Temperature control device adjustment method, device and computer storage medium
By adjusting the horizontal and vertical pendulum blades of the temperature control equipment, combined with multiple temperature sensor detection, the target operation mode is determined, the problem of uneven temperature distribution is solved, more uniform room temperature control is achieved, and user comfort is improved.
Patent Information
- Application Number
- CN202110713505.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-06-25
- Publication Date
- 2025-09-02
- Estimated Expiration
- 2041-06-25
AI Technical Summary
The existing temperature control equipment is inconsistent during cooling and heating operation, resulting in uneven temperature distribution in the room, and the user's somatosensory feeling in different locations, affecting comfort.
By adjusting the horizontal and vertical pendulum blades, multiple wind guidance angles are obtained, multiple temperature sensors are used to detect the temperature difference value at each angle, and the target operation mode is determined to achieve uniform temperature control.
It realizes uniform control of room temperature, improves user experience, and provides a more balanced and comfortable environment.
Smart Images

Figure CN115523585B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to household appliance control technology, and in particular to a temperature control device adjustment method, device and computer storage medium. Background Art
[0002] When current temperature control devices are operating in cooling and heating modes, in order to achieve room temperature reduction or heating, the air outlet temperature is often lower during cooling and higher during heating. This causes some areas of the room to be cold and others to be hot, resulting in uneven temperature distribution. This causes users to feel different sensations in different locations in the room, affecting the comfort of using the temperature control device. Summary of the Invention
[0003] To solve the existing technical problems, embodiments of the present invention provide a temperature control device adjustment method, device, and computer storage medium.
[0004] To achieve the above-mentioned purpose, the technical solution of the embodiment of the present invention is implemented as follows:
[0005] An embodiment of the present invention provides a method for adjusting a temperature control device, the method comprising:
[0006] By adjusting the horizontal and vertical swing blades, at least two air guide angles can be obtained;
[0007] operating at each of the at least two air guide angles, detecting a first temperature and a second temperature at each of the air guide angles; the first temperature being detected by a first temperature sensor; and the second temperature being detected by a second temperature sensor;
[0008] Determine a temperature difference at each of the air guide angles according to the first temperature and the second temperature at each of the air guide angles;
[0009] Based on the temperature difference at each of the air guide angles, a target operating mode is determined; the target operating mode at least includes: a target air guide angle.
[0010] In the above solution, the method further includes:
[0011] Obtaining temperature values measured by at least two temperature sensors set according to a preset rule;
[0012] determining a first temperature and a second temperature from the temperature values measured by the at least two temperature sensors;
[0013] Among the temperature values measured by the at least two temperature sensors, two temperature values with the largest difference are used as the first temperature and the second temperature.
[0014] In the above solution, the preset rule includes one of the following:
[0015] The distance between the first temperature sensor and the second temperature sensor exceeds a first preset threshold;
[0016] The distance between the first temperature sensor and the temperature control device exceeds a second preset threshold, the distance between the second temperature sensor and the temperature control device exceeds a second preset threshold, and the distance between the first temperature sensor and the second temperature sensor exceeds a third preset threshold.
[0017] In the above solution, the at least two wind guide angles are obtained by adjusting the horizontal swing blades and the vertical swing blades, including:
[0018] Swing the vertical swing blade from left to right at intervals of a first angle difference, so that the vertical swing blade operates at at least two vertical swing blade angles;
[0019] When the vertical swing blade operates at each vertical swing blade angle, the horizontal swing blade is swung from top to bottom at intervals of a second angle difference, so that the horizontal swing blade operates at at least two horizontal swing blade angles;
[0020] The combination of each vertical swing blade angle and each horizontal swing blade angle is used as the wind guide angle.
[0021] In the above solution, the at least two wind guide angles are obtained by adjusting the horizontal swing blades and the vertical swing blades, including:
[0022] Swing the horizontal swing blade from top to bottom at intervals of a second angle difference, so that the horizontal swing blade operates at at least two horizontal swing blade angles;
[0023] When the horizontal swing blade operates at each horizontal swing blade angle, the vertical swing blade is swung from left to right at intervals of a first angle difference, so that the vertical swing blade operates at at least two vertical swing blade angles;
[0024] The combination of each horizontal blade angle and different vertical blade angles is used as the wind guide angle.
[0025] In the above solution, determining the target operating mode based on the temperature difference at each of the air guide angles includes:
[0026] Determine a temperature difference that meets a preset condition as a target temperature difference;
[0027] A target operating mode is determined according to the air guide angle corresponding to the target temperature difference.
[0028] In the above solution, the step of operating at each of the at least two air guide angles and detecting the first temperature and the second temperature at each of the at least two air guide angles includes:
[0029] Determining that the operating time of the temperature control device at each of the air guide angles exceeds a preset time threshold, and detecting the first temperature and the second temperature at the corresponding air guide angle;
[0030] Determining a temperature difference at each of the air guide angles according to the first temperature and the second temperature at each of the air guide angles includes:
[0031] The first temperature and the second temperature at each wind guide angle are subtracted to obtain a temperature difference at each wind guide angle.
[0032] An embodiment of the present invention further provides a temperature control device adjustment device, which is applied to a cleaning device, and the device includes:
[0033] An adjustment module, configured to obtain at least two air guide angles by adjusting the horizontal swing blades and the vertical swing blades;
[0034] a detection module, configured to operate at each of the at least two air guide angles and detect a first temperature and a second temperature at each of the at least two air guide angles; the first temperature being detected by a first temperature sensor; and the second temperature being detected by a second temperature sensor;
[0035] A processing module is used to determine the temperature difference at each of the wind guide angles based on the first temperature and the second temperature at each of the wind guide angles; based on the temperature difference at each of the wind guide angles, a target operating mode is determined; the target operating mode at least includes: a target wind guide angle.
[0036] In the above solution, the detection module is further used to obtain temperature values measured by at least two temperature sensors set according to preset rules;
[0037] determining a first temperature and a second temperature from the temperature values measured by the at least two temperature sensors;
[0038] Among the temperature values measured by the at least two temperature sensors, two temperature values with the largest difference are used as the first temperature and the second temperature.
[0039] The preset rules include one of the following:
[0040] The distance between the first temperature sensor and the second temperature sensor exceeds a first preset threshold;
[0041] The distance between the first temperature sensor and the temperature control device exceeds a second preset threshold, the distance between the second temperature sensor and the temperature control device exceeds a second preset threshold, and the distance between the first temperature sensor and the second temperature sensor exceeds a third preset threshold.
[0042] In the above solution, the adjustment module is used to swing the vertical swing blade from left to right at intervals of a first angle difference, so that the vertical swing blade operates at at least two vertical swing blade angles;
[0043] When the vertical swing blade operates at each vertical swing blade angle, the horizontal swing blade is swung from top to bottom at intervals of a second angle difference, so that the horizontal swing blade operates at at least two horizontal swing blade angles;
[0044] The combination of each vertical swing blade angle and each horizontal swing blade angle is used as the wind guide angle.
[0045] In the above solution, the adjustment module is used to swing the horizontal swing blade from top to bottom at intervals of a second angle difference, so that the horizontal swing blade operates at at least two horizontal swing blade angles;
[0046] When the horizontal swing blade operates at each horizontal swing blade angle, the vertical swing blade is swung from left to right at intervals of a first angle difference, so that the vertical swing blade operates at at least two vertical swing blade angles;
[0047] The combination of each horizontal blade angle and different vertical blade angles is used as the wind guide angle.
[0048] In the above solution, the processing module is used to determine a temperature difference that meets a preset condition as a target temperature difference;
[0049] A target operating mode is determined according to the air guide angle corresponding to the target temperature difference.
[0050] In the above solution, the detection module is used to determine whether the operating time of the temperature control device at each air guide angle exceeds a preset time threshold, and detect the first temperature and the second temperature at the corresponding air guide angle;
[0051] The processing module is used to subtract the first temperature from the second temperature at each of the air guide angles to obtain a temperature difference at each of the air guide angles.
[0052] An embodiment of the present invention also provides a temperature control device adjustment device, which includes: a processor and a memory for storing a computer program that can be run on the processor; wherein, when the processor is used to run the computer program, it executes the steps of any of the above-mentioned temperature control device adjustment methods.
[0053] An embodiment of the present invention further provides a computer storage medium having computer instructions stored thereon, which, when executed by a processor, implement the steps of any of the above-mentioned temperature control device adjustment methods.
[0054] The temperature control device adjustment method, device and computer storage medium provided by the embodiment of the present invention include: obtaining at least two air guide angles by adjusting the horizontal swing blades and the vertical swing blades; operating at each of the at least two air guide angles, detecting the first temperature and the second temperature at each of the at least two air guide angles; the first temperature is detected by a first temperature sensor; the second temperature is detected by a second temperature sensor; determining the temperature difference at each of the at least two air guide angles based on the first temperature and the second temperature; determining a target operating mode based on the temperature difference at each of the at least two air guide angles; the target operating mode includes at least a target air guide angle. By adopting the technical solution of the embodiment of the present invention, the operation and air supply mode of the temperature control device are adjusted by comparing the temperature difference of two or more temperature sensors arranged in the user's frequent activity area, thereby achieving uniform room temperature control and improving user experience. BRIEF DESCRIPTION OF THE DRAWINGS
[0055] Figure 1 A schematic flow chart of a temperature control device adjustment method according to an embodiment of the present invention;
[0056] Figure 2 A schematic diagram of the principle of a temperature control device adjustment method according to an embodiment of the present invention;
[0057] Figure 3 A schematic flow chart of another temperature control device adjustment method according to an embodiment of the present invention;
[0058] Figure 4 This is a schematic structural diagram of a temperature control device adjustment device according to an embodiment of the present invention;
[0059] Figure 5 This is a structural schematic diagram of another temperature control device adjustment device according to an embodiment of the present invention. DETAILED DESCRIPTION
[0060] In order to enable people in this technical field to better understand the embodiments of the present application, the technical solutions in the embodiments of the present application will be clearly described below in combination with the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, not all of the embodiments.
[0061] The terms "first," "second," and "third," etc. in the specification, embodiments, claims, and figures of this application are used to distinguish similar objects and are not necessarily used to describe a particular order or precedence. In addition, the terms "including" and "having," and any variations thereof, are intended to cover non-exclusive inclusions, for example, including a series of steps or units. A method, system, product, or apparatus is not necessarily limited to those steps or units explicitly listed, but may include other steps or units not explicitly listed or inherent to the process, method, product, or apparatus.
[0062] In various embodiments of the present invention, at least two wind guide angles are obtained by adjusting the horizontal swing blades and the vertical swing blades; the operation is performed at each of the at least two wind guide angles, and the first temperature and the second temperature at each wind guide angle are detected; the first temperature is detected by a first temperature sensor; the second temperature is detected by a second temperature sensor; based on the first temperature and the second temperature at each wind guide angle, the temperature difference at each wind guide angle is determined; based on the temperature difference at each wind guide angle, a target operating mode is determined; the target operating mode at least includes: a target wind guide angle.
[0063] The present invention will be further described in detail below with reference to the accompanying drawings and specific embodiments.
[0064] Figure 1 A flow chart of a temperature control device adjustment method provided by an embodiment of the present invention; Figure 1 As shown, the method includes:
[0065] Step 101: Obtain at least two air guide angles by adjusting the horizontal and vertical swing blades;
[0066] The vertical swing blades may be air guide plates or louvers, and the horizontal swing blades may also be air guide plates or louvers.
[0067] The vertical swing blades can adjust the airflow direction of the temperature control device in the horizontal direction;
[0068] The horizontal swing blades can adjust the air outlet direction of the temperature control device in the vertical direction.
[0069] Step 102: operate at each of the at least two air guide angles, and detect a first temperature and a second temperature at each of the air guide angles; the first temperature is detected by a first temperature sensor; and the second temperature is detected by a second temperature sensor.
[0070] Step 103: determining a temperature difference at each of the air guide angles according to the first temperature and the second temperature at each of the air guide angles;
[0071] Step 104: Determine a target operating mode based on the temperature difference at each of the air guide angles; the target operating mode at least includes: a target air guide angle.
[0072] The method can be applied to a temperature control device that can adjust the temperature of an environment, such as raising or lowering the ambient temperature. The temperature control device can be an air conditioner (also known as an air conditioner).
[0073] In one embodiment, the method further comprises:
[0074] Obtaining temperature values measured by at least two temperature sensors set according to a preset rule;
[0075] determining a first temperature and a second temperature from the temperature values measured by the at least two temperature sensors;
[0076] Among the temperature values measured by the at least two temperature sensors, two temperature values with the largest difference are used as the first temperature and the second temperature.
[0077] That is, the maximum value of the temperature values measured by the at least two temperature sensors is used as the first temperature, and the minimum value of the temperature values measured by the at least two temperature sensors is used as the second temperature;
[0078] Alternatively, the minimum value of the temperature values measured by the at least two temperature sensors is used as the first temperature, and the maximum value of the temperature values measured by the at least two temperature sensors is used as the second temperature.
[0079] The preset rules include one of the following:
[0080] The distance between the first temperature sensor and the second temperature sensor exceeds a first preset threshold;
[0081] The distance between the first temperature sensor and the temperature control device exceeds a second preset threshold, the distance between the second temperature sensor and the temperature control device exceeds a second preset threshold, and the distance between the first temperature sensor and the second temperature sensor exceeds a third preset threshold.
[0082] For example, the temperature control device is installed in a room, and at least two temperature sensors are set in the room, and the distance between two adjacent temperature sensors is greater than a preset first preset threshold; to avoid the temperature difference being unclear due to the two temperature sensors being too close.
[0083] Furthermore, two or more temperature sensors can be arranged in different locations in the room where people often move around. The temperature uniformity of the room can be judged based on the temperature difference detected by the temperature sensors, so as to adjust the operation and air supply mode of the air conditioner, reduce the temperature difference in the room, and achieve the purpose of uniform temperature control.
[0084] In the case of only two temperature sensors, the judgment is made directly based on the difference between the temperatures measured by the first temperature sensor and the second temperature sensor;
[0085] When more than two temperature sensors are set up, the temperature measured by each temperature sensor can be determined, and the temperature sensors corresponding to the two temperatures with the largest difference can be used as the first temperature sensor and the second temperature sensor; for example, the temperature sensor measuring the lowest temperature is the first temperature sensor, and the temperature sensor measuring the highest temperature is the second temperature sensor.
[0086] In one embodiment, the at least two wind guide angles are obtained by adjusting the horizontal swing blades and the vertical swing blades, including:
[0087] The vertical blade is swung from left to right at intervals of a first angle difference, so that the vertical blade operates at at least two vertical blade angles; the first angle may be an angle value pre-stored in the air conditioner. In other embodiments, the vertical blade can be swung from left to right at intervals of the first angle difference, and can be replaced by swung horizontally at preset angle positions, which can be one, two, or more than one preset angle position.
[0088] When the vertical blades are operating at each vertical blade angle, the horizontal blades are swung from top to bottom at intervals of a second angle difference, so that the horizontal blades operate at at least two horizontal blade angles; the second angle may be an angle value pre-stored in the air conditioner. In other embodiments, the swiveling of the horizontal blades from top to bottom at intervals of the second angle difference may be replaced by swiveling the horizontal blades along the vertical direction at predetermined angular positions, which may be one, two, or more than one predetermined angular position.
[0089] The combination of each vertical swing blade angle and each horizontal swing blade angle is used as the wind guide angle.
[0090] In one embodiment, the at least two wind guide angles are obtained by adjusting the horizontal swing blades and the vertical swing blades, including:
[0091] Swing the horizontal swing blade from top to bottom at intervals of a second angle difference, so that the horizontal swing blade operates at at least two horizontal swing blade angles;
[0092] When the horizontal swing blade operates at each horizontal swing blade angle, the vertical swing blade is swung from left to right at intervals of a first angle difference, so that the vertical swing blade operates at at least two vertical swing blade angles;
[0093] The combination of each horizontal blade angle and different vertical blade angles is used as the wind guide angle.
[0094] The second angle may be an angle value pre-stored in the air conditioner. In other embodiments, the horizontal blades may be swung from top to bottom at intervals of the second angle difference, which may be replaced by the horizontal blades being swung vertically at preset angles. The preset angles may be one, two, or more.
[0095] The first angle may be an angle value pre-stored in the air conditioner. In other embodiments, the vertical blades may be swung from left to right at intervals of the first angle difference, which may be replaced by the vertical blades being swung horizontally at preset angles. The preset angles may be one, two, or more.
[0096] By using the above two methods, different horizontal blade angles and different vertical blade angles are enumerated to obtain various wind guide angles.
[0097] In one embodiment, determining the target operating mode based on the temperature difference at each of the air guide angles includes:
[0098] Determine a temperature difference that meets a preset condition as a target temperature difference;
[0099] A target operating mode is determined according to the air guide angle corresponding to the target temperature difference.
[0100] Here, the preset condition may be the minimum temperature difference value, or the second minimum temperature difference value, which may be set based on actual needs and is not limited.
[0101] In one embodiment, operating at each of the at least two wind guide angles and detecting the first temperature and the second temperature at each wind guide angle includes:
[0102] Determining that the operating time of the temperature control device at each of the air guide angles exceeds a preset time threshold, and detecting the first temperature and the second temperature at the corresponding air guide angle;
[0103] Determining a temperature difference at each of the air guide angles according to the first temperature and the second temperature at each of the air guide angles includes:
[0104] The first temperature and the second temperature at each wind guide angle are subtracted to obtain a temperature difference at each wind guide angle.
[0105] Here, considering that the temperature control device needs a certain amount of time to be effective in controlling the room temperature, a preset time threshold is set here, such as 10 minutes, that is, the temperature measured by the temperature sensor is obtained after running for ten minutes under different air guide angles, or the temperature measured by the temperature sensor is used.
[0106] It should be noted that, in an embodiment of the present invention, each temperature sensor can communicate with the temperature control device so that the temperature sensor can send the measured temperature to the temperature control device; alternatively, each temperature sensor and the temperature control device are connected to a terminal held by the user (the terminal can be a mobile phone, tablet computer, personal computer, laptop computer, etc. that can access the Internet), and each temperature sensor can send the measured temperature to the terminal, and the terminal sends the temperature to the temperature control device; of course, communication or data transmission can also be carried out through other devices, which is not limited here.
[0107] The method provided in the embodiments of the present invention addresses the problem that, in current air conditioners, in order to achieve room temperature reduction or heating, the air outlet temperature is often low during cooling and high during heating, resulting in uneven temperature distribution with some areas of the room being cold and others being hot. By arranging two or more temperature sensors in areas where users frequently move around, the operation and air supply mode of the air conditioner are adjusted by comparing the temperature difference between the different temperature sensors, thereby achieving uniform room temperature control.
[0108] Moreover, according to the method provided in the embodiment of the present invention, the temperature sensor can be set at any position based on user needs. When used, the temperature control device automatically determines the model modification and multi-dimensional automatic adjustment to determine the temperature difference of various wind guide angles and the target wind guide angle. This is convenient, fast and low-cost, and provides users with a more temperature-balanced and comfortable environment.
[0109] Figure 2 FIG. 1 is a schematic diagram showing the principle of a temperature control device adjustment method according to an embodiment of the present invention; FIG. Figure 2 As shown, two temperature sensors are set in the room, namely temperature sensor A (a first temperature sensor) and temperature sensor B (a second temperature sensor);
[0110] Temperature control equipment (such as air conditioners) can blow up and down, left and right air at different angles by adjusting vertical and horizontal swing blades.
[0111] During the application process, according to the set temperature Ts, when the operating temperature of the air conditioner reaches or approaches the set temperature Ts, the temperature a, recorded as Ta (measured by temperature sensor A) and the temperature b, recorded as Tb (measured by temperature sensor B) are detected, and the difference |Ta-Tb| is calculated;
[0112] By orthogonally adjusting the different angles of the left and right vertical swing blades and the horizontal swing blades, the temperature difference at different air guide angles is calculated, thereby calculating the minimum value |Ta-Tb|min. The air conditioner operating status and air supply direction when the minimum value |Ta-Tb|min is determined, and air is supplied according to the determined operating status and air supply direction.
[0113] Figure 3 FIG. 1 is a flow chart of another temperature control device adjustment method according to an embodiment of the present invention; FIG. Figure 3 As shown, the method is applied to a temperature control device, such as an air conditioner; the following description is made using a temperature control device condition method applied to an air conditioner as an example, and the method includes:
[0114] Step 301: Place temperature sensor A and temperature sensor B at appropriate locations according to user needs.
[0115] Step 302: The user sets the temperature Ts and the wind speed (i.e., the temperature and wind speed) via the air conditioner remote controller, and the air conditioner starts operating.
[0116] Step 303: Adjust the horizontal and vertical swing blades to the maximum air flow and maximum angle;
[0117] Step 304: Real-time detection of whether the temperature T1 is less than or equal to Ts+a; if yes, proceed to step 305; otherwise, continue detection;
[0118] Here, the temperature T1 may be the current temperature measured by a sensor of the air conditioner itself.
[0119] In actual application, the temperature T1 may also be the temperature measured by a temperature sensor closest to the air conditioner, or measured by a designated temperature sensor, which is not limited here.
[0120] Here, a is a parameter of the condition range, which can be set by the user or developer based on experience; for example, a is 1°, 2°, etc., that is, when the real-time temperature T1 is close to the set temperature Ts, the temperature control device adjustment method can be applied.
[0121] Step 305: When the horizontal and vertical swing blades swing to different angles, determine the temperature value Ta measured by the temperature sensor A and the temperature value Tb measured by the temperature sensor B, and calculate the difference between the two.
[0122] Specifically, step 305 includes:
[0123] Step 3051: Swing the horizontal blade to the uppermost side (or lowermost side) and the vertical blade to the leftmost side (or rightmost side). After running for Xmin (X=10), calculate the temperature difference based on the measurement value of the temperature sensor and record it as |Ta-Tb| 01 ;
[0124] Step 3052: The horizontal pendulum blade remains stationary, and the vertical pendulum blade is swung d° to the right (or d° to the left) from the current position. After running for Xmin (X=10), the temperature difference is calculated based on the measurement value of the temperature sensor and recorded as |Ta-Tb| 02 ;
[0125] Step 3053: Repeat the above step 3052 until the vertical pendulum swings to the rightmost (or leftmost) position, and record |Ta-Tb| 03 、|Ta-Tb| 04 ....|Ta-Tb| 0n ;
[0126] Step 3054: Swing the horizontal blade downward (or upward) by v° from the current position, and swing the vertical blade to the far left (or far right). After running for Xmin (X=10), calculate the temperature difference based on the measurement value of the temperature sensor, and record it as |Ta-Tb| 11 ;
[0127] Step 3056: The horizontal pendulum blade remains stationary again, and the vertical pendulum blade is swung d° to the right (or d° to the left) from the current position. After running for Xmin (X=10), the temperature difference is calculated based on the measurement value of the temperature sensor and recorded as |Ta-Tb| 12 ;
[0128] Step 3057: Repeat the above steps 3056 until the vertical pendulum swings to the rightmost (or leftmost) position, and record |Ta-Tb| 13 、|Ta-Tb| 14 ....|Ta-Tb| 1n ;
[0129] Step 3058: Swing the horizontal blade downward (or upward) by v° from the current position (i.e., the position in step 3054), and swing the vertical blade to the far left (or far right). After running for Xmin (X=10), calculate the temperature difference based on the measurement value of the temperature sensor, and record it as |Ta-Tb| 21 ;
[0130] Step 3059: The horizontal pendulum blade remains stationary again, and the vertical pendulum blade is swung d° to the right (or d° to the left) from the current position. After running for Xmin (X=10), the temperature difference is calculated based on the measurement value of the temperature sensor and recorded as |Ta-Tb| 22 ;
[0131] Step 3060: Repeat the above step 3058 until the vertical pendulum swings to the far left (or far right), and record |Ta-Tb|23 、|Ta-Tb| 24 ....|Ta-Tb| 2n ;
[0132] Step 3061. Repeat the swinging of the horizontal and vertical blades according to steps 3058-3060 until the horizontal blade swings from the top to the bottom (or from the bottom to the top), and when the horizontal blade swings to each angle, swing the vertical blade from the leftmost to the rightmost (or from the rightmost to the leftmost) at intervals of d°. After running for Xmin (X=10), calculate the temperature difference based on the measurement value of the temperature sensor, record it as |Ta-Tb|mn, and obtain the temperature difference table enumerated in Table 1 below.
[0133] Here, m represents the number of different angles to which the horizontal pendulum blade can swing from top to bottom (or from bottom to top);
[0134] n represents the number of different angles to which the vertical pendulum blade can swing from left to right (or from right to left).
[0135] The above d° and v° settings can be pre-set by the developer based on experience and saved in the air conditioner. The angle value setting is not limited and can be 2°, 5°, 10°, etc.
[0136] This is just an example. In practice, any angle enumeration method can be used to obtain the air guide angles of different horizontal swing blade angles and different vertical swing blade angles.
[0137] Table 1 shows the difference between the two temperature sensors at each horizontal blade angle and different vertical blade angles.
[0138] Step 306: Determine the target wind guide angle;
[0139] The target wind guide angle includes: the minimum temperature difference |Ta-Tb| min The corresponding vertical swing blade angle and horizontal swing blade angle.
[0140]
[0141]
[0142] Table 1
[0143] Among them, (0+nd)° is the maximum angle of the vertical swing blade;
[0144] (0+mc)° is the maximum angle of the horizontal swing blade.
[0145] Step 307: Swing the vertical swing blades and the horizontal swing blades to the target wind guide angle, and supply air at the target wind guide angle.
[0146] Figure 4 A schematic diagram of a temperature control device adjustment device provided by an embodiment of the present invention; the device is applied to temperature condition equipment, such as air conditioners, such as Figure 4 As shown, the device includes:
[0147] An adjustment module, configured to obtain at least two air guide angles by adjusting the horizontal swing blades and the vertical swing blades;
[0148] a detection module, configured to operate at each of the at least two air guide angles and detect a first temperature and a second temperature at each of the at least two air guide angles; the first temperature being detected by a first temperature sensor; and the second temperature being detected by a second temperature sensor;
[0149] A processing module is used to determine the temperature difference at each of the wind guide angles based on the first temperature and the second temperature at each of the wind guide angles; based on the temperature difference at each of the wind guide angles, a target operating mode is determined; the target operating mode at least includes: a target wind guide angle.
[0150] In one embodiment, the detection module is further configured to obtain temperature values measured by at least two temperature sensors set according to a preset rule;
[0151] determining a first temperature and a second temperature from the temperature values measured by the at least two temperature sensors;
[0152] Among the temperature values measured by the at least two temperature sensors, two temperature values with the largest difference are used as the first temperature and the second temperature.
[0153] The preset rules include one of the following:
[0154] The distance between the first temperature sensor and the second temperature sensor exceeds a first preset threshold;
[0155] The distance between the first temperature sensor and the temperature control device exceeds a second preset threshold, the distance between the second temperature sensor and the temperature control device exceeds a second preset threshold, and the distance between the first temperature sensor and the second temperature sensor exceeds a third preset threshold.
[0156] In one embodiment, the adjustment module is used to swing the vertical swing blade from left to right at intervals of a first angle difference, so that the vertical swing blade operates at at least two vertical swing blade angles;
[0157] When the vertical swing blade operates at each vertical swing blade angle, the horizontal swing blade is swung from top to bottom at intervals of a second angle difference, so that the horizontal swing blade operates at at least two horizontal swing blade angles;
[0158] The combination of each vertical swing blade angle and each horizontal swing blade angle is used as the wind guide angle.
[0159] In one embodiment, the adjustment module is used to swing the horizontal swing blade from top to bottom at intervals of a second angle difference, so that the horizontal swing blade operates at at least two horizontal swing blade angles;
[0160] When the horizontal swing blade operates at each horizontal swing blade angle, the vertical swing blade is swung from left to right at intervals of a first angle difference, so that the vertical swing blade operates at at least two vertical swing blade angles;
[0161] The combination of each horizontal blade angle and different vertical blade angles is used as the wind guide angle.
[0162] In one embodiment, the processing module is used to determine a temperature difference that meets a preset condition as a target temperature difference;
[0163] A target operating mode is determined according to the air guide angle corresponding to the target temperature difference.
[0164] In one embodiment, the detection module is used to determine that the operating time of the temperature control device at each of the air guide angles exceeds a preset time threshold, and detect the first temperature and the second temperature at the corresponding air guide angle;
[0165] The processing module is used to subtract the first temperature from the second temperature at each of the air guide angles to obtain a temperature difference at each of the air guide angles.
[0166] It should be noted that the temperature control device adjustment apparatus provided in the above embodiments, when implementing the corresponding temperature control device adjustment method, uses the division of the aforementioned program modules as an example. In actual applications, the aforementioned processing can be assigned to different program modules as needed, that is, the internal structure of the temperature control device can be divided into different program modules to complete all or part of the aforementioned processing. In addition, the apparatus provided in the above embodiments and the corresponding method embodiments are based on the same concept. The specific implementation process is detailed in the method embodiments and will not be repeated here.
[0167] Figure 5 A schematic diagram of another temperature control device adjustment device provided by an embodiment of the present invention; Figure 5As shown, the device 50 is applied to a temperature control device, comprising: a processor 501 and a memory 502 for storing a computer program that can be run on the processor; wherein, when the processor 501 is used to run the computer program, it executes: obtaining at least two air guide angles by adjusting the horizontal swing blades and the vertical swing blades; operating at each of the at least two air guide angles, detecting the first temperature and the second temperature at each of the at least two air guide angles; the first temperature is detected by a first temperature sensor; the second temperature is detected by a second temperature sensor; determining the temperature difference at each of the air guide angles based on the first temperature and the second temperature; determining a target operating mode based on the temperature difference at each of the air guide angles; the target operating mode at least includes: a target air guide angle.
[0168] In one embodiment, when the processor 501 is configured to run the computer program, the processor 501 further executes: obtaining temperature values measured by at least two temperature sensors set according to a preset rule;
[0169] determining a first temperature and a second temperature from the temperature values measured by the at least two temperature sensors;
[0170] Among the temperature values measured by the at least two temperature sensors, the two temperature values with the largest difference are used as the first temperature and the second temperature;
[0171] The preset rules include one of the following:
[0172] The distance between the first temperature sensor and the second temperature sensor exceeds a first preset threshold;
[0173] The distance between the first temperature sensor and the temperature control device exceeds a second preset threshold, the distance between the second temperature sensor and the temperature control device exceeds a second preset threshold, and the distance between the first temperature sensor and the second temperature sensor exceeds a third preset threshold.
[0174] In one embodiment, when the processor 501 is configured to run the computer program, the processor 501 further executes: swinging the vertical swing blade from left to right at intervals of a first angle difference, so that the vertical swing blade operates at at least two vertical swing blade angles;
[0175] When the vertical swing blade operates at each vertical swing blade angle, the horizontal swing blade is swung from top to bottom at intervals of a second angle difference, so that the horizontal swing blade operates at at least two horizontal swing blade angles;
[0176] The combination of each vertical swing blade angle and each horizontal swing blade angle is used as the wind guide angle.
[0177] In one embodiment, when the processor 501 is configured to run the computer program, the processor 501 further executes: swinging the horizontal swing blade from top to bottom at intervals of a second angle difference, so that the horizontal swing blade operates at at least two horizontal swing blade angles;
[0178] When the horizontal swing blade operates at each horizontal swing blade angle, the vertical swing blade is swung from left to right at intervals of a first angle difference, so that the vertical swing blade operates at at least two vertical swing blade angles;
[0179] The combination of each horizontal blade angle and different vertical blade angles is used as the wind guide angle.
[0180] In one embodiment, when the processor 501 is configured to run the computer program, the processor 501 further performs: determining a temperature difference value that meets a preset condition as a target temperature difference value;
[0181] A target operating mode is determined according to the air guide angle corresponding to the target temperature difference.
[0182] In one embodiment, when the processor 501 is configured to run the computer program, the processor 501 further performs: determining that the operating time of the temperature control device at each air guide angle exceeds a preset time threshold, and detecting the first temperature and the second temperature at the corresponding air guide angle;
[0183] as well as,
[0184] The first temperature and the second temperature at each wind guide angle are subtracted to obtain a temperature difference at each wind guide angle.
[0185] It should be noted that the temperature control device adjustment apparatus and the temperature control device adjustment method provided in the above embodiments belong to the same concept. The specific implementation process is detailed in the method embodiment and will not be repeated here.
[0186] In actual application, the device 50 may further include: at least one network interface 503. The various components in the device 50 are coupled together via a bus system 504. It is understood that the bus system 504 is used to achieve connection and communication between these components. In addition to the data bus, the bus system 504 also includes a power bus, a control bus, and a status signal bus. However, for the sake of clarity, Figure 4 In the figure, various buses are labeled as bus system 504. There may be at least one processor 501. The network interface 503 is used for wired or wireless communication between the apparatus 50 and other devices.
[0187] The memory 502 in this embodiment of the present invention is used to store various types of data to support the operation of the device 50 .
[0188] The methods disclosed in the above embodiments of the present invention can be applied to or implemented by processor 501. Processor 501 may be an integrated circuit chip with signal processing capabilities. During implementation, each step of the above method can be completed by hardware integrated logic circuits in processor 501 or by software instructions. The above processor 501 may be a general-purpose processor, a digital signal processor (DSP), or other programmable logic device, discrete gate or transistor logic device, discrete hardware components, etc. Processor 501 can implement or execute the various methods, steps, and logic block diagrams disclosed in the embodiments of the present invention. A general-purpose processor may be a microprocessor or any conventional processor. The steps of the methods disclosed in the embodiments of the present invention can be directly implemented and executed by a hardware decoding processor, or by a combination of hardware and software modules in the decoding processor. The software module may be located in a storage medium located in memory 502. Processor 501 reads information from memory 502 and, in conjunction with its hardware, completes the steps of the above method.
[0189] In an exemplary embodiment, the device 50 can be implemented by one or more application-specific integrated circuits (ASICs), DSPs, programmable logic devices (PLDs), complex programmable logic devices (CPLDs), field-programmable gate arrays (FPGAs), general-purpose processors, controllers, microcontrollers (MCUs), microprocessors, or other electronic components to perform the aforementioned method.
[0190] An embodiment of the present invention also provides a computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, performs the following: obtaining at least two wind guide angles by adjusting horizontal swing blades and vertical swing blades; operating at each of the at least two wind guide angles, and detecting a first temperature and a second temperature at each of the at least two wind guide angles; the first temperature is detected by a first temperature sensor; the second temperature is detected by a second temperature sensor; determining a temperature difference at each of the wind guide angles based on the first temperature and the second temperature; determining a target operating mode based on the temperature difference at each of the wind guide angles; the target operating mode at least includes: a target wind guide angle.
[0191] In one embodiment, when the computer program is executed by a processor, it further performs: obtaining temperature values measured by at least two temperature sensors set according to a preset rule;
[0192] determining a first temperature and a second temperature from the temperature values measured by the at least two temperature sensors;
[0193] Among the temperature values measured by the at least two temperature sensors, the two temperature values with the largest difference are used as the first temperature and the second temperature;
[0194] The preset rules include one of the following:
[0195] The distance between the first temperature sensor and the second temperature sensor exceeds a first preset threshold;
[0196] The distance between the first temperature sensor and the temperature control device exceeds a second preset threshold, the distance between the second temperature sensor and the temperature control device exceeds a second preset threshold, and the distance between the first temperature sensor and the second temperature sensor exceeds a third preset threshold.
[0197] In one embodiment, when the computer program is executed by the processor, the computer program further executes: swinging the vertical swing blade from left to right at intervals of a first angle difference, so that the vertical swing blade operates at at least two vertical swing blade angles;
[0198] When the vertical swing blade operates at each vertical swing blade angle, the horizontal swing blade is swung from top to bottom at intervals of a second angle difference, so that the horizontal swing blade operates at at least two horizontal swing blade angles;
[0199] The combination of each vertical swing blade angle and each horizontal swing blade angle is used as the wind guide angle.
[0200] In one embodiment, when the computer program is executed by the processor, the computer program further performs: swinging the horizontal swing blade from top to bottom at intervals of a second angle difference, so that the horizontal swing blade operates at at least two horizontal swing blade angles;
[0201] When the horizontal swing blade operates at each horizontal swing blade angle, the vertical swing blade is swung from left to right at intervals of a first angle difference, so that the vertical swing blade operates at at least two vertical swing blade angles;
[0202] The combination of each horizontal blade angle and different vertical blade angles is used as the wind guide angle.
[0203] In one embodiment, when the computer program is executed by a processor, the computer program further performs: determining a temperature difference value that meets a preset condition as a target temperature difference value;
[0204] A target operating mode is determined according to the air guide angle corresponding to the target temperature difference.
[0205] In one embodiment, when the computer program is executed by the processor, the computer program further performs: determining that the operating time of the temperature control device at each of the air guide angles exceeds a preset time threshold, and detecting the first temperature and the second temperature at the corresponding air guide angle;
[0206] as well as,
[0207] The first temperature and the second temperature at each wind guide angle are subtracted to obtain a temperature difference at each wind guide angle.
[0208] The method provided in the above embodiment for executing the computer program when the processor is running has the same concept as the embodiment of the temperature control device adjustment method. The specific implementation process is detailed in the method embodiment and will not be repeated here.
[0209] In the several embodiments provided in this application, it should be understood that the disclosed apparatus and method can be implemented in other ways. The device embodiments described above are merely schematic. For example, the division of the units is merely a logical function division. In actual implementation, there may be other division methods, such as: multiple units or components can be combined, or can be integrated into another system, or some features can be ignored or not executed. In addition, the coupling, direct coupling, or communication connection between the components shown or discussed can be through some interfaces, and the indirect coupling or communication connection of the devices or units can be electrical, mechanical or other forms.
[0210] The units described above as separate components may or may not be physically separated, and the components displayed as units may or may not be physical units, that is, they may be located in one place or distributed on multiple network units; some or all of the units may be selected according to actual needs to achieve the purpose of the solution of this embodiment.
[0211] In addition, all functional units in the embodiments of the present invention may be integrated into one processing unit, or each unit may be separately used as a unit, or two or more units may be integrated into one unit; the above-mentioned integrated units may be implemented in the form of hardware or in the form of hardware plus software functional units.
[0212] Those skilled in the art will appreciate that all or part of the steps of the above-mentioned method embodiments may be implemented by hardware associated with program instructions, and the aforementioned program may be stored in a computer-readable storage medium. When the program is executed, the program executes the steps of the above-mentioned method embodiments. The aforementioned storage medium includes various media that can store program codes, such as mobile storage devices, read-only memories (ROMs), random access memories (RAMs), magnetic disks, or optical disks.
[0213] Alternatively, if the above-mentioned integrated unit of the present invention is implemented in the form of a software functional module and sold or used as an independent product, it can also be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the embodiment of the present invention, or the part that contributes to the prior art, can be embodied in the form of a software product. The computer software product is stored in a storage medium and includes a number of instructions for enabling a computer device (which can be a personal computer, server, or network device, etc.) to execute all or part of the methods described in each embodiment of the present invention. The aforementioned storage medium includes: various media that can store program codes, such as mobile storage devices, ROM, RAM, magnetic disks or optical disks.
[0214] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any modifications or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in the present invention should be included in the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be based on the scope of protection of the claims.
Claims
1. A method for adjusting a temperature control device, characterized in that: The method comprises: By adjusting the horizontal and vertical swing blades, at least two air guide angles can be obtained; operating at each of the at least two air guide angles, detecting a first temperature and a second temperature at each of the air guide angles; the first temperature being detected by a first temperature sensor; and the second temperature being detected by a second temperature sensor; Determine a temperature difference at each of the air guide angles according to the first temperature and the second temperature at each of the air guide angles; Determining a target operating mode based on the temperature difference at each of the air guide angles; the target operating mode at least includes: a target air guide angle; determining the target operating mode based on the temperature difference at each of the air guide angles includes: Determining a temperature difference that meets a preset condition as a target temperature difference; wherein the target temperature difference is one of the temperature differences at each of the air guide angles; determining a target operating mode according to an air guide angle corresponding to the target temperature difference; The method further comprises: Obtaining temperature values measured by at least two temperature sensors set according to a preset rule; determining a first temperature and a second temperature from the temperature values measured by the at least two temperature sensors; Among the temperature values measured by the at least two temperature sensors, the two temperature values with the largest difference are used as the first temperature and the second temperature; and the preset rule includes one of the following: The distance between the first temperature sensor and the second temperature sensor exceeds a first preset threshold; The distance between the first temperature sensor and the temperature control device exceeds a second preset threshold, the distance between the second temperature sensor and the temperature control device exceeds a second preset threshold, and the distance between the first temperature sensor and the second temperature sensor exceeds a third preset threshold.
2. The method according to claim 1, characterized in that By adjusting the horizontal swing blades and the vertical swing blades, at least two wind guide angles are obtained, including: Swing the vertical swing blade from left to right at intervals of a first angle difference, so that the vertical swing blade operates at at least two vertical swing blade angles; When the vertical swing blade operates at each vertical swing blade angle, the horizontal swing blade is swung from top to bottom at intervals of a second angle difference, so that the horizontal swing blade operates at at least two horizontal swing blade angles; The combination of each vertical swing blade angle and each horizontal swing blade angle is used as the wind guide angle.
3. The method according to claim 1, characterized in that By adjusting the horizontal swing blades and the vertical swing blades, at least two wind guide angles are obtained, including: Swing the horizontal swing blade from top to bottom at intervals of a second angle difference, so that the horizontal swing blade operates at at least two horizontal swing blade angles; When the horizontal swing blade operates at each horizontal swing blade angle, the vertical swing blade is swung from left to right at intervals of a first angle difference, so that the vertical swing blade operates at at least two vertical swing blade angles; The combination of each horizontal blade angle and different vertical blade angles is used as the wind guide angle.
4. The method according to any one of claims 1 to 3, characterized in that The step of operating at each of the at least two wind guide angles and detecting the first temperature and the second temperature at each wind guide angle includes: Determining that the operating time of the temperature control device at each of the air guide angles exceeds a preset time threshold, and detecting the first temperature and the second temperature at the corresponding air guide angle; Determining a temperature difference at each of the air guide angles according to the first temperature and the second temperature at each of the air guide angles includes: The first temperature and the second temperature at each wind guide angle are subtracted to obtain a temperature difference at each wind guide angle.
5. A temperature control device adjustment device, characterized in that: Applied to cleaning equipment, the device comprises: An adjustment module, configured to obtain at least two air guide angles by adjusting the horizontal swing blades and the vertical swing blades; a detection module, configured to operate at each of the at least two air guide angles and detect a first temperature and a second temperature at each of the at least two air guide angles; the first temperature being detected by a first temperature sensor; and the second temperature being detected by a second temperature sensor; A processing module is configured to determine a temperature difference at each of the air guide angles based on the first temperature and the second temperature at each of the air guide angles; and determine a target operating mode based on the temperature difference at each of the air guide angles; the target operating mode at least includes: a target air guide angle; and determining the target operating mode based on the temperature difference at each of the air guide angles includes: Determining a temperature difference that meets a preset condition as a target temperature difference; wherein the target temperature difference is one of the temperature differences at each of the air guide angles; determining a target operating mode according to an air guide angle corresponding to the target temperature difference; The detection module is further configured to obtain temperature values measured by at least two temperature sensors set according to a preset rule; and determine a first temperature and a second temperature from the temperature values measured by the at least two temperature sensors; Among the temperature values measured by the at least two temperature sensors, the two temperature values with the largest difference are used as the first temperature and the second temperature; and the preset rule includes one of the following: The distance between the first temperature sensor and the second temperature sensor exceeds a first preset threshold; The distance between the first temperature sensor and the temperature control device exceeds a second preset threshold, the distance between the second temperature sensor and the temperature control device exceeds a second preset threshold, and the distance between the first temperature sensor and the second temperature sensor exceeds a third preset threshold.
6. A temperature control device regulating device, characterized in that: The device comprises: a processor and a memory for storing a computer program that can be run on the processor; wherein, When the processor is used to run the computer program, the processor performs the steps of the method according to any one of claims 1 to 4.
7. A computer-readable storage medium having a computer program stored thereon, characterized in that: When the computer program is executed by a processor, the steps of the method according to any one of claims 1 to 4 are implemented.
Citation Information
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