Air conditioner energy saving method, electronic equipment and storage medium

By adjusting indoor air parameters using the outdoor environment in the air conditioning system, the problem of unsatisfactory energy saving effect in the existing air conditioning control methods is solved, and more efficient power consumption management is achieved.

CN120176237APending Publication Date: 2025-06-20QINGDAO HAIER INTELLIGENT HOME APPLIANCE TECHNOLOGY CO LTD +1
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Patent Information

Application Number
CN202311762713.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-12-19
Publication Date
2025-06-20

AI Technical Summary

Technical Problem

The existing air conditioning control methods have failed to make full use of indoor and outdoor environmental factors, resulting in poor energy saving effects.

Method used

When the outdoor air parameters are better than the indoor air parameters, use the outdoor environment to adjust the indoor air parameters, first reach the outdoor air parameters, and then reach the target air parameters, saving electricity by reducing the working time of the air conditioner equipment in a specific mode.

Benefits of technology

By making full use of the outdoor environment to adjust indoor air parameters, reduce the working time of air conditioning equipment and improve energy saving effects.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention provides an air conditioner energy saving method, electronic equipment and a storage medium, and the method comprises the following steps: when a first operation mode control instruction of air control is received, collecting current indoor air parameters and outdoor air parameters; and under the condition that it is determined that the outdoor air parameter is superior to the current indoor air parameter according to the target air parameter corresponding to the first operation mode control instruction, a second operation mode control instruction is sent to first air conditioning equipment so that the current indoor air parameter can reach the outdoor air parameter within the first set duration, and a third operation mode control instruction is sent to the second air conditioning equipment so that the current indoor air parameters can reach the target air parameters within the second set duration. According to the scheme, the indoor air parameters are adjusted by fully utilizing the outdoor environment, so that the working duration of the air conditioning equipment in the specific mode is shortened, the electricity consumption is reduced, and the energy-saving effect is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of air conditioners, and particularly to an air conditioner energy-saving method, an electronic device, and a storage medium. Background Art

[0002] With the gradual intensification of global warming, energy tension, and environmental protection awareness, the air conditioner industry is facing huge energy conservation and emission reduction pressures.

[0003] As a common electrical appliance in places such as homes and shopping malls, air conditioners account for a large proportion of the electricity consumption in summer and winter. Currently, the common way to control an air conditioner is that after the user sets the target temperature, the cooling or heating function of the air conditioner is directly started to make the indoor temperature reach the target temperature. However, the foregoing control method does not fully consider other factors that can assist in lowering or raising the indoor temperature, but directly starts the cooling or heating function, which cannot better reduce the electricity consumption of the air conditioner, and the energy-saving effect is not ideal. Summary of the Invention

[0004] In view of this, embodiments of the present invention provide an air conditioner energy-saving method, an electronic device, and a storage medium to solve problems such as the unsatisfactory energy-saving effect existing in the current method of controlling air conditioners.

[0005] To achieve the above object, the embodiments of the present invention provide the following technical solutions:

[0006] A first aspect of an embodiment of the present invention discloses an air conditioner energy-saving method, and the method includes:

[0007] When receiving a first operation mode control instruction for air control, collect current indoor air parameters and outdoor air parameters;

[0008] In the case where it is determined that the outdoor air parameters are superior to the current indoor air parameters according to the target air parameters corresponding to the first operation mode control instruction, send a second operation mode control instruction to a first air conditioning device to make the current indoor air parameters reach the outdoor air parameters within a first set time period, and send a third operation mode control instruction to a second air conditioning device to make the current indoor air parameters reach the target air parameters within a second set time period.

[0009] Preferably, the process of collecting the outdoor air parameters includes: detecting the outdoor air parameters by using a sensor, or obtaining the outdoor air parameters from the Internet, or performing big data analysis on air data to obtain the outdoor air parameters.

[0010] Preferably, the first air conditioning device includes at least one ventilation device, and the second air conditioning device includes an air conditioner device;

[0011] When it is determined that the outdoor air parameters are superior to the current indoor air parameters according to the target air parameters corresponding to the first operation mode control instruction, send a second operation mode control instruction to the first air conditioning device to make the current indoor air parameters reach the outdoor air parameters within a first set time period, and send a third operation mode control instruction to the second air conditioning device to make the current indoor air parameters reach the target air parameters within a second set time period, including:

[0012] When it is determined that the outdoor air parameters are superior to the current indoor air parameters according to the target air parameters corresponding to the first operation mode control instruction, send a second operation mode control instruction to the ventilation device, and control the ventilation device to operate so that the current indoor air parameters reach the outdoor air parameters within a first set time period;

[0013] When the current indoor air parameters reach the outdoor air parameters, send a third operation mode control instruction to the air conditioning device, and control the air conditioning device to operate so that the current indoor air parameters reach the target air parameters within a second set time period.

[0014] Preferably, sending a second operation mode control instruction to the ventilation device and controlling the ventilation device to operate so that the current indoor air parameters reach the outdoor air parameters within a first set time period includes:

[0015] Send a second operation mode control instruction to all the ventilation devices, and control all the ventilation devices to operate to adjust the indoor air parameters;

[0016] When it is possible to make the current indoor air parameters reach the outdoor air parameters within a first set time period, according to the difference between the current indoor air parameters and the outdoor air parameters, turn off the ventilation devices one by one in the order of decreasing power consumption.

[0017] Preferably, the first air conditioning device and the second air conditioning device are the same air conditioning device;

[0018] When it is determined that the outdoor air parameters are superior to the current indoor air parameters according to the target air parameters corresponding to the first operation mode control instruction, send a second operation mode control instruction to the first air conditioning device to make the current indoor air parameters reach the outdoor air parameters within a first set time period, and send a third operation mode control instruction to the second air conditioning device to make the current indoor air parameters reach the target air parameters within a second set time period, including:

[0019] When it is determined that the outdoor air parameters are superior to the current indoor air parameters according to the target air parameters corresponding to the first operation mode control instruction, send a second operation mode control instruction to the air conditioning device so that the current indoor air parameters reach the outdoor air parameters within a first set time period;

[0020] When the current indoor air parameters reach the outdoor air parameters, send a third operation mode control instruction to the air conditioning device so that the current indoor air parameters reach the target air parameters within a second set time period.

[0021] Preferably, the current indoor air parameters include any one or more of the following: temperature, humidity, atmospheric pollutant parameters.

[0022] Preferably, the current indoor air parameter is the current indoor temperature, the outdoor air parameter is the outdoor temperature, and the target air parameter is the target temperature;

[0023] When it is determined that the outdoor air parameters are superior to the current indoor air parameters according to the target air parameters corresponding to the first operation mode control instruction, sending a second operation mode control instruction to the first air conditioning device so that the current indoor air parameters reach the outdoor air parameters within a first set time period, and sending a third operation mode control instruction to the second air conditioning device so that the current indoor air parameters reach the target air parameters within a second set time period, includes:

[0024] When the first operation mode control instruction is a cooling instruction and the outdoor temperature is lower than the current indoor temperature, if the outdoor temperature is higher than the target temperature, send a second operation mode control instruction to the first air conditioning device so that the current indoor temperature is reduced to the outdoor temperature within a first set time period, and send a third operation mode control instruction to the second air conditioning device so that the current indoor temperature is reduced to the target temperature within a second set time period;

[0025] When the first operation mode control instruction is a heating instruction and the outdoor temperature is higher than the current indoor temperature, if the outdoor temperature is lower than the target temperature, send a second operation mode control instruction to the first air conditioning device so that the current indoor temperature is increased to the outdoor temperature within a first set time period, and send a third operation mode control instruction to the second air conditioning device so that the current indoor temperature is increased to the target temperature within a second set time period.

[0026] Preferably, the method further includes:

[0027] When the first operating mode control instruction is a refrigeration instruction and the outdoor temperature is lower than the current indoor temperature, if the outdoor temperature is lower than the target temperature, send a fourth operating mode control instruction to the first air conditioning device to reduce the current indoor temperature to the target temperature within a third set duration;

[0028] When the first operating mode control instruction is a heating instruction and the outdoor temperature is higher than the current indoor temperature, if the outdoor temperature is higher than the target temperature, send a fifth operating mode control instruction to the first air conditioning device to increase the current indoor temperature to the target temperature within a fourth set duration.

[0029] A second aspect of an embodiment of the present invention discloses an electronic device, including: a processor and a memory, the processor and the memory are connected by a communication bus; wherein, the processor is configured to call and execute a program stored in the memory; the memory is configured to store a program, and the program is used to implement the air conditioner energy saving method disclosed in the first aspect of an embodiment of the present invention.

[0030] A third aspect of an embodiment of the present invention discloses a computer-readable storage medium, in which computer-executable instructions are stored, and the computer-executable instructions are used to execute the air conditioner energy saving method disclosed in the first aspect of an embodiment of the present invention.

[0031] Based on the air conditioner energy saving method, electronic device and storage medium provided in the above embodiments of the present invention, the method is: when receiving a first operating mode control instruction for air control, collect current indoor air parameters and outdoor air parameters; when it is determined that the outdoor air parameters are better than the current indoor air parameters according to the target air parameters corresponding to the first operating mode control instruction, send a second operating mode control instruction to the first air conditioning device to make the current indoor air parameters reach the outdoor air parameters within a first set duration, and send a third operating mode control instruction to the second air conditioning device to make the current indoor air parameters reach the target air parameters within a second set duration. This solution first adjusts the current indoor air parameters to the outdoor air parameters by using the outdoor environment when the outdoor air parameters are better than the current indoor air parameters, and then adjusts the current indoor air parameters to the target air parameters. By making full use of the outdoor environment to adjust the indoor air parameters, the working duration of the air conditioning device in a specific mode is reduced to save electricity and improve the energy saving effect. Description of the Drawings

[0032] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for the description of the embodiments or the prior art. Obviously, the drawings in the following description are only the embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained according to the provided drawings.

[0033] Figure 1 It is a flowchart of an air conditioner energy-saving method provided by an embodiment of the present invention;

[0034] Figure 2 It is another flowchart of an air conditioner energy-saving method provided by an embodiment of the present invention;

[0035] Figure 3 It is yet another flowchart of an air conditioner energy-saving method provided by an embodiment of the present invention;

[0036] Figure 4 It is a structural block diagram of an air conditioner energy-saving system provided by an embodiment of the present invention. Detailed implementation manners

[0037] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.

[0038] In this application, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not explicitly listed, or further includes elements inherent to such process, method, article or device. Without more limitations, the element defined by the statement "including one..." does not exclude the existence of additional identical elements in the process, method, article or device including the said element.

[0039] With the gradual intensification of global warming, energy tension and environmental protection awareness, the air conditioner industry is facing huge pressure on energy conservation and emission reduction. As a common electrical appliance in places such as homes and shopping malls, air conditioners consume a large amount of electric energy in summer and winter and account for a large proportion of the electricity consumption.

[0040] The inventors have found through research that the promotion of energy-saving air conditioners helps to relieve the energy pressure, reduce the power supply load, and improve the energy utilization rate. In response to the call for energy conservation and emission reduction, air conditioner manufacturers have developed air conditioner products with technologies such as variable frequency technology, dual-mode cooling / heating systems, and intelligent control systems. Currently, the common way to control an air conditioner is as follows: after the user sets the target temperature, the cooling or heating function of the air conditioner is directly activated to make the indoor temperature reach the target temperature. However, the foregoing control method does not fully consider other factors that can assist in reducing or increasing the indoor temperature, but directly activates the cooling or heating function, which cannot better reduce the power consumption of the air conditioner and the energy-saving effect is not ideal.

[0041] Therefore, this solution provides an air conditioner energy-saving method, an electronic device, and a storage medium. When the outdoor air parameters are better than the current indoor air parameters, first use the outdoor environment to adjust the current indoor air parameters to the outdoor air parameters, and then adjust the current indoor air parameters to the target air parameters. By making full use of the outdoor environment to adjust the indoor air parameters, the working duration of the air conditioning equipment in a specific mode is reduced to save power consumption and improve the energy-saving effect.

[0042] It should be noted that the air conditioner energy-saving method provided in this solution can be applied to execution entities such as air conditioner equipment, ventilation equipment, edge servers, and cloud servers.

[0043] See Figure 1 , which shows a flowchart of an air conditioner energy-saving method provided by an embodiment of the present invention. The air conditioner energy-saving method includes:

[0044] Step S101: When receiving the first operation mode control instruction for air control, collect the current indoor air parameters and outdoor air parameters.

[0045] In the process of specifically implementing step S101, when receiving the first operation mode control instruction for air control, obtain the target air parameters corresponding to the first operation mode control instruction, and collect the current indoor air parameters and outdoor air parameters.

[0046] In some embodiments, the outdoor air parameters are detected by sensors, or obtained from the Internet, or the outdoor air parameters are obtained by performing big data analysis on air data.

[0047] It should be noted that the current indoor air parameters include any one or more of the following: temperature, humidity, atmospheric pollutant parameters (such as PM2.5, etc.); similarly, the outdoor air parameters also include any one or more of the following: temperature, humidity, atmospheric pollutant parameters.

[0048] When the current indoor air parameter is the current indoor temperature, the outdoor air parameter is the outdoor temperature, and the target air parameter is the target temperature, the first operation mode control instruction can be a refrigeration instruction or a heating instruction; when the current indoor air parameter is the current indoor humidity, the outdoor air parameter is the outdoor humidity, and the target air parameter is the target humidity, the first operation mode control instruction can be a dehumidification instruction or a humidification instruction; similarly, when the current indoor air parameter, outdoor air parameter, and target air parameter are other types of data, the first operation mode control instruction can be a relevant control instruction, and no examples will be given here one by one.

[0049] After obtaining the current indoor air parameter and outdoor air parameter by collection, calculate the difference between the current indoor air parameter and the outdoor air parameter, and calculate the difference between the outdoor air parameter and the target air parameter; the differences calculated above can be used to at least reflect the magnitude relationship (or the quality relationship) among the current indoor air parameter, outdoor air parameter, and target air parameter; similarly, the magnitude relationship among the current indoor air parameter, outdoor air parameter, and target air parameter can also be determined by comparison.

[0050] Step S102: When it is determined according to the target air parameter corresponding to the first operation mode control instruction that the outdoor air parameter is better than the current indoor air parameter, send a second operation mode control instruction to the first air conditioning device to make the current indoor air parameter reach the outdoor air parameter within the first set duration, and send a third operation mode control instruction to the second air conditioning device to make the current indoor air parameter reach the target air parameter within the second set duration.

[0051] It should be noted that when the first operation mode control instruction is a refrigeration instruction, "the outdoor air parameter is better than the current indoor air parameter" specifically means: the outdoor temperature is lower than the current indoor temperature. When the first operation mode control instruction is a heating instruction, "the outdoor air parameter is better than the current indoor air parameter" specifically means: the outdoor temperature is higher than the current indoor temperature. When the first operation mode control instruction is a dehumidification instruction, "the outdoor air parameter is better than the current indoor air parameter" specifically means: the outdoor humidity is lower than the current indoor humidity. The same applies to other situations, and no examples will be given here one by one.

[0052] In the process of specifically implementing step S102, when the outdoor air parameter is better than the current indoor air parameter, if the outdoor air parameter is not better than the target air parameter, send a second operation mode control instruction to the first air conditioning device to make the current indoor air parameter reach the outdoor air parameter within the first set duration, and send a third operation mode control instruction to the second air conditioning device to make the current indoor air parameter reach the target air parameter within the second set duration.

[0053] As can be seen from the above, when the outdoor air parameters are better than the current indoor air parameters, but the outdoor air parameters are not better than the target air parameters, this solution first uses the outdoor environment to adjust the current indoor air parameters to the outdoor air parameters, and then further adjusts the current indoor air parameters to the target air parameters. In this way, the outdoor environment can be fully utilized to adjust the indoor air parameters, thereby reducing the working hours of the air conditioning equipment in a specific mode to save electricity and improving the energy-saving effect.

[0054] It should be noted that the above-mentioned first air conditioning equipment and second air conditioning equipment can be the same equipment or different equipment; in the above two cases, the control methods for the first air conditioning equipment and the second air conditioning equipment are also different, which will be explained separately below.

[0055] In some embodiments, when the first air conditioning equipment and the second air conditioning equipment are different equipment, the corresponding control method is as follows:

[0056] The first air conditioning equipment includes at least one ventilation equipment, and the second air conditioning equipment includes an air conditioning equipment.

[0057] When it is determined that the outdoor air parameters are better than the current indoor air parameters according to the target air parameters corresponding to the first operation mode control instruction, if the outdoor air parameters are not better than the target air parameters, send a second operation mode control instruction to the ventilation equipment (the first air conditioning equipment) to control the ventilation equipment to work (ventilate and exchange air) so that the current indoor air parameters reach the outdoor air parameters within the first set time.

[0058] When the current indoor air parameters reach the outdoor air parameters, send a third operation mode control instruction to the air conditioning equipment (the second air conditioning equipment) to control the air conditioning equipment to work so that the current indoor air parameters reach the target air parameters within the second set time.

[0059] It can be understood that since the first air conditioning equipment includes at least one ventilation equipment, for further energy saving, the specific method of controlling each ventilation equipment to work is: send a second operation mode control instruction to all ventilation equipment to control all ventilation equipment to work (ventilate and exchange air) to adjust the indoor air parameters; when the current indoor air parameters can reach the outdoor air parameters within the first set time, according to the difference between the current indoor air parameters and the outdoor air parameters, turn off the ventilation equipment one by one in the order of decreasing power consumption.

[0060] That is to say, first control all ventilation devices (the first air conditioning device) to work simultaneously for ventilation. On the premise of ensuring that the current indoor air parameters reach the outdoor air parameters within the first set time period, gradually turn off the ventilation devices with high power consumption according to the ventilation situation; when the current indoor air parameters reach the outdoor air parameters, then control the air conditioning device to work and adjust the current indoor air parameters to the target air parameters within the second set time period.

[0061] The above is the description of the control method in the case where the first air conditioning device and the second air conditioning device are different devices.

[0062] In some embodiments, when the first air conditioning device and the second air conditioning device are the same device, the corresponding control method is as follows:

[0063] The first air conditioning device and the second air conditioning device are the same air conditioning device.

[0064] When it is determined according to the target air parameters corresponding to the first operation mode control instruction that the outdoor air parameters are better than the current indoor air parameters, if the outdoor air parameters are not better than the target air parameters, send a second operation mode control instruction to the air conditioning device so that the current indoor air parameters reach the outdoor air parameters within the first set time period. Specifically, send a second operation mode control instruction to the air conditioning device for air exchange to adjust the current indoor air parameters to the outdoor air parameters within the first set time period.

[0065] When the current indoor air parameters reach the outdoor air parameters, send a third operation mode control instruction to the air conditioning device so that the current indoor air parameters reach the target air parameters within the second set time period.

[0066] The above is the description of the control method in the case where the first air conditioning device and the second air conditioning device are the same device.

[0067] In some embodiments, when it is determined according to the target air parameters corresponding to the first operation mode control instruction that the outdoor air parameters are not better than the current indoor air parameters, send the corresponding control instruction to the second air conditioning device so that the current indoor air parameters reach the target air parameters within the corresponding set time period.

[0068] Taking the current indoor air parameter as the current indoor temperature, the outdoor air parameter as the outdoor temperature, and the target air parameter as the target temperature as an example, the following content describes the specific method of how to make the current indoor air parameter reach the target air parameter:

[0069] When the first operating mode control instruction is a cooling instruction and the outdoor temperature is lower than the current indoor temperature, if the outdoor temperature is higher than the target temperature (which means the outdoor temperature is not better than the target temperature at this time), send a second operating mode control instruction to the first air conditioning device to reduce the current indoor temperature to the outdoor temperature within the first set duration, and send a third operating mode control instruction to the second air conditioning device to reduce the current indoor temperature to the target temperature within the second set duration.

[0070] When the first operating mode control instruction is a heating instruction and the outdoor temperature is higher than the current indoor temperature, if the outdoor temperature is lower than the target temperature (which means the outdoor temperature is not better than the target temperature at this time), send a second operating mode control instruction to the first air conditioning device to increase the current indoor temperature to the outdoor temperature within the first set duration, and send a third operating mode control instruction to the second air conditioning device to increase the current indoor temperature to the target temperature within the second set duration.

[0071] In some embodiments, when it is determined that the outdoor air parameters are better than the current indoor air parameters according to the target air parameters corresponding to the first operating mode control instruction, if the outdoor air parameters are better than the target air parameters, send the corresponding control instruction to the first air conditioning device to make the current indoor air parameters reach the target air parameters within the corresponding set duration. Taking the current indoor air parameters as the current indoor temperature, the outdoor air parameters as the outdoor temperature, and the target air parameters as the target temperature as an example, the following is an illustration:

[0072] When the first operating mode control instruction is a cooling instruction and the outdoor temperature is lower than the current indoor temperature, if the outdoor temperature is lower than the target temperature (which means the outdoor temperature is better than the target temperature at this time), send a fourth operating mode control instruction to the first air conditioning device to reduce the current indoor temperature to the target temperature within the third set duration.

[0073] When the first operating mode control instruction is a heating instruction and the outdoor temperature is higher than the current indoor temperature, if the outdoor temperature is higher than the target temperature (which means the outdoor temperature is better than the target temperature at this time), send a fifth operating mode control instruction to the first air conditioning device to increase the current indoor temperature to the target temperature within the fourth set duration.

[0074] From the above content taking the current indoor air parameters as the current indoor temperature, the outdoor air parameters as the outdoor temperature, and the target air parameters as the target temperature as an example, it can be seen that the above example content includes at least the following three control methods.

[0075] The first control method:

[0076] According to the magnitude relationship among the current indoor temperature, outdoor temperature, and target temperature, start the first air conditioning device to make the current indoor temperature the same as the outdoor temperature. When the current indoor temperature and outdoor temperature are the same, start the second air conditioning device to adjust the current indoor temperature to be the same as the target temperature.

[0077] Specifically, in the case where the first operation mode control instruction is a cooling instruction and the outdoor temperature is lower than the current indoor temperature, if the outdoor temperature is higher than the target temperature, start the first air conditioning device for ventilation to reduce the current indoor temperature to the outdoor temperature; after the current indoor temperature and outdoor temperature are the same, since the outdoor temperature is greater than the target temperature, at this time, it is also necessary to start the second air conditioning device to reduce the current indoor temperature to the target temperature.

[0078] In the case where the first operation mode control instruction is a heating instruction and the outdoor temperature is higher than the current indoor temperature, if the outdoor temperature is lower than the target temperature, start the first air conditioning device for ventilation to increase the current indoor temperature to the outdoor temperature; after the current indoor temperature and outdoor temperature are the same, since the outdoor temperature is less than the target temperature, at this time, it is also necessary to start the second air conditioning device to increase the current indoor temperature to the target temperature.

[0079] The second control method:

[0080] According to the magnitude relationship among the current indoor temperature, outdoor temperature, and target temperature, start the first air conditioning device to make the current indoor temperature the same as the target temperature.

[0081] Specifically, in the case where the first operation mode control instruction is a cooling instruction and the outdoor temperature is lower than the current indoor temperature, if the outdoor temperature is lower than the target temperature, since the outdoor temperature is lower than the target temperature, at this time, only start the first air conditioning device to reduce the current indoor temperature to the target temperature (there is no need to start the second air conditioning device).

[0082] In the case where the first operation mode control instruction is a heating instruction and the outdoor temperature is higher than the current indoor temperature, if the outdoor temperature is higher than the target temperature, since the outdoor temperature is higher than the target temperature, at this time, only start the first air conditioning device to increase the current indoor temperature to the target temperature (there is no need to start the second air conditioning device).

[0083] The third control method:

[0084] According to the magnitude relationship among the current indoor temperature, outdoor temperature, and target temperature, start the second air conditioning device to make the current indoor temperature the same as the target temperature.

[0085] Specifically, in the case where the first operation mode control instruction is a cooling instruction, if the current indoor temperature is lower than the outdoor temperature, start the second air conditioning device to make the current indoor temperature reach the target temperature.

[0086] When the first operation mode control instruction is a heating instruction, if the current indoor temperature is higher than the outdoor temperature, start the second air conditioning device to make the current indoor temperature reach the target temperature.

[0087] The above is the related description of multiple control methods.

[0088] In the embodiment of the present invention, when the outdoor air parameters are better than the current indoor air parameters, first adjust the current indoor air parameters to the outdoor air parameters by using the outdoor environment, and then adjust the current indoor air parameters to the target air parameters. By making full use of the outdoor environment to adjust the indoor air parameters, the working duration of the air conditioning device in a specific mode is reduced to save electricity consumption and improve the energy-saving effect.

[0089] To better explain the content of the above embodiment of the present invention, taking the first air conditioning device and the second air conditioning device as the same air conditioner, the current indoor air parameters as the current indoor temperature, the outdoor air parameters as the outdoor temperature, and the target air parameters as the target temperature as an example, through Figure 2 Another flowchart of an air conditioning energy-saving method shown is used for illustration by way of example. Figure 2 It includes the following steps:

[0090] Step S201: The user turns on the air conditioning device, triggers the first operation mode control instruction and sets the target temperature.

[0091] Step S202: Collect the current indoor temperature and the outdoor temperature, and calculate the temperature difference between the current indoor temperature and the outdoor temperature.

[0092] Step S203: Determine whether the temperature difference meets the preset condition; if the temperature difference meets the preset condition, execute Step S204; if the temperature difference does not meet the preset condition, execute Step S206.

[0093] It should be noted that the temperature difference meeting the preset condition specifically means that when the first operation mode control instruction is a cooling instruction, the current indoor temperature is greater than the outdoor temperature; or when the first operation mode control instruction is a heating instruction, the current indoor temperature is less than the outdoor temperature.

[0094] Step S204: Start the air exchange mode of the air conditioning device for air exchange operation.

[0095] Step S205: Determine whether the current indoor temperature reaches the target temperature. If the current indoor temperature does not reach the target temperature, execute Step S206.

[0096] Step S206: Start the cooling mode or the heating mode of the air conditioning device.

[0097] It should be noted that for the implementation principles of steps S201 to S206, reference can be made to the content in the foregoing embodiments of the present invention, which will not be elaborated herein. Figure 1 and will not be repeated here.

[0098] In practical applications, the user can start the air-conditioning device, trigger the first operating mode control instruction, and set the target temperature through the user client (APP side); the air-conditioning device collects the current indoor temperature and outdoor temperature through temperature sensors and uploads the collected data to the server, and the server controls the operation of the air-conditioning device based on the data uploaded by the air-conditioning device to adjust the current indoor temperature to be consistent with the target temperature. To better understand the interaction process among the foregoing APP side, air-conditioning device, and server, an example is given through Figure 3 another flowchart of an air-conditioning energy-saving method shown in Figure 3 which includes the following steps:

[0099] Step S301: The user starts the air-conditioning device through the user client, selects the cooling mode, and sets the target temperature to 20 degrees Celsius.

[0100] Among them, selecting the cooling mode specifically means that the first operating mode control instruction is a cooling instruction.

[0101] Step S302: The outdoor temperature collected by the air-conditioning device through the temperature sensor is 24 degrees Celsius, and the current indoor temperature is 28 degrees Celsius; the air-conditioning device uploads the collected outdoor temperature and current indoor temperature to the server.

[0102] Step S303: The server preferentially starts the ventilation mode of the air-conditioning device to reduce the current indoor temperature to 24 degrees Celsius.

[0103] In the process of specifically implementing step S303, in the case of selecting the cooling mode, since the current indoor temperature (currently 28 degrees Celsius) is greater than the outdoor temperature (24 degrees Celsius), the ventilation mode of the air-conditioning device is preferentially started for ventilation operation (sending the second operating mode instruction) to reduce the current indoor temperature to 24 degrees Celsius (reducing to be consistent with the outdoor temperature).

[0104] It should be noted that after starting the ventilation mode, the air-conditioning device also collects and uploads the current indoor temperature and outdoor temperature in real time.

[0105] Step S304: After the server determines that the current indoor temperature has been reduced to be consistent with the outdoor temperature, the server starts the cooling mode of the air-conditioning device to reduce the current indoor temperature to 20 degrees Celsius.

[0106] In the process of specifically implementing step S304, after determining that the current indoor temperature has dropped to the same as the outdoor temperature, since the outdoor temperature (24 degrees Celsius) is greater than the target temperature (20 degrees Celsius), the cooling mode of the air conditioning device is started at this time (the third operation mode instruction is sent), so that the current indoor temperature is reduced to 20 degrees Celsius (reduced to the same as the target temperature).

[0107] It should be noted that after starting the cooling mode, the air conditioning device also collects and uploads the current indoor temperature and outdoor temperature in real time.

[0108] Step S305: After the server determines that the current indoor temperature has dropped to the same as the target temperature, the server sends a prompt message to the user client to prompt the user that the current indoor temperature has reached the target temperature (the air conditioning device has completed the cooling behavior).

[0109] Corresponding to the air conditioner energy-saving method provided in the above embodiment of the present invention, see Figure 4 , the embodiment of the present invention also provides a structural block diagram of an air conditioner energy-saving system. The air conditioner energy-saving system includes: a collection unit 401 and a control unit 402;

[0110] The collection unit 401 is used to collect the current indoor air parameters and outdoor air parameters when receiving the first operation mode control instruction for air control.

[0111] The control unit 402 is used to send a second operation mode control instruction to the first air conditioning device to make the current indoor air parameters reach the outdoor air parameters within the first set duration, and send a third operation mode control instruction to the second air conditioning device to make the current indoor air parameters reach the target air parameters within the second set duration when it is determined that the outdoor air parameters are better than the current indoor air parameters according to the target air parameters corresponding to the first operation mode control instruction.

[0112] It should be noted that the execution principles of the collection unit 401 and the control unit 402 have been described in detail in the above embodiment of the air conditioner energy-saving method. See, and will not be elaborated here.

[0113] Preferably, the embodiment of the present invention also provides an electronic device, including: a processor and a memory, and the processor and the memory are connected through a communication bus; wherein, the processor is used to call and execute the program stored in the memory; the memory is used to store the program, and the program is used to implement the air conditioner energy-saving method provided in the above method embodiment.

[0114] Preferably, the embodiment of the present invention also provides a computer-readable storage medium, and the computer-readable storage medium stores computer-executable instructions, and the computer-executable instructions are used to execute the air conditioner energy-saving method provided in the above method embodiment.

[0115] In summary, the embodiments of the present invention provide an air conditioner energy-saving method, an electronic device, and a storage medium. When the outdoor air parameters are better than the current indoor air parameters, first use the outdoor environment to adjust the current indoor air parameters to the outdoor air parameters, and then adjust the current indoor air parameters to the target air parameters. By making full use of the outdoor environment to adjust the indoor air parameters, the working duration of the air conditioning equipment in a specific mode is reduced to save electricity consumption and improve the energy-saving effect.

[0116] Each embodiment in this specification is described in a progressive manner. For the same or similar parts among the embodiments, reference can be made to each other. Each embodiment focuses on the differences from other embodiments. In particular, for the system or system embodiment, since it is basically similar to the method embodiment, it is described relatively simply. For the relevant parts, reference can be made to the partial description of the method embodiment. The systems and system embodiments described above are merely illustrative. The units described as separate components may or may not be physically separated, and the components shown as units may or may not be physical units, that is, they may be located in one place or distributed to multiple network units. Some or all of the modules can be selected according to actual needs to achieve the purpose of the solution of this embodiment. A person of ordinary skill in the art can understand and implement it without creative work.

[0117] Those skilled in the art can further realize that the units and algorithm steps of each example described in combination with the embodiments disclosed herein can be implemented by electronic hardware, computer software, or a combination of the two. To clearly illustrate the interchangeability of hardware and software, the components and steps of each example have been generally described according to their functions in the above description. Whether these functions are executed in a hardware or software manner depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementation should not be considered to exceed the scope of the present invention.

[0118] The above description of the disclosed embodiments enables those skilled in the art to implement or use the present invention. Various modifications to these embodiments will be obvious to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the scope of the present invention. Therefore, the present invention will not be limited to the embodiments shown herein, but will be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. An air conditioner energy-saving method, characterized in that, The method includes: When receiving a first operating mode control instruction for air control, collecting current indoor air parameters and outdoor air parameters; When it is determined that the outdoor air parameters are superior to the current indoor air parameters according to the target air parameters corresponding to the first operating mode control instruction, sending a second operating mode control instruction to a first air conditioning device to make the current indoor air parameters reach the outdoor air parameters within a first set time period, and sending a third operating mode control instruction to a second air conditioning device to make the current indoor air parameters reach the target air parameters within a second set time period.

2. The method according to claim 1, characterized in that, The process of collecting the outdoor air parameters includes: detecting the outdoor air parameters using a sensor, or obtaining the outdoor air parameters from the Internet, or performing big data analysis on air data to obtain the outdoor air parameters.

3. The method according to claim 1, characterized in that, The first air conditioning device includes at least one ventilation device, and the second air conditioning device includes an air conditioning device; When it is determined that the outdoor air parameters are superior to the current indoor air parameters according to the target air parameters corresponding to the first operating mode control instruction, sending a second operating mode control instruction to a first air conditioning device to make the current indoor air parameters reach the outdoor air parameters within a first set time period, and sending a third operating mode control instruction to a second air conditioning device to make the current indoor air parameters reach the target air parameters within a second set time period, includes: When it is determined that the outdoor air parameters are superior to the current indoor air parameters according to the target air parameters corresponding to the first operating mode control instruction, sending a second operating mode control instruction to the ventilation device, and controlling the ventilation device to operate to make the current indoor air parameters reach the outdoor air parameters within a first set time period; When the current indoor air parameters reach the outdoor air parameters, sending a third operating mode control instruction to the air conditioning device, and controlling the air conditioning device to operate to make the current indoor air parameters reach the target air parameters within a second set time period.

4. The method according to claim 3, characterized in that, Sending a second operating mode control instruction to the ventilation device, and controlling the ventilation device to operate to make the current indoor air parameters reach the outdoor air parameters within a first set time period, includes: Sending a second operating mode control instruction to all the ventilation devices, and controlling all the ventilation devices to operate to adjust the indoor air parameters; When it is possible to make the current indoor air parameters reach the outdoor air parameters within a first set time period, according to the difference between the current indoor air parameters and the outdoor air parameters, turning off the ventilation devices one by one in the order of decreasing power consumption.

5. The method according to claim 1, characterized in that, The first air conditioning device and the second air conditioning device are the same air conditioning device; When it is determined that the outdoor air parameters are superior to the current indoor air parameters based on the target air parameters corresponding to the first operation mode control instruction, sending a second operation mode control instruction to the first air conditioning device to make the current indoor air parameters reach the outdoor air parameters within a first set duration, and sending a third operation mode control instruction to the second air conditioning device to make the current indoor air parameters reach the target air parameters within a second set duration, includes: When it is determined that the outdoor air parameters are superior to the current indoor air parameters based on the target air parameters corresponding to the first operation mode control instruction, sending a second operation mode control instruction to the air conditioning device to make the current indoor air parameters reach the outdoor air parameters within a first set duration; When the current indoor air parameters reach the outdoor air parameters, sending a third operation mode control instruction to the air conditioning device to make the current indoor air parameters reach the target air parameters within a second set duration.

6. The method according to any one of claims 1-5, characterized in that, The current indoor air parameters include any one or more of the following: temperature, humidity, atmospheric pollutant parameters.

7. The method according to claim 6, characterized in that, The current indoor air parameter is the current indoor temperature, the outdoor air parameter is the outdoor temperature, and the target air parameter is the target temperature; When it is determined that the outdoor air parameters are superior to the current indoor air parameters based on the target air parameters corresponding to the first operation mode control instruction, sending a second operation mode control instruction to the first air conditioning device to make the current indoor air parameters reach the outdoor air parameters within a first set duration, and sending a third operation mode control instruction to the second air conditioning device to make the current indoor air parameters reach the target air parameters within a second set duration, includes: When the first operation mode control instruction is a cooling instruction and the outdoor temperature is lower than the current indoor temperature, if the outdoor temperature is higher than the target temperature, sending a second operation mode control instruction to the first air conditioning device to make the current indoor temperature decrease to the outdoor temperature within a first set duration, and sending a third operation mode control instruction to the second air conditioning device to make the current indoor temperature decrease to the target temperature within a second set duration; When the first operation mode control instruction is a heating instruction and the outdoor temperature is higher than the current indoor temperature, if the outdoor temperature is lower than the target temperature, sending a second operation mode control instruction to the first air conditioning device to make the current indoor temperature increase to the outdoor temperature within a first set duration, and sending a third operation mode control instruction to the second air conditioning device to make the current indoor temperature increase to the target temperature within a second set duration.

8. The method according to claim 7, characterized in that, The method further includes: When the first operation mode control instruction is a cooling instruction and the outdoor temperature is lower than the current indoor temperature, if the outdoor temperature is lower than the target temperature, sending a fourth operation mode control instruction to the first air conditioning device to make the current indoor temperature decrease to the target temperature within a third set duration; When the first operating mode control instruction is a heating instruction and the outdoor temperature is higher than the current indoor temperature, if the outdoor temperature is higher than the target temperature, send a fifth operating mode control instruction to the first air conditioning device to raise the current indoor temperature to the target temperature within a fourth set duration.

9. An electronic device, characterized in that, Comprising: A processor and a memory, the processor and the memory are connected by a communication bus; wherein, the processor is configured to call and execute a program stored in the memory; The memory is configured to store a program, and the program is used to implement the air conditioner energy saving method according to any one of claims 1-8.

10. A computer-readable storage medium, characterized in that, Computer-executable instructions are stored in the computer-readable storage medium, and the computer-executable instructions are used to execute the air conditioner energy saving method according to any one of claims 1-8.