Kitchen air conditioner control method and device, computer device and storage medium
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-06-26
- Publication Date
- 2026-03-20
AI Technical Summary
When the range hood is running, the cooling or heating energy of the kitchen air conditioner is carried away, affecting its performance and leading to a decline in user experience.
By acquiring the operating status information of the range hood and the real-time operating parameters of the air conditioner, the air volume compensation parameters are determined, including compensation for lost air volume and compensation for constant air volume, and the operation of the air conditioner is adjusted to compensate for the loss of air volume.
It effectively reduces the impact of range hoods on air conditioner performance, improves air conditioner performance, and enhances user experience.
Smart Images

Figure CN116717885B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of air conditioners, and in particular to a kitchen air conditioner control method and device, computer equipment, a storage medium, and a computer program product. BACKGROUND
[0002] In recent years, as people pay more and more attention to living environment, indoor environment has become the focus of attention, and more and more people begin to realize the adverse effects of kitchen fumes on indoor environment. When cooking, the kitchen is full of hot air, smoke and oil, polluting the kitchen environment. In particular, in the hot summer, the kitchen is like a steamer, greatly affecting people's mood when cooking. In order to cool the air in the kitchen, the kitchen air conditioner brings good refrigeration effect and creates a more comfortable environment for users.
[0003] However, when the kitchen air conditioner is used in the kitchen, due to the influence of the operation of the kitchen hood, part of the cold or heat generated by the kitchen air conditioner is easily taken away, affecting the operation effect of the kitchen air conditioner. SUMMARY
[0004] Therefore, it is necessary to provide a kitchen air conditioner control method and device, computer equipment, a computer readable storage medium and a computer program product, which can effectively reduce the influence of the hood on the operation effect of the kitchen air conditioner.
[0005] In a first aspect, the present application provides a kitchen air conditioner control method, which comprises:
[0006] obtaining working state information of the hood when the air conditioner is in an operating state;
[0007] determining a wind volume compensation parameter of the air conditioner according to the working state information of the hood and real-time operating parameters of the air conditioner;
[0008] controlling the air conditioner to operate based on the wind volume compensation parameter.
[0009] In some embodiments, the wind volume compensation parameter comprises a flow loss wind volume compensation parameter.
[0010] The determination of the wind volume compensation parameter of the air conditioner according to the working state information of the hood and the real-time operating parameters of the air conditioner comprises:
[0011] when the hood is in an operating state, determining a flow loss wind volume compensation parameter of the air conditioner according to the real-time operating parameters of the air conditioner.
[0012] In some embodiments, the wind volume compensation parameter further comprises a constant wind volume compensation parameter.
[0013] The wind volume compensation parameter of the air conditioner is determined according to the working state information of the range hood and the real-time running parameter of the air conditioner, and the method further includes:
[0014] The real-time air volume of the air conditioner is determined according to the real-time running parameter of the air conditioner.
[0015] If the real-time air volume does not meet the target air volume requirement, a constant air volume compensation parameter of the air conditioner is determined.
[0016] In some embodiments, the wind volume compensation parameter includes a constant air volume compensation parameter.
[0017] The wind volume compensation parameter of the air conditioner is determined according to the working state information of the range hood and the real-time running parameter of the air conditioner, and the method further includes:
[0018] When the range hood is in a closed state, the real-time air volume of the air conditioner is determined according to the real-time running parameter of the air conditioner.
[0019] If the real-time air volume does not meet the target air volume requirement, a constant air volume compensation parameter of the air conditioner is determined.
[0020] In some embodiments, the determination of the loss air volume compensation parameter of the air conditioner according to the real-time running parameter of the air conditioner includes:
[0021] An air conditioner running gear is determined based on the real-time running parameter of the air conditioner.
[0022] The air conditioner running gear is matched with an air conditioner gear in a preset mapping table to determine a loss air volume compensation parameter corresponding to the air conditioner running gear; the preset mapping table includes a mapping relationship between the air conditioner gear and the loss air volume compensation parameter.
[0023] In some embodiments, the working state information of the range hood includes a range hood running gear.
[0024] The determination of the loss air volume compensation parameter of the air conditioner according to the real-time running parameter of the air conditioner includes:
[0025] An air conditioner running gear is determined based on the real-time running parameter of the air conditioner.
[0026] The air conditioner running gear is matched with an air conditioner gear in a gear mapping table to determine a compensation parameter mapping table corresponding to the air conditioner running gear, the gear mapping table includes a corresponding relationship between the air conditioner gear and the compensation parameter mapping table, and the compensation parameter mapping table includes a corresponding relationship between the range hood gear and the loss air volume compensation parameter.
[0027] The loss air volume compensation parameter corresponding to the range hood running gear is determined according to the range hood running gear and the compensation parameter mapping table.
[0028] The exhaust air volume compensation parameter corresponding to the operating gear of the range hood is determined as the exhaust air volume compensation parameter of the air conditioner.
[0029] In some embodiments, the target air volume requirement is related to a target air volume; and the determination of the constant air volume compensation parameter of the air conditioner comprises:
[0030] The constant air volume compensation parameter of the air conditioner is determined according to the difference between the real-time air volume and the target air volume.
[0031] In some embodiments, the real-time operating parameters of the air conditioner include fan excitation energy, fan rotation mechanical energy and fan internal energy.
[0032] The determination of the real-time air volume of the air conditioner according to the real-time operating parameters of the air conditioner comprises:
[0033] The real-time air volume of the air conditioner is obtained according to the fan excitation energy, the fan rotation mechanical energy and the fan internal energy of the air conditioner by calling a preset energy conversion model, the preset energy conversion model being generated according to a functional relationship between the real-time air volume of the air conditioner and the fan excitation energy, the fan rotation mechanical energy and the fan internal energy of the air conditioner.
[0034] In a second aspect, the present application further provides a kitchen air conditioner control device, which comprises:
[0035] An information acquisition module is configured to acquire working state information of a range hood when an air conditioner is in an operating state.
[0036] A parameter determination module is configured to determine an air volume compensation parameter of the air conditioner according to the working state information of the range hood and real-time operating parameters of the air conditioner.
[0037] A control module is configured to control operation of the air conditioner based on the air volume compensation parameter.
[0038] In a third aspect, the present application further provides a computer device comprising a memory and a processor, wherein the memory stores a computer program, and the processor implements the steps of the above method when executing the computer program.
[0039] In a fourth aspect, the present application further provides a computer readable storage medium, which stores a computer program, and the computer program implements the steps of the above method when executed by a processor.
[0040] In a fifth aspect, the present application further provides a computer program product comprising a computer program, and the computer program implements the steps of the above method when executed by a processor.
[0041] The kitchen air conditioner control method, device, computer equipment, storage medium and computer program product can obtain the working state information of the range hood in the kitchen when the air conditioner is in the running state. The working state information of the range hood can reflect whether the range hood in the kitchen will affect the operation of the kitchen air conditioner. According to the working state information of the range hood and the real-time running parameters of the air conditioner, the air volume compensation parameter of the air conditioner is determined, and the air conditioner is controlled to run based on the air volume compensation parameter. The air volume compensation parameter can compensate the air volume when the air conditioner runs, which can effectively reduce the influence of the running range hood and other factors on the operation effect of the air conditioner, improve the operation effect of the kitchen air conditioner, and further improve the user experience. BRIEF DESCRIPTION OF DRAWINGS
[0042] Figure 1 An application environment diagram of the kitchen air conditioner control method in some embodiments;
[0043] Figure 2 A flowchart of the kitchen air conditioner control method in some embodiments;
[0044] Figure 3 A flowchart of the step of determining the air loss volume compensation parameter of the air conditioner according to the real-time running parameters of the air conditioner in some embodiments;
[0045] Figure 4 A flowchart of the kitchen air conditioner control method in some other embodiments;
[0046] Figure 5 A structure block diagram of the kitchen air conditioner control device in some embodiments;
[0047] Figure 6 An internal structure diagram of the computer equipment in some embodiments. DETAILED DESCRIPTION
[0048] In order to make the purpose, technical scheme and advantages of the present application clearer, the present application will be further described in detail below with reference to the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and do not limit the present application.
[0049] The kitchen air conditioner is an air conditioning device specially designed for environments such as kitchens where high temperatures, oil fumes and grease are likely to occur. It can quickly adjust the temperature of the kitchen environment and create a more comfortable use environment for users. The range hood is an electric appliance specially designed to purify the kitchen environment. By installing a range hood in the kitchen environment, the oil fumes and grease generated during cooking can be quickly removed and discharged outside, reducing kitchen pollution and purifying the kitchen air conditioner. It is one of the essential kitchen appliances in today's kitchens.
[0050] While range hoods and kitchen air conditioners are appliances designed to create a comfortable user environment, their incompatible working principles mean that the operation of a range hood can negatively impact the performance of the kitchen air conditioner, reducing its efficiency and affecting the user experience.
[0051] The kitchen air conditioning control method provided in this application embodiment can be applied to, for example, Figure 1 The application environment is shown. Air conditioner 102 is equipped with an air conditioner controller 104, and range hood 106 is equipped with a range hood controller 108. Air conditioner controller 104 and range hood controller 108 are communicatively connected. A data storage system can store the data that air conditioner controller 104 needs to process. The data storage system can be integrated into air conditioner controller 104 or placed in the cloud or other network servers. When air conditioner 102 is running, air conditioner controller 104 interacts with range hood controller 108 to obtain the operating status information of range hood 106. Based on the operating status information of range hood 106 and the real-time operating parameters of air conditioner 102, it determines the airflow compensation parameters of air conditioner 102 and controls the operation of air conditioner 102 based on the airflow compensation parameters. Both air conditioner controller 104 and range hood controller 108 can be any control device with logic processing capabilities, such as MCU or microcontroller. Air conditioner 102 and range hood 106 can be integrated into a single air conditioning system or they can be two independent operating systems.
[0052] In some embodiments, such as Figure 2 As shown, a kitchen air conditioning control method is provided, which is applied to... Figure 1 Taking the air conditioner controller as an example, the explanation includes the following steps:
[0053] Step 202: Obtain the operating status information of the range hood when the air conditioner is running.
[0054] The operating status information of the range hood is a set of parameters reflecting its operational status. This information determines the current operating condition of the range hood, such as whether it is running and what its operating state is. The specific content of the operating status information is determined based on the range hood's operating status. For example, if the range hood is running, the operating status information may include start-up information, start-up time information, and operating parameters. If the range hood is off, the operating status information may include off-duty information and off-duty time information.
[0055] Specifically, after the air conditioner controller puts the air conditioner into operation, it obtains the operating status information of the range hood from the range hood controller.
[0056] In some embodiments, the air conditioner controller generates an information acquisition instruction after controlling the air conditioner to be in the running state, and sends the information acquisition instruction to the range hood controller. The range hood controller sends the working state information of the range hood to the air conditioner controller in response to the information acquisition instruction.
[0057] In step 204, the air conditioner wind volume compensation parameter is determined according to the working state information of the range hood and the real-time running parameter of the air conditioner.
[0058] The real-time running parameter of the air conditioner is the running parameter data when the current air conditioner is in the running state, and the real-time running parameter of the air conditioner can be used to determine the current running state of the air conditioner. The real-time running parameter of the air conditioner can include the air conditioner running gear, the air conditioner real-time air volume, the air conditioner fan running parameter, etc.
[0059] The air conditioner wind volume compensation parameter is a compensation parameter for compensating the air volume of the air conditioner to meet the user's use requirements.
[0060] Specifically, the air conditioner controller determines the air conditioner wind volume compensation parameter required for compensating the air volume of the air conditioner to meet the user's use requirements according to the working state information of the range hood obtained from the range hood controller and the real-time running parameter of the air conditioner itself.
[0061] In step 206, the air conditioner is controlled to run based on the wind volume compensation parameter.
[0062] Specifically, the air conditioner controller controls the air conditioner to run based on the determined wind volume compensation parameter, which can make the running effect of the air conditioner meet the user's use requirements.
[0063] In some embodiments, the air conditioner controller can directly determine the target running parameter of the air conditioner according to the wind volume compensation parameter, and control the air conditioner to run based on the target running parameter of the air conditioner.
[0064] In the above kitchen air conditioner control method, the air conditioner controller obtains the working state information of the range hood in the kitchen when the air conditioner is in the running state. The working state information of the range hood can reflect whether the range hood in the kitchen will affect the running of the kitchen air conditioner. The air conditioner wind volume compensation parameter is determined according to the working state information of the range hood and the real-time running parameter of the air conditioner, and the air conditioner is controlled to run based on the wind volume compensation parameter. The wind volume compensation parameter can compensate the air volume of the air conditioner when running, which can effectively reduce the influence of the running of the range hood and other influencing factors on the running effect of the air conditioner, improve the running effect of the kitchen air conditioner, and further improve the user's use experience.
[0065] In the kitchen air conditioner use scene, the operation of the extractor hood is the main factor affecting the operation effect of the air conditioner. When the extractor hood is running, it takes away part of the cold or heat generated by the kitchen air conditioner, which will greatly reduce the operation effect of the air conditioner and cannot meet the user's use demand.
[0066] Based on this, in some embodiments, the air volume compensation parameter includes a flow loss air volume compensation parameter, and the air volume compensation parameter of the air conditioner is determined according to the working state information of the extractor hood and the real-time operation parameter of the air conditioner, including:
[0067] When the extractor hood is in the running state, the flow loss air volume compensation parameter of the air conditioner is determined according to the real-time operation parameter of the air conditioner.
[0068] The flow loss air volume compensation parameter is a compensation parameter for compensating the air volume loss of the air conditioner caused by the operation of the extractor hood. When the extractor hood is in the running state, the cold or heat generated by the air conditioner will inevitably have a certain loss, and if the operation effect of the air conditioner is to be restored to meet the user's use demand, the air volume of the air conditioner needs to be compensated.
[0069] Specifically, the air conditioner controller determines the flow loss air volume compensation parameter of the air conditioner according to the real-time operation parameter of the air conditioner after determining that the extractor hood is in the running state according to the working state information of the extractor hood. It can be understood that the air conditioner controller can determine the flow loss air volume compensation parameter of the air conditioner according to the real-time operation parameter of the air conditioner through a pre-stored mapping relationship. For example, the air conditioner controller can pre-store the mapping relationship between the real-time operation parameter of the air conditioner and the flow loss air volume compensation parameter of the air conditioner, and when it is determined that the extractor hood is in the running state, the flow loss component compensation parameter of the air conditioner can be directly determined according to the real-time operation parameter of the air conditioner and the preset mapping relationship.
[0070] The air conditioner controller can also determine the flow loss air volume compensation parameter of the air conditioner according to the real-time operation parameter of the air conditioner through a pre-stored function relationship. For example, the air conditioner controller can pre-store the function relationship between the real-time operation parameter of the air conditioner and the flow loss air volume compensation parameter of the air conditioner, and when it is determined that the extractor hood is in the running state, the flow loss component compensation parameter of the air conditioner can be directly determined according to the real-time operation parameter of the air conditioner and the preset function relationship.
[0071] In some embodiments, the working state information of the extractor hood directly includes the extractor hood opening information or the extractor hood closing information, and when the extractor hood is in the running state, the air conditioner controller can directly determine that the extractor hood is in the running state according to the extractor hood opening information in the working state information of the extractor hood.
[0072] In some embodiments, the air conditioner controller can determine whether the range hood is in the running state according to the type of the working state information of the range hood. Specifically, when the range hood is in the running state, the working state information of the range hood sent by the range hood controller can include the range hood exhaust capacity, the range hood operating gear and the like start type information, and the air conditioner controller can determine that the range hood is in the running state when it is determined that the obtained working state information contains the start type information.
[0073] In the above embodiments, when it is determined that the range hood is in the running state, the air conditioner controller determines the air conditioner flow loss compensation parameter according to the real-time operating parameters of the air conditioner, which can compensate for the flow loss due to the operation of the range hood, so that the actual air outlet capacity of the air conditioner can meet the use demand of the user, effectively reduce the influence of the operation of the range hood on the operation effect of the air conditioner, improve the operation effect of the kitchen air conditioner, and further improve the use experience of the user.
[0074] Further, in order to accurately and quickly determine the air conditioner flow loss compensation parameter according to the real-time operating parameters of the air conditioner, in some embodiments, the air conditioner flow loss compensation parameter is determined according to the real-time operating parameters of the air conditioner, including:
[0075] The air conditioner operating gear is determined based on the real-time operating parameters of the air conditioner, the air conditioner operating gear is matched with the air conditioner gear in the preset mapping table, and the flow loss compensation parameter corresponding to the air conditioner operating gear is determined.
[0076] The preset mapping table includes the mapping relationship between the air conditioner gear and the flow loss compensation parameter. The designer can pre-determine the flow loss compensation parameter required for compensating for the flow loss under each air conditioner gear when the range hood is turned on, and then bind and store each air conditioner gear and the flow loss compensation parameter corresponding to the air conditioner gear to obtain the preset mapping table including the corresponding relationship between the air conditioner gear and the flow loss compensation parameter. The designer can store the preset mapping table in the data storage area of the air conditioner controller, so as to facilitate the controller to call at any time when determining the flow loss compensation parameter.
[0077] Specifically, the real-time operating parameters of the air conditioner include the operating gear of the air conditioner, the air conditioner controller determines the air conditioner operating gear according to the real-time operating parameters of the air conditioner, calls the preset mapping table from the data storage area, finds the air conditioner gear matched with the air conditioner operating gear from the preset mapping table according to the air conditioner operating gear, and determines the flow loss compensation parameter corresponding to the air conditioner operating gear as the flow loss compensation parameter corresponding to the air conditioner operating gear.
[0078] In the above embodiments, by pre-constructing the preset mapping table including the corresponding relationship between the air conditioner gear and the air loss compensation parameter, when the air conditioner controller needs to determine the air loss compensation parameter of the air conditioner, only needs to look up the preset mapping table according to the determined air conditioner running gear, so as to quickly and accurately determine the air loss compensation parameter corresponding to the air conditioner running gear, and provide data basis for subsequent compensation of the air volume of the air conditioner.
[0079] And now the kitchen is equipped with an oil smoke machine, in order to better meet the user's use demand, usually will be equipped with multiple operating gears, based on this, in some other embodiments, the working state information of the oil smoke machine includes the operating gear of the oil smoke machine. As shown in the figure, the air loss compensation parameter of the air conditioner is determined according to the real-time running parameter of the air conditioner, including: Figure 3
[0080] Step 302, determining the air conditioner running gear based on the real-time running parameter of the air conditioner.
[0081] Specifically, the real-time running parameter of the air conditioner contains the running gear of the air conditioner, and the air conditioner controller determines the air conditioner running gear according to the real-time running parameter of the air conditioner.
[0082] Step 304, matching the air conditioner running gear with the air conditioner gear in the gear mapping table, and determining the compensation parameter mapping table corresponding to the air conditioner running gear.
[0083] Wherein, the gear mapping table includes the corresponding relationship between the air conditioner gear and the compensation parameter mapping table, and the compensation parameter mapping table includes the corresponding relationship between the oil smoke machine gear and the air loss compensation parameter. When generating the compensation parameter mapping table and the gear mapping table, the designer can control the air conditioner to run at each air conditioner gear, and determine the air loss compensation parameter required for the oil smoke machine to compensate the air loss when running at different oil smoke machine gears at each air conditioner gear. Then bind the corresponding relationship between the oil smoke machine gear and the air loss compensation parameter at each air conditioner gear to obtain the compensation parameter mapping table corresponding to each air conditioner gear. Then bind and store each air conditioner gear and its corresponding compensation parameter mapping table, and the gear mapping table including the corresponding relationship between the air conditioner gear and the compensation parameter mapping table is obtained. The designer can store the preset gear mapping table and the compensation parameter mapping table in the data storage area of the air conditioner controller, so as to call them at any time when the controller determines the air loss compensation parameter.
[0084] Specifically, after the air conditioner controller determines the air conditioner running gear, it first calls the preset gear mapping table from the data storage area, looks up the air conditioner gear matched with the air conditioner running gear from the gear mapping table according to the air conditioner running gear, and determines the compensation parameter mapping table corresponding to the air conditioner running gear as the compensation parameter mapping table corresponding to the air conditioner running gear.
[0085] At step 306, the exhaust hood operating gear corresponding flow loss compensation parameter is determined according to the exhaust hood operating gear and the compensation parameter mapping table.
[0086] Specifically, the air conditioner controller determines the exhaust hood operating gear according to the working state information of the exhaust hood, then finds the exhaust hood gear matched with the exhaust hood operating gear from the compensation parameter mapping table according to the exhaust hood operating gear, and determines the flow loss compensation parameter corresponding to the exhaust hood gear matched with the exhaust hood operating gear as the flow loss compensation parameter corresponding to the exhaust hood operating gear.
[0087] At step 308, the flow loss compensation parameter corresponding to the exhaust hood operating gear is determined as the flow loss compensation parameter of the air conditioner.
[0088] Specifically, the air conditioner controller determines the flow loss compensation parameter corresponding to the exhaust hood operating gear as the flow loss compensation parameter of the air conditioner.
[0089] In the above embodiments, in the case that the exhaust hood has multiple exhaust hood gears, by pre-constructing the compensation parameter mapping table containing the corresponding relationship between the exhaust hood gears and the flow loss compensation parameters, and the gear mapping table containing the corresponding relationship between the air conditioner gears and the compensation parameter mapping table, when the air conditioner controller needs to determine the flow loss compensation parameter of the air conditioner, it only needs to find the two preset mapping tables according to the determined air conditioner operating gear and the exhaust hood operating gear, so as to quickly and accurately determine the flow loss compensation parameter of the air conditioner, and provide data basis for subsequent compensation of the air volume of the air conditioner.
[0090] In actual use, the running effect of the kitchen air conditioner will be affected not only by the operation of the exhaust hood, but also by the ventilation area of the kitchen air conditioner itself.
[0091] Based on this, in some embodiments, the air volume compensation parameter further includes a constant air volume compensation parameter. Determining the air volume compensation parameter of the air conditioner according to the working state information of the exhaust hood and the real-time operating parameters of the air conditioner further includes:
[0092] Determining the real-time air volume of the air conditioner according to the real-time operating parameters of the air conditioner. If the real-time air volume does not meet the target air volume requirement, the constant air volume compensation parameter of the air conditioner is determined.
[0093] The constant air volume compensation parameter is a compensation parameter required for air volume compensation due to the instability of the air volume caused by the change of the ventilation area of the air conditioner. The ventilation area of the air conditioner, i.e. the air outlet area of the air conditioner, is easily blocked by dust and other pollutants in the setting environment of the kitchen air conditioner, which has a relatively high content of oil, dirt and other pollutants, thereby affecting the air volume of the air conditioner. If the running effect of the air conditioner is to be restored to meet the user's usage requirements, constant air volume compensation of the air volume of the air conditioner is required.
[0094] The real-time air volume of the air conditioner refers to the actual air volume value that can be generated when the air conditioner is in an operating state.
[0095] In some embodiments, the actual operating parameter of the air conditioner includes the real-time air volume of the air conditioner. The air conditioner controller can directly determine the real-time air volume of the air conditioner according to the actual operating parameter of the air conditioner.
[0096] In some embodiments, the actual operating parameter of the air conditioner includes operating parameters that can be used to calculate the real-time air volume of the air conditioner, such as fan speed, fan kinetic energy, etc. The air conditioner controller can calculate the actual air volume of the air conditioner according to the actual operating parameter of the air conditioner.
[0097] The target air volume requirement is the air volume requirement that should be met under normal circumstances when the air conditioner is in a target operating gear. If the real-time air volume of the air conditioner cannot meet the target air volume requirement, it can be considered that the air outlet of the air conditioner is currently blocked by pollutants, causing the ventilation area to decrease and thus reducing the real-time air volume of the air conditioner. It can be understood that the target air volume requirement can be determined according to the actual needs of the user. If the user needs accurate air volume adjustment effect, the target air volume requirement can be that the real-time air volume of the air conditioner is equal to the target air volume of the air conditioner under the current air conditioner gear. If the user does not need accurate air volume adjustment effect, the target air volume requirement can be that the real-time air volume of the air conditioner is higher than the preset air volume threshold corresponding to the current air conditioner gear. The preset air volume threshold can be calculated according to the target air volume under the current air conditioner gear, for example, 90% of the target air volume can be determined as the preset air volume threshold.
[0098] Specifically, when the range hood is in an operating state, the air conditioner controller can determine the real-time air volume of the air conditioner according to the real-time operating parameter of the air conditioner in addition to determining the loss air volume compensation parameter of the air conditioner. The real-time air volume is compared with the target air volume requirement to determine whether the real-time air volume of the air conditioner meets the target air volume requirement. If the real-time air volume of the air conditioner cannot meet the target air volume requirement, it can be considered that the air outlet of the air conditioner is currently blocked by pollutants, causing the ventilation area to decrease and thus reducing the real-time air volume of the air conditioner. The air conditioner controller determines the constant air volume compensation for the air volume of the air conditioner.
[0099] In the above embodiments, when the range hood is in the running state, in addition to considering the influence of the range hood exhaust on the air conditioner running effect, the air conditioner controller also compares the air conditioner real-time air volume with the target air volume requirement, and considers the influence of the air conditioner ventilation area reduction on the air conditioner running effect. When it is determined that the air conditioner has air volume instability caused by air conditioner ventilation area change, the constant air volume compensation of the air conditioner air volume compensation is determined in time, the influence of the air conditioner ventilation area reduction on the air conditioner running effect is effectively reduced, the kitchen air conditioner running effect is improved, and the user experience is improved.
[0100] It can be understood that when the range hood is not in the running state, the air conditioner may also have air volume instability caused by air conditioner ventilation area change. Therefore, in some embodiments, the air volume compensation parameter includes a constant air volume compensation parameter. The air volume compensation parameter of the air conditioner is determined according to the working state information of the range hood and the real-time running parameter of the air conditioner, including:
[0101] When the range hood is in the closed state, the real-time air volume of the air conditioner is determined according to the real-time running parameter of the air conditioner, and if the real-time air volume does not meet the target air volume requirement, the constant air volume compensation parameter of the air conditioner is determined.
[0102] Specifically, after it is determined according to the working state information of the range hood that the range hood is in the closed state, the real-time air volume of the air conditioner is determined according to the real-time running parameter of the air conditioner, the real-time air volume is compared with the target air volume requirement, it is determined whether the real-time air volume of the air conditioner meets the target air volume requirement, if the real-time air volume of the air conditioner cannot meet the target air volume requirement, it can be considered that the air outlet of the air conditioner is possibly blocked by pollutants, causing the ventilation area to be reduced, and thus the real-time air volume of the air conditioner is reduced. The air conditioner controller determines the constant air volume compensation of the air volume compensation of the air conditioner.
[0103] In the above embodiments, when the range hood is in the closed state, the air conditioner controller can only consider the influence of the air conditioner ventilation area reduction on the air conditioner running effect. When it is determined that the air conditioner has air volume instability caused by air conditioner ventilation area change, the constant air volume compensation parameter of the air volume compensation of the air conditioner is determined in time, the influence of the air conditioner ventilation area reduction on the air conditioner running effect is effectively reduced, the kitchen air conditioner running effect is improved, and the user experience is improved.
[0104] Further, in some embodiments, the target air volume requirement is related to a target air volume. Determining the constant air volume compensation parameter of the air conditioner includes: determining the constant air volume compensation parameter of the air conditioner according to the difference between the real-time air volume and the target air volume.
[0105] The target air volume refers to the air volume value that should be generated under the current air conditioner gear when the air conditioner is normally running.
[0106] In some embodiments, the air conditioner controller can determine the current air conditioner operating gear according to the actual operating parameters of the air conditioner, look up the preset air volume mapping table according to the air conditioner operating gear, determine the air volume value corresponding to the current air conditioner operating gear, and determine the air volume value corresponding to the current air conditioner operating gear as the target air volume. It can be understood that the preset air volume mapping table includes the correspondence between the air conditioner gear and the air volume value.
[0107] Specifically, when the air conditioner controller determines that there is a situation of unstable air volume in the air conditioner due to a change in the air conditioning ventilation area, it can determine a constant air volume compensation parameter of the air conditioner according to the difference between the real-time air volume and the target air volume of the air conditioner, effectively reduce the influence of the reduction of the air conditioning ventilation area on the operation effect of the air conditioner, improve the operation effect of the kitchen air conditioner, and further improve the user experience.
[0108] The real-time air volume of the air conditioner is an important parameter value for determining the air volume compensation parameter. In some embodiments, the real-time operating parameters of the air conditioner include fan excitation energy, fan rotating mechanical energy, and fan internal energy. The real-time air volume of the air conditioner is determined according to the real-time operating parameters of the air conditioner, including:
[0109] According to the fan excitation energy, the fan rotating mechanical energy, and the fan internal energy of the air conditioner, the preset energy conversion model is called to obtain the real-time air volume of the air conditioner. The preset energy conversion model is generated according to the functional relationship between the real-time air volume of the air conditioner and the fan excitation energy, the fan rotating mechanical energy, and the fan internal energy of the air conditioner.
[0110] The fan excitation energy refers to the excitation energy of the direct current fan in the air conditioner, which can be understood as the total energy used for fan rotation. The fan excitation energy can be determined by the preset relationship between the fan current, the fan voltage, and the excitation energy. The fan rotating mechanical energy refers to the energy required for the fan to rotate in the air conditioner, which can be determined by the preset relationship between the fan mass, the radius, and the angular velocity of rotation and the fan rotating mechanical energy. The fan internal energy is the internal energy consumed due to heating when the fan rotates, which can be determined by the preset relationship between the fan current and the internal equivalent resistance and the internal energy.
[0111] The preset energy conversion model is generated by the designer in advance according to the functional relationship between the real-time air volume of the air conditioner and the fan excitation energy, the fan rotating mechanical energy, and the fan internal energy of the air conditioner. After the fan excitation energy, the fan rotating mechanical energy, and the fan internal energy of the air conditioner are determined, the real-time air volume of the air conditioner can be determined by the preset energy conversion model.
[0112] Specifically, the air conditioner controller obtains the real-time running parameters of the air conditioner, and according to the fan excitation energy, the fan rotating mechanical energy and the fan internal energy in the real-time running parameters, a preset energy conversion model is called to obtain the real-time air volume of the air conditioner. By presetting the energy conversion model in the air conditioner controller, the real-time air volume of the air conditioner can be quickly and accurately determined according to the real-time running parameters of the air conditioner, thereby providing a data basis for the determination of the subsequent air volume compensation parameters.
[0113] Although the air volume of the air conditioner can be compensated according to the obtained air volume compensation parameter, so that the air volume of the air conditioner can meet the use demand of the user, however, in order to further improve the accuracy of the air volume compensation of the air conditioner, in some embodiments, the air conditioner controller gradually adjusts the running parameters of the air conditioner, such as the current of the air fan, according to the air volume compensation parameter through a preset PID adjustment algorithm after obtaining the air volume compensation parameter, so that the real-time air volume of the air conditioner can accurately meet the use demand of the user.
[0114] In some embodiments, as shown in Figure 4 , a kitchen air conditioner control method is provided, which specifically includes the following steps:
[0115] Firstly, when the user has a use demand of the air conditioner, the user triggers to generate an air conditioner starting instruction, and the air conditioner starting instruction contains an air conditioner running gear selected by the user. The air conditioner controller controls the air conditioner to start to run in the air conditioner running gear in response to the air conditioner starting instruction.
[0116] The air conditioner controller judges whether the air volume of the air conditioner is constant, that is, whether the air volume coefficient is constant. The air conditioner controller acquires the excitation energy E s , the mechanical energy E k of the fan rotation and the internal energy E r consumed by the fan heating according to the current air conditioner, and according to the excitation energy E s , the mechanical energy E k of the fan rotation and the internal energy E r consumed by the fan heating, the energy conversion model is called to obtain the current fan energy E w当前 of the air conditioner, that is, the corresponding real-time air volume E w当前 . E s , E k , E r ).
[0117] The air conditioner controller compares E w当前 with the target air volume E w目标 corresponding to the air conditioner running gear, and when E w当前 does not meet the target air volume E w目标 corresponding to the air conditioner running gear, it means that the ventilation area of the air conditioner changes, and E w当前and E w目标 The difference between f(E w当前 , E w目标 ) and f(E w , E w ) is the constant air volume compensation coefficient K s of the air conditioner. k Substitute K r into f(E w , E w目标 , E v , K v ), and use the PID algorithm to gradually approach E w目标 w with E v w, that is, by continuously adjusting the current of the fan, the air volume is ultimately maintained constant.
[0118] The air conditioner controller generates an information acquisition instruction and sends the information acquisition instruction to the range hood controller. The range hood controller responds to the information acquisition instruction and sends the working state information of the range hood to the air conditioner controller. If the range hood is in the closed state, the working state information of the range hood is the hood closed information. If the range hood is in the running state, the working state information of the range hood includes the hood running information.
[0119] The air conditioner controller determines whether the range hood is in the running state through the working state information of the range hood. When the range hood is not in the running state, the air conditioner controller maintains the air volume constant and runs.
[0120] When the air conditioner controller determines that the range hood is in the running state according to the working running parameters of the range hood, the air conditioner controller first compensates the real-time air volume of the air conditioner to be equal to the target air volume under the current air conditioner running gear according to the above compensation method. After the air volume is constant, the air conditioner running gear of the air conditioner is obtained, the preset relationship table is searched according to the air conditioner running gear, the loss air volume compensation coefficient k v of the air conditioner is determined, and the actual required air volume f(E v , k w目标 ) can be obtained according to the loss air volume compensation coefficient k v . The PID algorithm is used for air volume compensation control according to the actual required air volume, and the actual air volume of the air conditioner is finally satisfied with the actual required air volume.
[0121] In some embodiments, the preset relationship table is as shown in the following table:
[0122]
[0123] It should be understood that although the steps in the flowcharts involved in the embodiments described above are shown in sequence according to the arrows, these steps are not necessarily executed in the order indicated by the arrows. Unless otherwise specified herein, the execution of these steps is not strictly limited in sequence, and these steps can be executed in other orders. Moreover, at least some of the steps in the flowcharts involved in the embodiments described above can include multiple steps or multiple stages, which are not necessarily executed at the same time, but can be executed at different times, and the execution order of these steps or stages is not necessarily sequential, but can be alternately or alternately executed with at least part of other steps or steps or stages in other steps.
[0124] Based on the same inventive concept, the embodiments of the present application also provide a kitchen air conditioner control device for implementing the kitchen air conditioner control method described above. The implementation scheme for solving the problem provided by the device is similar to the implementation scheme described in the above method, so the specific limitations in one or more kitchen air conditioner control device embodiments provided below can refer to the limitations of the kitchen air conditioner control method described above, and will not be repeated here.
[0125] In some embodiments, as shown in Figure 5 A kitchen air conditioner control device 500 is provided, comprising: an information acquisition module 501, a parameter determination module 502, and a control module 503, wherein:
[0126] The information acquisition module 501 is configured to acquire working state information of the extractor hood when the air conditioner is in a running state.
[0127] The parameter determination module 502 is configured to determine an air volume compensation parameter of the air conditioner according to the working state information of the extractor hood and real-time running parameters of the air conditioner.
[0128] The control module 503 is configured to control the air conditioner to run based on the air volume compensation parameter.
[0129] The kitchen air conditioner control device described above, the air conditioner controller acquires the working state information of the extractor hood in the kitchen when the air conditioner is in a running state. The working state information of the extractor hood can reflect whether the extractor hood in the kitchen will affect the running of the kitchen air conditioner. According to the working state information of the extractor hood and the real-time running parameters of the air conditioner, the air volume compensation parameter of the air conditioner is determined, and the air conditioner is controlled to run based on the air volume compensation parameter. The air volume compensation parameter can compensate the air volume when the air conditioner runs, which can effectively reduce the influence of factors such as the running of the extractor hood on the running effect of the air conditioner, improve the running effect of the kitchen air conditioner, and further improve the user experience.
[0130] In some embodiments, the air volume compensation parameter comprises a constant air volume compensation parameter. The parameter determination module is further configured to: determine a real-time air volume of the air conditioner according to the real-time operation parameter of the air conditioner, and determine the constant air volume compensation parameter of the air conditioner if the real-time air volume does not meet the target air volume requirement.
[0131] In some embodiments, the air volume compensation parameter further comprises a constant air volume compensation parameter. The parameter determination module is further configured to: determine a real-time air volume of the air conditioner according to the real-time operation parameter of the air conditioner, and determine the constant air volume compensation parameter of the air conditioner if the real-time air volume does not meet the target air volume requirement.
[0132] In some embodiments, the air volume compensation parameter comprises a constant air volume compensation parameter. The parameter determination module is further configured to: determine a real-time air volume of the air conditioner according to the real-time operation parameter of the air conditioner when the range hood is in the off state, and determine the constant air volume compensation parameter of the air conditioner if the real-time air volume does not meet the target air volume requirement.
[0133] In some embodiments, the parameter determination module is further configured to: determine an air conditioner operating gear based on the real-time operation parameter of the air conditioner; match the air conditioner operating gear with an air conditioner gear in a preset mapping table to determine a loss air volume compensation parameter corresponding to the air conditioner operating gear; and the preset mapping table comprises a mapping relationship between the air conditioner gear and the loss air volume compensation parameter.
[0134] In some embodiments, the working state information of the range hood comprises a range hood operating gear. The parameter determination module is further configured to: determine an air conditioner operating gear based on the real-time operation parameter of the air conditioner; match the air conditioner operating gear with an air conditioner gear in a gear mapping table to determine a compensation parameter mapping table corresponding to the air conditioner operating gear, the gear mapping table comprising a corresponding relationship between the air conditioner gear and the compensation parameter mapping table, and the compensation parameter mapping table comprising a corresponding relationship between the range hood gear and the loss air volume compensation parameter; determine the loss air volume compensation parameter corresponding to the range hood operating gear according to the range hood operating gear and the compensation parameter mapping table; and determine the loss air volume compensation parameter corresponding to the range hood operating gear as the loss air volume compensation parameter of the air conditioner.
[0135] In some embodiments, the target air volume requirement is related to a target air volume. The parameter determination module is further configured to: determine the constant air volume compensation parameter of the air conditioner according to a difference between the real-time air volume and the target air volume.
[0136] In some embodiments, the real-time operation parameter of the air conditioner comprises fan excitation energy, fan rotating mechanical energy, and fan internal energy. The parameter determination module is further configured to: determine the real-time air volume of the air conditioner by calling a preset energy conversion model according to the fan excitation energy, the fan rotating mechanical energy, and the fan internal energy of the air conditioner, the preset energy conversion model being generated according to a functional relationship between the real-time air volume of the air conditioner and the fan excitation energy, the fan rotating mechanical energy, and the fan internal energy of the air conditioner.
[0137] The modules in the kitchen air conditioner control device can be implemented by software, hardware, or a combination thereof. The modules can be embedded in or independent of a processor in a computer device in hardware form, or stored in a memory in the computer device in software form, so that the processor can call and execute the operations corresponding to the modules.
[0138] In some embodiments, a computer device, which can be an air conditioner controller, has an internal structure as shown in Figure 6 The computer device includes a processor, a memory, and a network interface connected by a system bus. The processor of the computer device is configured to provide computing and control capabilities. The memory of the computer device includes a non-volatile storage medium and an internal memory. The non-volatile storage medium stores an operating system, a computer program, and a database. The internal memory provides an environment for running the operating system and the computer program in the non-volatile storage medium. The database of the computer device is configured to store data such as working state information of an extractor hood, real-time running parameters of an air conditioner, and air volume compensation parameters of the air conditioner. The network interface of the computer device is configured to communicate with an external terminal through a network connection. The computer program is executed by the processor to implement a kitchen air conditioner control method.
[0139] Those skilled in the art can understand that Figure 6 The structure shown in the figure is only a block diagram of part of the structure related to the scheme of the present application, and does not limit the computer device to which the scheme of the present application is applied. The specific computer device can include more or fewer components than those shown in the figure, or combine certain components, or have a different arrangement of components.
[0140] In some embodiments, a computer device includes a memory and a processor. The memory stores a computer program. The processor executes the computer program to implement the following steps:
[0141] Obtain working state information of an extractor hood when an air conditioner is in a running state;
[0142] Determine air volume compensation parameters of the air conditioner according to the working state information of the extractor hood and real-time running parameters of the air conditioner;
[0143] Control the air conditioner to run based on the air volume compensation parameters.
[0144] In some embodiments, the processor executes the computer program to further implement the following steps:
[0145] When the extractor hood is in a running state, determine air loss air volume compensation parameters of the air conditioner according to real-time running parameters of the air conditioner.
[0146] In some embodiments, the processor executes the computer program to further implement the following steps:
[0147] determining the real-time air output of the air conditioner according to real-time running parameters of the air conditioner;
[0148] if the real-time air output does not meet the target air output requirement, determining a constant air output compensation parameter of the air conditioner.
[0149] In some embodiments, the processor, when executing the computer program, also implements the following steps:
[0150] when the range hood is in the closed state, determining the real-time air output of the air conditioner according to real-time running parameters of the air conditioner;
[0151] if the real-time air output does not meet the target air output requirement, determining a constant air output compensation parameter of the air conditioner.
[0152] In some embodiments, the processor, when executing the computer program, also implements the following steps:
[0153] determining an air conditioner running gear based on real-time running parameters of the air conditioner;
[0154] matching the air conditioner running gear with air conditioner gears in a preset mapping table to determine a flow loss air output compensation parameter corresponding to the air conditioner running gear; the preset mapping table includes a mapping relationship between air conditioner gears and flow loss air output compensation parameters.
[0155] In some embodiments, the processor, when executing the computer program, also implements the following steps:
[0156] determining an air conditioner running gear based on real-time running parameters of the air conditioner;
[0157] matching the air conditioner running gear with air conditioner gears in a gear mapping table to determine a compensation parameter mapping table corresponding to the air conditioner running gear, the gear mapping table including a corresponding relationship between air conditioner gears and compensation parameter mapping tables, and the compensation parameter mapping table including a corresponding relationship between range hood gears and flow loss air output compensation parameters;
[0158] determining a flow loss air output compensation parameter corresponding to the range hood running gear according to the range hood running gear and the compensation parameter mapping table;
[0159] determining the flow loss air output compensation parameter corresponding to the range hood running gear as the flow loss air output compensation parameter of the air conditioner.
[0160] In some embodiments, the processor, when executing the computer program, also implements the following steps:
[0161] determining a constant air output compensation parameter of the air conditioner according to a difference between the real-time air output and the target air output.
[0162] In some embodiments, the processor, when executing the computer program, also implements the following steps:
[0163] According to the fan excitation energy, the fan rotating mechanical energy and the fan internal energy of the air conditioner, a preset energy conversion model is called to obtain the real-time air volume of the air conditioner, and the preset energy conversion model is generated according to the function relationship between the real-time air volume of the air conditioner and the fan excitation energy, the fan rotating mechanical energy and the fan internal energy of the air conditioner.
[0164] In some embodiments, a computer readable storage medium is provided, and the computer readable storage medium has stored thereon a computer program, and the computer program is executed by a processor to implement the following steps:
[0165] Obtaining the working state information of the range hood when the air conditioner is in a running state;
[0166] According to the working state information of the range hood and the real-time running parameter of the air conditioner, determining the air volume compensation parameter of the air conditioner;
[0167] Controlling the air conditioner to run based on the air volume compensation parameter.
[0168] In some embodiments, the computer program is executed by the processor to further implement the following steps:
[0169] When the range hood is in a running state, determining the lost air volume compensation parameter of the air conditioner according to the real-time running parameter of the air conditioner.
[0170] In some embodiments, the computer program is executed by the processor to further implement the following steps:
[0171] Determining the real-time air volume of the air conditioner according to the real-time running parameter of the air conditioner;
[0172] If the real-time air volume does not meet the target air volume requirement, determining the constant air volume compensation parameter of the air conditioner.
[0173] In some embodiments, the computer program is executed by the processor to further implement the following steps:
[0174] When the range hood is in a closed state, determining the real-time air volume of the air conditioner according to the real-time running parameter of the air conditioner;
[0175] If the real-time air volume does not meet the target air volume requirement, determining the constant air volume compensation parameter of the air conditioner.
[0176] In some embodiments, the computer program is executed by the processor to further implement the following steps:
[0177] Determining the running gear of the air conditioner based on the real-time running parameter of the air conditioner;
[0178] Matching the running gear of the air conditioner with the air conditioner gears in a preset mapping table to determine the lost air volume compensation parameter corresponding to the running gear of the air conditioner, and the preset mapping table includes the mapping relationship between the air conditioner gears and the lost air volume compensation parameters.
[0179] In some embodiments, the computer program, when executed by the processor, further implements the following steps:
[0180] determining the air conditioner operating gear based on real-time operating parameters of the air conditioner;
[0181] matching the air conditioner operating gear with the air conditioner gear in the gear mapping table to determine the compensation parameter mapping table corresponding to the air conditioner operating gear, the gear mapping table including the correspondence between the air conditioner gear and the compensation parameter mapping table, and the compensation parameter mapping table including the correspondence between the range hood gear and the wind loss compensation parameter;
[0182] determining the wind loss compensation parameter corresponding to the range hood operating gear according to the range hood operating gear and the compensation parameter mapping table;
[0183] determining the wind loss compensation parameter corresponding to the range hood operating gear as the wind loss compensation parameter of the air conditioner.
[0184] In some embodiments, the computer program, when executed by the processor, further implements the following steps:
[0185] determining the constant wind compensation parameter of the air conditioner according to the difference between the real-time air volume and the target air volume.
[0186] In some embodiments, the computer program, when executed by the processor, further implements the following steps:
[0187] obtaining the real-time air volume of the air conditioner according to the fan excitation energy, the fan rotating mechanical energy and the fan internal energy of the air conditioner, and calling a preset energy conversion model, the preset energy conversion model being generated according to the functional relationship between the real-time air volume of the air conditioner and the fan excitation energy, the fan rotating mechanical energy and the fan internal energy of the air conditioner.
[0188] In some embodiments, a computer program product is provided, including a computer program, which, when executed by a processor, implements the following steps:
[0189] obtaining the working state information of the range hood when the air conditioner is in an operating state;
[0190] determining the wind compensation parameter of the air conditioner according to the working state information of the range hood and the real-time operating parameters of the air conditioner;
[0191] controlling the operation of the air conditioner based on the wind compensation parameter.
[0192] In some embodiments, the computer program, when executed by the processor, further implements the following steps:
[0193] determining the wind loss compensation parameter of the air conditioner according to the real-time operating parameters of the air conditioner when the range hood is in an operating state.
[0194] In some embodiments, the computer program, when executed by the processor, further implements the following steps:
[0195] determining the real-time air output of the air conditioner according to real-time running parameters of the air conditioner;
[0196] if the real-time air output does not meet the target air output requirement, determining a constant air output compensation parameter of the air conditioner.
[0197] In some embodiments, the computer program, when executed by the processor, further implements the following steps:
[0198] when the range hood is in the closed state, determining the real-time air output of the air conditioner according to real-time running parameters of the air conditioner;
[0199] if the real-time air output does not meet the target air output requirement, determining a constant air output compensation parameter of the air conditioner.
[0200] In some embodiments, the computer program, when executed by the processor, further implements the following steps:
[0201] determining an air conditioner running gear based on real-time running parameters of the air conditioner;
[0202] matching the air conditioner running gear with air conditioner gears in a preset mapping table to determine a flow loss air output compensation parameter corresponding to the air conditioner running gear; the preset mapping table includes a mapping relationship between air conditioner gears and flow loss air output compensation parameters.
[0203] In some embodiments, the computer program, when executed by the processor, further implements the following steps:
[0204] determining an air conditioner running gear based on real-time running parameters of the air conditioner;
[0205] matching the air conditioner running gear with air conditioner gears in a gear mapping table to determine a compensation parameter mapping table corresponding to the air conditioner running gear, the gear mapping table including a corresponding relationship between air conditioner gears and compensation parameter mapping tables, and the compensation parameter mapping table including a corresponding relationship between range hood gears and flow loss air output compensation parameters;
[0206] determining a flow loss air output compensation parameter corresponding to the range hood running gear according to the range hood running gear and the compensation parameter mapping table;
[0207] determining the flow loss air output compensation parameter corresponding to the range hood running gear as the flow loss air output compensation parameter of the air conditioner.
[0208] In some embodiments, the computer program, when executed by the processor, further implements the following steps:
[0209] determining a constant air output compensation parameter of the air conditioner according to a difference between the real-time air output and the target air output.
[0210] In some embodiments, the computer program, when executed by the processor, further implements the following steps:
[0211] According to the fan excitation energy, the fan rotating mechanical energy and the fan internal energy of the air conditioner, a preset energy conversion model is called to obtain the real-time air output of the air conditioner, and the preset energy conversion model is generated according to the function relationship between the real-time air output of the air conditioner and the fan excitation energy, the fan rotating mechanical energy and the fan internal energy of the air conditioner.
[0212] It should be noted that the user information (including but not limited to user equipment information, user personal information, etc.) and data (including but not limited to data for analysis, stored data, displayed data, etc.) involved in the present application are all information and data authorized by the user or authorized by all parties.
[0213] Those skilled in the art can understand that all or part of the processes in the above-mentioned embodiment methods can be completed by a computer program instructing related hardware. The computer program can be stored in a non-volatile computer readable storage medium. When the computer program is executed, it can include the processes of the above-mentioned embodiments. Any reference to memory, database or other medium used in the embodiments provided by the present application can include at least one of non-volatile and volatile memory. Non-volatile memory can include read-only memory (Read-Only Memory, ROM), magnetic tape, floppy disk, flash memory, optical storage, high-density embedded non-volatile memory, resistive memory (ReRAM), magnetic variable memory (Magnetoresistive Random Access Memory, MRAM), ferroelectric memory (Ferroelectric Random Access Memory, FRAM), phase change memory (Phase Change Memory, PCM), graphene memory, etc. Volatile memory can include random access memory (Random Access Memory, RAM) or external cache memory, etc. As an illustration but not limitation, RAM can be in various forms, such as static random access memory (Static Random Access Memory, SRAM) or dynamic random access memory (Dynamic Random Access Memory, DRAM), etc. The database involved in the embodiments provided by the present application can include at least one of a relational database and a non-relational database. The non-relational database can include a distributed database based on a block chain, etc., but is not limited thereto. The processor involved in the embodiments provided by the present application can be a general-purpose processor, a central processing unit, a graphics processing unit, a digital signal processor, a programmable logic device, a data processing logic device based on quantum computing, etc., but is not limited thereto.
[0214] Any technical features in the above embodiments can be combined, and for the sake of brevity, not all possible combinations are described above, however, as long as the combinations of technical features do not have contradictions, they shall be considered within the scope of the present disclosure.
[0215] The above embodiments only express several implementation manners of the present application, and the description is relatively specific and detailed, but it shall not be understood as a limitation on the patent scope of the present application. It shall be pointed out that, for ordinary skilled persons in the art, several modifications and improvements can be made without departing from the concept of the present application, and these shall be within the protection scope of the present application. Therefore, the protection scope of the present application shall be subject to the appended claims.
Claims
1. A method for controlling a kitchen air conditioner, characterized in that, The method includes: Obtain the operating status information of the range hood when the air conditioner is running; The air volume compensation parameters of the air conditioner are determined based on the working status information of the range hood and the real-time operating parameters of the air conditioner. The air conditioner operation is controlled based on the aforementioned air volume compensation parameters; The air volume compensation parameters include loss air volume compensation parameters; the range hood's operating status information includes the range hood's operating speed; the loss air volume compensation parameters are compensation parameters used to compensate for the air volume lost by the air conditioner due to the operation of the range hood. The step of determining the airflow compensation parameters of the air conditioner based on the operating status information of the range hood and the real-time operating parameters of the air conditioner includes: When the range hood is running, the air conditioner's operating level is determined based on the air conditioner's real-time operating parameters; The air conditioner operating level is matched with the air conditioner level in the level mapping table to determine the compensation parameter mapping table corresponding to the air conditioner operating level. The level mapping table includes the correspondence between the air conditioner level and the compensation parameter mapping table, and the compensation parameter mapping table includes the correspondence between the range hood level and the loss air volume compensation parameter. The loss air volume compensation parameter corresponding to the operating speed of the range hood is determined according to the mapping table between the operating speed of the range hood and the compensation parameter. The air loss compensation parameter corresponding to the operating speed of the range hood is determined as the air loss compensation parameter of the air conditioner.
2. The method according to claim 1, characterized in that, The air volume compensation parameters also include constant air volume compensation parameters; The step of determining the airflow compensation parameters of the air conditioner based on the operating status information of the range hood and the real-time operating parameters of the air conditioner further includes: The real-time air volume of the air conditioner is determined based on its real-time operating parameters. If the real-time air volume does not meet the target air volume requirement, then the constant air volume compensation parameter of the air conditioner is determined.
3. The method according to claim 1, characterized in that, The air volume compensation parameters include constant air volume compensation parameters; The airflow compensation parameters of the air conditioner are determined based on the operating status information of the range hood and the real-time operating parameters of the air conditioner, including: When the range hood is off, the real-time airflow of the air conditioner is determined based on the real-time operating parameters of the air conditioner. If the real-time air volume does not meet the target air volume requirement, then the constant air volume compensation parameter of the air conditioner is determined.
4. The method according to claim 1, characterized in that, The step of determining the air loss compensation parameters of the air conditioner based on the real-time operating parameters of the air conditioner includes: The operating level of the air conditioner is determined based on its real-time operating parameters. The air conditioner operating level is matched with the air conditioner operating level in the preset mapping table to determine the air loss compensation parameter corresponding to the air conditioner operating level; the preset mapping table includes the mapping relationship between the air conditioner operating level and the air loss compensation parameter.
5. The method according to any one of claims 2 or 3, characterized in that, The target air volume requirement is related to the target air output volume; determining the constant air volume compensation parameters for the air conditioner includes: The constant air volume compensation parameters of the air conditioner are determined based on the difference between the real-time air volume and the target air volume.
6. The method according to any one of claims 2 or 3, characterized in that, The real-time operating parameters of the air conditioner include fan excitation energy, fan rotation mechanical energy, and fan internal energy; The step of determining the real-time airflow of the air conditioner based on its real-time operating parameters includes: Based on the fan excitation energy, fan rotation mechanical energy, and fan internal energy of the air conditioner, a preset energy conversion model is invoked to obtain the real-time air volume of the air conditioner. The preset energy conversion model is generated based on the functional relationship between the real-time air volume of the air conditioner and the fan excitation energy, fan rotation mechanical energy, and fan internal energy of the air conditioner.
7. A kitchen air conditioning control device, characterized in that, The device includes: The information acquisition module is used to acquire the operating status information of the range hood when the air conditioner is running; The parameter determination module is used to determine the air volume compensation parameters of the air conditioner based on the working status information of the range hood and the real-time operating parameters of the air conditioner. The control module is used to control the operation of the air conditioner based on the air volume compensation parameters; The airflow compensation parameters include loss airflow compensation parameters; the range hood's operating status information includes the range hood's operating speed; the loss airflow compensation parameters are compensation parameters used to compensate for the airflow lost by the air conditioner due to the range hood's operation; the parameter determination module is also used to determine the air conditioner's operating speed based on the air conditioner's real-time operating parameters when the range hood is running; match the air conditioner's operating speed with the air conditioner's speed in the speed mapping table to determine the compensation parameter mapping table corresponding to the air conditioner's operating speed, the speed mapping table including the correspondence between the air conditioner's speed and the compensation parameter mapping table, the compensation parameter mapping table including the correspondence between the range hood's speed and the loss airflow compensation parameters; determine the loss airflow compensation parameters corresponding to the range hood's operating speed according to the range hood's operating speed and the compensation parameter mapping table; and determine the loss airflow compensation parameters corresponding to the range hood's operating speed as the air conditioner's loss airflow compensation parameters.
8. A computer device comprising a memory and a processor, wherein the memory stores a computer program, characterized in that, When the processor executes the computer program, it implements the steps of the method according to any one of claims 1 to 6.
9. A computer-readable storage medium having a computer program stored thereon, characterized in that, When the computer program is executed by a processor, it implements the steps of the method according to any one of claims 1 to 6.
10. A computer program product, comprising a computer program, characterized in that, When the computer program is executed by a processor, it implements the steps of the method according to any one of claims 1 to 6.
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