A control method, apparatus, device, and storage medium
By detecting user information in the environment of the air conditioning equipment, the system automatically adjusts the airflow mode, solving the discomfort caused by the single cooling mode of the air conditioning equipment, simplifying the mode adjustment process, and improving the level of intelligence.
Patent Information
- Application Number
- CN202110710864.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-06-25
- Publication Date
- 2025-11-04
- Estimated Expiration
- 2041-06-25
AI Technical Summary
Air conditioning equipment can only blow cold air in one direction when cooling or heating, which makes users feel uncomfortable when exposed to cold air for a long time. In addition, the process of adjusting the working mode is complicated and has a low level of intelligence.
By detecting the target user information in the current environment of the air conditioning equipment, the current air conditioning mode is determined, and the system automatically switches to the target air conditioning mode based on the target user information, including adjusting the movement of the front and lower obstruction modules to change the airflow direction and intensity.
It simplifies the process of adjusting the working mode of air conditioning equipment, improves the intelligence level of air conditioning equipment, and enhances the user experience.
Smart Images

Figure CN115523645B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the air conditioning technical field, and particularly relates to a control method, device, equipment and storage medium. BACKGROUND
[0002] At present, air conditioning equipment has the function of heating or cooling according to the needs of users, and is widely installed and applied in various application scenarios. With the wide application of air conditioning equipment, users have higher and higher requirements for air conditioning equipment. Especially when the air conditioning equipment is in cooling mode, the air conditioning equipment can only blow cold air in a single direction, which makes users feel uncomfortable when blowing cold air for a long time. In order to improve the user experience effect, the working mode of the air conditioning equipment is improved, and different feeling modes are provided in the working mode of the air conditioning equipment in cooling or heating mode.
[0003] However, at present, the working mode of the air conditioning equipment can only be adjusted by manually selecting a mode by the user, which leads to a relatively complex process of adjusting the working mode of the air conditioning equipment, and further causes a low degree of intelligence of the air conditioning equipment.
[0004] APPLICATION CONTENT
[0005] To solve the above technical problems, the embodiments of the present application expect to provide a control method, device, equipment and storage medium, which solve the problem that the operation of the working mode adjustment process of the air conditioning equipment is relatively complex, simplify the operation process of adjusting the working mode of the air conditioning equipment, and improve the degree of intelligence of the air conditioning equipment.
[0006] The technical scheme of the present application is realized as follows:
[0007] In a first aspect, a control method is provided, and the method comprises:
[0008] detecting target user information included in an environment in which an air conditioning equipment is currently located;
[0009] determining a current wind feeling mode of the air conditioning equipment;
[0010] determining a target wind feeling mode based on the target user information; wherein the target wind feeling mode belongs to at least two wind feeling modes corresponding to the air conditioning equipment in cooling or heating mode;
[0011] if the current wind feeling mode is not the target wind feeling mode, switching the wind feeling mode of the air conditioning equipment to the target wind feeling mode.
[0012] In a second aspect, a control device is provided, and the device comprises a detection unit, a determination unit and a control unit; wherein:
[0013] The detection unit is configured to detect target user information included in an environment in which the air conditioning device is currently located.
[0014] The determination unit is configured to determine a current air feeling mode of the air conditioning device.
[0015] The determination unit is further configured to determine a target air feeling mode based on the target user information, wherein the target air feeling mode is at least two air feeling modes corresponding to cooling or heating of the air conditioning device.
[0016] The control unit is configured to switch the air feeling mode of the air conditioning device to the target air feeling mode if the current air feeling mode is not the target air feeling mode.
[0017] In a third aspect, a control device is provided, and the control device comprises a processor, a memory and a communication bus, wherein:
[0018] The memory is configured to store executable instructions.
[0019] The communication bus is configured to realize communication connection between the processor and the memory.
[0020] The processor is configured to execute the control program stored in the memory to realize the steps of the control method according to any one of the preceding aspects.
[0021] In a fourth aspect, an air conditioning device is provided, and the air conditioning device comprises an indoor unit, an outdoor unit and the control device according to the preceding aspects.
[0022] In a fifth aspect, a storage medium is provided, and the storage medium stores a control program, and the control program is executed by a processor to realize the steps of the control method according to any one of the preceding aspects.
[0023] In the embodiments of the present application, target user information included in an environment in which an air conditioning device is currently located is detected, and a current air feeling mode of the air conditioning device is determined, then a target air feeling mode is determined based on the target user information, and the air feeling mode of the air conditioning device is switched to the target air feeling mode if the current air feeling mode is not the target air feeling mode. In this way, the air feeling mode of the air conditioning device is automatically switched according to user information, which solves the problem that the operation of the working mode adjustment process of the air conditioning device is relatively complex, simplifies the operation process of adjusting the working mode of the air conditioning device, and improves the intelligent degree of the air conditioning device. BRIEF DESCRIPTION OF DRAWINGS
[0024] Figure 1 A flowchart of a control method provided by the embodiments of the present application is shown;
[0025] Figure 2 A flowchart of another control method provided by the embodiments of the present application is shown.
[0026] Figure 3 Structure diagram of air conditioning equipment provided for the embodiment of the present application Figure 1 ;
[0027] Figure 4 Embodiment one of the control method provided for the embodiment of the present application
[0028] Figure 5 Structure diagram of air conditioning equipment provided for the embodiment of the present application Figure 1 ;
[0029] Figure 6 Embodiment two of the control method provided for the embodiment of the present application
[0030] Figure 7 Structure diagram of air conditioning equipment provided for the embodiment of the present application Figure 2 ;
[0031] Figure 8 Structure state diagram in two layers of the blocking column layer provided for the embodiment of the present application Figure 1 ;
[0032] Figure 9 Embodiment three of the control method provided for the embodiment of the present application
[0033] Figure 10 Structure state diagram in two layers of the blocking column layer provided for the embodiment of the present application Figure 2 ;
[0034] Figure 11 Embodiment four of the control method provided for the embodiment of the present application
[0035] Figure 12 Structure state diagram in two layers of the blocking column layer provided for the embodiment of the present application Figure 3 ;
[0036] Figure 13 Embodiment five of the control method provided for the embodiment of the present application
[0037] Figure 14 Structure state diagram in two layers of the blocking column layer provided for the embodiment of the present application Figure 4 ;
[0038] Figure 15 Structure diagram of a control device provided for the embodiment of the present application
[0039] Figure 16 Structure diagram of a control device provided for the embodiment of the present application
[0040] Figure 17Structure of air conditioning equipment Figure 2 . DETAILED DESCRIPTION
[0041] The technical solutions in the embodiments of the present application will be clearly and completely described in connection with the drawings in the embodiments of the present application.
[0042] An embodiment of the present application provides a control method, referring to Figure 1 The method is applied to control equipment, and the method comprises the following steps:
[0043] Step 101: detecting target user information included in an environment in which the air conditioning equipment is currently located.
[0044] In the embodiment of the present application, the control equipment detecting the target user information included in the environment in which the air conditioning equipment is currently located can be achieved by a user detection module having a communication connection with the control equipment. The user detection module can be equipment having a function of measuring the body temperature of a user, and further, the user detection module can also have a function of collecting the number of users.
[0045] Step 102: determining a current air feeling mode of the air conditioning equipment.
[0046] In the embodiment of the present application, the current air feeling mode refers to the feeling of the user to the air flow blown by the air conditioning equipment when the air conditioning equipment is cooling or heating, for example, whether the user can directly feel the air flow blown by the air conditioning equipment and the strength of the air flow felt.
[0047] Step 103: determining a target air feeling mode based on the target user information.
[0048] The target air feeling mode belongs to at least two air feeling modes corresponding to the air conditioning equipment when the air conditioning equipment is cooling or heating.
[0049] In the embodiment of the present application, different air feeling modes are set for different target user information.
[0050] Step 104: if the current air feeling mode is not the target air feeling mode, switching the air feeling mode of the air conditioning equipment to the target air feeling mode.
[0051] In the embodiment of the present application, if the current air feeling mode is the target air feeling mode, the air conditioning equipment does not need to be controlled to switch the air feeling mode. When it is detected that the current air feeling mode of the air conditioning equipment is not the target air feeling mode, the air feeling mode of the air conditioning equipment is automatically switched to the target air feeling mode, which simplifies the operation process in which the user needs to manually adjust the air feeling mode of the air conditioning equipment according to his own needs, and improves the use experience effect of the user.
[0052] In the embodiments of the present application, target user information included in the environment in which the air conditioning equipment is currently located is detected, and a current air feeling mode of the air conditioning equipment is determined, then a target air feeling mode is determined based on the target user information, and if the current air feeling mode is not the target air feeling mode, the air feeling mode of the air conditioning equipment is switched to the target air feeling mode. In this way, the air feeling mode of the air conditioning equipment is automatically switched according to the user information, solving the problem that the operation of the working mode adjustment process of the current air conditioning equipment is relatively complex, simplifying the operation process of adjusting the working mode of the air conditioning equipment, and improving the intelligent degree of the air conditioning equipment.
[0053] Based on the foregoing embodiments, the embodiments of the present application provide a control method, as shown in Figure 2 The method is applied to control equipment, and the method comprises the following steps:
[0054] Step 201, detecting target user information included in the environment in which the air conditioning equipment is currently located.
[0055] In the embodiments of the present application, the target user information at least includes user body surface temperature information, and in some application scenarios, the target user information can further include the number of users in addition to the user body surface temperature information.
[0056] Step 202, determining the target number of reference blocking column layers included in the front blocking module included in the air conditioning equipment.
[0057] In the embodiments of the present application, the front blocking module can be a rotating flow component, and the function of the front blocking component is to scatter the airflow of the air conditioning equipment, so that the user cannot intuitively feel the airflow after the airflow passes through the front blocking component. The blocking column layer is composed of a plurality of blocking columns. The material of the blocking column can be plastic or metal, and the shape curve is concave-convex. Adjacent two blocking columns are interlaced, similar to occlusion, but there is a gap between adjacent blocking columns. The airflow of the air conditioning equipment can pass through the gap between the blocking columns. When the airflow passes through the gap between the blocking columns, the airflow speed decreases and the airflow direction changes. The blocking column can be obtained by one-piece injection molding. Similarly, the blocking column layer can also be obtained by one-piece injection molding of a large number of blocking columns and a frame. The target number of reference blocking column layers can be set according to the product requirements of the air conditioning equipment, and can be one layer, two layers or multiple layers. It should be noted that the blocking columns in each blocking column layer can be rotated as required. In general, when the blocking columns in the same blocking column layer are rotated, the rotation direction and the rotation angle are the same. For example, when one blocking column in the same blocking column layer is rotated by 60 degrees, the other blocking columns in the same blocking column layer are also rotated by 60 degrees.
[0058] Step 203, determining the current air feeling mode of the air conditioning equipment.
[0059] Step 204, determining a target air feeling mode based on the target number of layers and the target user information.
[0060] The target air feeling mode belongs to at least two air feeling modes corresponding to air conditioning equipment cooling or heating.
[0061] In the embodiments of the present application, because the number of layers of the flow blocking column layer is different, the total number of air feeling modes that the air conditioning equipment can provide is also different. When the target user information is different, the target air feeling mode set is also different.
[0062] Step 205, if the current air feeling mode is not the target air feeling mode, switching the air feeling mode of the air conditioning equipment to the target air feeling mode.
[0063] Based on the foregoing embodiments, in other embodiments of the present application, the target user information at least includes user body surface temperature information, and step 204 can be implemented by step 204a, step 204b, step 204c, step 204d or step 204e:
[0064] Step 204a, if the target number of layers is greater than or equal to 2, and the user body surface temperature information is in a first temperature range, determining the target air feeling mode as a first air feeling mode.
[0065] In the embodiments of the present application, when there are multiple users, the user body surface temperature information can be the average of the body surface temperature information of multiple users, or can be the average of the body surface temperature information of a certain percentage of users when the body surface temperature information of the certain percentage of users exceeds a certain temperature threshold after analyzing the body surface temperature information of multiple users, or can be the highest body surface temperature information of multiple users, etc. The first temperature range refers to a range of high body surface temperature of the user, i.e. a range of body surface temperature of the user in a very hot state. The first air feeling mode is a mode in which the air flow blown out by the air conditioning equipment is not processed at all.
[0066] Step 204b, if the target number of layers is greater than or equal to 2, and the user body surface temperature information is in a second temperature range, determining the target air feeling mode as a second air feeling mode.
[0067] The minimum value in the first temperature range is greater than or equal to the maximum value in the second temperature range.
[0068] In the embodiments of the present application, the second temperature range refers to a range of body surface temperature of a human body with a high temperature, i.e. a range of body surface temperature of the user in a hot state. The second air feeling mode is a mode in which the air flow blown out by the air conditioning equipment is weakened once. In some cases, the user can still feel a weak air flow.
[0069] Step 204c, if the target layer number is greater than or equal to 2 and the user body surface temperature information is in the third temperature range, determining the target wind feeling mode as the third wind feeling mode.
[0070] The minimum value in the second temperature range is greater than or equal to the maximum value in the third temperature range.
[0071] In the embodiments of the present application, the third temperature range refers to a body surface temperature range in which the human body temperature is slightly high and the user is in a slightly hot state. The third wind feeling mode is a mode in which the air flow blown by the air conditioning equipment is weakened once and the direction is changed once. In some cases, the user can still feel weak air flow.
[0072] Step 204d, if the target layer number is greater than or equal to 2 and the user body surface temperature information is in the fourth temperature range, determining the target wind feeling mode as the fourth wind feeling mode.
[0073] The minimum value in the third temperature range is greater than or equal to the maximum value in the fourth temperature range.
[0074] In the embodiments of the present application, the fourth temperature range refers to a body surface temperature range in which the human body temperature is normal and the user is in a normal state without feeling hot. The fourth wind feeling mode is a mode in which the air flow blown by the air conditioning equipment is processed by at least two times of turning. In some cases, the user generally cannot feel the air flow.
[0075] Step 204e, if the target layer number is greater than or equal to 2 and the user body surface temperature information is in the fifth temperature range, determining the target wind feeling mode as the fifth wind feeling mode.
[0076] The minimum value in the fourth temperature range is greater than or equal to the maximum value in the fifth temperature range, and the at least two wind feeling modes include the first wind feeling mode, the second wind feeling mode, the third wind feeling mode, the fourth wind feeling mode and the fifth wind feeling mode.
[0077] In the embodiments of the present application, the fifth temperature range refers to a state in which the human body temperature is normal and slightly low, i.e., the user feels slightly cool. The fifth wind feeling mode is a mode in which the air flow blown by the air conditioning equipment is processed by at least two times of weakening. In some cases, the user cannot feel the wind feeling at all. It should be noted that the first temperature range to the fifth temperature range can be modified according to the actual needs of the user.
[0078] Based on the foregoing embodiments, in other embodiments of the present application, step 204 can also be implemented by step 204f, step 204g or step 204h:
[0079] Step 204f, if the target layer number is 1 and the user body surface temperature information is in the sixth temperature range, determining the target wind feeling mode as the first wind feeling mode.
[0080] In the embodiment of the present application, since the target layer number is 1, it indicates that the reference choke column layer only has one layer, and correspondingly, when the air flow blown by the air conditioning equipment passes through the reference choke column layer, the air flow of the air conditioning equipment can only be turned once or weakened once. Therefore, for the target layer number being 1, the mode number of the corresponding wind feeling mode is smaller than the mode number when the target layer number is more than 1. In some cases, the sixth temperature range can be the same as the first temperature range, or can be wider than the first temperature range, for example, the sixth temperature range includes the first temperature range and the second temperature range, etc.
[0081] Step 204g, if the target layer number is 1 and the user body surface temperature information is in the seventh temperature range, determining that the target wind feeling mode is the sixth wind feeling mode.
[0082] Wherein, the minimum value of the sixth temperature range is greater than or equal to the maximum value of the seventh temperature range.
[0083] In the embodiment of the present application, the seventh temperature range may, for example, include the third temperature range and the fourth temperature range.
[0084] Step 204h, if the target layer number is 1 and the user body surface temperature information is in the eighth temperature range, determining that the target wind feeling mode is the seventh wind feeling mode.
[0085] Wherein, the minimum value of the seventh temperature range is greater than or equal to the maximum value of the eighth temperature range.
[0086] In the embodiment of the present application, the eighth temperature range may, for example, include the fifth temperature range. It should be noted that the sixth temperature range, the seventh temperature range and the eighth temperature range can be modified according to the actual needs of the user.
[0087] Based on the foregoing embodiment, in other embodiments of the present application, step 205 can be implemented by steps 205a-205b:
[0088] Step 205a, if the current wind feeling mode is not the target wind feeling mode, based on the target wind feeling mode, generating a first control instruction for controlling the movement of the lower side choke module of the air conditioning equipment, and a second control instruction for controlling the movement of the front side choke module of the air conditioning equipment.
[0089] Wherein, by controlling the rotation of the lower side choke module relative to the air conditioning equipment, the air outlet of the air conditioning equipment is opened or closed, and by controlling the movement of the front side choke module to the target position, the air flow blown by the air outlet passes through the front side choke module and the air flow is diffused.
[0090] In the embodiments of the present application, the lower flow blocking module can be a deflector or a structural module that realizes the function of a deflector. The first control instruction and the second control instruction can be generated simultaneously or sequentially, and the specific determination can be made according to actual conditions, which is not limited here.
[0091] In step 205b, the lower flow blocking module and the front flow blocking module are controlled to move based on the first control instruction and the second control instruction, so as to switch the air feeling mode of the air conditioning equipment to the target air feeling mode.
[0092] In the embodiments of the present application, the control device controls the lower flow blocking module and the front flow blocking module to move in response to the first control instruction and the second control instruction, so as to switch the air feeling mode of the air conditioning equipment. It should be noted that the movement of the lower flow blocking module and the front flow blocking module can be realized by driving the moving components of the lower flow blocking module and the front flow blocking module.
[0093] Based on the foregoing embodiments, in other embodiments of the present application, when the target number of layers is greater than or equal to 2, step 205b can be realized by steps a11-a12, steps b11-b14, steps c11-c14, steps d11-d13 or steps e11-e13:
[0094] In step a11, if the target air feeling mode is the first air feeling mode, the lower flow blocking module is controlled to rotate to the first target angle in response to the first control instruction.
[0095] In the above step, when the lower flow blocking module rotates to the first target angle, the air outlet of the air conditioning equipment is controlled to be opened to the maximum.
[0096] In step a12, the front flow blocking module is controlled to be accommodated in the installation cavity in response to the second control instruction.
[0097] In the above step, the installation cavity is an accommodation space provided in the air conditioning equipment for accommodating the front flow blocking module.
[0098] In step b11, if the target air feeling mode is the second air feeling mode, the lower flow blocking module is controlled to rotate to the second target angle in response to the first control instruction, so that the first target end of the lower flow blocking module moves to the reference position of the air outlet.
[0099] In the embodiments of the present application, the second target angle is smaller than the first target angle.
[0100] In step b12, the front flow blocking module is controlled to extend out of the installation cavity until the second target end of the front flow blocking module extends to the reference position of the air outlet and overlaps with the first target end of the lower flow blocking module, so as to close the air outlet in response to the second control instruction.
[0101] The installation cavity is a receiving space provided in the air conditioning equipment for receiving the front side flow resistance module.
[0102] In the embodiments of the present application, steps b11 and b12 can be executed simultaneously, that is, the rotation speed of the lower side flow resistance module rotating to the second target angle and the speed of the second target end of the front side flow resistance module extending to the reference position of the air outlet can be relatively consistent, or after the lower side flow resistance module rotates for a certain length of time, the front side flow resistance module also starts to move while continuing to rotate, realizing the visual effect of synchronous movement. The certain length of time of the rotation of the lower side flow resistance module can be determined according to the interference situation when the lower side flow resistance module and the front side flow resistance module move, so that the movement of the two can be ensured without interference.
[0103] Step b13, control the flow resistance columns in the first flow resistance column layer in the front side flow resistance module to be in a closed state, so that the airflow of the air conditioning equipment blows out from the gaps of the flow resistance columns in the first flow resistance column layer.
[0104] The first flow resistance column layer is a reference flow resistance column layer close to the lower side flow resistance module in the target number of flow resistance column layers.
[0105] In the embodiments of the present application, when the flow resistance columns in the first flow resistance column layer are in a closed state, the flow resistance columns in the first flow resistance column layer are in a plane, and at this time, when the airflow of the air conditioning equipment blows out from the gaps of the flow resistance columns in the first flow resistance column layer, the airflow blown out by the air conditioning equipment will be obviously weakened.
[0106] Step b14, control the flow resistance columns in the reference flow resistance column layers other than the first flow resistance column layer in the target number of flow resistance column layers to rotate by a first preset angle.
[0107] In the embodiments of the present application, the first preset angle can be an empirical value obtained from a large number of experiments, which is not limited here. In this way, the direction of the airflow blown out by the air conditioning equipment will change.
[0108] Step c11, if the target wind feeling mode is the third wind feeling mode, in response to the first control instruction, the lower side flow resistance module is controlled to rotate to the second target angle, so that the first target end of the lower side flow resistance module moves to the reference position of the air outlet.
[0109] Step c12, in response to the second control instruction, the front side flow resistance module is controlled to extend from the installation cavity until the second target end of the front side flow resistance module extends to the reference position of the air outlet and is overlapped with the first target end of the lower side flow resistance module, realizing the closure of the air outlet.
[0110] The installation cavity is a receiving space provided in the air conditioning equipment for receiving the front side flow resistance module.
[0111] Step c13, control the baffle columns in the second baffle column layer in the front side baffle module to be in the closed state, so that the air flow of the air conditioning equipment blows out from the gaps of the baffle columns in the second baffle column layer.
[0112] The second baffle column layer is a reference baffle column layer farthest from the lower side baffle module in the target number of layers of reference baffle column layers.
[0113] Step c14, control the baffle columns in the reference baffle column layers other than the second baffle column layer in the target number of layers of reference baffle column layers to rotate by a second preset angle.
[0114] In the embodiments of the present application, the second preset angle is an empirical value of a rotation angle obtained according to a large number of experiments, which can be the same as the first preset angle or different from the first preset angle, and is determined by the actual situation.
[0115] Step d11, if the target wind feeling mode is the fourth wind feeling mode, in response to the first control instruction, the lower side baffle module is controlled to rotate to a second target angle, so that the first target end of the lower side baffle module moves to the reference position of the air outlet.
[0116] Step d12, in response to the second control instruction, the front side baffle module is controlled to extend out of the mounting cavity until the second target end of the front side baffle module extends to the reference position of the air outlet and overlaps with the first target end of the lower side baffle module, thereby closing the air outlet.
[0117] The mounting cavity is a receiving space provided in the air conditioning equipment for receiving the front side baffle module.
[0118] Step d13, when the target number of layers of reference baffle column layers are numbered in sequence, the baffle columns in the reference baffle column layers numbered with odd numbers rotate by a third preset angle, and the baffle columns in the reference baffle column layers numbered with even numbers rotate by a fourth preset angle.
[0119] The minimum included angle between the two adjacent reference baffle column layers in the target number of layers of reference baffle column layers after rotation is greater than 0 degrees and less than 180 degrees.
[0120] In the embodiments of the present application, the rotation directions and rotation angles of the baffle columns in every two adjacent reference baffle column layers are different, thereby achieving at least two changes in the flow direction of the air flow of the air conditioning equipment. The third preset angle and the fourth preset angle are empirical values of rotation angles obtained according to a large number of experiments, which can effectively change the air flow direction of the air conditioning equipment.
[0121] Step e11, if the target wind feeling mode is the fifth wind feeling mode, in response to the first control instruction, the lower side baffle module is controlled to rotate to a second target angle, so that the first target end of the lower side baffle module moves to the reference position of the air outlet.
[0122] Step e12, in response to the second control instruction, control the front side blocking flow module to extend from the installation cavity until the second target end of the front side blocking flow module extends to the reference position of the air outlet, overlaps with the first target end of the lower side blocking flow module, and realizes closing the air outlet.
[0123] The installation cavity is a receiving space provided in the air conditioning equipment for receiving the front side blocking flow module.
[0124] Step e13, control the blocking flow column in each of the target number of reference blocking flow column layers to be in a closed state, so that the air flow of the air conditioning equipment blows out from the gap of the blocking flow column of each reference blocking flow column layer.
[0125] It should be noted that the first preset angle, the second preset angle, the third preset angle and the fourth preset angle can also be set and adjusted by the user.
[0126] Based on the foregoing embodiments, in other embodiments of the present application, when the target number of layers is 1, step 205b can be implemented by steps f11-f13 or steps g11-g13:
[0127] Step f11, if the target wind feeling mode is the sixth wind feeling mode, in response to the first control instruction, control the lower side blocking flow module to rotate to the second target angle, so that the first target end of the lower side blocking flow module moves to the reference position of the air outlet.
[0128] Step f12, in response to the second control instruction, control the front side blocking flow module to extend from the installation cavity until the second target end of the front side blocking flow module extends to the reference position of the air outlet, overlaps with the first target end of the lower side blocking flow module, and realizes closing the air outlet.
[0129] The installation cavity is a receiving space provided in the air conditioning equipment for receiving the front side blocking flow module.
[0130] Step f13, control the blocking flow column in the reference blocking flow column layer to rotate by a fifth preset angle.
[0131] In the embodiments of the present application, the fifth preset angle can be an empirical value of a rotation angle obtained according to a large number of experiments.
[0132] Step g11, if the target wind feeling mode is the seventh wind feeling mode, in response to the first control instruction, control the lower side blocking flow module to rotate to the second target angle, so that the first target end of the lower side blocking flow module moves to the reference position of the air outlet.
[0133] Step g12, in response to the second control instruction, control the front side blocking flow module to extend from the installation cavity until the second target end of the front side blocking flow module extends to the reference position of the air outlet, overlaps with the first target end of the lower side blocking flow module, and realizes closing the air outlet.
[0134] The installation cavity is a receiving space provided in the air conditioning device for receiving the front flow resistance module.
[0135] In step g13, the flow resistance columns in the reference flow resistance column layer are controlled to be in the closed state, so that the air flow of the air conditioning device is blown out from the gaps of the flow resistance columns of the reference flow resistance column layer.
[0136] Based on the foregoing embodiments, in other embodiments of the present application, step 205 can also be implemented by steps h11-h12, wherein:
[0137] In step h11, if the user body surface temperature information is in the ninth temperature range, a shutdown instruction is generated.
[0138] In the embodiments of the present application, the ninth temperature range indicates that the user body surface temperature is significantly lower than the normal body temperature, that is, the user feels cold, and the shutdown instruction is generated.
[0139] In step h12, in response to the shutdown instruction, the air conditioning device is controlled to enter a shutdown state.
[0140] For example, the embodiments of the present application provide an air conditioning device, wherein the front view of the whole machine of the air conditioning device can refer to Figure 3 , which includes an air inlet 31, an air conditioning main body 32, a front flow resistance module 33, and a lower flow resistance module 34, wherein Figure 3 The arrowed curve shown in the figure indicates the flow direction of the air flow of the air conditioning device.
[0141] Suppose that the front flow resistance module of the air conditioning device includes two layers of flow resistance column layers, and the air conditioning device is currently working in a cooling mode, the temperature measuring device such as an infrared body temperature sensor can be used to detect the user's body temperature information, and when it is determined that the body temperature information is in the first temperature range, the target wind feeling mode is determined to be the first wind feeling mode, wherein the first wind feeling mode can be defined as a cold wind direct blowing mode, and the control device controls Figure 3 The control operation process of the air conditioning device shown in Figure 4 , which includes the following steps: step 41, determining the cold wind direct blowing mode; step 42, controlling the front flow resistance module to hide in the installation cavity between the panel and the face frame of the air conditioning main body, and controlling the lower flow resistance module to rotate to the maximum angle; wherein the maximum angle is the aforementioned first target angle; step 43, controlling the air wheel of the air conditioning device to rotate; step 44, controlling the compressor of the air conditioning device to work in the cooling mode, so that the refrigerant flows into the heat exchanger, realizing the cold wind direct blowing mode. When steps 41-42 are executed, steps 43 and 44 are not stopped.
[0142] Wherein, in the corresponding cold wind direct blowing mode, the schematic diagram between the current front flow resistance module and the lower flow resistance module in the air conditioning device can refer to Figure 5The air conditioning unit, shown in the left sectional view, includes: a housing 321, an air inlet grille 322, a front airflow obstruction module 33, a lower airflow obstruction module 34, a heat exchanger 35, and a fan wheel 36. Among these, the housing 321 and the air inlet grille 322 belong to the main body 32 of the air conditioning unit. Figure 5 (Not shown in the image).
[0143] If the detected body temperature is within the second temperature range, the target wind sensing mode is determined to be the second wind sensing mode. Specifically, the second wind sensing mode can be defined as a natural cooling mode, and the control device will adjust accordingly. Figure 3 The control operation procedure for the air conditioning equipment shown can be referred to Figure 6 As shown, the process includes: Step 51, determining the natural cooling mode; Step 52, controlling the front obstruction module to slide downwards to completely cover the front air outlet, and controlling the lower obstruction module to rotate to a horizontal state so that the two overlap; Step 53, controlling the obstruction columns in the first obstruction column layer of the front obstruction module to be in a closed state, and controlling the obstruction columns in the second obstruction column layer to rotate a first preset angle; Step 54, controlling the fan wheel of the air conditioning unit to rotate; Step 55, controlling the compressor of the air conditioning unit to operate in cooling mode, allowing refrigerant to flow into the heat exchanger to achieve the natural cooling mode. Note that steps 54 and 55 do not stop operating while steps 51-53 are being executed.
[0144] Correspondingly, a schematic diagram of the current front and lower flow-blocking modules in the air conditioning equipment can be found by referring to... Figure 7 The air conditioning unit, shown in the left sectional view, includes: a housing 321, an air inlet grille 322, a front airflow obstruction module 33, a lower airflow obstruction module 34, a heat exchanger 35, and a fan wheel 36. Among these, the housing 321 and the air inlet grille 322 belong to the main body 32 of the air conditioning unit. Figure 7 (Not shown in the image). A schematic diagram illustrating the structural state after the control device controls and adjusts the two flow-blocking pillars (first flow-blocking pillar 331 and second flow-blocking pillar 332) in the front flow-blocking module 33 to enter the natural cooling mode can be found in [reference needed]. Figure 8 As shown, Figure 8 The arrows in the image indicate the direction of airflow transmission in the first baffle layer 331 and the second baffle layer 332 of the air conditioning unit. Figure 8 The diagram only shows two flow-blocking columns for the first and second flow-blocking columns.
[0145] If the detected body temperature falls within the third temperature range, the target wind sensing mode is determined to be the third wind sensing mode. Specifically, the third wind sensing mode can be defined as the turbulent cool air mode, and the control device will adjust accordingly. Figure 3 The control operation procedure for the air conditioning equipment shown can be referred to Figure 9As shown, the process includes: Step 61, determining the turbulent cold air mode; Step 62, controlling the front obstruction module to slide downwards to completely cover the front air outlet, and controlling the lower obstruction module to rotate to a horizontal state so that the two overlap; Step 63, controlling the obstruction column in the first obstruction column layer of the front obstruction module to rotate at a second preset angle, and the obstruction column in the second obstruction column layer to be in a closed state; Step 64, controlling the fan wheel of the air conditioning unit to rotate; Step 65, controlling the compressor of the air conditioning unit to operate in cooling mode, so that the refrigerant flows into the heat exchanger to achieve the turbulent cold air mode. During the execution of steps 61-63, steps 64 and 65 do not stop.
[0146] Correspondingly, the schematic diagram between the current front and lower flow-blocking modules in the air conditioning unit can be referred to the left sectional view of the air conditioning unit shown in Figure 7. The schematic diagram of the structural state after the control device controls and adjusts the two flow-blocking column layers (the first flow-blocking column layer 331 and the second flow-blocking column layer 332) in the front flow-blocking module 33 to enter the turbulent cooling air mode can be referred to... Figure 10 As shown, Figure 10 The arrows in the image indicate the direction of airflow transmission in the first baffle layer 331 and the second baffle layer 332 of the air conditioning unit. Figure 10 The diagram only shows two flow-blocking columns for the first and second flow-blocking columns.
[0147] If the detected body temperature falls within the fourth temperature range, the target wind mode is determined to be the fourth wind mode. Specifically, the fourth wind mode can be defined as a gentle, cool breeze mode, and the control device will adjust accordingly. Figure 3 The control operation procedure for the air conditioning equipment shown can be referred to Figure 11 As shown, the process includes: Step 71, determining the gentle breeze / cool air mode; Step 72, controlling the front obstruction module to slide downwards to completely cover the front air outlet, and controlling the lower obstruction module to rotate to a horizontal position so that the two overlap; Step 73, controlling the obstruction column in the first obstruction column layer of the front obstruction module to rotate by a third preset angle, and the obstruction column in the second obstruction column layer to rotate by a fourth preset angle; Step 74, controlling the fan wheel of the air conditioning unit to rotate; Step 75, controlling the compressor of the air conditioning unit to operate in cooling mode, allowing refrigerant to flow into the heat exchanger to achieve the gentle breeze / cool air mode. Note that steps 74 and 75 do not stop operating while steps 71-73 are being executed.
[0148] Correspondingly, the schematic diagram between the current front and lower flow-blocking modules in the air conditioning unit can be referred to the left sectional view of the air conditioning unit shown in Figure 7. The schematic diagram of the structural state after the control device controls and adjusts the two flow-blocking column layers in the front flow-blocking module 33, namely the first flow-blocking column layer 331 and the second flow-blocking column layer 332, to enter the gentle breeze cooling mode can be referred to... Figure 12 As shown,Figure 12 The arrow direction in indicates the transmission direction of the air flow of the air conditioning device in the first blocking column layer 331 and the second blocking column layer 332, and the arrow direction in indicates the transmission direction of the air flow of the air conditioning device in the first blocking column layer 331 and the second blocking column layer 332. Figure 12 In, only two blocking columns are drawn for the first blocking column layer and the second blocking column layer, respectively, for illustration.
[0149] If the detected body temperature information is in the fifth temperature range, the target wind feeling mode is determined as the fifth wind feeling mode, where the fifth wind feeling mode can be defined as a turbulent windless cold wind mode, and the device controls the air conditioning device to Figure 3 The control operation flow of the air conditioning device shown in can refer to Figure 13 As shown in, the control operation flow includes: step 81, determining a turbulent windless cold wind mode; step 82, controlling the front blocking module to slide down to completely cover the front air outlet, and controlling the lower blocking module to rotate to a horizontal state to make the two achieve lapping; step 83, controlling the blocking columns in the first blocking column layer in the front blocking module to be in a closed state, and controlling the blocking columns in the second blocking column layer to be in a closed state; step 84, controlling the air wheel of the air conditioning device to rotate; step 85, controlling the compressor of the air conditioning device to work in a refrigeration mode, so that the refrigerant flows into the heat exchanger, and the turbulent windless cold wind mode is realized. Wherein, when steps 81-83 are executed, steps 84 and 85 are not stopped working.
[0150] Correspondingly, the schematic diagram between the current front blocking module and the lower blocking module in the air conditioning device can refer to the left sectional view of the air conditioning device shown in. Wherein, the structure state schematic diagram of the front blocking module 33 in the air conditioning device after the two layers of blocking column layers, i.e., the first blocking column layer 331 and the second blocking column layer 332, are controlled and adjusted by the device to enter the soft cold wind mode can refer to Figure 14 As shown in, Figure 14 The arrow direction in indicates the transmission direction of the air flow of the air conditioning device in the first blocking column layer 331 and the second blocking column layer 332, and the arrow direction in indicates the transmission direction of the air flow of the air conditioning device in the first blocking column layer 331 and the second blocking column layer 332. Figure 14 In, only two blocking columns are drawn for the first blocking column layer and the second blocking column layer, respectively, for illustration.
[0151] Based on the foregoing embodiments, when the air conditioning device is in the cooling mode, the application embodiment provides an application embodiment of the control method implemented by the control device, and the specific implementation steps can be as follows: Step one, detecting first body temperature information of a user in an environment where the air conditioning device is located; Step two, determining a temperature range where the first body temperature information is located; Step three, if it is determined that the first body temperature information is located in the first temperature range, the control device executes the foregoing steps 41-44; Step four, after a preset time period, detecting second body temperature information of the user in the environment where the air conditioning device is located again; Step five, determining a temperature range where the second body temperature information is located; Step six, if it is determined that the second body temperature information is located in the third temperature range, the control device executes the foregoing steps 61-65; Step seven, after a preset time period, detecting third body temperature information of the user in the environment where the air conditioning device is located again; Step eight, determining a temperature range where the third body temperature information is located; Step nine, if it is determined that the third body temperature information is located in the second temperature range, the control device executes the foregoing steps 51-55; in this way, the body temperature information of the user in the environment where the air conditioning device is located is collected every preset time period, to select the control steps of the corresponding windless mode to be executed, until the air conditioning device receives a shutdown instruction or detects fourth body temperature information of the user that is lower than the ninth temperature range, a shutdown instruction is generated, and the air conditioning device is controlled to shut down.
[0152] It should be noted that the same steps and the same content in the embodiments and other embodiments are described with reference to the descriptions in the other embodiments, and will not be described here.
[0153] In the embodiments of the application, target user information included in the current environment of the air conditioning device is detected, and a current wind feeling mode of the air conditioning device is determined, and then based on the target user information, a target wind feeling mode is determined, and if the current wind feeling mode is not the target wind feeling mode, the wind feeling mode of the air conditioning device is switched to the target wind feeling mode. In this way, the wind feeling mode of the air conditioning device is automatically switched according to the user information, solving the problem that the operation of the working mode adjustment process of the current air conditioning device is relatively complex, simplifying the operation process of adjusting the working mode of the air conditioning device, and improving the intelligent degree of the air conditioning device.
[0154] Based on the foregoing embodiments, the embodiments of the application provide a control device, which can include a detection unit 91, a determination unit 92 and a control unit 93, as shown in Figure 15 The detection unit 91 is configured to detect target user information included in a current environment of an air conditioning device.
[0155] The determination unit 92 is configured to determine a current wind feeling mode of the air conditioning device.
[0156] The control unit 93 is configured to: if it is determined that the target wind feeling mode is different from the current wind feeling mode, switch the wind feeling mode of the air conditioning device to the target wind feeling mode.
[0157] The determining unit 92 is further configured to determine a target wind feeling mode based on the target user information, wherein the target wind feeling mode is at least two wind feeling modes corresponding to the air conditioning device in cooling or heating;
[0158] The control unit 93 is configured to switch the wind feeling mode of the air conditioning device to the target wind feeling mode if the current wind feeling mode is not the target wind feeling mode.
[0159] In other embodiments of the present application, before the determining unit 92 performs the step of determining the target wind feeling mode based on the target user information, the determining unit 92 is further configured to perform the following steps:
[0160] determining the target number of layers of the reference blocking column layer included in the front blocking module included in the air conditioning device;
[0161] Correspondingly, when the determining unit 92 performs the step of determining the target wind feeling mode based on the target user information, the determining unit 92 can specifically implement the step by the following steps:
[0162] determining the target wind feeling mode based on the target number of layers and the target user information.
[0163] In other embodiments of the present application, the target user information at least includes user body surface temperature information, and when the determining unit 92 performs the step of determining the target wind feeling mode based on the target number of layers and the target user information, the determining unit 92 can specifically implement the step by the following steps:
[0164] if the target number of layers is greater than or equal to 2 and the user body surface temperature information is in a first temperature range, determining the target wind feeling mode as a first wind feeling mode;
[0165] if the target number of layers is greater than or equal to 2 and the user body surface temperature information is in a second temperature range, determining the target wind feeling mode as a second wind feeling mode; wherein the minimum value in the first temperature range is greater than or equal to the maximum value in the second temperature range;
[0166] if the target number of layers is greater than or equal to 2 and the user body surface temperature information is in a third temperature range, determining the target wind feeling mode as a third wind feeling mode; wherein the minimum value in the second temperature range is greater than or equal to the maximum value in the third temperature range;
[0167] if the target number of layers is greater than or equal to 2 and the user body surface temperature information is in a fourth temperature range, determining the target wind feeling mode as a fourth wind feeling mode; wherein the minimum value in the third temperature range is greater than or equal to the maximum value in the fourth temperature range;
[0168] If the target layer number is greater than or equal to 2 and the user body surface temperature information is in the fifth temperature range, the target wind feeling mode is determined as the fifth wind feeling mode; wherein the minimum value in the fourth temperature range is greater than or equal to the maximum value in the fifth temperature range, and the at least two wind feeling modes include the first wind feeling mode, the second wind feeling mode, the third wind feeling mode, the fourth wind feeling mode and the fifth wind feeling mode.
[0169] In other embodiments of the present application, the target user information at least includes user body surface temperature information, and when the determining unit 92 performs the step of determining the target wind feeling mode based on the target layer number and the target user information, the following steps can also be implemented:
[0170] If the target layer number is 1 and the user body surface temperature information is in the sixth temperature range, the target wind feeling mode is determined as the first wind feeling mode.
[0171] If the target layer number is 1 and the user body surface temperature information is in the seventh temperature range, the target wind feeling mode is determined as the sixth wind feeling mode; wherein the minimum value in the sixth temperature range is greater than or equal to the maximum value in the seventh temperature range.
[0172] If the target layer number is 1 and the user body surface temperature information is in the eighth temperature range, the target wind feeling mode is determined as the seventh wind feeling mode; wherein the minimum value in the seventh temperature range is greater than or equal to the maximum value in the eighth temperature range.
[0173] In other embodiments of the present application, the control unit 93 includes a generation module and a control module; wherein:
[0174] The generation module is configured to, if the current wind feeling mode is not the target wind feeling mode, generate, based on the target wind feeling mode, a first control instruction for controlling the movement of the lower side flow resistance module of the air conditioning device and a second control instruction for controlling the movement of the front side flow resistance module of the air conditioning device; wherein the opening or closing of the air outlet of the air conditioning device is controlled by controlling the rotation of the lower side flow resistance module relative to the air conditioning device, and the airflow blown out of the air outlet is made to pass through the front side flow resistance module and diffuse when the front side flow resistance module is controlled to move to the target position.
[0175] The control module is configured to control the movement of the lower side flow resistance module and the front side flow resistance module based on the first control instruction and the second control instruction, so as to switch the wind feeling mode of the air conditioning device to the target wind feeling mode.
[0176] In other embodiments of the present application, the control module is specifically configured to implement the following steps:
[0177] If the target wind feeling mode is the first wind feeling mode, the lower side flow resistance module is controlled to rotate to the first target angle in response to the first control instruction; wherein when the lower side flow resistance module rotates to the first target angle, the air outlet of the air conditioning device is controlled to be opened to the maximum.
[0178] In response to the second control instruction, the front side blocking flow module is controlled to be received in the mounting cavity; wherein the mounting cavity is a receiving space provided in the air conditioning equipment for receiving the front side blocking flow module.
[0179] In other embodiments of the present application, the control module is specifically configured to implement the following steps:
[0180] If the target wind feeling mode is the second wind feeling mode, in response to the first control instruction, the lower side blocking flow module is controlled to rotate to the second target angle, so that the first target end of the lower side blocking flow module moves to the reference position of the air outlet;
[0181] In response to the second control instruction, the front side blocking flow module is controlled to extend out of the mounting cavity until the second target end of the front side blocking flow module extends to the reference position of the air outlet and overlaps with the first target end of the lower side blocking flow module, thereby closing the air outlet; wherein the mounting cavity is a receiving space provided in the air conditioning equipment for receiving the front side blocking flow module.
[0182] The blocking flow columns in the first blocking flow column layer in the front side blocking flow module are controlled to be in a closed state, so that the air flow of the air conditioning equipment blows out from the gaps of the blocking flow columns in the first blocking flow column layer; wherein the first blocking flow column layer is a reference blocking flow column layer close to the lower side blocking flow module among the target number of reference blocking flow column layers;
[0183] The blocking flow columns in the reference blocking flow column layers other than the first blocking flow column layer among the target number of reference blocking flow column layers are controlled to rotate by a first preset angle.
[0184] In other embodiments of the present application, the control module is specifically configured to implement the following steps:
[0185] If the target wind feeling mode is the third wind feeling mode, in response to the first control instruction, the lower side blocking flow module is controlled to rotate to the second target angle, so that the first target end of the lower side blocking flow module moves to the reference position of the air outlet;
[0186] In response to the second control instruction, the front side blocking flow module is controlled to extend out of the mounting cavity until the second target end of the front side blocking flow module extends to the reference position of the air outlet and overlaps with the first target end of the lower side blocking flow module, thereby closing the air outlet; wherein the mounting cavity is a receiving space provided in the air conditioning equipment for receiving the front side blocking flow module.
[0187] The blocking flow columns in the second blocking flow column layer in the front side blocking flow module are controlled to be in a closed state, so that the air flow of the air conditioning equipment blows out from the gaps of the blocking flow columns in the second blocking flow column layer; wherein the second blocking flow column layer is a reference blocking flow column layer farthest from the lower side blocking flow module among the target number of reference blocking flow column layers.
[0188] The control target number of the reference baffle column layers is controlled to rotate the baffle columns in the reference baffle column layers other than the second reference baffle column layer by a second preset angle.
[0189] In other embodiments of the present application, the control module is specifically further configured to implement the following steps:
[0190] If the target air feeling mode is the fourth air feeling mode, the lower baffle module is controlled to rotate to the second target angle to move the first target end of the lower baffle module to the reference position of the air outlet in response to the first control instruction;
[0191] The front baffle module is controlled to extend out of the installation cavity until the second target end of the front baffle module extends to the reference position of the air outlet to overlap the first target end of the lower baffle module to close the air outlet in response to the second control instruction; the installation cavity is a receiving space provided in the air conditioning equipment for receiving the front baffle module;
[0192] In the control target number of the reference baffle column layers, the baffle columns in the odd-numbered reference baffle column layers are controlled to rotate by a third preset angle, and the baffle columns in the even-numbered reference baffle column layers are controlled to rotate by a fourth preset angle; wherein the minimum included angle between the adjacent two reference baffle column layers in the target number of the reference baffle column layers after the rotation is greater than 0 degrees and less than 180 degrees.
[0193] In other embodiments of the present application, the control module is specifically further configured to implement the following steps:
[0194] If the target air feeling mode is the fifth air feeling mode, the lower baffle module is controlled to rotate to the second target angle to move the first target end of the lower baffle module to the reference position of the air outlet in response to the first control instruction;
[0195] The front baffle module is controlled to extend out of the installation cavity until the second target end of the front baffle module extends to the reference position of the air outlet to overlap the first target end of the lower baffle module to close the air outlet in response to the second control instruction; the installation cavity is a receiving space provided in the air conditioning equipment for receiving the front baffle module;
[0196] The baffle columns in each reference baffle column layer in the control target number of the reference baffle column layers are controlled to be in a closed state to make the air flow of the air conditioning equipment blow out from the gaps of the baffle columns of each reference baffle column layer.
[0197] In other embodiments of the present application, the control module is specifically further configured to implement the following steps:
[0198] If the target air feeling mode is the sixth air feeling mode, the lower baffle module is controlled to rotate to the second target angle to move the first target end of the lower baffle module to the reference position of the air outlet in response to the first control instruction;
[0199] In response to the second control instruction, the front side blocking flow module is controlled to extend from the installation cavity until the second target end of the front side blocking flow module extends to the reference position of the air outlet, overlaps with the first target end of the lower side blocking flow module, and realizes the closure of the air outlet.
[0200] The blocking flow columns in the reference blocking flow column layer are all controlled to rotate by a fifth preset angle.
[0201] In other embodiments of the present application, the control module is specifically further used to implement the following steps:
[0202] If the target air feeling mode is the seventh air feeling mode, in response to the first control instruction, the lower side blocking flow module is controlled to rotate to the second target angle, so that the first target end of the lower side blocking flow module moves to the reference position of the air outlet.
[0203] In response to the second control instruction, the front side blocking flow module is controlled to extend from the installation cavity until the second target end of the front side blocking flow module extends to the reference position of the air outlet, overlaps with the first target end of the lower side blocking flow module, and realizes the closure of the air outlet.
[0204] The blocking flow columns in the reference blocking flow column layer are all controlled to be in a closed state, so that the air flow of the air conditioning equipment blows out from the gaps of the blocking flow columns of the reference blocking flow column layer.
[0205] In other embodiments of the present application, the control module is further used to implement the following steps:
[0206] If the user body surface temperature information is in the ninth temperature range, a shutdown instruction is generated.
[0207] In response to the shutdown instruction, the air conditioning equipment is controlled to enter a shutdown state.
[0208] It should be noted that the specific implementation process of information interaction between units and modules in the embodiment can refer to the implementation process in the control method provided in the corresponding embodiment, which will not be described here. Figures 1-2 The specific implementation process of information interaction between units and modules in the embodiment can refer to the implementation process in the control method provided in the corresponding embodiment, which will not be described here.
[0209] In the embodiment of the present application, target user information included in the current environment of the air conditioning equipment is detected, and the current air feeling mode of the air conditioning equipment is determined. Then, based on the target user information, a target air feeling mode is determined, and if the current air feeling mode is not the target air feeling mode, the air feeling mode of the air conditioning equipment is switched to the target air feeling mode. In this way, the air feeling mode of the air conditioning equipment is automatically switched according to the user information, solving the problem that the operation of the working mode adjustment process of the current air conditioning equipment is relatively complex, simplifying the operation process of adjusting the working mode of the air conditioning equipment, and improving the intelligent degree of the air conditioning equipment.
[0210] Based on the foregoing embodiments, the embodiments of the present application provide a control device, referring to Figure 16 As shown in the figure, the control device 100 can include a processor 1001, a memory 1002 and a communication bus 1003, wherein:
[0211] The memory 1002 is configured to store executable instructions.
[0212] The communication bus 1003 is configured to realize the communication connection between the processor 1001 and the memory 1002.
[0213] The processor 1001 is configured to execute the control program stored in the memory 1002, realize the steps of the control method as Figures 1-2 Any embodiment, which will not be described in detail here.
[0214] Based on the foregoing embodiments, the embodiments of the present application provide an air conditioning device, referring to Figure 17 As shown in the figure, the air conditioning device 110 includes an indoor unit 1101, an outdoor unit 1102 and a control device 1103 as Figure 15 The control device 1103 provided by the corresponding embodiments, wherein the indoor unit 1101 further includes a front side flow blocking module and a lower side flow blocking module.
[0215] It should be noted that the control device 1103 and the foregoing control device 100 are the same device.
[0216] Based on the foregoing embodiments, the embodiments of the present application provide a computer readable storage medium, referred to as a storage medium, which stores one or more programs, and the one or more programs can be executed by one or more processors to realize the control method as Figures 1-2 The control method implementation process provided by the corresponding embodiments will not be described here.
[0217] Those skilled in the art should understand that the embodiments of the present application can be provided as a method, a system or a computer program product. Therefore, the present application can be in the form of a hardware embodiment, a software embodiment or an embodiment combining software and hardware aspects. Moreover, the present application can be in the form of a computer program product implemented on one or more computer usable storage media (including but not limited to magnetic disk storage and optical storage, etc.) containing computer usable program code.
[0218] The computer program instructions can also be loaded onto a computer or other programmable data processing apparatus to cause a series of operational steps to be performed on the computer or other programmable apparatus to produce a computer-implemented process such that the instructions which execute on the computer or other programmable apparatus provide steps for implementing the functions specified in the flowchart block or blocks. Figure 1 one or more flow or blocks Figure 1 one or more flow or blocks
[0219] These computer program instructions can also be stored in a computer readable memory that can direct a computer or other programmable data processing apparatus to function in a particular manner, such that the instructions stored in the computer readable memory produce an article of manufacture including instructions which implement the function specified in the flowchart block or blocks. Figure 1 one or more flow or blocks Figure 1 one or more flow or blocks
[0220] The computer program instructions can also be loaded onto a computer or other programmable data processing apparatus to cause a series of operational steps to be performed on the computer or other programmable apparatus to produce a computer-implemented process such that the instructions which execute on the computer or other programmable apparatus provide steps for implementing the functions specified in the flowchart block or blocks. Figure 1 one or more flow or blocks Figure 1 one or more flow or blocks
[0221] The above description is only preferred embodiments of the present application, and not intended to limit the protection scope of the present application.
Claims
1. A control method, characterized in that, The method includes: Detect target user information in the current environment of the air conditioning equipment; Determine the current airflow mode of the air conditioning unit; Based on the target user information, a target airflow mode is determined; wherein, the target airflow mode belongs to at least two airflow modes corresponding to the cooling or heating of the air conditioning equipment, and the at least two airflow modes include a first airflow mode, a second airflow mode, a third airflow mode, a fourth airflow mode, a fifth airflow mode, a sixth airflow mode, and a seventh airflow mode. If the current wind sensing mode is not the target wind sensing mode, switch the wind sensing mode of the air conditioning device to the target wind sensing mode; Wherein, the step of switching the air conditioning device's air conditioning mode to the target air conditioning mode if the current air conditioning mode is not the target air conditioning mode includes: If the current airflow mode is not the target airflow mode, based on the target airflow mode, a first control command is generated to control the movement of the lower obstruction module of the air conditioner, and a second control command is generated to control the movement of the front obstruction module of the air conditioner; wherein, by controlling the rotation of the lower obstruction module relative to the air conditioner, the air outlet of the air conditioner is opened or closed; and by controlling the movement of the front obstruction module relative to the air conditioner to the target position, the airflow blown out of the air outlet passes through the front obstruction module and diffuses the airflow. Based on the first control command and the second control command, the movement of the lower flow blocking module and the front flow blocking module is controlled to switch the air conditioning device’s wind sensation mode to the target wind sensation mode. Before determining the target wind mode based on the target user information, the method further includes: Determine the target number of reference flow-blocking column layers included in the front flow-blocking module; wherein, the reference flow-blocking column layer is composed of multiple flow-blocking columns, adjacent flow-blocking columns in the reference flow-blocking column layer are staggered with each other, and there are gaps between adjacent flow-blocking columns, and the flow-blocking columns in the reference flow-blocking column layer can rotate as needed. Correspondingly, determining the target wind mode based on the target user information includes: The target wind mode is determined based on the target layer number and the target user information.
2. The method according to claim 1, characterized in that, The target user information includes at least the user's body surface temperature information, and determining the target wind mode based on the target layer number and the target user information includes: If the target layer number is greater than or equal to 2, and the user's body surface temperature information is within the first temperature range, the target wind mode is determined to be the first wind mode. If the target layer number is greater than or equal to 2, and the user's body surface temperature information is within the second temperature range, the target wind mode is determined to be the second wind mode; wherein, the minimum value in the first temperature range is greater than or equal to the maximum value in the second temperature range; If the target layer number is greater than or equal to 2, and the user's body surface temperature information is within the third temperature range, the target wind mode is determined to be the third wind mode; wherein, the minimum value in the second temperature range is greater than or equal to the maximum value in the third temperature range; If the target layer number is greater than or equal to 2, and the user's body surface temperature information is within the fourth temperature range, the target wind mode is determined to be the fourth wind mode; wherein, the minimum value in the third temperature range is greater than or equal to the maximum value in the fourth temperature range; If the target layer number is greater than or equal to 2, and the user's body surface temperature information is within the fifth temperature range, the target wind mode is determined to be the fifth wind mode; wherein, the minimum value in the fourth temperature range is greater than or equal to the maximum value in the fifth temperature range.
3. The method according to claim 1, characterized in that, The target user information includes at least the user's body surface temperature information, and determining the target wind mode based on the target layer number and the target user information includes: If the target layer number is 1 and the user's body surface temperature information is within the sixth temperature range, the target wind mode is determined to be the first wind mode. If the target layer number is 1 and the user's body surface temperature information is within the seventh temperature range, the target wind mode is determined to be the sixth wind mode; wherein, the minimum value of the sixth temperature range is greater than or equal to the maximum value of the seventh temperature range; If the target layer number is 1 and the user's body surface temperature information is within the eighth temperature range, the target wind mode is determined to be the seventh wind mode; wherein, the minimum value of the seventh temperature range is greater than or equal to the maximum value of the eighth temperature range.
4. The method according to claim 1, characterized in that, The step of controlling the movement of the lower flow-blocking module and the front flow-blocking module based on the first control command and the second control command includes: If the target wind mode is the first wind mode, in response to the first control command, the lower choke module is controlled to rotate to the first target angle; wherein, when the lower choke module rotates to the first target angle, the air outlet of the air conditioning device is controlled to open to the maximum. In response to the second control command, the front flow-blocking module is controlled to be housed in the mounting cavity; wherein, the mounting cavity is a storage space provided in the air conditioning equipment for housing the front flow-blocking module.
5. The method according to claim 1, characterized in that, The step of controlling the movement of the lower flow-blocking module and the front flow-blocking module based on the first control command and the second control command includes: If the target wind mode is the second wind mode, in response to the first control command, the lower flow obstruction module is controlled to rotate to the second target angle, so that the first target end of the lower flow obstruction module moves to the reference position of the air outlet; In response to the second control command, the front flow-blocking module is controlled to extend from the mounting cavity until the second target end of the front flow-blocking module extends to the reference position of the air outlet and overlaps with the first target end of the lower flow-blocking module to close the air outlet; wherein, the mounting cavity is a storage space provided in the air conditioning equipment for storing the front flow-blocking module; The flow-blocking columns in the first flow-blocking column layer of the front flow-blocking module are controlled to be in a closed state so that the airflow of the air conditioning equipment is blown out from the gaps in the flow-blocking columns of the first flow-blocking column layer; wherein, the first flow-blocking column layer is the reference flow-blocking column layer closest to the lower flow-blocking module in the target layer of the reference flow-blocking column layer. All flow-blocking columns in the target layer reference flow-blocking column layer, except for the first flow-blocking column layer, are rotated by a first preset angle.
6. The method according to claim 1, characterized in that, The step of controlling the movement of the lower flow-blocking module and the front flow-blocking module based on the first control command and the second control command includes: If the target wind mode is the third wind mode, in response to the first control command, the lower flow obstruction module is controlled to rotate to the second target angle, so that the first target end of the lower flow obstruction module moves to the reference position of the air outlet; In response to the second control command, the front flow-blocking module is controlled to extend from the mounting cavity until the second target end of the front flow-blocking module extends to the reference position of the air outlet and overlaps with the first target end of the lower flow-blocking module to close the air outlet; wherein, the mounting cavity is a storage space provided in the air conditioning equipment for storing the front flow-blocking module; The flow-blocking columns in the second flow-blocking column layer of the front flow-blocking module are controlled to be in a closed state so that the airflow of the air conditioning equipment is blown out from the gaps in the flow-blocking columns of the second flow-blocking column layer; wherein, the second flow-blocking column layer is the reference flow-blocking column layer that is farthest from the lower flow-blocking module among the reference flow-blocking column layers of the target layer number. The flow-blocking columns in the reference flow-blocking column layers other than the second flow-blocking column layer are rotated by a second preset angle.
7. The method according to claim 1, characterized in that, The step of controlling the movement of the lower flow-blocking module and the front flow-blocking module based on the first control command and the second control command includes: If the target wind mode is the fourth wind mode, in response to the first control command, the lower flow obstruction module is controlled to rotate to the second target angle, so that the first target end of the lower flow obstruction module moves to the reference position of the air outlet; In response to the second control command, the front flow-blocking module is controlled to extend from the mounting cavity until the second target end of the front flow-blocking module extends to the reference position of the air outlet and overlaps with the first target end of the lower flow-blocking module to close the air outlet; wherein, the mounting cavity is a storage space provided in the air conditioning equipment for storing the front flow-blocking module; When the reference flow-blocking column layers are numbered sequentially according to the target number, the flow-blocking columns in the reference flow-blocking column layers with odd numbers are all rotated by a third preset angle, and the flow-blocking columns in the reference flow-blocking column layers with even numbers are all rotated by a fourth preset angle; wherein, after the rotation, the minimum included angle between two adjacent reference flow-blocking column layers in the target number of reference flow-blocking column layers is greater than 0 degrees and less than 180 degrees.
8. The method according to claim 1, characterized in that, The step of controlling the movement of the lower flow-blocking module and the front flow-blocking module based on the first control command and the second control command includes: If the target wind mode is the fifth wind mode, in response to the first control command, the lower flow obstruction module is controlled to rotate to the second target angle, so that the first target end of the lower flow obstruction module moves to the reference position of the air outlet; In response to the second control command, the front flow-blocking module is controlled to extend from the mounting cavity until the second target end of the front flow-blocking module extends to the reference position of the air outlet and overlaps with the first target end of the lower flow-blocking module to close the air outlet; wherein, the mounting cavity is a storage space provided in the air conditioning equipment for storing the front flow-blocking module; The flow-blocking columns in each of the reference flow-blocking column layers are controlled to be in a closed state so that the airflow of the air conditioning equipment is blown out from the gaps of the flow-blocking columns in each of the reference flow-blocking column layers.
9. The method according to claim 1, characterized in that, The step of controlling the movement of the lower flow-blocking module and the front flow-blocking module based on the first control command and the second control command includes: If the target wind mode is the sixth wind mode, in response to the first control command, the lower flow obstruction module is controlled to rotate to the second target angle, so that the first target end of the lower flow obstruction module moves to the reference position of the air outlet. In response to the second control command, the front flow-blocking module is controlled to extend from the mounting cavity until the second target end of the front flow-blocking module extends to the reference position of the air outlet and overlaps with the first target end of the lower flow-blocking module to close the air outlet; wherein, the mounting cavity is a storage space provided in the air conditioning equipment for storing the front flow-blocking module; The flow-blocking columns in the reference flow-blocking column layer are all rotated by a fifth preset angle.
10. The method according to claim 1, characterized in that, The step of controlling the movement of the lower flow-blocking module and the front flow-blocking module based on the first control command and the second control command includes: If the target wind mode is the seventh wind mode, in response to the first control command, the lower flow obstruction module is controlled to rotate to the second target angle, so that the first target end of the lower flow obstruction module moves to the reference position of the air outlet. In response to the second control command, the front flow-blocking module is controlled to extend from the mounting cavity until the second target end of the front flow-blocking module extends to the reference position of the air outlet and overlaps with the first target end of the lower flow-blocking module to close the air outlet; wherein, the mounting cavity is a storage space provided in the air conditioning equipment for storing the front flow-blocking module; The flow-blocking columns in the reference flow-blocking column layer are all kept in a closed state so that the airflow of the air conditioning equipment is blown out from the gaps in the flow-blocking columns of the reference flow-blocking column layer.
11. The method according to claim 2 or 3, characterized in that, The method further includes: If the user's body surface temperature information is within the ninth temperature range, a shutdown command is generated. In response to the shutdown command, the air conditioning equipment is controlled to enter the shutdown state.
12. A control device, characterized in that, The device includes: a detection unit, a determination unit, and a control unit; wherein: The detection unit is used to detect target user information in the environment where the air conditioning equipment is currently located; The determining unit is used to determine the current airflow mode of the air conditioning device; The determining unit is further configured to determine a target airflow mode based on the target user information; wherein the target airflow mode is at least two airflow modes corresponding to the cooling or heating of the air conditioning equipment, and the at least two airflow modes include a first airflow mode, a second airflow mode, a third airflow mode, a fourth airflow mode, a fifth airflow mode, a sixth airflow mode, and a seventh airflow mode. The control unit is configured to switch the air conditioning device's air conditioning mode to the target air conditioning mode if the current air conditioning mode is not the target air conditioning mode. Specifically, the control unit is configured to, if the current airflow mode is not the target airflow mode, generate a first control command for controlling the movement of the lower obstruction module of the air conditioner and a second control command for controlling the movement of the front obstruction module of the air conditioner, based on the target airflow mode. The lower obstruction module is rotated relative to the air conditioner to control the opening or closing of the air outlet. When the front obstruction module moves relative to the air conditioner to the target position, the airflow from the air outlet passes through the front obstruction module and diffuses. Based on the first control command and the second control command, the movement of the lower flow blocking module and the front flow blocking module is controlled to switch the air conditioning device’s wind sensation mode to the target wind sensation mode. Before the determining unit performs the step of determining the target wind mode based on the target user information, it is further configured to: Determine the target number of reference flow-blocking column layers included in the front flow-blocking module; wherein, the reference flow-blocking column layer is composed of multiple flow-blocking columns, adjacent flow-blocking columns in the reference flow-blocking column layer are staggered with each other, and there are gaps between adjacent flow-blocking columns, and the flow-blocking columns in the reference flow-blocking column layer can rotate as needed. Correspondingly, the step of determining the target wind mode based on the target user information, performed by the determining unit, includes: The target wind mode is determined based on the target layer number and the target user information.
13. A control device, characterized in that, The control device includes: a processor, a memory, and a communication bus; wherein: The memory is used to store executable instructions; The communication bus is used to realize the communication connection between the processor and the memory; The processor is configured to execute the control program stored in the memory to implement the steps of the control method as described in any one of claims 1 to 11.
14. An air conditioning device, characterized in that, The air conditioning equipment includes an indoor unit, an outdoor unit, and the control equipment as described in claim 13.
15. A storage medium, characterized in that, The storage medium stores a control program, which, when executed by a processor, implements the steps of the control method as described in any one of claims 1 to 11.
Citation Information
Patent Citations
Air conditioner and wind speed control method thereof
CN106545976A
Wind feeling controlling method for air conditioner, wind feeling controlling device for air conditioner, air conditioner and readable storage medium
CN108195023A
Air outlet module and air conditioner
CN212930404U