Air conditioner control method and device based on air parameters
By acquiring air parameters to predict their impact on the human body, the air conditioner is intelligently controlled to purify the air, solving the problem of untimely air purification in smart air conditioners and improving the air purification effect and user experience.
Patent Information
- Application Number
- CN202410637553.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-21
- Publication Date
- 2025-11-21
AI Technical Summary
Existing smart air conditioners are unable to respond to user needs in a timely manner in terms of air purification, resulting in a decline in user experience.
By acquiring airborne particulate matter and gas parameters, the system predicts their impact on the human body, determines whether purification conditions have been met, and performs air purification operations based on air conditioning control parameters.
This improves the timeliness and reliability of air purification, enhancing the user experience.
Smart Images

Figure CN120991436A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of intelligent air conditioning technology, and in particular to an air conditioning control method and device based on air parameters. Background Technology
[0002] With the rapid development of home appliance technology, smart air conditioners have gradually become essential home appliances in people's lives. The emergence of smart air conditioners can create a living space that is warm in winter and cool in summer, allowing users to live comfortably and happily.
[0003] Currently, smart air conditioners, in addition to regulating ambient temperature, also purify the air. Generally, when users want fresh air, they can remotely control the air conditioner to purify the air in their environment, creating a comfortable breathing environment. However, this air purification method relies on manual intervention and is difficult to achieve the desired air quality in a timely manner, requiring users to endure some breathing discomfort for a period of time, thus affecting the user experience of smart air conditioners. Therefore, providing a method to improve the timeliness of air purification in smart air conditioners is particularly important. Summary of the Invention
[0004] This invention provides an air conditioning control method and device based on air parameters, which not only improves the timeliness of air purification control of the air conditioner, but also improves the reliability and accuracy of air purification control, thereby helping to improve the freshness of the air and enhance the user's experience of using the air conditioner.
[0005] To address the aforementioned technical problems, the first aspect of this invention discloses an air conditioning control method based on air parameters, the method comprising:
[0006] Obtain target parameters of the air in the current environment; the target parameters of the air include the parameters of suspended particles and / or gas parameters of the air;
[0007] Based on the target parameters of the air, it is determined whether the air meets the preset purification conditions. If so, the control parameters of the air conditioner used for air purification are determined. The control parameters include at least one of the following: air temperature control parameters, air volume control parameters, air direction control parameters, air extraction control parameters, and running time control parameters.
[0008] According to the control parameters of the air conditioner, an air purification control operation is performed on the air conditioner.
[0009] As an optional implementation, in the first aspect of the present invention, the suspended particulate parameters of the air include at least one of the type parameters, particle size parameters, and particle concentration parameters of the suspended particles in the air.
[0010] The step of determining whether the air meets the preset purification conditions based on the target parameters of the air includes:
[0011] When the target parameters of the air include the parameters of suspended particles in the air, the floating parameters of the suspended particles are predicted based on the suspended particle parameters; the floating parameters include at least one of the parameters of floating duration, floating range, and floating amount.
[0012] Based on the floating parameters of the suspended particles and the parameters of the suspended particles, the first inhalation situation of the target person in the current environment is predicted; the first inhalation situation includes the first inhalation volume and the first inhalation location.
[0013] Based on the first inhalation situation, predict the first respiratory impact of the suspended particles on the target personnel at the target site; the target site includes the upper respiratory tract and the lower respiratory tract.
[0014] Based on the first respiratory impact situation, determine the first impact level corresponding to the first respiratory impact situation, and determine whether the first impact level is greater than or equal to the preset first impact level threshold.
[0015] When it is determined that the first degree of influence is greater than or equal to the first degree of influence threshold, the air is determined to have reached the preset purification conditions.
[0016] As an optional implementation, in a first aspect of the invention, predicting the first inhalation of the suspended particles by a target person in the current environment based on the floating parameters of the suspended particles and the suspended particle parameters includes:
[0017] Determine whether the target personnel in the current environment are wearing respiratory protective equipment. If so, obtain the equipment parameters of the respiratory protective equipment. The equipment parameters include at least one of the following: equipment type parameters, equipment wearing method parameters, and equipment historical usage information.
[0018] Based on the equipment parameters, the floating parameters of the suspended particles, and the parameters of the suspended particles, the first inhalation blocking condition of the respiratory protective equipment against the suspended particles is determined; the first inhalation blocking condition includes the first inhalation blocking amount and / or the first inhalation blocking effective duration.
[0019] Based on the first inhalation obstruction, the first inhalation situation of the target person regarding the suspended particles is predicted.
[0020] As an optional implementation, in the first aspect of the present invention, the gas parameters of the air include gas type parameters and gas concentration parameters of various gases in the air;
[0021] The step of determining whether the air meets the preset purification conditions based on the target parameters of the air further includes:
[0022] When the target parameters of the air include the gas parameters of the air, it is determined whether the target gas is contained in all the gases based on the gas type parameters of all the gases.
[0023] When it is determined that all the gases contain the target gas, based on the gas concentration parameter of the target gas, a second inhalation situation of the target personnel in the current environment is predicted; the second inhalation situation includes a second inhalation volume and a second inhalation location.
[0024] Based on the second inhalation situation, predict the first physiological effects of the target gas on the target person; the first physiological effects include at least one of the following: first pain effect, first dizziness effect, first vomiting effect, and second respiratory effect on the target site;
[0025] Based on the first physiological impact, determine the second impact level corresponding to the first physiological impact, and determine whether the second impact level is greater than or equal to a preset second impact level threshold;
[0026] When it is determined that the second degree of influence is greater than or equal to the second degree of influence threshold, the air is determined to have reached the purification condition.
[0027] As an optional implementation, in a first aspect of the invention, predicting a second inhalation of the target gas by a target person in the current environment based on the gas concentration parameter of the target gas includes:
[0028] Determine whether the target personnel in the current environment are wearing a gas mask. If so, obtain the mask parameters of the gas mask. The mask parameters include at least one of the following: mask type parameters, mask wearing method parameters, and mask historical usage information.
[0029] Based on the mask parameters and the gas concentration parameters of the target gas, determine the oxygen release parameters of the gas mask and the second inhalation blocking condition for the target gas; the second inhalation blocking condition includes the second inhalation blocking amount and / or the second inhalation blocking effective duration.
[0030] Based on the oxygen release parameters of the gas mask and the second inhalation obstruction of the target gas, the second inhalation situation of the target personnel regarding the target gas is predicted.
[0031] As an optional implementation, in the first aspect of the present invention, the method further includes:
[0032] When it is determined that the second degree of influence is less than the second degree of influence threshold, the odor parameter of the air is determined based on the gas type parameter and gas concentration parameter of all the gases.
[0033] The odor sensitivity parameters of the target person are obtained, and based on the odor parameters of the air and the odor sensitivity parameters, the second physiological impact of the air on the target person is predicted; the second physiological impact includes at least one of the following: a second pain impact, a second dizziness impact, a second vomiting impact, and a third respiratory impact on the target area;
[0034] Based on the second physiological impact, determine the third impact level corresponding to the second physiological impact, and determine whether the third impact level is greater than or equal to a preset third impact level threshold.
[0035] When it is determined that the third degree of influence is greater than or equal to the third degree of influence threshold, the air is determined to have reached the purification condition.
[0036] As an optional implementation, in the first aspect of the present invention, after determining that all the gases contain the target gas, the method further includes:
[0037] Based on the gas concentration parameters of the target gas, predict the third inhalation situation of the target object in the current environment; the target object includes target animals and / or target plants, and the third inhalation situation includes the third inhalation amount and the third inhalation location;
[0038] Based on the third inhalation situation, predict the target effect of the target gas on the target object; the target effect on the target object includes at least one of the following: the effect on respiration of the target animal, the effect on respiration of the target plant, and the effect on photosynthesis of the target plant;
[0039] Based on the impact of the target effect, determine the fourth degree of impact corresponding to the impact of the target effect, and determine whether the fourth degree of impact is greater than or equal to a preset fourth degree of impact threshold.
[0040] When it is determined that the fourth degree of influence is greater than or equal to the fourth degree of influence threshold, the air is determined to have reached the purification condition.
[0041] A second aspect of the present invention discloses an air conditioning control device based on air parameters, the device comprising:
[0042] The acquisition module is used to acquire target parameters of the air in the current environment; the target parameters of the air include the parameters of suspended particles and / or gas parameters in the air.
[0043] The judgment module is used to determine whether the air meets the preset purification conditions based on the target parameters of the air.
[0044] The determining module is used to determine the control parameters of the air conditioner used for air purification when the determination result of the judging module is yes; the control parameters include at least one of the following: air temperature control parameters, air volume control parameters, air direction control parameters, air extraction control parameters, and running time control parameters;
[0045] The control module is used to perform air purification control operations on the air conditioner according to the control parameters of the air conditioner.
[0046] As an optional implementation, in a second aspect of the present invention, the air suspended particle parameters include at least one of the air suspended particle type parameters, particle size parameters, and particle concentration parameters;
[0047] The method by which the judgment module determines whether the air meets the preset purification conditions based on the target parameters of the air specifically includes:
[0048] When the target parameters of the air include the parameters of suspended particles in the air, the floating parameters of the suspended particles are predicted based on the suspended particle parameters; the floating parameters include at least one of the parameters of floating duration, floating range, and floating amount.
[0049] Based on the floating parameters of the suspended particles and the parameters of the suspended particles, the first inhalation situation of the target person in the current environment is predicted; the first inhalation situation includes the first inhalation volume and the first inhalation location.
[0050] Based on the first inhalation situation, predict the first respiratory impact of the suspended particles on the target personnel at the target site; the target site includes the upper respiratory tract and the lower respiratory tract.
[0051] Based on the first respiratory impact situation, determine the first impact level corresponding to the first respiratory impact situation, and determine whether the first impact level is greater than or equal to the preset first impact level threshold.
[0052] When it is determined that the first degree of influence is greater than or equal to the first degree of influence threshold, the air is determined to have reached the preset purification conditions.
[0053] As an optional implementation, in a second aspect of the present invention, the method by which the determining module predicts the first inhalation of the suspended particles by a target person in the current environment based on the floating parameters of the suspended particles and the suspended particle parameters specifically includes:
[0054] Determine whether the target personnel in the current environment are wearing respiratory protective equipment. If so, obtain the equipment parameters of the respiratory protective equipment. The equipment parameters include at least one of the following: equipment type parameters, equipment wearing method parameters, and equipment historical usage information.
[0055] Based on the equipment parameters, the floating parameters of the suspended particles, and the parameters of the suspended particles, the first inhalation blocking condition of the respiratory protective equipment against the suspended particles is determined; the first inhalation blocking condition includes the first inhalation blocking amount and / or the first inhalation blocking effective duration.
[0056] Based on the first inhalation obstruction, the first inhalation situation of the target person regarding the suspended particles is predicted.
[0057] As an optional implementation, in a second aspect of the present invention, the gas parameters of the air include gas type parameters and gas concentration parameters of various gases in the air;
[0058] The method by which the judgment module determines whether the air meets the preset purification conditions based on the target parameters of the air specifically includes:
[0059] When the target parameters of the air include the gas parameters of the air, it is determined whether the target gas is contained in all the gases based on the gas type parameters of all the gases.
[0060] When it is determined that all the gases contain the target gas, based on the gas concentration parameter of the target gas, a second inhalation situation of the target personnel in the current environment is predicted; the second inhalation situation includes a second inhalation volume and a second inhalation location.
[0061] Based on the second inhalation situation, predict the first physiological effects of the target gas on the target person; the first physiological effects include at least one of the following: first pain effect, first dizziness effect, first vomiting effect, and second respiratory effect on the target site;
[0062] Based on the first physiological impact, determine the second impact level corresponding to the first physiological impact, and determine whether the second impact level is greater than or equal to a preset second impact level threshold;
[0063] When it is determined that the second degree of influence is greater than or equal to the second degree of influence threshold, the air is determined to have reached the purification condition.
[0064] As an optional implementation, in a second aspect of the present invention, the method by which the determining module predicts a second inhalation of the target gas by a target person in the current environment based on the gas concentration parameter of the target gas specifically includes:
[0065] Determine whether the target personnel in the current environment are wearing a gas mask. If so, obtain the mask parameters of the gas mask. The mask parameters include at least one of the following: mask type parameters, mask wearing method parameters, and mask historical usage information.
[0066] Based on the mask parameters and the gas concentration parameters of the target gas, determine the oxygen release parameters of the gas mask and the second inhalation blocking condition for the target gas; the second inhalation blocking condition includes the second inhalation blocking amount and / or the second inhalation blocking effective duration.
[0067] Based on the oxygen release parameters of the gas mask and the second inhalation obstruction of the target gas, the second inhalation situation of the target personnel regarding the target gas is predicted.
[0068] As an optional implementation, in a second aspect of the present invention, the method by which the determining module determines whether the air meets the preset purification conditions based on the target parameters of the air specifically further includes:
[0069] When it is determined that the second degree of influence is less than the second degree of influence threshold, the odor parameter of the air is determined based on the gas type parameter and gas concentration parameter of all the gases.
[0070] The odor sensitivity parameters of the target person are obtained, and based on the odor parameters of the air and the odor sensitivity parameters, the second physiological impact of the air on the target person is predicted; the second physiological impact includes at least one of the following: a second pain impact, a second dizziness impact, a second vomiting impact, and a third respiratory impact on the target area;
[0071] Based on the second physiological impact, determine the third impact level corresponding to the second physiological impact, and determine whether the third impact level is greater than or equal to a preset third impact level threshold.
[0072] When it is determined that the third degree of influence is greater than or equal to the third degree of influence threshold, the air is determined to have reached the purification condition.
[0073] As an optional implementation, in a second aspect of the present invention, the method by which the determining module determines whether the air meets the preset purification conditions based on the target parameters of the air specifically further includes:
[0074] After determining that all the gases contain the target gas, the third inhalation situation of the target object in the current environment is predicted based on the gas concentration parameter of the target gas; the target object includes target animals and / or target plants, and the third inhalation situation includes the third inhalation amount and the third inhalation location.
[0075] Based on the third inhalation situation, predict the target effect of the target gas on the target object; the target effect on the target object includes at least one of the following: the effect on respiration of the target animal, the effect on respiration of the target plant, and the effect on photosynthesis of the target plant;
[0076] Based on the impact of the target effect, determine the fourth degree of impact corresponding to the impact of the target effect, and determine whether the fourth degree of impact is greater than or equal to a preset fourth degree of impact threshold.
[0077] When it is determined that the fourth degree of influence is greater than or equal to the fourth degree of influence threshold, the air is determined to have reached the purification condition.
[0078] A third aspect of the present invention discloses another air conditioning control device based on air parameters, the device comprising:
[0079] Memory containing executable program code;
[0080] A processor coupled to the memory;
[0081] The processor calls the executable program code stored in the memory to execute the air conditioning control method based on air parameters disclosed in the first aspect of the present invention.
[0082] The fourth aspect of the present invention discloses a computer storage medium storing computer instructions, which, when invoked, are used to execute the air conditioning control method based on air parameters disclosed in the first aspect of the present invention.
[0083] Compared with the prior art, the embodiments of the present invention have the following beneficial effects:
[0084] In this embodiment of the invention, target parameters of the air in the current environment are obtained, including parameters of suspended particles and / or gas parameters. Based on the target parameters, it is determined whether the air meets preset purification conditions. If so, control parameters for the air conditioner used for air purification are determined. Based on the control parameters, air purification control operations are performed on the air conditioner. Therefore, implementing this invention enables intelligent determination of whether air purification is needed based on target parameters. If so, the air conditioner is controlled to perform air purification operations. This not only improves the timeliness of air purification control but also enhances the reliability and accuracy of air purification control, thereby improving air freshness and enhancing the user experience of the air conditioner. Attached Figure Description
[0085] To more clearly illustrate the technical solutions in the embodiments of the present invention, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the accompanying drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0086] Figure 1 This is a schematic diagram of an air conditioning control scenario based on air parameters disclosed in an embodiment of the present invention;
[0087] Figure 2 This is a schematic flowchart of an air conditioning control method based on air parameters disclosed in an embodiment of the present invention;
[0088] Figure 3 This is a schematic flowchart of another air conditioning control method based on air parameters disclosed in an embodiment of the present invention;
[0089] Figure 4 This is a schematic diagram of the structure of an air conditioning control device based on air parameters disclosed in an embodiment of the present invention;
[0090] Figure 5 This is a schematic diagram of another air conditioning control device based on air parameters disclosed in an embodiment of the present invention. Detailed Implementation
[0091] To enable those skilled in the art to better understand the present invention, the technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0092] The terms "first," "second," etc., used in the specification, claims, and accompanying drawings of this invention are used to distinguish different objects, not to describe a specific order. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, apparatus, product, or end that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or ends.
[0093] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of the invention. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0094] This invention discloses an air conditioning control method and device based on air parameters, which not only improves the timeliness of air purification control of the air conditioner, but also improves the reliability and accuracy of air purification control, thereby helping to improve the freshness of the air and enhance the user's experience of using the air conditioner.
[0095] Example 1
[0096] Please see Figure 2 , Figure 2 This is a flowchart illustrating an air conditioning control method based on air parameters disclosed in an embodiment of the present invention. Figure 2 The described air conditioning control method based on air parameters can be applied to air purification control operations of air conditioners in various scenarios, such as home scenarios, office scenarios, etc., and this embodiment of the invention is not limited thereto. Optionally, this method can be implemented by an air purification control device, which can be integrated into a smart air conditioner, or it can be a local server or cloud server used to process the air purification process, etc., and this embodiment of the invention is not limited thereto. Figure 2 As shown, the air conditioning control method based on air parameters may include the following operations:
[0097] 101. Obtain the target parameters of the air in the current environment.
[0098] In this embodiment of the invention, optionally, the target parameters of the air include airborne particulate parameters and / or gas parameters. Further optionally, the airborne particulate parameters include at least one of airborne particulate type parameters, particulate size parameters, and particulate concentration parameters, while the airborne gas parameters include gas type parameters and gas concentration parameters of various gases in the air.
[0099] 102. Based on the target parameters of the air, determine whether the air has reached the preset purification conditions. If so, determine the control parameters of the air conditioner used for air purification.
[0100] In this embodiment of the invention, further, judging whether the air has reached the preset purification conditions based on the target air parameters can be understood as whether the air in the current environment will have respiratory / physiological effects on the target personnel (such as headache, dizziness, etc.), whether it will have respiratory effects on the target animals, or whether it will have respiratory / photosynthetic effects on the target plants, etc.
[0101] Optionally, the control parameters include at least one of the following: air temperature control parameters, air volume control parameters, air direction control parameters, air extraction control parameters, and running time control parameters.
[0102] 103. Perform air purification control operations on the air conditioner according to its control parameters.
[0103] In this embodiment of the invention, the air conditioner is controlled by its control parameters to produce cold or hot air to disperse odors in the air or remove gases in the air that are harmful to the target personnel / animals / plants, thereby achieving air filtration.
[0104] As can be seen, implementing the embodiments of the present invention can intelligently determine whether air purification is needed based on the target parameters of the air. If so, the air conditioner is controlled to perform air purification operation. This not only improves the timeliness of the air purification control of the air conditioner, but also improves the reliability and accuracy of the purification control, thereby helping to improve the freshness of the air and enhance the user's experience of using the air conditioner.
[0105] Example 2
[0106] Please see Figure 3 , Figure 3 This is a schematic flowchart of another air conditioning control method based on air parameters disclosed in an embodiment of the present invention. Figure 3 The described air conditioning control method based on air parameters can be applied to air purification control operations of air conditioners in various scenarios, such as home scenarios, office scenarios, etc., and this embodiment of the invention is not limited thereto. Optionally, this method can be implemented by an air purification control device, which can be integrated into a smart air conditioner, or it can be a local server or cloud server used to process the air purification process, etc., and this embodiment of the invention is not limited thereto. Figure 3 As shown, the air conditioning control method based on air parameters may include the following operations:
[0107] 201. Obtain the target parameters of the air in the current environment.
[0108] 202. When the target parameters of air include the parameters of suspended particles in the air, predict the floating parameters of suspended particles based on the parameters of suspended particles.
[0109] In this embodiment of the invention, the floating parameters may optionally include at least one of the following: floating duration parameter, floating range parameter, and floating amount parameter.
[0110] 203. Based on the floating parameters and suspended particle parameters, predict the first inhalation situation of the target personnel in the current environment regarding suspended particles.
[0111] In an embodiment of the present invention, optionally, the first inhalation situation includes a first inhalation volume situation and a first inhalation location situation (such as the target person inhaling suspended particles into the nasal cavity, trachea, and lungs, etc.).
[0112] 204. Based on the initial inhalation, predict the impact of suspended particles on the target personnel's initial respiratory response at the target site.
[0113] In this embodiment of the invention, the target area includes the upper respiratory tract and the lower respiratory tract.
[0114] Furthermore, based on the initial inhalation, the impact of suspended particles on the target personnel's initial respiratory response at the target site is predicted, including:
[0115] Obtain the personnel parameters of the target personnel, including health status parameters and / or personnel type parameters;
[0116] Based on the initial inhalation situation and the personnel parameters of the target personnel, predict the initial respiratory impact of suspended particles on the target personnel at the target site.
[0117] 205. Based on the impact of the first respiration, determine the degree of the first impact corresponding to the impact of the first respiration, and determine whether the degree of the first impact is greater than or equal to the preset threshold for the degree of the first impact.
[0118] In an embodiment of the present invention, for example, if it is predicted that the target person will inhale suspended particles into the lungs through the respiratory tract, and the suspended particles may damage the lung tissue of the target person, thereby causing breathing difficulties, then it can be determined that the first degree of influence corresponding to the first respiratory impact situation is greater than a preset first degree of influence threshold.
[0119] 206. When it is determined that the degree of first impact is greater than or equal to the threshold of the degree of first impact, the air is determined to have reached the preset purification conditions.
[0120] 207. When it is determined that the air has reached the preset purification conditions, the control parameters of the air conditioner used for air purification are determined, and the air purification control operation is performed on the air conditioner according to the control parameters of the air conditioner.
[0121] In this embodiment of the invention, for other descriptions of steps 201, 206 and 207, please refer to the detailed description of steps 101-103 in Embodiment 1. This embodiment of the invention will not repeat them.
[0122] As can be seen, implementing the embodiments of the present invention can predict the first inhalation of suspended particles by a target person based on the floating parameters and suspended particle parameters in the air, and then predict the first respiratory impact of the suspended particles on the target person. In this way, it can intelligently determine whether the degree of the first respiratory impact is too large. If so, it is determined that the air has reached the preset purification conditions. In this way, the timeliness, reliability and accuracy of the air purification demand determination operation can be improved, and the efficiency of the air purification control operation of the air conditioner can be improved, thereby effectively reducing the occurrence of respiratory discomfort of the target person.
[0123] In an optional embodiment, step 203 above, which predicts the first inhalation of suspended particles by a target person in the current environment based on the floating parameters and other parameters of the suspended particles, includes:
[0124] Determine whether the target personnel are wearing respiratory protective equipment in the current environment; if so, obtain the equipment parameters of the respiratory protective equipment.
[0125] Based on the equipment parameters, the floating parameters of the suspended particles, and the parameters of the suspended particles, determine the first inhalation blocking effect of the respiratory protective equipment against suspended particles.
[0126] Based on the initial inhalation obstruction, predict the target person's initial inhalation of suspended particles.
[0127] In this optional embodiment, the equipment parameters may optionally include at least one of the following: equipment type parameters, equipment wearing method parameters, and equipment historical usage data. Further optionally, the first inhalation obstruction condition may include a first inhalation obstruction amount condition and / or a first inhalation obstruction effective duration condition.
[0128] For example, if the target person is wearing an N95 mask, but the N95 mask has been used twice, its ability to block suspended particles will decrease. Based on the historical usage of the N95 mask, the floating parameters of the suspended particles, and the parameters of the suspended particles, it can be determined that the effective blocking time of the N95 mask against the inhalation of suspended particles is approximately 3 hours, and the amount of inhalation blocked is small. Based on this, the inhalation of suspended particles by the target person can be predicted, so that the execution time parameters for the air purification control operation of the air conditioner can be determined, etc.
[0129] As can be seen, this optional embodiment can determine the initial inhalation obstruction of the respiratory protective equipment against suspended particles based on the floating parameters and parameters of the suspended particles, combined with the equipment parameters of the respiratory protective equipment worn by the target personnel. It can then predict the initial inhalation situation of the target personnel against suspended particles. This helps to improve the reliability and accuracy of predicting the initial inhalation situation of the target personnel against suspended particles, thereby improving the reliability and accuracy of subsequent air purification demand determination operations, and thus facilitating the effective air purification process.
[0130] In another alternative embodiment, the method further includes:
[0131] When the target parameters for air include the gas parameters for air, determine whether the target gas is present in all gases based on the gas type parameters of all gases.
[0132] When it is determined that all gases contain the target gas, the second inhalation of the target gas by the target personnel in the current environment is predicted based on the gas concentration parameters of the target gas.
[0133] Based on the second inhalation situation, predict the first physiological effects of the target gas on the target personnel;
[0134] Based on the first physiological impact, determine the second impact level corresponding to the first physiological impact, and determine whether the second impact level is greater than or equal to the preset second impact level threshold.
[0135] When the degree of second impact is determined to be greater than or equal to the threshold of the degree of second impact, the air is determined to meet the purification conditions.
[0136] In this optional embodiment, the target gas may optionally include one or more of oxygen, nitrogen, carbon dioxide, rare gases, sulfur dioxide, ammonia, etc., wherein the second inhalation condition includes a second inhalation volume condition and a second inhalation location condition (e.g., the target person inhales a small amount of ammonia into the trachea and lungs). Further optionally, the first physiological effect condition includes at least one of a first pain effect condition, a first dizziness effect condition, a first vomiting effect condition, and a second respiratory effect condition at the target site.
[0137] For example, if it is determined that the air contains oxygen, nitrogen, carbon dioxide, and a moderate amount of ammonia, based on the gas concentration parameters of these target gases, it can be predicted that if the target person inhales ammonia, the ammonia will reach the target person's respiratory tract and lungs, which may cause lung infection, resulting in chest pain and difficulty breathing. In this case, it can be determined that the second impact corresponding to the first physiological impact of ammonia on the target person is relatively large, and air purification is required.
[0138] As can be seen, this optional embodiment can predict the second inhalation of the target gas by the target personnel based on the gas concentration parameter of the target gas when the air is found to contain the target gas, and then predict the first physiological impact of the target gas on the target personnel. It can then intelligently determine whether the degree of the second impact corresponding to the first physiological impact is too great. If so, it determines that the air has reached the preset purification conditions. This improves the comprehensiveness of the analysis of the air conditions in the current environment, thereby improving the reliability and accuracy of the prediction of the first physiological impact of the target gas in the air on the target personnel, and thus improving the accuracy of the subsequent air purification demand determination operation.
[0139] In yet another optional embodiment, the step of predicting the second inhalation of the target gas by the target personnel in the current environment based on the gas concentration parameter of the target gas includes:
[0140] Determine whether the target personnel in the current environment are wearing gas masks; if so, obtain the gas mask parameters.
[0141] Based on the mask parameters and the gas concentration parameters of the target gas, determine the oxygen release parameters of the gas mask and the second inhalation blockage of the target gas.
[0142] Based on the oxygen release parameters of the gas mask and the second inhalation obstruction of the target gas, predict the second inhalation situation of the target personnel for the target gas.
[0143] In this optional embodiment, the mask parameters may optionally include at least one of mask type parameters, mask wearing method parameters, and mask usage history. Further optionally, the second inhalation blocking condition may include a second inhalation blocking amount condition and / or a second inhalation blocking effective duration condition.
[0144] As can be seen, this optional embodiment can predict the oxygen release parameters of the gas mask and the second inhalation obstruction of the target gas based on the gas concentration parameters of the target gas in the air and the mask parameters of the gas mask worn by the target personnel. This allows for the prediction of the target personnel's second inhalation of the target gas, thereby improving the reliability and accuracy of predicting the target personnel's second inhalation of the target gas. Consequently, it can improve the reliability and accuracy of predicting the primary physiological effects of the target gas on the target personnel, effectively improving the accuracy of determining whether the air has reached the preset purification conditions, thus achieving precise air purification control of the air conditioning system.
[0145] In yet another optional embodiment, the method further includes:
[0146] When it is determined that the degree of the second influence is less than the threshold of the second influence, the odor parameter of the air is determined based on the gas type parameter and gas concentration parameter of all gases.
[0147] Obtain the odor sensitivity parameters of the target personnel, and predict the secondary physiological effects of air on the target personnel based on the air odor parameters and odor sensitivity parameters;
[0148] Based on the second physiological impact, determine the degree of the third impact corresponding to the second physiological impact, and determine whether the degree of the third impact is greater than or equal to the preset threshold for the degree of the third impact;
[0149] When the degree of third influence is determined to be greater than or equal to the threshold of the degree of third influence, the air is determined to meet the purification conditions.
[0150] In this optional embodiment, the second physiological effect may optionally include at least one of a second pain effect, a second dizziness effect, a second vomiting effect, and a third respiratory effect at the target site. For example, such as Figure 1 As shown ( Figure 1This is a schematic diagram of an air conditioning control scenario based on air parameters disclosed in an embodiment of the present invention. When the air contains oxygen, nitrogen, carbon dioxide and a small amount of ammonia based on the target air parameters, although the small amount of ammonia may not cause lung damage to the target personnel, the target personnel may vomit after inhaling this small amount of ammonia due to its special odor. At this time, it can be determined that the degree of the third impact corresponding to the second physiological impact of the air on the target personnel in the current environment is relatively large, and it is then determined that the air needs to be purified.
[0151] As can be seen, this optional embodiment can further determine the odor parameters of the air based on the gas parameters of the air, and combine them with the odor sensitivity parameters of the target personnel to predict the second physiological impact of the air on the target personnel. Then, when the degree of the third impact corresponding to the second physiological impact is relatively large, it is determined that the air has reached the purification condition. In this way, the comprehensiveness of the judgment of air purification needs can be improved, and the air conditioner can be controlled to disperse odors in a timely manner, which helps to reduce the occurrence of discomfort caused by odors in the air to the target personnel.
[0152] In yet another alternative embodiment, after determining that all gases contain the target gas, the method further includes:
[0153] Based on the gas concentration parameters of the target gas, predict the third inhalation situation of the target object in the current environment;
[0154] Based on the third inhalation situation, predict the target gas's impact on the target object;
[0155] Based on the impact of the target effect, determine the fourth degree of impact corresponding to the impact of the target effect, and determine whether the fourth degree of impact is greater than or equal to the preset fourth degree of impact threshold.
[0156] When the fourth level of influence is determined to be greater than or equal to the fourth level of influence threshold, the air is determined to meet the purification conditions.
[0157] In this optional embodiment, the target object may optionally include a target animal and / or a target plant. Further, the third inhalation scenario includes a third inhalation volume scenario and a third inhalation location scenario (e.g., the target animal inhales the target gas into its lungs, the target plant inhales the target gas into its roots / stems, etc.).
[0158] Further optionally, the impact on the target object includes at least one of the following: the impact on respiration of the target animal, the impact on respiration of the target plant, and the impact on photosynthesis of the target plant.
[0159] As can be seen, this optional embodiment can predict the impact of the target gas on the respiration of the target animal / plant and the impact on the photosynthesis of the target plant based on the third inhalation of the target gas by the target object. Then, it can determine whether the fourth impact corresponding to the target impact is too large. If so, it is determined that the air needs to be purified. This helps to further improve the reliability and accuracy of the air purification demand determination operation, which is beneficial to the healthy growth of the target animal and the target plant, and thus helps to improve the user's experience of the air purification function of the air conditioner.
[0160] Example 3
[0161] Please see Figure 4 , Figure 4 This is a schematic diagram of the structure of an air conditioning control device based on air parameters disclosed in an embodiment of the present invention. Figure 4 As shown, the air conditioning control device based on air parameters may include:
[0162] The acquisition module 301 is used to acquire the target parameters of the air in the current environment;
[0163] The judgment module 302 is used to determine whether the air meets the preset purification conditions based on the target parameters of the air.
[0164] The determining module 303 is used to determine the control parameters of the air conditioner used for air purification when the judgment result of the judging module 302 is yes;
[0165] The control module 304 is used to perform air purification control operations on the air conditioner according to the control parameters of the air conditioner.
[0166] In this embodiment of the invention, the target parameters of the air include the parameters of suspended particles and / or gas parameters; the control parameters include at least one of the following: air temperature control parameters, air volume control parameters, air direction control parameters, air extraction control parameters, and running time control parameters.
[0167] It is evident that implementation Figure 4 The described air parameter-based air conditioning control device can intelligently determine whether air purification is needed based on target air parameters. If so, it controls the air conditioner to perform air purification operations. This not only improves the timeliness of air purification control but also enhances the reliability and accuracy of air purification control, thereby improving air freshness and enhancing the user's experience with the air conditioner.
[0168] In an optional embodiment, the airborne particulate parameters include at least one of the following: airborne particulate type parameters, particulate size parameters, and particulate concentration parameters.
[0169] The specific methods by which the judgment module 302 determines whether the air meets the preset purification conditions based on the target parameters of the air include:
[0170] When the target parameters for air include the parameters of suspended particles in the air, the floating parameters of the suspended particles are predicted based on the suspended particle parameters.
[0171] Based on the floating parameters and other parameters of suspended particles, predict the first inhalation of suspended particles by the target personnel in the current environment.
[0172] Based on the initial inhalation, predict the initial respiratory impact of suspended particles on the target personnel at the target site;
[0173] Based on the impact of the first breath, determine the degree of the first impact corresponding to the impact of the first breath, and determine whether the degree of the first impact is greater than or equal to the preset threshold for the degree of the first impact;
[0174] When it is determined that the first level of impact is greater than or equal to the first level of impact threshold, the air is determined to have reached the preset purification conditions.
[0175] In this optional embodiment, the floating parameters include at least one of the floating duration parameters, floating range parameters, and floating amount parameters; the first inhalation situation includes a first inhalation amount situation and a first inhalation location situation; the target site includes the upper respiratory tract and the lower respiratory tract.
[0176] It is evident that implementation Figure 4 The described air conditioning control device based on air parameters can predict the initial inhalation of suspended particles by a target person based on the floating parameters and suspended particle parameters in the air. It can then predict the initial respiratory impact of the suspended particles on the target person and intelligently determine whether the degree of the initial respiratory impact is too great. If so, it determines that the air has reached the preset purification conditions. This can improve the timeliness, reliability, and accuracy of the air purification demand determination operation, thereby improving the efficiency of the air purification control operation of the air conditioner and effectively reducing the occurrence of respiratory discomfort for the target person.
[0177] In another optional embodiment, the determination module 302 predicts the first inhalation of suspended particles by a target person in the current environment based on the floating parameters and the parameters of the suspended particles, specifically including:
[0178] Determine whether the target personnel are wearing respiratory protective equipment in the current environment; if so, obtain the equipment parameters of the respiratory protective equipment.
[0179] Based on the equipment parameters, the floating parameters of the suspended particles, and the parameters of the suspended particles, determine the first inhalation blocking effect of the respiratory protective equipment against suspended particles.
[0180] Based on the initial inhalation obstruction, predict the target person's initial inhalation of suspended particles.
[0181] In this optional embodiment, the equipment parameters include at least one of the equipment type parameters, equipment wearing method parameters, and equipment historical usage; the first inhalation obstruction condition includes the first inhalation obstruction amount condition and / or the first inhalation obstruction effective duration condition.
[0182] It is evident that implementation Figure 4 The described air parameter-based air conditioning control device can determine the initial inhalation obstruction of suspended particles by the respiratory protective equipment worn by the target personnel based on the floating parameters and parameters of the suspended particles, combined with the equipment parameters of the respiratory protective equipment worn by the target personnel. It can then predict the initial inhalation of suspended particles by the target personnel. This improves the reliability and accuracy of predicting the initial inhalation of suspended particles by the target personnel, thereby improving the reliability and accuracy of subsequent air purification demand determination operations, and ultimately facilitating an effective air purification process.
[0183] In yet another optional embodiment, the gas parameters of the air include gas type parameters and gas concentration parameters of various gases in the air;
[0184] The method by which the judgment module 302 determines whether the air meets the preset purification conditions based on the target parameters of the air also includes:
[0185] When the target parameters for air include the gas parameters for air, determine whether the target gas is present in all gases based on the gas type parameters of all gases.
[0186] When it is determined that all gases contain the target gas, the second inhalation of the target gas by the target personnel in the current environment is predicted based on the gas concentration parameters of the target gas.
[0187] Based on the second inhalation situation, predict the first physiological effects of the target gas on the target personnel;
[0188] Based on the first physiological impact, determine the second impact level corresponding to the first physiological impact, and determine whether the second impact level is greater than or equal to the preset second impact level threshold.
[0189] When the degree of second impact is determined to be greater than or equal to the threshold of the degree of second impact, the air is determined to meet the purification conditions.
[0190] In this optional embodiment, the second inhalation condition includes a second inhalation volume condition and a second inhalation location condition; the first physiological effect condition includes at least one of a first pain effect condition, a first dizziness effect condition, a first vomiting effect condition, and a second respiratory effect condition at the target site.
[0191] It is evident that implementation Figure 4 The described air parameter-based air conditioning control device can predict the second inhalation of the target gas by the target personnel based on the gas concentration parameters of the target gas when the air is found to contain the target gas. It can then predict the first physiological impact of the target gas on the target personnel and intelligently determine whether the degree of the second impact corresponding to the first physiological impact is too great. If so, it determines that the air has reached the preset purification conditions. This improves the comprehensiveness of the analysis of the air conditions in the current environment, thereby improving the reliability and accuracy of the prediction of the first physiological impact of the target gas on the target personnel, and thus improving the accuracy of the subsequent air purification demand determination operation.
[0192] In another optional embodiment, the determination module 302 predicts the second inhalation of the target gas by the target personnel in the current environment based on the gas concentration parameter of the target gas, specifically including:
[0193] Determine whether the target personnel in the current environment are wearing gas masks; if so, obtain the gas mask parameters.
[0194] Based on the mask parameters and the gas concentration parameters of the target gas, determine the oxygen release parameters of the gas mask and the second inhalation blockage of the target gas.
[0195] Based on the oxygen release parameters of the gas mask and the second inhalation obstruction of the target gas, predict the second inhalation situation of the target personnel for the target gas.
[0196] In this optional embodiment, the mask parameters include at least one of the mask type parameters, mask wearing method parameters, and mask history usage; the second inhalation blocking condition includes the second inhalation blocking amount condition and / or the second inhalation blocking effective duration condition.
[0197] It is evident that implementation Figure 4The described air parameter-based air conditioning control device can predict the oxygen release parameters of the gas mask and the second inhalation obstruction of the target gas based on the gas concentration parameters of the target gas in the air and the mask parameters of the gas mask worn by the target personnel. This, in turn, predicts the second inhalation of the target gas by the target personnel. This improves the reliability and accuracy of predicting the second inhalation of the target gas by the target personnel, and consequently improves the reliability and accuracy of predicting the primary physiological effects of the target gas on the target personnel. Therefore, it effectively improves the accuracy of determining whether the air has reached the preset purification conditions, thereby achieving precise air purification control of the air conditioning system.
[0198] In yet another optional embodiment, the method by which the determining module 302 determines whether the air meets the preset purification conditions based on the target parameters of the air further includes:
[0199] When it is determined that the degree of the second influence is less than the threshold of the second influence, the odor parameter of the air is determined based on the gas type parameter and gas concentration parameter of all gases.
[0200] Obtain the odor sensitivity parameters of the target personnel, and predict the secondary physiological effects of air on the target personnel based on the air odor parameters and odor sensitivity parameters;
[0201] Based on the second physiological impact, determine the degree of the third impact corresponding to the second physiological impact, and determine whether the degree of the third impact is greater than or equal to the preset threshold for the degree of the third impact;
[0202] When the degree of third influence is determined to be greater than or equal to the threshold of the degree of third influence, the air is determined to meet the purification conditions.
[0203] In this optional embodiment, the second physiological effect includes at least one of a second pain effect, a second dizziness effect, a second vomiting effect, and a third respiratory effect at the target site.
[0204] It is evident that implementation Figure 4 The described air conditioning control device based on air parameters can further determine the odor parameters of the air based on the gas parameters of the air, and combine them with the odor sensitivity parameters of the target personnel to predict the secondary physiological effects of the air on the target personnel. Then, when the degree of the tertiary effect corresponding to the secondary physiological effect is relatively large, it determines that the air has reached the purification conditions. In this way, the comprehensiveness of the judgment of air purification needs can be improved, and the air conditioning can be promptly controlled to disperse odors, thereby helping to reduce the occurrence of discomfort caused by odors in the air to the target personnel.
[0205] In yet another optional embodiment, the method by which the determining module 302 determines whether the air meets the preset purification conditions based on the target parameters of the air further includes:
[0206] After determining that all gases contain the target gas, the third inhalation situation of the target object in the current environment is predicted based on the gas concentration parameters of the target gas.
[0207] Based on the third inhalation situation, predict the target gas's impact on the target object;
[0208] Based on the impact of the target effect, determine the fourth degree of impact corresponding to the impact of the target effect, and determine whether the fourth degree of impact is greater than or equal to the preset fourth degree of impact threshold.
[0209] When the fourth level of influence is determined to be greater than or equal to the fourth level of influence threshold, the air is determined to meet the purification conditions.
[0210] In this optional embodiment, the target object includes the target animal and / or the target plant, the third inhalation situation includes the third inhalation amount situation and the third inhalation location situation; the target effect situation on the target object includes at least one of the following: the effect on respiration of the target animal, the effect on respiration of the target plant, and the effect on photosynthesis of the target plant.
[0211] It is evident that implementation Figure 4 The described air conditioning control device based on air parameters can predict the impact of the target gas on the respiration of the target animal / plant and the impact on the photosynthesis of the target plant based on the third inhalation of the target gas by the target object. Then, it can determine whether the fourth impact corresponding to the target impact is too large. If so, it determines that the air needs to be purified. This helps to improve the reliability and accuracy of the air purification demand determination operation, which is beneficial to the healthy growth of the target animal and the target plant, and thus improves the user experience of the air purification function of the air conditioner.
[0212] Example 4
[0213] Please see Figure 5 , Figure 5 This is a schematic diagram of another air conditioning control device based on air parameters disclosed in an embodiment of the present invention. Figure 5 As shown, the air conditioning control device based on air parameters may include:
[0214] Memory 401 storing executable program code;
[0215] Processor 402 coupled to memory 401;
[0216] The processor 402 calls the executable program code stored in the memory 401 to execute the steps in the air conditioning control method based on air parameters described in Embodiment 1 or Embodiment 2 of the present invention.
[0217] Example 5
[0218] This invention discloses a computer storage medium storing computer instructions. When these computer instructions are invoked, they are used to execute the steps in the air conditioning control method based on air parameters described in Embodiment 1 or Embodiment 2 of this invention.
[0219] Example 6
[0220] This invention discloses a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program, and the computer program is operable to cause a computer to perform the steps in the air conditioning control method based on air parameters described in Embodiment 1 or Embodiment 2.
[0221] The device embodiments described above are merely illustrative. The modules described as separate components may or may not be physically separate. The components shown as modules may or may not be physical modules; that is, they may be located in one place or distributed across multiple network modules. Some or all of the modules can be selected to achieve the purpose of this embodiment according to actual needs. Those skilled in the art can understand and implement this without any creative effort.
[0222] Through the detailed description of the above embodiments, those skilled in the art can clearly understand that each implementation method can be implemented by means of software plus necessary general-purpose hardware platforms, and of course, it can also be implemented by hardware. Based on this understanding, the above technical solutions, in essence or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product can be stored in a computer-readable storage medium, including read-only memory (ROM), random access memory (RAM), programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), one-time programmable read-only memory (OTPROM), electrically-Erasable Programmable Read-Only Memory (EEPROM), compact disc read-only memory (CD-ROM) or other optical disc storage, disk storage, magnetic tape storage, or any other computer-readable medium that can be used to carry or store data.
[0223] Finally, it should be noted that the air conditioning control method and device based on air parameters disclosed in the embodiments of the present invention are merely preferred embodiments of the present invention and are only used to illustrate the technical solutions of the present invention, not to limit it. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.
Claims
1. An air conditioning control method based on air parameters, characterized in that, The method includes: Obtain target parameters of the air in the current environment; the target parameters of the air include the parameters of suspended particles and / or gas parameters of the air; Based on the target parameters of the air, it is determined whether the air meets the preset purification conditions. If so, the control parameters of the air conditioner used for air purification are determined. The control parameters include at least one of the following: air temperature control parameters, air volume control parameters, air direction control parameters, air extraction control parameters, and running time control parameters. According to the control parameters of the air conditioner, an air purification control operation is performed on the air conditioner.
2. The air conditioning control method based on air parameters according to claim 1, characterized in that, The airborne particulate parameters include at least one of the following: type of airborne particulates, particle size, and particle concentration. The step of determining whether the air meets the preset purification conditions based on the target parameters of the air includes: When the target parameters of the air include the parameters of suspended particles in the air, the floating parameters of the suspended particles are predicted based on the suspended particle parameters; the floating parameters include at least one of the parameters of floating duration, floating range, and floating amount. Based on the floating parameters of the suspended particles and the parameters of the suspended particles, the first inhalation situation of the target person in the current environment is predicted; the first inhalation situation includes the first inhalation volume and the first inhalation location. Based on the first inhalation situation, predict the first respiratory impact of the suspended particles on the target personnel at the target site; the target site includes the upper respiratory tract and the lower respiratory tract. Based on the first respiratory impact situation, determine the first impact level corresponding to the first respiratory impact situation, and determine whether the first impact level is greater than or equal to the preset first impact level threshold. When it is determined that the first degree of influence is greater than or equal to the first degree of influence threshold, the air is determined to have reached the preset purification conditions.
3. The air conditioning control method based on air parameters according to claim 2, characterized in that, The step of predicting the first inhalation of the suspended particles by a target person in the current environment based on the floating parameters of the suspended particles and the parameters of the suspended particles includes: Determine whether the target personnel in the current environment are wearing respiratory protective equipment. If so, obtain the equipment parameters of the respiratory protective equipment. The equipment parameters include at least one of the following: equipment type parameters, equipment wearing method parameters, and equipment historical usage information. Based on the equipment parameters, the floating parameters of the suspended particles, and the parameters of the suspended particles, the first inhalation blocking condition of the respiratory protective equipment against the suspended particles is determined; the first inhalation blocking condition includes the first inhalation blocking amount and / or the first inhalation blocking effective duration. Based on the first inhalation obstruction, the first inhalation situation of the target person regarding the suspended particles is predicted.
4. The air conditioning control method based on air parameters according to claim 2 or 3, characterized in that, The gas parameters of the air include gas type parameters and gas concentration parameters of various gases in the air; The step of determining whether the air meets the preset purification conditions based on the target parameters of the air further includes: When the target parameters of the air include the gas parameters of the air, it is determined whether the target gas is contained in all the gases based on the gas type parameters of all the gases. When it is determined that all the gases contain the target gas, based on the gas concentration parameter of the target gas, a second inhalation situation of the target personnel in the current environment is predicted; the second inhalation situation includes a second inhalation volume and a second inhalation location. Based on the second inhalation situation, predict the first physiological effects of the target gas on the target person; the first physiological effects include at least one of the following: first pain effect, first dizziness effect, first vomiting effect, and second respiratory effect on the target site; Based on the first physiological impact, determine the second impact level corresponding to the first physiological impact, and determine whether the second impact level is greater than or equal to a preset second impact level threshold; When it is determined that the second degree of influence is greater than or equal to the second degree of influence threshold, the air is determined to have reached the purification condition.
5. The air conditioning control method based on air parameters according to claim 4, characterized in that, The step of predicting the second inhalation of the target gas by a target person in the current environment based on the gas concentration parameter of the target gas includes: Determine whether the target personnel in the current environment are wearing a gas mask. If so, obtain the mask parameters of the gas mask. The mask parameters include at least one of the following: mask type parameters, mask wearing method parameters, and mask historical usage information. Based on the mask parameters and the gas concentration parameters of the target gas, determine the oxygen release parameters of the gas mask and the second inhalation blocking condition for the target gas; the second inhalation blocking condition includes the second inhalation blocking amount and / or the second inhalation blocking effective duration. Based on the oxygen release parameters of the gas mask and the second inhalation obstruction of the target gas, the second inhalation situation of the target personnel regarding the target gas is predicted.
6. The air conditioning control method based on air parameters according to claim 4, characterized in that, The method further includes: When it is determined that the second degree of influence is less than the second degree of influence threshold, the odor parameter of the air is determined based on the gas type parameter and gas concentration parameter of all the gases. The odor sensitivity parameters of the target person are obtained, and based on the odor parameters of the air and the odor sensitivity parameters, the second physiological impact of the air on the target person is predicted; the second physiological impact includes at least one of the following: a second pain impact, a second dizziness impact, a second vomiting impact, and a third respiratory impact on the target area; Based on the second physiological impact, determine the third impact level corresponding to the second physiological impact, and determine whether the third impact level is greater than or equal to a preset third impact level threshold. When it is determined that the third degree of influence is greater than or equal to the third degree of influence threshold, the air is determined to have reached the purification condition.
7. The air conditioning control method based on air parameters according to claim 4, characterized in that, After determining that all the gases contain the target gas, the method further includes: Based on the gas concentration parameters of the target gas, predict the third inhalation situation of the target object in the current environment; the target object includes target animals and / or target plants, and the third inhalation situation includes the third inhalation amount and the third inhalation location; Based on the third inhalation situation, predict the target effect of the target gas on the target object; the target effect on the target object includes at least one of the following: the effect on respiration of the target animal, the effect on respiration of the target plant, and the effect on photosynthesis of the target plant; Based on the impact of the target effect, determine the fourth degree of impact corresponding to the impact of the target effect, and determine whether the fourth degree of impact is greater than or equal to a preset fourth degree of impact threshold. When it is determined that the fourth degree of influence is greater than or equal to the fourth degree of influence threshold, the air is determined to have reached the purification condition.
8. An air conditioning control device based on air parameters, characterized in that, The device includes: The acquisition module is used to acquire target parameters of the air in the current environment; the target parameters of the air include the parameters of suspended particles and / or gas parameters in the air. The judgment module is used to determine whether the air meets the preset purification conditions based on the target parameters of the air. The determining module is used to determine the control parameters of the air conditioner used for air purification when the determination result of the judging module is yes; the control parameters include at least one of the following: air temperature control parameters, air volume control parameters, air direction control parameters, air extraction control parameters, and running time control parameters; The control module is used to perform air purification control operations on the air conditioner according to the control parameters of the air conditioner.
9. An air conditioning control device based on air parameters, characterized in that, The device includes: Memory containing executable program code; A processor coupled to the memory; The processor calls the executable program code stored in the memory to execute the air conditioning control method based on air parameters as described in any one of claims 1-7.
10. A computer storage medium, characterized in that, The computer storage medium stores computer instructions, which, when invoked, are used to execute the air conditioning control method based on air parameters as described in any one of claims 1-7.