of the air outlet 204 is less than a preset value. This difference ensures that the diameter of the ring gear mechanism 301 is not excessively large. The preset value can be determined based on prior knowledge, and the specific value of the preset value is not limited in this embodiment of the invention.
[0073] Accordingly, the supplementary air fan 201 can be fixedly connected to any point on the ring gear mechanism 301 through the support structure, and the ring gear mechanism 301 can be driven to rotate by the first stepper motor 207. In turn, the ring gear mechanism 301 can drive the supplementary air fan 201 connected to the support structure to rotate along the inner diameter of the air outlet 204.
[0074] Optionally, when the support structure is a support frame, the bottom of the support frame can be fixedly connected to any point on the ring gear mechanism 301, and the top of the support frame can be equipped with an air supply fan 201; or, when the support structure is a support shaft, one end of the support shaft can be fixedly connected to any point on the ring gear mechanism 301, and the other end of the support shaft can be equipped with an air supply fan 201; or, when the support structure is a support plate, one end of the support plate can be fixedly connected to any point on the ring gear mechanism 301, and the other end of the support plate can be equipped with an air supply fan 201.
[0075] It is understandable that as the air supply fan 201 rotates along the inner diameter of the air outlet 204, the first rotation axis and the reference horizontal plane also move up and down with the rotation of the air supply fan 201.
[0076] A cross-flow fan 401 is located below the evaporator 402. The blades of the cross-flow fan 401 can rotate clockwise or counterclockwise.
[0077] Optionally, the air conditioner also includes a movable baffle 206. The movable baffle 206 can be extended when the air conditioner is turned on to allow air to be drawn into the air conditioner through the air inlet 205. The movable baffle 206 can also be pushed in when the air conditioner is turned off to cover the air inlet 205.
[0078] The movable baffle 206 can be driven by a second stepper motor 208 located near the air inlet 205.
[0079] It should be noted that in this embodiment of the invention, each supplementary air fan 201 can rotate synchronously around the inner diameter of each air outlet 204; each supplementary air fan 201 can also rotate independently around the inner diameter of the corresponding air outlet 204 according to a preset rule. The specific manner in which each supplementary air fan 201 rotates around each air outlet 204 is not limited in this embodiment of the invention.
[0080] It should be noted that each air supply fan 201 in the embodiments of the present invention can rotate synchronously relative to each first rotation axis; each air supply fan 201 can also rotate independently around the corresponding first rotation axis according to a preset rule. The specific manner in which each air supply fan 201 rotates relative to each first rotation axis is not limited in the embodiments of the present invention.
[0081] This invention controls the air supply device in an air conditioner based on the air conditioner's operating mode and preset speed. The air supply device includes a cross-flow fan and multiple supplementary air fans. The air conditioner includes multiple air outlets, and the supplementary air fans can rotate around the inner diameter of the corresponding air outlets. This increases the air outlet range and airflow distance of the air conditioner without increasing the user's feeling of being blown by the air, thereby improving the heat exchange efficiency of the air conditioner, improving the air conditioner's efficiency in regulating indoor temperature, and enhancing the user's perception.
[0082] Based on the above embodiments, the air supply device in the air conditioner is controlled based on the operating mode and the preset speed, including: when the operating mode of the air conditioner is cooling mode, determining a first target speed and a second target speed based on the preset speed.
[0083] Specifically, after obtaining the operating mode of the air conditioner, if the operating mode of the air conditioner is cooling mode, the first target speed H1 and the second target speed H2 can be determined by numerical calculation based on the preset speed H.
[0084] Optionally, the first target rotational speed H1 can be the product of a preset rotational speed H and a first preset value x1, i.e., H1 = H × x1. The value of the first preset value x1 can be between 1 / 4 and 1 / 2, for example, the first preset value x1 can be 1 / 4, 1 / 3 or 1 / 2.
[0085] Preferably, the first preset value x1 can be 1 / 3, that is, H1 = H × 1 / 3.
[0086] Optionally, the second target rotational speed H2 can be the product of a preset rotational speed H and a second preset value x2, i.e., H2 = H × x2. The value of the second preset value x2 can be between 1 / 11 and 1 / 9, for example, the second preset value x2 can be 1 / 11, 1 / 10 or 1 / 9.
[0087] Preferably, the second preset value x2 can be 1 / 10, that is, H2 = H × 1 / 10.
[0088] The blades of the cross-flow fan 401 and the air supply fan 201 are controlled to rotate clockwise. The angle between the direction of the air blown out by the air supply fan 201 and the vertical upward direction is controlled to be less than 90°. The speed of the blades of the cross-flow fan 401 is controlled to execute a preset speed. The speed of the blades of the air supply fan 201 is controlled to execute a first target speed. The speed of the air supply fan 201 rotating around the inner diameter of the corresponding air outlet 204 is controlled to execute a second target speed.
[0089] Specifically, in order to improve the air delivery effect of the air conditioner in cooling mode and reduce the noise of the air conditioner, when the air conditioner is in cooling mode, the blades of the cross-flow fan 401 and the blades of the supplementary air fan 201 can be controlled to rotate clockwise, and the speed of the blades of the cross-flow fan 401 can be controlled to execute a preset speed H, the speed of the blades of the supplementary air fan 201 can be controlled to execute a first target speed H1, and the speed of the supplementary air fan 201 rotating around the inner diameter of the corresponding air outlet 204 can be controlled to execute a second target speed H2.
[0090] It should be noted that, in this embodiment of the invention, the angle between the central axis of the projection of the supplementary air fan 201 onto the plane where the air outlet 204 is located and the central axis of the air outlet 204 in the vertically upward direction, in the clockwise direction, can be taken as the rotation angle of the supplementary air fan 201 relative to the first rotation axis. The central axis of the projection of the supplementary air fan 201 onto the plane where the air outlet 204 is located passes through the center point of the air outlet 204.
[0091] In this embodiment of the invention, when the supplementary air fan 210 blows out gas, the angle between the projection of the direction of the gas blown out by the supplementary air fan 201 onto the plane where the air outlet 204 is located and the clockwise direction of the vertical upward direction in the plane where the air outlet 204 is located can be used as the blowing angle of the supplementary air fan 201; when the supplementary air fan 210 draws in gas, the angle between the projection of the direction of the gas drawn in by the supplementary air fan 201 onto the plane where the air outlet 204 is located and the clockwise direction of the vertical upward direction in the plane where the air outlet 204 is located can be used as the angle of the gas drawn in by the supplementary air fan 201.
[0092] Figure 5 This is the second perspective view of the air conditioner in the control method of the air conditioner provided by the present invention. When the rotation angle of the air supply fan 201 relative to the first rotation axis is 0° (360°), or when the blowing angle of the air supply fan 201 is 0° (360°), the perspective view of the air conditioner is as follows. Figure 5 As shown.
[0093] Figure 6This is the third perspective view of the air conditioner in the control method of the air conditioner provided by the present invention. When the rotation angle of the air supply fan 201 relative to the first rotation axis is 90°, or when the blowing angle of the air supply fan 201 is 90°, the perspective view of the air conditioner is as follows. Figure 6 As shown.
[0094] Figure 7 This is the fourth perspective view of the air conditioner in the control method of the air conditioner provided by the present invention. When the rotation angle of the air supply fan 201 relative to the first rotation axis is 180°, or when the blowing angle of the air supply fan 201 is 180°, the perspective view of the air conditioner is as follows. Figure 7 As shown.
[0095] Figure 8 This is the fifth perspective view of the air conditioner in the control method of the air conditioner provided by the present invention. When the rotation angle of the air supply fan 201 relative to the first rotation axis is 270°, or when the blowing angle of the air supply fan 201 is 270°, the perspective view of the air conditioner is as follows. Figure 8 As shown.
[0096] like Figures 5 to 8 As shown, when the rotation angle of the supplementary air fan 201 relative to the first rotation axis is within [0°, 90°] and within [270°, 360°], the angle between the direction of the gas blown by the supplementary air fan 201 and the vertically upward direction is less than 90°, that is, the supplementary air fan 201 blows gas above the reference horizontal plane; when the rotation angle of the supplementary air fan 201 relative to the first rotation axis is within (90°, 270°), the angle between the direction of the gas blown by the supplementary air fan 201 and the vertically downward direction is less than 90°, that is, the supplementary air fan 201 blows gas below the reference horizontal plane.
[0097] To prevent the cold air blown directly onto users during cooling mode, thus improving user comfort, the rotation angle of the air supply fan 201 relative to the first rotation axis can be controlled within [0°, 90°] and [270°, 360°] when the air conditioner is in cooling mode. This means the angle between the direction of the air supply fan 201 blowing air and the vertically upward direction is less than 90°. This allows the air conditioner to blow cold air upwards towards the reference horizontal plane during cooling mode, preventing direct airflow onto users and allowing denser cold air to naturally flow downwards, thus improving the air conditioner's cooling effect.
[0098] Accordingly, when the air conditioner is in cooling mode, the blowing angle of the supplementary air fan 201 is between 0° and 90° and between 270° and 0°.
[0099] Accordingly, when the air conditioner is in cooling mode, the blowing angle of the supplementary air fan 201 is between 0° and 90° and between 270° and 0°.
[0100] This invention improves the air delivery effect of the air conditioner in cooling mode by determining a first target speed and a second target speed based on a preset speed when the air conditioner is in cooling mode. It controls the blades of the cross-flow fan and the supplementary air fan to rotate clockwise, controls the angle between the direction of the air blown out by the supplementary air fan and the vertical upward direction to be less than 90°, controls the blade speed of the cross-flow fan to execute the preset speed, controls the blade speed of the supplementary air fan to execute the first target speed, and controls the speed at which the supplementary air fan rotates around the inner diameter of the corresponding air outlet to execute the second target speed. This improves the air delivery effect of the air conditioner in cooling mode, reduces the noise of the air conditioner, and prevents the cold air from blowing directly onto the user by controlling the air conditioner to blow upwards in cooling mode. It also allows the denser cold air to flow downwards naturally, thereby improving the cooling effect of the air conditioner and enhancing the user's experience.
[0101] Based on the above embodiments, the air supply device in the air conditioner is controlled based on the operating mode and the preset speed, including: when the operating mode of the air conditioner is heating mode, determining a third target speed and a fourth target speed based on the preset speed.
[0102] Specifically, after obtaining the operating mode of the air conditioner, if the operating mode of the air conditioner is heating mode, the third target speed H3 and the fourth target speed H4 can be determined by numerical calculation based on the preset speed H.
[0103] Optionally, the third target speed H3 can be the product of the preset speed H and the third preset value x3, i.e., H3 = H × x3. The value of the third preset value x3 can be between 1 / 5 and 1 / 3, for example, the third preset value x3 can be 1 / 5, 1 / 4 or 1 / 3.
[0104] Preferably, the third preset value x3 can be 1 / 4, that is, H3 = H × 1 / 4.
[0105] Optionally, the fourth target speed H4 can be the product of the preset speed H and the fourth preset value x4, i.e., H4 = H × x4. The value of the fourth preset value x4 can be between 1 / 11 and 1 / 9, for example, the fourth preset value x4 can be 1 / 11, 1 / 10 or 1 / 9.
[0106] Preferably, the fourth preset value x4 can be 1 / 10, that is, H4 = H × 1 / 10.
[0107] The blades of the cross-flow fan 401 and the air supply fan 201 are controlled to rotate clockwise. The angle between the direction of the air blown out by the air supply fan 201 and the vertical downward direction is controlled to be less than 90°. The speed of the blades of the cross-flow fan 401 is controlled to execute a preset speed. The speed of the blades of the air supply fan 201 is controlled to execute a third target speed. The speed of the air supply fan 201 rotating around the inner diameter of the corresponding air outlet is controlled to execute a fourth target speed.
[0108] The third target rotational speed is less than the first target rotational speed.
[0109] Specifically, in order to improve the air delivery effect of the air conditioner in heating mode and reduce the noise of the air conditioner, when the air conditioner is in heating mode, the blades of the cross-flow fan 401 and the blades of the supplementary air fan 201 can be controlled to rotate clockwise, and the speed of the blades of the cross-flow fan 401 can be controlled to execute the preset speed H, the speed of the blades of the supplementary air fan 201 can be controlled to execute the third target speed H3, and the speed of the supplementary air fan 201 rotating around the inner diameter of the corresponding air outlet 204 can be controlled to execute the fourth target speed H4.
[0110] It should be noted that the temperature of the hot air blown out by the air conditioner in heating mode decreases continuously with the increase of the blowing distance. This means that when the air conditioner blows air a considerable distance, the user will feel that the air is blowing cool air, resulting in a poor user comfort experience. Therefore, in this embodiment of the invention, when the air conditioner is in heating mode, the rotation angle of the supplementary air fan 201 relative to the first rotation axis can be controlled within (90°, 270°). That is, the angle between the direction of the air blown out by the supplementary air fan 201 and the vertically downward direction is controlled to be less than 90°, and the third target speed H3 is less than the first target speed H1. This allows the air conditioner to blow hot air downwards towards the reference horizontal plane in heating mode. By controlling the fan speed of the supplementary air fan 201 to achieve the third target speed H3 (the third target speed H3 is less than the first target speed H1), the blowing distance of the air conditioner is shortened, thereby preventing the user from feeling that the air conditioner is blowing cool air. It also allows the less dense hot air to naturally flow upwards, improving the heating effect of the air conditioner.
[0111] like Figures 5 to 8 As shown, when the air conditioner is in heating mode, the blowing angle of the air supply fan 201 is between 90° and 270°.
[0112] This invention, when the air conditioner is in heating mode, determines a third and fourth target speed based on a preset speed, and controls the blades of the cross-flow fan and the supplementary air fan to rotate clockwise. The angle between the direction of the air blown out by the supplementary air fan and the vertically downward direction is controlled to be less than 90°. The blade speed of the cross-flow fan is controlled to execute the preset speed, the blade speed of the supplementary air fan is controlled to execute the third target speed, and the rotation speed of the supplementary air fan around the inner diameter of the corresponding air outlet is controlled to execute the fourth target speed. The third target speed is less than the first target speed. This improves the air delivery effect of the air conditioner in heating mode, reduces the noise of the air conditioner, and prevents the user from feeling that the air conditioner is blowing cool air by controlling the downward blowing of hot air and shortening the blowing distance in heating mode. It also allows the less dense hot air to naturally flow upward, thereby improving the heating effect of the air conditioner and enhancing the user's perception.
[0113] Based on the above embodiments, the air supply device in the air conditioner is controlled based on the operating mode and the preset speed, including: when the air conditioner is in the air supply mode, determining the fifth target speed and the sixth target speed based on the preset speed.
[0114] Specifically, after obtaining the operating mode of the air conditioner, if the operating mode of the air conditioner is the air supply mode, the fifth target speed H5 and the sixth target speed H6 can be determined by numerical calculation based on the preset speed H.
[0115] Optionally, the fifth target speed H5 can be the product of the preset speed H and the fifth preset value x5, i.e., H5 = H × x5. The value of the fifth preset value x5 can be between 1 and 1 / 3, for example, the fifth preset value x5 can be 1, 1 / 2 or 1 / 3.
[0116] Preferably, the fifth preset value x5 can be 1 / 2, that is, H5 = H × 1 / 2.
[0117] Optionally, the sixth target speed H6 can be the product of the preset speed H and the sixth preset value x6, i.e., H6 = H × x6. The value of the sixth preset value x6 can be between 1 / 11 and 1 / 9, for example, the sixth preset value x6 can be 1 / 11, 1 / 10 or 1 / 9.
[0118] Preferably, the sixth preset value x6 can be 1 / 10, that is, H6 = H × 1 / 10.
[0119] Control the blades of the cross-flow fan and the air supply fan to rotate clockwise, control the angle between the direction of the air blown out by the air supply fan and the vertical downward direction to be less than 90°, control the speed of the cross-flow fan blades to execute the preset speed, control the speed of the air supply fan blades to execute the fifth target speed, and control the speed of the air supply fan rotating around the inner diameter of the corresponding air outlet to execute the sixth target speed.
[0120] The fifth target rotational speed is greater than the first target rotational speed.
[0121] Specifically, in order to improve the air supply effect of the air conditioner in the air supply mode and reduce the noise of the air conditioner, when the air conditioner is in the air supply mode, the blades of the cross-flow fan 401 and the blades of the supplementary air fan 201 can be controlled to rotate clockwise, and the speed of the blades of the cross-flow fan 401 can be controlled to execute the preset speed H, the speed of the blades of the supplementary air fan 201 can be controlled to execute the fifth target speed H5, and the speed of the supplementary air fan 201 rotating around the inner diameter of the corresponding air outlet 204 can be controlled to execute the sixth target speed H6.
[0122] It should be noted that, in order to improve the long-distance air delivery capability of the air conditioner in the air delivery mode, in this embodiment of the invention, when the air conditioner is in the air delivery mode, the rotation angle of the supplementary air fan 201 relative to the first rotation axis can be controlled within (90°, 270°), that is, the angle between the direction of the air blown out by the supplementary air fan 201 and the vertical downward direction is controlled to be less than 90°, and the fifth target speed H5 is greater than the first target speed H1. This allows the air conditioner to blow natural wind downwards to the reference horizontal plane in the air delivery mode, and by controlling the fan speed of the supplementary air fan 201 to execute the fifth target speed H5 (the fifth target speed H5 is greater than the first target speed H1), the air delivery distance of the air conditioner is increased compared to the air conditioner in the cooling and heating modes.
[0123] like Figures 5 to 8 As shown, when the air conditioner is in the air supply mode, the blowing angle of the air supply fan 201 is between 90° and 270°.
[0124] This invention, when the air conditioner is in ventilation mode, determines a fifth and sixth target speed based on a preset speed, and controls the blades of the cross-flow fan and the supplementary air fan to rotate clockwise. The angle between the direction of the air blown out by the supplementary air fan and the vertically downward direction is controlled to be less than 90°. The blade speed of the cross-flow fan is controlled to the preset speed, the blade speed of the supplementary air fan is controlled to the fifth target speed, and the rotation speed of the supplementary air fan around the inner diameter of the corresponding air outlet is controlled to the sixth target speed. The fifth target speed is greater than the first target speed. This improves the air delivery effect of the air conditioner in ventilation mode, reduces the noise of the air conditioner, and further increases indoor air circulation by controlling the air conditioner to blow natural air downwards and increasing the air blowing distance in ventilation mode, thus improving user experience.
[0125] Based on the above embodiments, the air supply device in the air conditioner is controlled based on the operating mode and the preset speed, including: when the operating mode of the air conditioner is the target mode, determining the seventh target speed and the eighth target speed based on the preset speed; wherein, the target mode includes: defrosting mode or self-cleaning mode.
[0126] Specifically, after obtaining the operating mode of the air conditioner, if the operating mode of the air conditioner is defrosting mode or self-cleaning mode, the seventh target speed H7 and the eighth target speed H8 can be determined by numerical calculation based on the preset speed H.
[0127] Optionally, the seventh target speed H7 can be the product of the preset speed H and the seventh preset value x7, i.e., H7 = H × x7. The value of the seventh preset value x7 can be between 1 / 3 and 1 / 2, for example, the seventh preset value x7 can be 1 / 3, 1 / 4 or 1 / 2.
[0128] Preferably, the seventh preset value x7 can be 1 / 4, that is, H7 = H × 1 / 4.
[0129] Optionally, the eighth target speed H8 can be the product of the preset speed H and the eighth preset value x8, i.e., H8 = H × x8. The value of the eighth preset value x8 can be between 1 / 11 and 1 / 9, for example, the eighth preset value x8 can be 1 / 11, 1 / 10 or 1 / 9.
[0130] Preferably, the value of the eighth preset value x8 can be 1 / 10, that is, H8 = H × 1 / 10.
[0131] Control the blades of the cross-flow fan and the air supply fan to rotate counterclockwise, control the angle between the direction of the air blown out by the air supply fan and the vertical upward direction to be less than 90°, control the speed of the cross-flow fan blades to execute the preset speed, control the speed of the air supply fan blades to execute the seventh target speed, and control the speed of the air supply fan rotating around the inner diameter of the corresponding air outlet to execute the eighth target speed.
[0132] Specifically, in order not to affect the performance of the air conditioner in the target mode and to reduce the noise of the air conditioner, when the air conditioner is in the target mode, the blades of the cross-flow fan 401 and the blades of the supplementary air fan 201 can be controlled to rotate counterclockwise, and the speed of the blades of the cross-flow fan 401 can be controlled to execute the preset speed H, the speed of the blades of the supplementary air fan 201 can be controlled to execute the seventh target speed H7, and the speed of the supplementary air fan 201 rotating around the inner diameter of the corresponding air outlet 204 can be controlled to execute the eighth target speed H8.
[0133] It should be noted that, in order to avoid affecting the performance of the air conditioner in the target mode, in this embodiment of the invention, when the air conditioner is in the target mode, the rotation angle of the air supply fan 201 relative to the first rotation axis can be controlled within [0°, 90°] and within [270°, 360°]. That is, the angle between the direction of the cross-flow fan 401 and the air supply fan 201 inhaling the gas and the vertical upward direction can be controlled to be less than 90°, so that the air conditioner can inhale gas from above the reference horizontal plane in the target mode.
[0134] like Figures 5 to 8 As shown, when the air conditioner is in target mode, the angle at which the supplementary air fan 201 draws in air is between 0° and 90° and between 270° and 0°.
[0135] This invention improves the air intake effect of the air conditioner in target mode by determining a seventh and eighth target speed based on a preset speed when the air conditioner is in target mode, controlling the blades of the cross-flow fan and the air supply fan to rotate counterclockwise, controlling the angle between the direction of the air supply fan blowing out gas and the vertical upward direction to be less than 90°, controlling the blade speed of the cross-flow fan to execute the preset speed, controlling the blade speed of the air supply fan to execute the seventh target speed, and controlling the speed of the air supply fan rotating around the inner diameter of the corresponding air outlet to execute the eighth target speed. This can improve the air intake effect of the air conditioner in target mode, control the air conditioner to draw in gas from above the reference horizontal plane, avoid affecting the use effect of the air conditioner in target mode, and reduce the noise of the air conditioner.
[0136] Based on the above embodiments, the rotation of each supplementary air fan 201 around the inner diameter of each air outlet 204 is synchronized.
[0137] In this embodiment of the invention, the air supply fans rotate synchronously, which can further increase the air outlet range and air blowing distance of the air conditioner without increasing the feeling of air blowing on the human body, thereby improving the heat exchange efficiency of the air conditioner and enhancing the user experience.
[0138] Figure 9 This is a structural schematic diagram of the control device for the air conditioner provided by the present invention. The following is in conjunction with… Figure 9 The control device for an air conditioner provided by this invention will be described below. The control device described below can be referred to in correspondence with the control method for an air conditioner provided by this invention described above. For example... Figure 9 As shown, the device includes a data acquisition module 901 and an air supply control module 902.
[0139] The data acquisition module 901 is used to acquire the operating mode of the air conditioner when it is turned on.
[0140] The air supply control module 902 is used to control the air supply device in the air conditioner based on the operating mode and preset speed.
[0141] The air conditioner includes a first number of air outlets; the air supply device includes a cross-flow fan and a first number of supplementary air fans; the first number is not less than 2; the supplementary air fans and the air outlets have a one-to-one correspondence; the supplementary air fans can rotate around the inner diameter of the corresponding air outlet.
[0142] Specifically, the data acquisition module 901 and the air supply control module 902 are electrically connected.
[0143] When the air conditioner is started, the data acquisition module 901 can obtain the operating mode of the air conditioner in a variety of ways. For example, it can obtain the operating mode of the air conditioner by detecting the control commands received by the air conditioner's controller.
[0144] The air supply control module 902 controls the rotation direction of the cross-flow fan blades, the speed of the cross-flow fan blades, the direction of the air blown out or drawn in by the supplementary air fan, the rotation direction of the supplementary air fan blades, the speed of the supplementary air fan blades, and the speed at which the supplementary air fan rotates along the inner diameter of the air outlet, based on the air conditioner's operating mode and preset speed.
[0145] Optionally, the air supply control module 902 can be specifically used to determine a first target speed and a second target speed based on a preset speed when the air conditioner is in cooling mode; control the blades of the cross-flow fan and the air supply fan to rotate clockwise, control the angle between the direction of the air blown out by the air supply fan and the vertical upward direction to be less than 90°, control the speed of the cross-flow fan blades to execute the preset speed, control the speed of the air supply fan blades to execute the first target speed, and control the speed of the air supply fan rotating around the inner diameter of the corresponding air outlet to execute the second target speed.
[0146] Optionally, the air supply control module 902 can also be specifically used to determine a third target speed and a fourth target speed based on a preset speed when the air conditioner is in heating mode; control the blades of the cross-flow fan and the air supply fan to rotate clockwise, control the angle between the direction of the air blown out by the air supply fan and the vertical downward direction to be less than 90°, control the speed of the cross-flow fan blades to execute the preset speed, control the speed of the air supply fan blades to execute the third target speed, and control the speed of the air supply fan rotating around the inner diameter of the corresponding air outlet to execute the fourth target speed.
[0147] Optionally, the air supply control module 902 can also be specifically used to determine a fifth target speed and a sixth target speed based on a preset speed when the air conditioner is in the air supply mode; control the blades of the cross-flow fan and the air supply fan to rotate clockwise, control the angle between the direction of the air blown out by the air supply fan and the vertical downward direction to be less than 90°, control the blade speed of the cross-flow fan to execute the preset speed, control the blade speed of the air supply fan to execute the fifth target speed, and control the speed at which the air supply fan rotates around the inner diameter of the corresponding air outlet to execute the sixth target speed; wherein, the fifth target speed is greater than the first target speed.
[0148] Optionally, the air supply control module 902 can also be specifically used to determine a seventh target speed and an eighth target speed based on a preset speed when the air conditioner is in the target mode; control the blades of the cross-flow fan and the air supply fan to rotate counterclockwise, control the angle between the direction of the air blown out by the air supply fan and the vertical upward direction to be less than 90°, control the speed of the cross-flow fan blades to execute the preset speed, control the speed of the air supply fan blades to execute the seventh target speed, and control the speed of the air supply fan rotating around the inner diameter of the corresponding air outlet to execute the eighth target speed; wherein, the target mode includes: defrosting mode or self-cleaning mode.
[0149] The control device of the air conditioner in this embodiment of the invention controls the air supply device in the air conditioner based on the air conditioner's operating mode and preset speed. The air supply device includes a cross-flow fan and multiple air supply fans. The air conditioner includes multiple air outlets. The air supply fans can rotate around the inner diameter of the corresponding air outlets. This can increase the air outlet range and air supply distance of the air conditioner without increasing the feeling of airflow on the human body. It can improve the heat exchange efficiency of the air conditioner, improve the air conditioner's efficiency in regulating indoor ambient temperature, and improve the user's perception.
[0150] Based on the above embodiments, an air conditioner includes: an air conditioner body and an air conditioner control processor; the air conditioner control processor is connected to the air conditioner body; it also includes a memory and a program or instructions stored in the memory and executable on the air conditioner control processor, wherein when the program or instructions are executed by the air conditioner control processor, the air conditioner control method as described above is performed.
[0151] It should be noted that the air conditioner body is equivalent to the air conditioner in the above embodiments. For the specific structure of the air conditioner body, please refer to... Figures 2 to 8 .
[0152] The control process of the air conditioner's control processor over the air conditioner body can be found in any of the above embodiments, and will not be repeated in this embodiment.
[0153] The air conditioner in this embodiment of the invention includes an air conditioner body and an air conditioner control processor. The air conditioner control device controls the air supply device in the air conditioner body based on the operating mode and preset speed of the air conditioner body. The air supply device includes a cross-flow fan and multiple air supply fans. The air conditioner body includes multiple air outlets. The air supply fans can rotate around the inner diameter of the corresponding air outlets. This can increase the air outlet range and air supply distance of the air conditioner body without increasing the feeling of air blowing on the human body. It can improve the heat exchange efficiency of the air conditioner body, improve the air conditioner's efficiency in regulating indoor ambient temperature, and improve the user's perception.
[0154] Based on the above embodiments, the air conditioner body includes: an air supply device and a first number of air outlets; the air supply device includes a cross-flow fan and a first number of supplementary air fans; the first number is not less than 2; the supplementary air fans and the air outlets have a one-to-one correspondence; the supplementary air fans can rotate around the inner diameter of the corresponding air outlets.
[0155] It should be noted that the air conditioner body in this embodiment is equivalent to the air conditioner in the above embodiments. For the specific structure of the air conditioner body, please refer to... Figures 2 to 8 The contents of the above embodiments will not be repeated in the embodiments of the present invention.
[0156] The air conditioner in this embodiment of the invention can increase the air blowing distance of the air conditioner body by using a cross-flow fan, and can increase the air outlet range of the air conditioner body by using multiple rotatable supplementary air fans, thereby increasing the air outlet range and air blowing distance of the air conditioner body without increasing the feeling of air blowing on the human body.
[0157] The air conditioner body also includes: a first number of first stepper motors and a first number of ring gear mechanisms; the air outlet, the first stepper motor and the ring gear mechanism have a one-to-one correspondence.
[0158] The ring gear mechanism is set along the inner diameter of the corresponding air outlet, the air supply fan corresponding to the air outlet is connected to the ring gear mechanism, and the first stepper motor is connected to the ring gear mechanism for transmission.
[0159] The air conditioner in this embodiment of the invention drives the air supply fan to rotate along the inner diameter of the air outlet through a ring gear mechanism and a first stepper motor. It has a simple structure and accurate operation.
[0160] Based on the above embodiments, the air supply fan also includes: a rotary motor, fan blades, and a filter screen;
[0161] The rotary motor is connected to the fan blade drive. The fan blade rotates around the second rotation axis under the drive of the rotary motor. The second rotation axis is the central axis of the air supply fan and is perpendicular to the plane where the air supply fan is located. The filter screen is set on the side of the fan blade closest to the indoor space. The rotary motor, fan blade and filter screen are designed as an integrated unit.
[0162] Specifically, the supplemental air fan 201 may include an integrated filter, fan blades, and rotating motor.
[0163] The rotary motor can drive the fan blades to rotate clockwise or counterclockwise. A filter is located on the outside of the fan blades and is used to filter the air blown out by the fan or the air drawn in. The outside of the fan blades refers to the side closest to the indoor space.
[0164] The supplementary air fan in this embodiment of the invention includes an integrated rotary motor, fan blades, and filter screen. It has a simple structure and can filter particulate matter in the air blown out and drawn in by the air conditioner, thereby improving the user experience.
[0165] Figure 10 An example is a schematic diagram of the physical structure of an electronic device, such as... Figure 10 As shown, the electronic device may include: a processor 1010, a communication interface 1020, a memory 1030, and a communication bus 1040, wherein the processor 1010, the communication interface 1020, and the memory 1030 communicate with each other through the communication bus 1040. The processor 1010 can call logical instructions in the memory 1030 to execute a control method for the air conditioner. The method includes: when the air conditioner is started, obtaining the operating mode of the air conditioner; controlling the air supply device in the air conditioner based on the operating mode and a preset speed; wherein the air conditioner includes a first number of air outlets; the air supply device includes a cross-flow fan and a first number of supplementary air fans; the first number is not less than 2; the supplementary air fans have a one-to-one correspondence with the air outlets; the supplementary air fans can rotate around the inner diameter of the corresponding air outlet.
[0166] Furthermore, the logical instructions in the aforementioned memory 1030 can be implemented as software functional units and, when sold or used as independent products, can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the present invention, or the part that contributes to the prior art, or a part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of the present invention. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.
[0167] On the other hand, the present invention also provides a computer program product, which includes a computer program that can be stored on a non-transitory computer-readable storage medium. When the computer program is executed by a processor, the computer can execute the control method for an air conditioner provided by the above methods. The method includes: when the air conditioner is started, acquiring the operating mode of the air conditioner; controlling the air supply device in the air conditioner based on the operating mode and a preset speed; wherein the air conditioner includes a first number of air outlets; the air supply device includes a cross-flow fan and a first number of supplementary air fans; the first number is not less than 2; the supplementary air fans have a one-to-one correspondence with the air outlets; and the supplementary air fans can rotate around the inner diameter of the corresponding air outlets.
[0168] In another aspect, the present invention also provides a non-transitory computer-readable storage medium storing a computer program thereon, which, when executed by a processor, implements the control method for an air conditioner provided by the above methods. The method includes: when the air conditioner is started, acquiring the operating mode of the air conditioner; controlling the air supply device in the air conditioner based on the operating mode and a preset speed; wherein the air conditioner includes a first number of air outlets; the air supply device includes a cross-flow fan and a first number of supplementary air fans; the first number is not less than 2; the supplementary air fans have a one-to-one correspondence with the air outlets; and the supplementary air fans can rotate around the inner diameter of the corresponding air outlets.
[0169] The device embodiments described above are merely illustrative. The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the modules can be selected to achieve the purpose of this embodiment according to actual needs. Those skilled in the art can understand and implement this without any creative effort.
[0170] Through the above description of the embodiments, those skilled in the art can clearly understand that each embodiment can be implemented by means of software plus necessary general-purpose hardware platforms, and of course, it can also be implemented by hardware. Based on this understanding, the above technical solutions, in essence or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product can be stored in a computer-readable storage medium, such as ROM / RAM, magnetic disk, optical disk, etc., and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute the methods described in the various embodiments or some parts of the embodiments.
[0171] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and not to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features; and these modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. A control method of an air conditioner, characterized by, The application relates to an air conditioner and a control method thereof. In the case that the air conditioner is started, the operation mode of the air conditioner is acquired; Based on the operation mode and a preset rotating speed, the air supply device in the air conditioner is controlled; The air conditioner comprises a first number of blowing ports; the air supply device comprises a cross-flow fan and the first number of air supplement fans; the first number is not less than 2; the air supplement fan has a one-to-one correspondence with the blowing port; the air supplement fan can rotate around the inner diameter of the corresponding blowing port; each blowing port is arranged on the surface of the shell of the air conditioner; an annular gear mechanism is arranged in the shell along the inner diameter of the blowing port; the air supplement fan is connected with the annular gear mechanism through a support structure, and the support structure and the air supplement fan are driven to rotate along the inner diameter of the blowing port by the annular gear mechanism; The control of the air supply device in the air conditioner based on the operation mode and the preset rotating speed comprises: In the case that the operation mode of the air conditioner is a cooling mode, first target rotating speed and second target rotating speed are determined based on the preset rotating speed; The blades of the cross-flow fan and the air supplement fan are controlled to rotate in the clockwise direction, the angle between the direction of air blown out by the air supplement fan and the vertical upward direction is controlled to be less than 90 DEG, the rotating speed of the blades of the cross-flow fan is controlled to be the preset rotating speed, the rotating speed of the blades of the air supplement fan is controlled to be the first target rotating speed, and the rotating speed of the air supplement fan around the inner diameter of the corresponding blowing port is controlled to be the second target rotating speed.
2. The control method of the air conditioner according to claim 1, characterized by, The control of the air supply device in the air conditioner based on the operation mode and the preset rotating speed comprises: In the case that the operation mode of the air conditioner is a heating mode, third target rotating speed and fourth target rotating speed are determined based on the preset rotating speed; The blades of the cross-flow fan and the air supplement fan are controlled to rotate in the clockwise direction, the angle between the direction of air blown out by the air supplement fan and the vertical downward direction is controlled to be less than 90 DEG, the rotating speed of the blades of the cross-flow fan is controlled to be the preset rotating speed, the rotating speed of the blades of the air supplement fan is controlled to be the third target rotating speed, and the rotating speed of the air supplement fan around the inner diameter of the corresponding blowing port is controlled to be the fourth target rotating speed; The third target rotating speed is less than the first target rotating speed.
3. The control method of the air conditioner according to claim 1, wherein The control of the air supply device in the air conditioner based on the operation mode and the preset rotating speed comprises: In the case that the operation mode of the air conditioner is a blowing mode, fifth target rotating speed and sixth target rotating speed are determined based on the preset rotating speed; The blades of the cross-flow fan and the air supplement fan are controlled to rotate in the clockwise direction, the angle between the direction of air blown out by the air supplement fan and the vertical downward direction is controlled to be less than 90 DEG, the rotating speed of the blades of the cross-flow fan is controlled to be the preset rotating speed, the rotating speed of the blades of the air supplement fan is controlled to be the fifth target rotating speed, and the rotating speed of the air supplement fan around the inner diameter of the corresponding blowing port is controlled to be the sixth target rotating speed; The fifth target rotating speed is greater than the first target rotating speed.
4. The control method of the air conditioner according to claim 1, wherein The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. In a case where the operation mode of the air conditioner is a target mode, seventh and eighth target rotating speeds are determined based on the preset rotating speed. The fan blades of the through-flow fan and the air supplementing fans rotate in a counterclockwise direction, the angle between the direction in which the air supplementing fans blow out air and the vertical upward direction is less than 90°, the rotating speed of the fan blades of the through-flow fan is the preset rotating speed, the rotating speed of the fan blades of the air supplementing fans is the seventh target rotating speed, and the rotating speed of the air supplementing fans around the inner diameter of the corresponding blowout opening is the eighth target rotating speed. The target mode comprises a defrosting mode or a self-cleaning mode.
5. The control method of an air conditioner according to any one of claims 1 to 4, characterized by, The rotating of the air supplementing fans around the inner diameter of the blowout openings is synchronous.
6. A control device for an air conditioner, characterized by comprising: The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans.
7. An air conditioner characterized by comprising: The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number of air supplementing fans. The air conditioner comprises a first number of blowout openings, a through-flow fan and a first number 8. The air conditioner of claim 7, wherein The air conditioner body comprises: a blowing device and a first number of blowing ports; the blowing device comprises a cross-flow fan and the first number of air supplementing fans; the first number is not less than 2; the air supplementing fans have a one-to-one correspondence with the blowing ports; the air supplementing fans can rotate around the inner diameter of the corresponding blowing ports.
9. The air conditioner of claim 8, wherein The air conditioner body further comprises: the first number of first stepping motors and the first number of ring gear mechanisms; the blowing ports, the stepping motors and the ring gear mechanisms have a one-to-one correspondence; The ring gear mechanisms are arranged along the inner diameter of the corresponding blowing ports, the air supplementing fans corresponding to the blowing ports are connected with the ring gear mechanisms, and the first stepping motors are in transmission connection with the ring gear mechanisms.
10. The air conditioner of claim 9, wherein The air supplementing fan further comprises: a rotating motor, a fan blade and a filter screen; The rotating motor is in transmission connection with the fan blade, the fan blade rotates around a second rotation axis under the driving of the rotating motor, the second rotation axis is the central axis of the air supplementing fan, and the second rotation axis is perpendicular to the plane where the air supplementing fan is located; The filter screen is arranged on the side of the fan blade close to the indoor space; The rotating motor, the fan blade and the filter screen are designed in an integrated manner.
11. An electronic device comprising a memory, a processor, and a computer program stored on the memory and executable on the processor, characterized in that, The processor executes the program to realize the control method of the air conditioner according to any one of claims 1 to 5.
12. A non-transitory computer-readable storage medium having stored thereon a computer program, characterized in that, The computer program is executed by the processor to realize the control method of the air conditioner according to any one of claims 1 to 5.
13. A computer program product comprising a computer program, characterized in that, The computer program is executed by the processor to realize the control method of the air conditioner according to any one of claims 1 to 5.
Citation Information
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