Integrated stove, integrated stove control method, and computer-readable storage medium
By integrating the air conditioning module and smoke exhaust module in the integrated stove and dynamically adjusting the control parameters according to the indoor fume concentration and ambient temperature, the shortcomings of the integrated stove in regulating the room temperature are solved, improving the user's thermal comfort and the air quality of the kitchen.
Patent Information
- Application Number
- CN202110580787.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-05-26
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2041-05-26
AI Technical Summary
The integrated stove has shortcomings in regulating the room temperature. It discharges a small amount of heat in summer and causes stuffiness in winter, causing indoor cooling, and users have poor thermal comfort.
The integrated stove integrates the air conditioning module and the smoke exhaust module. By obtaining the indoor fume concentration and ambient temperature, the heat exchange control parameters of the air conditioning module and the smoke exhaust control parameters of the smoke exhaust module are dynamically adjusted to optimize the indoor temperature and air quality.
It effectively improves the thermal comfort of users in the kitchen, avoids oil fume pollution, and optimizes indoor temperature adjustment and improves user experience.
Smart Images

Figure CN115405956B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of kitchen appliances, and particularly to an integrated stove control method, an integrated stove, and a computer-readable storage medium. Background Art
[0002] An integrated stove is a kitchen device that integrates functions such as smoke exhaust, cooking utensils, and tableware disinfection, and is widely used in daily life.
[0003] Currently, after the smoke exhaust function of the integrated stove is turned on, the smoke generated during the user's cooking process can be discharged outdoors through the smoke exhaust module, avoiding indoor environmental pollution. However, the integrated stove cannot adjust the room temperature. When the temperature is high in summer, only a small amount of heat can be discharged during smoke exhaust, but the indoor temperature remains high, making the user feel stuffy. When the temperature is low in winter, smoke exhaust will cause heat loss indoors, easily making the user feel cold. Thus, when the integrated stove avoids oil fume pollution in the kitchen, the thermal comfort of the user is poor. Summary of the Invention
[0004] The main object of the present invention is to provide an integrated stove control method, an integrated stove, and a computer-readable storage medium, aiming to improve the thermal comfort of users in the kitchen while avoiding oil fume pollution in the kitchen.
[0005] To achieve the above object, the present invention provides an integrated stove control method. The integrated stove includes an air-conditioning module and a smoke exhaust module. The integrated stove control method includes the following steps:
[0006] Obtain the oil fume concentration and the environmental temperature of the indoor environment where the integrated stove is located;
[0007] Determine the heat exchange control parameter of the air-conditioning module and the smoke exhaust control parameter of the smoke exhaust module according to the oil fume concentration and the environmental temperature;
[0008] Control the operation of the air-conditioning module according to the heat exchange control parameter, and control the operation of the smoke exhaust module according to the smoke exhaust control parameter.
[0009] Optionally, the heat exchange control parameter includes a target air outlet air gear and / or a target circulation mode. The step of determining the heat exchange control parameter of the air-conditioning module according to the oil fume concentration and the environmental temperature includes:
[0010] Determine the target air outlet air gear according to the oil fume concentration and the environmental temperature, and / or determine one of at least two circulation modes as the target circulation mode according to the oil fume concentration and the environmental temperature;
[0011] The first cycle mode among the at least two cycle modes is the mode in which the air conditioning module exchanges heat with the indoor air and then supplies air to the indoor space, and the second cycle mode among the at least two cycle modes is the mode in which the air conditioning module exchanges heat with the outdoor air and then supplies air to the indoor space.
[0012] Optionally, when the air conditioning module is in cooling operation, as the oil fume concentration increases and the ambient temperature increases, the target air supply wind speed shows an increasing trend.
[0013] Optionally, the step of determining the target air supply wind speed according to the oil fume concentration and the ambient temperature includes:
[0014] When the air conditioning module is in cooling operation, when the oil fume concentration is less than or equal to a first preset concentration and the ambient temperature is less than or equal to a first temperature threshold, determine the first wind speed as the target air supply wind speed;
[0015] When the oil fume concentration is greater than the first preset concentration and the ambient temperature is greater than the first temperature threshold, determine the second wind speed as the target air supply wind speed;
[0016] Wherein, the air supply wind speed of the air conditioning module corresponding to the first wind speed is less than the air supply wind speed of the air conditioning module corresponding to the second wind speed.
[0017] Optionally, the step of determining one of the at least two cycle modes as the target cycle mode according to the oil fume concentration and the ambient temperature includes:
[0018] When the air conditioning module is in cooling operation, when the oil fume concentration is less than a second preset concentration and the ambient temperature is less than a second temperature threshold, determine the first cycle mode as the target cycle mode;
[0019] When the oil fume concentration is greater than or equal to the second preset concentration and the ambient temperature is greater than or equal to the second temperature threshold, determine the second cycle mode as the target cycle mode.
[0020] Optionally, the step of determining the smoke exhaust control parameters of the smoke exhaust module according to the oil fume concentration and the ambient temperature includes:
[0021] Determine the target operating wind speed of the smoke exhaust module according to the oil fume concentration and the ambient temperature, and the smoke exhaust control parameters include the target operating wind speed.
[0022] Optionally, when the air conditioning module is in cooling operation, as the oil fume concentration increases and the ambient temperature increases, the target operating wind speed shows an increasing trend.
[0023] Optionally, the step of determining the target operation wind speed of the exhaust module according to the oil fume concentration and the ambient temperature includes:
[0024] When the air conditioner module is in the cooling operation, when the oil fume concentration is less than or equal to the third preset concentration and the ambient temperature is less than or equal to the third temperature threshold, determine that the third wind speed is the target operation wind speed;
[0025] When the oil fume concentration is greater than the third preset concentration and the ambient temperature is greater than the third temperature threshold, determine that the fourth wind speed is the target operation wind speed;
[0026] Wherein, the exhaust speed of the exhaust module corresponding to the third wind speed is less than the exhaust speed of the exhaust module corresponding to the fourth wind speed.
[0027] Optionally, after the step of obtaining the oil fume concentration and the ambient temperature of the indoor environment where the integrated stove is located, the following is further included:
[0028] When the air conditioner module is in the cooling operation, when the ambient temperature is greater than the preset ambient temperature threshold, control both the exhaust module and the air conditioner module to operate at the maximum wind speed, and control the air conditioner module to operate in the second circulation mode;
[0029] When the air conditioner module is in the cooling operation, when the ambient temperature is less than or equal to the preset ambient temperature threshold, execute the step of determining the heat exchange control parameter of the air conditioner module and the exhaust control parameter of the exhaust module according to the oil fume concentration and the ambient temperature;
[0030] The second circulation mode is a mode in which the air conditioner module exchanges heat with outdoor air and then sends air into the room.
[0031] In addition, to achieve the above object, the present application also proposes an integrated stove, which includes:
[0032] An air conditioner module;
[0033] An exhaust module; and
[0034] A control device, both the air conditioner module and the exhaust module are connected to the control device, and the control device includes: a memory, a processor, and an integrated stove control program stored on the memory and executable on the processor. When the integrated stove control program is executed by the processor, the steps of the integrated stove control method described in any one of the above are implemented.
[0035] In addition, to achieve the above object, the present application further provides a computer-readable storage medium, on which an integrated stove control program is stored. When the integrated stove control program is executed by a processor, the steps of the integrated stove control method described in any one of the above are implemented.
[0036] An integrated stove control method proposed by the present invention. In addition to the smoke exhaust module, the integrated stove further includes an air conditioning module. This method simultaneously regulates the heat exchange operation process of the air conditioning module and the smoke exhaust operation process of the smoke exhaust module in combination with the oil fume concentration and ambient temperature of the environment where the integrated stove is located. Since the air conditioning module can adjust the indoor ambient temperature, and the smoke exhaust module can discharge the oil fume outdoors and synchronously adjust the indoor temperature, through the coordinated regulation of the air conditioning module and the smoke exhaust module, it is possible to avoid oil fume pollution in the kitchen while improving the thermal comfort of users in the kitchen. BRIEF DESCRIPTION OF THE DRAWINGS
[0037] Figure 1 It is a schematic structural diagram of an embodiment of the integrated stove of the present invention;
[0038] Figure 2 It is a schematic hardware structure diagram involved in the operation of an embodiment of the integrated stove of the present invention;
[0039] Figure 3 It is a schematic flowchart of an embodiment of the integrated stove control method of the present invention;
[0040] Figure 4 It is a schematic flowchart of another embodiment of the integrated stove control method of the present invention;
[0041] Figure 5 It is a schematic flowchart of still another embodiment of the integrated stove control method of the present invention;
[0042] Figure 6 It is a schematic flowchart of yet another embodiment of the integrated stove control method of the present invention.
[0043] The realization, functional characteristics and advantages of the object of the present invention will be further described with reference to the embodiments and the accompanying drawings. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0044] It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.
[0045] The main solution of the embodiment of the present invention is: based on an integrated stove including an air-conditioning module and an exhaust module, obtain the oil fume concentration and environmental temperature of the indoor environment where the integrated stove is located; determine the heat exchange control parameters of the air-conditioning module according to the oil fume concentration and the environmental temperature, and determine the exhaust control parameters of the exhaust module according to the oil fume concentration and the environmental temperature; control the operation of the air-conditioning module according to the heat exchange control parameters, and control the operation of the exhaust module according to the exhaust control parameters.
[0046] In the prior art, the integrated stove cannot adjust the room temperature. When the temperature is high in summer, only part of the heat can be exhausted during smoke exhaust, but the indoor temperature is still high, making users feel stuffy. When the temperature is low in winter, smoke exhaust will cause heat loss in the room, and it is easy for users to feel cold. Thus, when the integrated stove avoids oil fume pollution in the kitchen, the thermal comfort of users is poor.
[0047] The present invention provides the above solution to improve the thermal comfort of users in the kitchen while avoiding oil fume pollution in the kitchen.
[0048] An integrated stove is proposed in the embodiment of the present invention. The integrated stove is specifically an integrated device integrating a cooking module (such as a cooking range 2, a microwave oven, and / or an oven, etc.) and other kitchen appliance function modules (such as an exhaust module 3, a tableware disinfection module, a tableware drying module, and / ).
[0049] In this embodiment, referring to Figure 1 , the integrated stove includes a housing 1, a cooking range 2, an exhaust module 3, an air-conditioning module 4, etc. The cooking range 2, the exhaust module 3, and the air-conditioning module 4 are integrally installed on the housing 1. At least two separated installation cavities are provided in the housing 1, and the exhaust module 3 and the air-conditioning module 4 are respectively installed in different installation cavities. The air flow channels in the exhaust module 3 and the air-conditioning module 4 can be isolated from each other, or a ventilation opening can be provided, and a bypass valve is provided at the ventilation opening to connect or disconnect the two air flow channels according to actual control requirements.
[0050] The cooking range 2 is specifically used for installing a cooking appliance. The cooking appliance can be a module integrally installed on the integrated stove, or can be installed by the user based on their own needs.
[0051] The exhaust module 3 is specifically used for exhausting indoor oil fume to the outside. An indoor exhaust opening and an outlet opening are provided on the housing 1. The exhaust module 3 includes an exhaust air duct and an exhaust fan provided in the exhaust air duct. The exhaust air duct communicates with the indoor exhaust opening and the outlet opening. The outlet opening can be directly communicated with the outdoor environment, or can be communicated with an oil fume purification device, or can be communicated with the exhaust channel of the air-conditioning module 4, etc. The number of indoor exhaust openings can be one or more than one.
[0052] In this embodiment, the exhaust air blower is a blower with different speed gears. When the exhaust air blower operates at different speed gears, the operating gear of the exhaust air blower is different, and the amount of oil fume inhaled from the indoor air by the exhaust module 3 per unit time is different. The larger the speed gear of the exhaust air blower, the larger its operating gear, and the larger the amount of oil fume inhaled per unit time; vice versa. In other embodiments, the exhaust air blower can also be a constant-speed blower.
[0053] A smoke exhaust valve or a flow guiding member can be provided at the indoor smoke exhaust port of the exhaust module 3. The smoke exhaust valve or the flow guiding member is used to control the opening or closing of the indoor smoke exhaust port. Further, the opening degree of the smoke exhaust valve can be adjusted or the position of the flow guiding member can be adjusted. Under different opening degrees or different flow guiding positions, the amount of air inhaled by the exhaust module 3 from the indoor environment is different.
[0054] The air conditioning module 4 includes a refrigerant circulation circuit. The refrigerant circulation circuit includes a compressor, a first heat exchanger, a throttling device, and a second heat exchanger connected in sequence. In the installation space of the air conditioning module 4 in the housing 1, there are isolated first air cavities and second air cavities. The housing 1 is provided with an air outlet, a return air port communicating with the first air cavity, and an air inlet and an exhaust port communicating with the second air cavity. The number of the air outlet, the return air port, the exhaust port, and / or the air inlet can be one or more than one. In this embodiment, the indoor smoke exhaust port of the exhaust module 3 is arranged above the air outlet of the air conditioning module 4.
[0055] In this embodiment, the housing 1 is further provided with a fresh air inlet communicating with the first air cavity, and outdoor air can enter the first air cavity from the fresh air inlet. The return air port and the fresh air inlet can be respectively provided with valves to control their opening or closing.
[0056] The first heat exchanger is arranged in the first air cavity. A air supply blower is arranged in the first air cavity. When the air supply blower operates, the air supply blower drives indoor air to enter the first air cavity from the return air port and / or the fresh air inlet, and after heat exchange through the first heat exchanger, it is sent into the indoor environment from the air outlet. In this embodiment, the air supply blower is a blower with different speed gears. When the air supply blower operates at different speed gears, the air conditioning module 4 has different air supply gears, and the amount of air sent into the indoor environment by the air conditioning module 4 per unit time is different. The larger the speed gear, the larger the air supply gear of the air conditioning module 4, and the larger the amount of oil fume inhaled by the air conditioning module 4 per unit time; vice versa. In other embodiments, the air supply blower can also be a constant-speed blower.
[0057] The second heat exchanger is arranged in the second air cavity. An exhaust blower is arranged in the second air cavity. When the exhaust blower operates, the exhaust blower drives external air to enter the second air cavity from the air inlet, and after heat exchange through the second heat exchanger, it is discharged to the outdoor environment from the exhaust port. Among them, the second air cavity and the exhaust port can be connected through an exhaust passage. The exhaust port here and the smoke outlet in the above-mentioned exhaust module 3 can be a shared air port.
[0058] The air outlet of the air-conditioning module 4 may be provided with an air guide member. When the air guide member operates at different air guiding positions, the air outlet direction and / or the air volume of the air outlet of the air-conditioning module 4 are different.
[0059] When the air-conditioning module 4 operates in cooling mode, the first heat exchanger is an evaporator and the second heat exchanger is a condenser, and the indoor air can be cooled by the first heat exchanger. When the air-conditioning module 4 operates in heating mode, the first heat exchanger is a condenser and the second heat exchanger is an evaporator, and the indoor air can be heated by the first heat exchanger.
[0060] The air-conditioning module 4 can be a heat pump module for single cooling, a heat pump module for single heating, or a heat pump module with a cooling and heating switching function. Among them, when the air-conditioning module 4 is a heat pump module with a cooling and heating switching function, in addition to the above components, the refrigerant circulation circuit further includes a four-way valve connecting the compressor exhaust port, the compressor suction port, the first heat exchanger, and the second heat exchanger. When the four-way valve operates in the first valve position, the air-conditioning module 4 operates in cooling mode; when the four-way valve operates in the second valve position, the air-conditioning module 4 operates in heating mode.
[0061] Furthermore, the integrated stove further includes an oil fume sensor 5, and the oil fume sensor 5 is specifically used to detect the oil fume concentration in the indoor environment where the integrated stove is located. In this embodiment, the oil fume sensor 5 can be specifically arranged at the indoor exhaust port of the exhaust module 3. In other embodiments, the oil fume sensor 5 can also be set at other positions according to actual needs, such as on the stove top 2, outside the housing 1, etc.
[0062] Furthermore, the integrated stove further includes a temperature sensor 6, and the temperature sensor 6 is specifically used to detect the ambient temperature of the indoor environment where the integrated stove is located. In this embodiment, the temperature sensor 6 is arranged at the air return port of the air-conditioning module 4. In other embodiments, the temperature sensor 6 can also be set at other positions according to actual needs, such as outside the housing 1, etc.
[0063] Furthermore, the integrated stove further includes a control device. Referring to Figure 2 , the above-mentioned air-conditioning module 4, exhaust module 3, oil fume sensor 5, and temperature sensor 6 are all connected to the control device here. The control device can be used to control the operation of the air-conditioning module 4 and the exhaust module 3, and can also be used to obtain the data detected by the oil fume sensor 5 and the temperature sensor 6.
[0064] The control device includes: a processor 1001 (such as a CPU), a memory 1002, etc. The memory 1002 can be a high-speed RAM memory or a stable memory (non-volatile memory), such as a disk memory. Optionally, the memory 1002 can also be a storage device independent of the aforementioned processor 1001.
[0065] Those skilled in the art can understand,Figure 2 The device structure shown does not constitute a limitation on the device, and it may include more or fewer components than shown, or combine certain components, or have different component arrangements.
[0066] As Figure 2 shown, the memory 1002, as a computer-readable storage medium, may include an integrated stove control program. In Figure 2 the device shown, the processor 1001 may be used to call the integrated stove control program stored in the memory 1002 and perform the relevant step operations of the integrated stove control method in the following embodiments.
[0067] An embodiment of the present invention also provides an integrated stove control method for controlling the above-mentioned integrated stove.
[0068] Referring to Figure 3 , an embodiment of the integrated stove control method of the present application is proposed. In this embodiment, the integrated stove control method includes:
[0069] Step S10, obtaining the oil fume concentration and the environmental temperature of the indoor environment where the integrated stove is located;
[0070] In this embodiment, the data detected by the oil fume sensor provided at the indoor exhaust port of the exhaust module is read in real time or at an interval of a set duration to obtain the oil fume concentration here. In other embodiments, the oil fume concentration here may also be obtained by acquiring the data detected by the oil fume detection module outside the integrated stove. For example, the oil fume concentration is obtained by the data detected by the oil fume detection module provided on the exhaust fan or the refrigerator in the kitchen where the integrated stove is located.
[0071] In this embodiment, the data detected by the temperature sensor provided at the air return port of the air conditioning module is read in real time or at an interval of a set duration to obtain the environmental temperature here. In other embodiments, the environmental temperature may also be obtained by acquiring the data detected by the temperature detection module outside the integrated stove. For example, the environmental temperature is obtained by the data detected by the temperature detection module provided on the exhaust fan or the refrigerator in the kitchen where the integrated stove is located.
[0072] Specifically, after the integrated stove is powered on, step S10 here can be directly executed; in addition, after the intelligent mode is enabled based on the set instruction input by the user, step S10 here can be executed in the intelligent mode, where the set instruction can be input by the user through the function keys on the control panel.
[0073] Step S20, determining the heat exchange control parameter of the air conditioning module and the exhaust control parameter of the exhaust module according to the oil fume concentration and the environmental temperature;
[0074] The heat exchange control parameters are specifically the control parameters used by the air conditioning module to adjust heat exchange parameters such as the heat exchange amount, heat exchange efficiency, and heat exchange method. Different values of the heat exchange control parameters result in different temperature adjustment effects of the air conditioning module on the indoor environment. The heat exchange control parameters may include the compressor frequency in the air conditioning module, the air outlet parameters (such as the air outlet gear, the rotation speed of the air supply fan, and / or the air guiding position of the air guiding member), the operation duration, the set temperature, and / or the air outlet temperature, etc.
[0075] The heat exchange control parameters corresponding to different oil fume concentrations and different ambient temperatures have different values. For example, different oil fume concentrations and different ambient temperatures correspond to different compressor frequencies, different oil fume concentrations and different ambient temperatures correspond to different fan rotation speeds, and different oil fume concentrations and different ambient temperatures correspond to different air guiding angles of the air guiding member, etc. The first correspondence relationship between the oil fume concentration, the ambient temperature, and the heat exchange control parameters can be preset, and can be a calculation relationship, a mapping relationship, an algorithm model, etc. Based on the first correspondence relationship, the heat exchange control parameters corresponding to the current oil fume concentration and ambient concentration can be determined.
[0076] The smoke exhaust control parameters are specifically the control parameters used by the smoke exhaust module to adjust smoke exhaust parameters such as the smoke exhaust volume, smoke exhaust speed, and smoke exhaust method. Different values of the smoke exhaust control parameters result in different smoke exhaust effects of the smoke exhaust module on the indoor environment oil fume. The smoke exhaust control parameters include the operation gear, the fan rotation speed, the valve opening of the indoor smoke exhaust port, and / or the smoke exhaust duration, etc.
[0077] The smoke exhaust control parameters corresponding to different oil fume concentrations and different ambient temperatures have different values. For example, different oil fume concentrations and different ambient temperatures correspond to different rotation speeds of the smoke exhaust fan, and different oil fume concentrations and different ambient temperatures correspond to different valve openings of the indoor smoke exhaust port, etc. The second correspondence relationship between the oil fume concentration, the ambient temperature, and the smoke exhaust control parameters can be preset, and can be a calculation relationship, a mapping relationship, an algorithm model, etc. Based on the second correspondence relationship, the smoke exhaust control parameters corresponding to the current oil fume concentration and ambient concentration can be determined.
[0078] It should be noted that regardless of whether the air conditioning module is operating in heating or cooling mode, the heat exchange control parameters and the smoke exhaust control parameters can be determined based on the oil fume concentration and the ambient temperature. Among them, whether the air conditioning module operates in cooling or heating mode can be the default configuration of the system, can also be selected by the user through input instructions, or can also be selected based on the ambient temperature after step S10. When the ambient temperature is greater than the first set temperature threshold or the outdoor temperature, the air conditioning module can be controlled to operate in cooling mode; when the ambient temperature is less than the second set temperature threshold or the outdoor temperature, the air conditioning module can be controlled to operate in heating mode, and the first set temperature threshold is greater than the second set temperature threshold.
[0079] Step S30, control the operation of the air - conditioning module according to the heat - exchange control parameters, and control the operation of the smoke - exhaust module according to the smoke - exhaust control parameters.
[0080] Determine the target control component in the air - conditioning module corresponding to the heat - exchange control parameters, and control the operation of the corresponding target control component according to the heat - exchange control parameters. For example, if the heat - exchange control parameters include the air - outlet direction, the target control component can be the air - deflector at the air - outlet of the air - conditioning module, then control the air - deflector angle according to the air - outlet direction; another example is that if the heat - exchange control parameters include the air - outlet temperature or the compressor operation frequency, the target control component can be the compressor, then adjust the operation frequency of the compressor according to the air - outlet temperature or control the compressor to operate at the determined operation frequency, and so on.
[0081] Determine the target control component in the smoke - exhaust module corresponding to the smoke - exhaust control parameters, and control the operation of the corresponding target control component according to the smoke - exhaust control parameters. For example, if the smoke - exhaust control parameters include the rotation speed of the smoke - exhaust fan, the target control component can be determined as the smoke - exhaust fan, and control the smoke - exhaust fan to operate at the determined rotation speed; if the smoke - exhaust control parameters include the operation duration, the target control component can be determined as the switch of the smoke - exhaust module, and after the smoke - exhaust module is turned on, control it to turn off according to the determined operation duration, and so on.
[0082] An integrated - stove control method proposed in an embodiment of the present invention. The integrated stove includes an air - conditioning module in addition to the smoke - exhaust module. This method combines the oil - fume concentration and the ambient temperature of the environment where the integrated stove is located to simultaneously regulate the heat - exchange operation process of the air - conditioning module and the smoke - exhaust operation process of the smoke - exhaust module. Since the air - conditioning module can adjust the indoor environmental temperature, and the smoke - exhaust module can discharge the oil fume outdoors and synchronously adjust the indoor temperature, through the coordinated regulation of the air - conditioning module and the smoke - exhaust module, it is possible to avoid oil - fume pollution in the kitchen while improving the thermal comfort of users in the kitchen.
[0083] Among them, when the integrated stove detects that the smoke - exhaust module is turned on, it can control the air - conditioning module to turn on, so that the air - conditioning module can be turned on in time to meet the usage requirements of the integrated stove without user operation, improving the intelligence level of the integrated stove.
[0084] Further, based on the above - mentioned embodiment, another embodiment of the integrated - stove control method of the present application is proposed. In this embodiment, the heat - exchange control parameters include the target air - outlet air - volume file and / or the target circulation mode. Refer to Figure 4 , define the step of determining the heat - exchange control parameters of the air - conditioning module according to the oil - fume concentration and the ambient temperature in step S20 as step S20a, and determine the smoke - exhaust control parameters of the smoke - exhaust module according to the oil - fume concentration and the ambient temperature as step S20b. The step S20a includes:
[0085] Step S21: Determine the target air outlet setting based on the oil fume concentration and the ambient temperature, and / or determine one of at least two circulation modes as the target circulation mode according to the oil fume concentration and the ambient temperature; the first circulation mode is the mode in which the air conditioning module exchanges heat with the indoor air and then supplies air to the room, and the second circulation mode is the mode in which the air conditioning module exchanges heat with the outdoor air and then supplies air to the room.
[0086] Different oil fume concentrations and different ambient temperatures correspond to different target air outlet settings. The larger the target air outlet setting, the higher the rotational speed of the air supply fan of the air conditioning module; the smaller the target air outlet setting, the lower the rotational speed of the air supply fan of the air conditioning module. A calculation formula can be preset between the oil fume concentration, the ambient temperature, and the target air outlet setting. Based on the preset calculation formula, the target air outlet setting corresponding to the current oil fume concentration and ambient temperature can be calculated. For example, when the oil fume concentration is M and the ambient temperature is T, the target air outlet setting N = a*M + b*T, where a and b are preset coefficients. In addition, a mapping relationship can also be preset between the oil fume concentration, the ambient temperature, and the target air outlet setting. The mapping result matched by querying the mapping relationship with the current oil fume concentration and ambient concentration can be used as the current target air outlet setting.
[0087] In this embodiment, when the air conditioning module is in the cooling operation, as the oil fume concentration and the ambient temperature increase, the target air outlet setting shows an increasing trend. On the one hand, it can ensure that the cooling capacity output by the air conditioning module can meet the indoor thermal comfort requirements. On the other hand, it is beneficial to increase the temperature difference in the vertical direction of the space, making the oil fume carrying heat float and more easily discharged outdoors from the exhaust module above, improving the exhaust efficiency. In other embodiments, when the air conditioning module is in the heating operation, the corresponding relationship between the oil fume concentration, the ambient temperature, and the target air outlet setting can be analogous to the relationship in the cooling operation, or can be set to a different corresponding relationship according to the actual requirements in the heating operation state.
[0088] The corresponding target circulation modes are different under different fume concentrations and ambient temperatures. Specifically, the corresponding relationship between the fume concentration, the ambient temperature and the circulation mode can be established in advance. The corresponding relationship can be a direct mapping relationship among the fume concentration, the ambient temperature and the circulation mode. That is to say, one fume concentration and one ambient temperature map to one circulation mode. Based on the current fume concentration and ambient temperature, querying this direct mapping relationship can obtain the circulation mode corresponding to the two parameters as the target circulation mode. In addition, the corresponding relationship can also be a direct mapping relationship between the intermediate parameter determined by the fume concentration and the ambient temperature and the circulation mode. Specifically, the intermediate parameter characterizing the overall environmental situation of the space where the current integrated range hood is located can be determined through the fume concentration, the ambient temperature and a preset formula, mapping table, etc. Based on the mapping relationship between the intermediate parameter and the circulation mode, the circulation mode corresponding to the current intermediate parameter can be determined as the target circulation mode.
[0089] Among them, when the air-conditioning module operates in the first circulation mode, it is beneficial to improve the heat exchange efficiency of the indoor environmental air and save energy at the same time. When the air-conditioning module operates in the second circulation mode, it is beneficial to improve the freshness of the indoor environmental air.
[0090] In this embodiment, it is adapted to determine the air outlet gear and the circulation mode of the air-conditioning module according to the ambient temperature and the fume concentration, which can ensure that the air sent by the air-conditioning module into the indoor environment can simultaneously meet the requirements of improving the indoor air quality and the user's thermal comfort, so as to improve the comfort of the users in the space where the integrated range hood is located.
[0091] In other embodiments, the target circulation mode can be a preset control parameter. When determining the target air outlet gear according to the ambient temperature and the fume concentration, the target circulation mode can default to operate in the first circulation mode or the second circulation mode, and the target circulation mode does not change with the change of the ambient temperature and the fume concentration; or, the target air outlet gear is a preset control parameter. When determining the target circulation mode according to the ambient temperature and the fume concentration, the target air outlet gear operates in the default gear.
[0092] Further, in this embodiment, the process of determining the target air outlet gear of the air-conditioning module according to the ambient temperature and the fume concentration is specifically as follows: when the air-conditioning module is in the cooling operation, when the fume concentration is less than or equal to the first preset concentration and the ambient temperature is less than or equal to the first temperature threshold, it is determined that the first gear is the target air outlet gear; when the fume concentration is greater than the first preset concentration and the ambient temperature is greater than the first temperature threshold, it is determined that the second gear is the target air outlet gear; wherein, the air outlet speed of the air-conditioning module corresponding to the first gear is less than the air outlet speed of the air-conditioning module corresponding to the second gear.
[0093] The first preset concentration is specifically a parameter set to meet the user's demand for the freshness of indoor air, and the first temperature threshold is specifically a parameter set to meet the user's demand for the thermal comfort of indoor air. The first preset concentration and / or the first temperature threshold can be parameters configured by default in the system, parameters set by the user based on their own needs, or parameters selected from multiple preset concentration values according to the actual situation of the indoor environment.
[0094] Among them, in this embodiment, during the operation of the air-conditioning module at the first gear, when the oil fume concentration is less than or equal to the first preset concentration and the ambient temperature is greater than the first temperature threshold, or when the oil fume concentration is greater than the first preset concentration and the ambient temperature is less than or equal to the first temperature threshold, the first gear can be determined as the target air outlet gear; only when the oil fume concentration and the ambient concentration are both greater than their respective corresponding thresholds, the second gear is determined as the target air outlet gear. During the operation of the air-conditioning module at the second gear, when the oil fume concentration is less than or equal to the first preset concentration and the ambient temperature is greater than the first temperature threshold, or when the oil fume concentration is greater than the first preset concentration and the ambient temperature is less than or equal to the first temperature threshold, the second gear can be determined as the target air outlet gear; only when the oil fume concentration and the ambient concentration are both less than or equal to their respective corresponding thresholds, the second gear is determined as the target air outlet gear.
[0095] In other embodiments, when the oil fume concentration is less than or equal to the first preset concentration and the ambient temperature is greater than the first temperature threshold, or when the oil fume concentration is greater than the first preset concentration and the ambient temperature is less than or equal to the first temperature threshold, the second gear can be determined as the target air outlet gear or one of the first gear and the second gear can be selected as the target air outlet gear according to the deviation between the ambient temperature and the first temperature threshold. Or, if there is a third gear (the corresponding wind speed is greater than the air outlet wind speed corresponding to the first gear and less than the air outlet wind speed corresponding to the second gear), the third gear can also be determined as the target air outlet gear.
[0096] In this embodiment, when both the oil fume concentration and the ambient temperature are relatively small, the air-conditioning module operates at a smaller first gear, and when both the oil fume concentration and the ambient temperature are relatively large, the air-conditioning module operates at a larger second gear, which can ensure that the cooling capacity sent into the room by the air-conditioning module can meet the thermal comfort of the indoor environment while improving the smoke exhaust effect of the indoor environment.
[0097] In other embodiments, when the air-conditioning module operates in heating mode, the target air outlet gear of the air-conditioning module can also be determined by analogy with the oil fume concentration and the ambient temperature here, which will not be elaborated here.
[0098] Further, in this embodiment, the process of determining one of the at least two circulation modes as the target circulation mode according to the ambient temperature and the oil fume concentration is as follows: When the air-conditioning module is in the cooling operation, when the oil fume concentration is less than the second preset concentration and the ambient temperature is less than the second temperature threshold, determine the first circulation mode as the target circulation mode; when the oil fume concentration is greater than or equal to the second preset concentration and the ambient temperature is greater than or equal to the second temperature threshold, determine the second circulation mode as the target circulation mode.
[0099] The second preset concentration is specifically a parameter set to meet the user's demand for the freshness of indoor air, and the second temperature threshold is specifically a parameter set to meet the user's demand for the thermal comfort of indoor air. The second preset concentration and / or the second temperature threshold can be parameters configured by the system by default, can be parameters set by the user based on their own needs, or can be parameters selected from multiple preset concentration values according to the actual situation of the indoor environment.
[0100] In this embodiment, the second preset concentration is greater than the above-mentioned first preset concentration, and the second temperature threshold is greater than the above-mentioned first temperature threshold. In other embodiments, the second preset concentration can also be less than or equal to the above-mentioned first preset concentration, and the second temperature threshold can also be less than or equal to the above-mentioned first temperature threshold.
[0101] Among them, in this embodiment, during the operation of the air-conditioning module in the first circulation mode, when the oil fume concentration is less than the second preset concentration and the ambient temperature is greater than or equal to the second temperature threshold, or when the oil fume concentration is greater than or equal to the second preset concentration and the ambient temperature is less than the second temperature threshold, the first circulation mode can be determined as the target circulation mode; only when the oil fume concentration and the ambient concentration are both greater than or equal to their respective corresponding thresholds, the second circulation mode is determined as the target circulation mode. During the operation of the air-conditioning module in the second circulation mode, during the operation of the air-conditioning module in the first circulation mode, when the oil fume concentration is less than the second preset concentration and the ambient temperature is greater than or equal to the second temperature threshold, or when the oil fume concentration is greater than or equal to the second preset concentration and the ambient temperature is less than the second temperature threshold, the second circulation mode can be determined as the target circulation mode; only when the oil fume concentration and the ambient concentration are both less than their respective corresponding thresholds, the first circulation mode is determined as the target circulation mode.
[0102] In other embodiments, when the oil fume concentration is less than the second preset concentration and the ambient temperature is greater than or equal to the second temperature threshold, the first circulation mode can be determined as the target circulation mode; when the oil fume concentration is greater than or equal to the second preset concentration and the ambient temperature is less than the second temperature threshold, the second circulation mode can be determined as the target circulation mode; or, during the operation of the air-conditioning module in the first circulation mode, when the oil fume concentration is less than the second preset concentration and the ambient temperature is greater than or equal to the second temperature threshold, or when the oil fume concentration is greater than or equal to the second preset concentration and the ambient temperature is less than the second temperature threshold, one of the first circulation mode and the second circulation mode can be selected as the target circulation mode according to the deviation between the ambient temperature and the first temperature threshold. In other embodiments, if there is a third circulation mode (such as the mode in which the air-conditioning module exchanges heat with the air after mixing indoor air and outdoor air and then sends the air into the room), during the operation of the air-conditioning module in the first circulation mode, when the oil fume concentration is less than the second preset concentration and the ambient temperature is greater than or equal to the second temperature threshold, or when the oil fume concentration is greater than or equal to the second preset concentration and the ambient temperature is less than the second temperature threshold, the third circulation mode can also be determined as the target circulation mode.
[0103] In this embodiment, when both the oil fume concentration and the ambient temperature are relatively low, the air-conditioning module operates in the first circulation mode, which is beneficial to ensuring fresh indoor air while the air-conditioning module has better heat exchange efficiency and energy conservation; when both the oil fume concentration and the ambient temperature are relatively high, the air-conditioning module operates in the second circulation mode, which can ensure that a large amount of dirty air can be quickly discharged outdoors while the indoor temperature can meet the user's comfort. Based on this, the effective balance between the indoor air quality effect and the user's thermal comfort effect can be further improved.
[0104] In other embodiments, when the air-conditioning module operates in heating mode, the target circulation mode of the air-conditioning module can also be determined by analogy with the oil fume concentration and the ambient temperature here, which will not be elaborated here.
[0105] Furthermore, based on any of the above embodiments, another embodiment of the integrated stove control method of the present application is proposed. In this embodiment, referring to Figure 5 , step S20b includes:
[0106] Step S22, when the air-conditioning module is in a cooling operation, determine the target operation wind speed of the smoke exhaust module according to the oil fume concentration and the ambient temperature, and the smoke exhaust control parameter includes the target operation wind speed.
[0107] Different oil fume concentrations and different ambient temperatures correspond to different target operating wind speeds. The greater the target operating wind speed, the greater the rotational speed of the exhaust fan of the exhaust module; the smaller the target operating wind speed, the smaller the rotational speed of the exhaust fan of the exhaust module. A calculation formula can be preset between the oil fume concentration, the ambient temperature and the target operating wind speed. Based on the preset calculation formula, the target operating wind speed corresponding to the current oil fume concentration and ambient temperature can be calculated. For example, when the oil fume concentration is M and the ambient temperature is T, the target operating wind speed P = c*M + d*T, where c and d are preset coefficients. In addition, a mapping relationship can be preset between the oil fume concentration, the ambient temperature and the target operating wind speed. The mapping relationship can be queried through the current oil fume concentration and ambient concentration, and the matched mapping result can be used as the current target operating wind speed.
[0108] Among them, in the corresponding relationship between the oil fume concentration, the ambient temperature and the target operating wind speed, the operating wind speed corresponding to the oil fume concentration and the ambient temperature can be determined in combination with the heat exchange control parameters of the air conditioning module corresponding to the oil fume concentration and the ambient temperature, so as to ensure the coordinated operation of the air conditioning module and the exhaust module, and effectively balance thermal comfort and air quality.
[0109] In this embodiment, when the air conditioning module is in the cooling operation, as the oil fume concentration and the ambient temperature increase, the target operating wind speed shows an increasing trend. On the one hand, it can ensure that the exhaust efficiency can match the actual pollution situation and ensure the indoor air quality. On the other hand, it can accelerate the indoor heat dissipation through exhaust, improve the temperature drop efficiency of the indoor environment during the operation of the air conditioning module, and improve the thermal comfort of users. In other embodiments, when the exhaust module is in the heating operation, the corresponding relationship between the oil fume concentration, the ambient temperature and the target operating wind speed can be analogous to the relationship during the cooling operation, or can be set to a corresponding relationship different from that during the cooling operation according to the actual requirements during the heating operation.
[0110] In this embodiment, adapting to the ambient temperature and the oil fume concentration to determine the wind speed of the exhaust module operation can ensure that during the process of the air conditioning module adjusting the indoor ambient temperature, the exhaust efficiency of the exhaust module can match the actual pollution degree and temperature situation indoors, and ensure that when the exhaust module and the air conditioning module cooperate to operate, the indoor air can be adjusted to a state that simultaneously meets the requirements of improving the indoor ambient air quality and the thermal comfort of users.
[0111] It should be noted that step S20 may simultaneously include step S21 and step S22, and the execution sequence of step S21 and step S22 is not specifically limited, and they may be executed successively or simultaneously according to actual needs. In addition, in other embodiments, during the execution of step S20, in addition to determining the heat exchange control parameters according to step S21, the smoke exhaust control parameters may also be determined by other methods other than step S22. For example, the valve opening of the indoor smoke exhaust port of the smoke exhaust module is determined according to the ambient temperature and the oil fume concentration; or, during the execution of step S20, in addition to determining the smoke exhaust control parameters according to step S22, the heat exchange control parameters may also be determined by other methods other than step S21. For example, the air guiding angle of the air outlet guiding component of the air conditioning module is determined according to the ambient temperature and the oil fume concentration.
[0112] Further, in this embodiment, step S22 includes: when the air conditioning module is in the cooling operation, when the oil fume concentration is less than or equal to the third preset concentration and the ambient temperature is less than or equal to the third temperature threshold, determining the third wind gear as the target operation wind gear; when the oil fume concentration is greater than the third preset concentration and the ambient temperature is greater than the third temperature threshold, determining the fourth wind gear as the target operation wind gear; wherein, the smoke exhaust speed of the smoke exhaust module corresponding to the third wind gear is less than the smoke exhaust speed of the smoke exhaust module corresponding to the fourth wind gear.
[0113] The third preset concentration is specifically a parameter set to meet the user's demand for the freshness of indoor air, and the third temperature threshold is specifically a parameter set to meet the user's demand for the thermal comfort of indoor air. The third preset concentration and / or the third temperature threshold may be parameters configured by default in the system, may be parameters set by the user based on their own needs, or may be parameters selected from multiple preset concentration values according to the actual situation of the indoor environment.
[0114] In this embodiment, the third preset concentration is equal to the above-mentioned first preset concentration in value, and the third temperature threshold is equal to the above-mentioned first temperature threshold in value. In other embodiments, the third preset concentration is also a parameter with a different value from the above-mentioned first preset concentration. The third preset concentration may be greater than or less than the first preset concentration, and the third preset concentration may be greater than, equal to, or less than the second preset concentration. For example, the third preset concentration is greater than the first preset concentration and less than the second preset concentration; the third temperature threshold may be greater than or less than the first temperature threshold, and the third temperature threshold may be greater than, equal to, or less than the second temperature threshold. For example, the third temperature threshold is greater than the first temperature threshold and less than the second temperature threshold.
[0115] Among them, in this embodiment, during the operation of the smoke exhaust module at the third gear, when the oil fume concentration is less than or equal to the third preset concentration and the ambient temperature is greater than the third temperature threshold, or when the oil fume concentration is greater than the third preset concentration and the ambient temperature is less than or equal to the third temperature threshold, the third gear can be determined as the target operation gear; only when both the oil fume concentration and the ambient concentration are greater than their respective corresponding thresholds, the fourth gear is determined as the target operation gear. During the operation of the smoke exhaust module at the fourth gear, when the oil fume concentration is less than or equal to the third preset concentration and the ambient temperature is greater than the third temperature threshold, or when the oil fume concentration is greater than the third preset concentration and the ambient temperature is less than or equal to the third temperature threshold, the fourth gear can be determined as the target operation gear; only when both the oil fume concentration and the ambient concentration are less than or equal to their respective corresponding thresholds, the third gear is determined as the target operation gear.
[0116] In other embodiments, when the oil fume concentration is less than the third preset concentration and the ambient temperature is greater than or equal to the third temperature threshold, the first circulation mode can be determined as the target operation gear; when the oil fume concentration is greater than or equal to the third preset concentration and the ambient temperature is less than the third temperature threshold, the third circulation mode can be determined as the target operation gear; or, during the operation of the smoke exhaust module in the first circulation mode, when the oil fume concentration is less than the third preset concentration and the ambient temperature is greater than or equal to the third temperature threshold, or when the oil fume concentration is greater than or equal to the third preset concentration and the ambient temperature is less than the third temperature threshold, one of the first circulation mode and the third circulation mode can be selected as the target operation gear according to the deviation between the ambient temperature and the first temperature threshold. In other embodiments, if there is a third circulation mode (such as the mode in which the smoke exhaust module exchanges heat with the air after mixing indoor air and outdoor air and then sends the air into the room), during the operation of the smoke exhaust module in the first circulation mode, when the oil fume concentration is less than the third preset concentration and the ambient temperature is greater than or equal to the third temperature threshold, or when the oil fume concentration is greater than or equal to the third preset concentration and the ambient temperature is less than the third temperature threshold, the third circulation mode can also be determined as the target operation gear.
[0117] In this embodiment, when both the oil fume concentration and the ambient temperature are relatively small, the smoke exhaust module adopts a relatively small third gear. In addition to avoiding oil fume pollution of the environment and meeting the user's thermal comfort requirements, it can be more energy-saving and noise-reducing, and improve the comfort of indoor users; when both the oil fume concentration and the ambient temperature are relatively large, the smoke exhaust module operates at a relatively large fourth gear, which can ensure that a large amount of dirty air can be quickly discharged outdoors and the indoor temperature can drop rapidly. Based on this, the effective balance effect of improving the indoor air quality effect and the user's thermal comfort effect can be further improved.
[0118] Further, in this embodiment, the target air outlet setting is specifically a set of multiple rotational speed values. During the process of controlling the air supply of the air conditioning module according to the target air outlet setting, the current operating setting of the smoke exhaust module and the cooking type of the cooking operation performed by the user in the current space can be obtained. The operating frequency of the compressor in the air conditioning module is adjusted according to the operating setting and the cooking type, and the compressor in the air conditioning module is controlled to operate according to the determined operating frequency.
[0119] The cooking type can be specifically divided according to the user's cooking method. For example, the cooking type can specifically include one or more of steaming, braising, frying, and stir-frying, etc. The cooking type can be specifically obtained through an instruction input by the user, or can also be obtained based on other monitoring and recognition methods such as image recognition. For example, the scene image in the space is obtained, the image feature information corresponding to the user's cooking operation of the integrated stove in the scene image is recognized, and the recognized image feature information is matched with the pre-stored image features corresponding to different cooking types. The cooking type corresponding to the pre-stored image features with consistent matching can be determined as the cooking type of the cooking operation performed by the user in the current space.
[0120] Different operating settings and different cooking types correspond to different compressor operating frequencies, and the larger the operating setting, the larger the compressor frequency can be. Specifically, the reference frequency of the compressor can be determined based on the operating setting, and the reference frequency increases with the increase of the operating setting. And the frequency correction value is determined based on the cooking type, and different cooking types result in different frequency correction values. For example, the frequency correction value for the cooking type of braising is less than the frequency correction value for the cooking type of frying. The result after correcting the reference frequency according to the frequency correction value is used as the target frequency for the compressor to operate.
[0121] Here, since the heat loss in the space is different under different cooking types and different operating settings of the smoke exhaust module, and the heat that may be newly added in the space is also different, therefore, by combining the cooking type and the operating setting to determine the operating frequency of the compressor, it can be ensured that the cooling capacity input into the space by the air conditioner can guarantee the cooling efficiency in the space, and further improve the thermal comfort of the user in the space.
[0122] Further, based on any of the above embodiments, another embodiment of the integrated stove control method of the present application is proposed. In this embodiment, referring to Figure 6 , after step S10, it further includes:
[0123] Step S101, when the air conditioning module is in a cooling operation, determine whether the ambient temperature is greater than a preset ambient temperature threshold;
[0124] If so, execute step S102: control both the smoke exhaust module and the air conditioner module to operate at the maximum wind speed, and control the air conditioner module to operate in the second circulation mode; the second circulation mode is the mode in which the air conditioner module exchanges heat with outdoor air and then sends the air into the room. If not, execute step S20.
[0125] It should be noted that the preset environmental temperature threshold here is greater than the maximum value among the above first temperature threshold, second temperature threshold, and third temperature threshold.
[0126] In this embodiment, when the indoor environmental temperature is too high, both the air conditioner module and the smoke exhaust module operate at the maximum wind speed. At the same time, the air conditioner module adopts the external circulation mode, which is conducive to quickly reducing the indoor temperature through the operation cooperation of the smoke exhaust module and the air conditioner module. And harmful substances are easily generated from indoor oil fumes at high temperatures. Therefore, the external circulation mode introduces outdoor air to exchange heat with the indoor environment, which is beneficial to ensuring the health of indoor users. When the indoor environmental temperature is low, the air conditioner module and the smoke exhaust module are controlled in combination with the oil fume concentration and the environmental temperature, which can avoid oil fume pollution of the environment and meet the user's thermal comfort requirements. In addition, it can be more energy-saving and noise-reducing.
[0127] The following uses a specific example to illustrate the related solutions of the integrated stove control method in the embodiment of the present invention:
[0128] The user can enable the intelligent mode function through the function key device on the panel; after the intelligent mode is turned on, the integrated stove starts data collection at this time, and detects relevant parameters of the kitchen through the concentration sensor and the temperature sensor; then makes a judgment:
[0129] (1) When the collected oil fume concentration value A ≤ threshold 1 and the indoor environmental temperature T1 ≤ threshold 4, it indicates that the oil fume concentration and the indoor temperature in the room are relatively low. The user may just start cooking or may be cooking at a low load. At this time, considering that there is already a certain amount of oil fume, the smoke exhaust system of the integrated stove operates at the second gear. After starting cooking, since a certain load will be output during the cooking process, considering the comfort of the user, the refrigeration module of the integrated stove is started synchronously to provide a certain cooling load for the room;
[0130] (2) When the collected concentration value threshold 1 < oil fume concentration value A < threshold 2 and the temperature threshold 4 < indoor environmental temperature T1 ≤ threshold 5, it indicates that the oil fume concentration in the room has an increasing trend. Since cooking generates heat and the temperature of the room further rises, the integrated stove exhausts at the third gear and the air conditioner uses the internal circulation for refrigeration, and the refrigeration wind speed is at the second gear;
[0131] (3) When the collected oil fume concentration value A ≥ threshold value 3 and the indoor environment temperature T1 ≥ threshold value 6, it indicates that the oil fume concentration indoors has reached a harmful level. If the internal circulation is still used, even if the gas is purified, it is impossible to avoid the attenuation of the heat exchanger caused by the oil in the high oil fume (the attenuation of the heat exchange efficiency). At the same time, the high-concentration oil fume is harmful to human health. In this case, more attention should be paid to health rather than energy conservation. Therefore, the air circulation of the refrigeration system uses external circulation for refrigeration, and the indoor air is completely discharged;
[0132] 3. After controlling the air-conditioning gear and the smoke exhaust gear in any one of the ways (1), (2), and (3) in the above 2, every time interval t1, the indoor environment temperature T1 is detected through the temperature sensor on the air conditioner;
[0133] (1) When the indoor temperature sensor detects that the indoor environment temperature T1 > 35°C, the integrated stove smoke exhaust still operates at gear 3, but the refrigeration gear of the air conditioner is turned to the maximum gear 3 to solve the problem of high indoor temperature. If it is lower than 35°C, the control logic returns to the previous stage;
[0134] 4. In any of the above processes 1, 2, and 3, if one of the following 2 conditions is met, the intelligent mode is exited:
[0135] (1) The user forcibly shuts down through the panel control button (in the case of not unplugging the power, the smoke exhaust motor is under deferred control);
[0136] (2) Exit the intelligent mode through the panel button.
[0137] If one of the above 2 conditions is not met, the intelligent mode is maintained; continue to detect the indoor temperature and the indoor oil fume concentration value, and at the same time continue to detect whether the intelligent mode is exited and determine whether the above intelligent mode exit conditions are met.
[0138] Among them, threshold value 1: a preset oil fume concentration value, generally a certain value within 0.01 - 1 mg / m3; threshold value 2: a preset oil fume concentration value, generally a certain value within 1 - 2 mg / m3; threshold value 3: a preset oil fume concentration value, generally above 2 mg / m3; threshold value 4: a preset temperature value of the indoor environment, generally a certain value within 16°C - 26°C; threshold value 5: a preset temperature value of the indoor environment, generally a certain value within 26°C - 32°C; threshold value 6: a preset temperature value of the indoor environment, generally above 32°C.
[0139] In addition, an embodiment of the present invention also proposes a computer-readable storage medium, on which an integrated stove control program is stored. When the integrated stove control program is executed by a processor, the relevant steps of any embodiment of the above integrated stove control method are implemented.
[0140] It should be noted that, in this document, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, such that a process, method, article or system comprising a series of elements not only includes those elements but also includes other elements not expressly listed, or further includes elements inherent to such process, method, article or system. Without further limitation, an element defined by the statement "comprising one..." does not exclude the existence of additional identical elements in the process, method, article or system comprising such element.
[0141] The serial numbers of the above embodiments of the present invention are for description only and do not represent the superiority or inferiority of the embodiments.
[0142] Through the description of the above embodiments, those skilled in the art can clearly understand that the above-described embodiment methods can be implemented by means of software plus a necessary general hardware platform. Of course, they can also be implemented by hardware, but in many cases the former is a better implementation. Based on such an understanding, the technical solution of the present invention, in essence, 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 as described above (such as ROM / RAM, magnetic disk, optical disc) and includes several instructions for causing a terminal device (which can be a mobile phone, computer, server, integrated stove, or network device, etc.) to execute the methods described in various embodiments of the present invention.
[0143] The above are only the preferred embodiments of the present invention, and do not limit the patent scope of the present invention accordingly. Any equivalent structural or equivalent process transformation made by using the description and drawings of the present invention, or directly or indirectly applied in other related technical fields, shall be equally included in the patent protection scope of the present invention.
Claims
1. An integrated stove control method, characterized in that, the integrated stove includes an air-conditioning module and an exhaust module, and the integrated stove control method includes the following steps: Obtain the oil fume concentration and environmental temperature of the indoor environment where the integrated stove is located; Determine the heat exchange control parameters of the air-conditioning module and the exhaust control parameters of the exhaust module according to the oil fume concentration and the environmental temperature; Control the operation of the air-conditioning module according to the heat exchange control parameters, and control the operation of the exhaust module according to the exhaust control parameters; The heat exchange control parameters include a target air outlet gear and a target circulation mode, and the step of determining the heat exchange control parameters of the air-conditioning module according to the oil fume concentration and the environmental temperature includes: Determine the target air outlet gear according to the oil fume concentration and the environmental temperature, and determine one of at least two circulation modes as the target circulation mode according to the oil fume concentration and the environmental temperature; The first circulation mode among the at least two circulation modes is the mode in which the air-conditioning module exchanges heat with indoor air and then sends air into the room, and the second circulation mode among the at least two circulation modes is the mode in which the air-conditioning module exchanges heat with outdoor air and then sends air into the room; After the step of obtaining the oil fume concentration and environmental temperature of the indoor environment where the integrated stove is located, it further includes: When the air-conditioning module is in cooling operation, when the environmental temperature is greater than a preset environmental temperature threshold, control both the exhaust module and the air-conditioning module to operate at the maximum gear, and control the air-conditioning module to operate in the second circulation mode; When the air-conditioning module is in cooling operation, when the environmental temperature is less than or equal to the preset environmental temperature threshold, execute the step of determining the heat exchange control parameters of the air-conditioning module and the exhaust control parameters of the exhaust module according to the oil fume concentration and the environmental temperature; The second circulation mode is the mode in which the air-conditioning module exchanges heat with outdoor air and then sends air into the room.
2. The integrated stove control method according to claim 1, characterized in that, When the air-conditioning module is in cooling operation, as the oil fume concentration increases and the environmental temperature increases, the target air outlet gear shows an increasing trend.
3. The integrated stove control method according to claim 2, characterized in that, The step of determining the target air outlet gear according to the oil fume concentration and the environmental temperature includes: When the air-conditioning module is in cooling operation, when the oil fume concentration is less than or equal to a first preset concentration and the environmental temperature is less than or equal to a first temperature threshold, determine the first gear as the target air outlet gear; When the oil fume concentration is greater than the first preset concentration and the environmental temperature is greater than the first temperature threshold, determine the second gear as the target air outlet gear; Wherein, the air outlet wind speed of the air-conditioning module corresponding to the first gear is less than the air outlet wind speed of the air-conditioning module corresponding to the second gear.
4. The integrated stove control method according to claim 1, characterized in that, The step of determining one of at least two circulation modes as the target circulation mode according to the oil fume concentration and the environmental temperature includes: When the air - conditioning module is in the cooling operation, when the oil - fume concentration is less than the second preset concentration and the ambient temperature is less than the second temperature threshold, determine that the first circulation mode is the target circulation mode; When the oil - fume concentration is greater than or equal to the second preset concentration and the ambient temperature is greater than or equal to the second temperature threshold, determine that the second circulation mode is the target circulation mode.
5. The integrated range hood control method according to claim 1, wherein, the step of determining the smoke exhaust control parameter of the smoke exhaust module according to the oil - fume concentration and the ambient temperature includes: Determine the target operating air volume of the smoke exhaust module according to the oil - fume concentration and the ambient temperature, and the smoke exhaust control parameter includes the target operating air volume.
6. The integrated range hood control method according to claim 5, wherein, when the air - conditioning module is in the cooling operation, with the increase of the oil - fume concentration and the increase of the ambient temperature, the target operating air volume shows an increasing trend.
7. The integrated range hood control method according to claim 6, wherein, the step of determining the target operating air volume of the smoke exhaust module according to the oil - fume concentration and the ambient temperature includes: When the air - conditioning module is in the cooling operation, when the oil - fume concentration is less than or equal to the third preset concentration and the ambient temperature is less than or equal to the third temperature threshold, determine that the third air volume is the target operating air volume; When the oil - fume concentration is greater than the third preset concentration and the ambient temperature is greater than the third temperature threshold, determine that the fourth air volume is the target operating air volume; wherein, the smoke exhaust speed of the smoke exhaust module corresponding to the third air volume is less than the smoke exhaust speed of the smoke exhaust module corresponding to the fourth air volume.
8. An integrated range hood, wherein, the integrated range hood includes: an air - conditioning module; a smoke exhaust module; and a control device, both the air - conditioning module and the smoke exhaust module are connected to the control device, and the control device includes: a memory, a processor, and an integrated range hood control program stored on the memory and operable on the processor. When the integrated range hood control program is executed by the processor, it implements the steps of the integrated range hood control method according to any one of claims 1 to 7.
9. A computer - readable storage medium, wherein, an integrated range hood control program is stored on the computer - readable storage medium. When the integrated range hood control program is executed by a processor, it implements the steps of the integrated range hood control method according to any one of claims 1 to 7.
Citation Information
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