A method, apparatus, air conditioner, and medium for temperature control in a semi-enclosed space.
By acquiring and adjusting the operating parameters of the air conditioner and the rate of change in body temperature, the problem of poor temperature control in semi-enclosed spaces was solved, achieving more precise temperature regulation and energy-saving effects.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- NINGBO AUX ELECTRIC CO LTD
- Filing Date
- 2024-01-30
- Publication Date
- 2026-08-04
AI Technical Summary
In semi-enclosed spaces, existing temperature control methods for fully enclosed spaces result in poor air conditioning temperature control performance, and there is a need for energy conservation.
By acquiring the air conditioner's operating parameters and body temperature change rate, the air conditioner's operating parameters are adjusted to precisely regulate the temperature, including comparing the inner ambient temperature change rate, the first body temperature change rate, and the second body temperature change rate, and setting thresholds to judge and adjust the air conditioner's operating status.
It improves the temperature control effect of air conditioners in semi-enclosed spaces, avoids user discomfort, enhances the applicability of different usage scenarios, reduces unnecessary judgment steps, and improves the efficiency of the control process.
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Figure CN117968209B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of air conditioning technology, and more specifically, to a method, apparatus, air conditioner, and medium for temperature control in a semi-enclosed space. Background Technology
[0002] In semi-enclosed spaces such as train and bus stations, energy exchange occurs between the space and the outside environment, affecting its temperature. Temperature control in these spaces is often achieved using methods typically employed for fully enclosed spaces, leading to poor air conditioning performance and a need for energy conservation. Summary of the Invention
[0003] This invention addresses the technical problem that when using a fully enclosed space temperature control method to control the temperature in a semi-enclosed space, the air conditioning temperature control effect in the semi-enclosed space is poor, and energy-saving requirements are also present.
[0004] To address the aforementioned problems, this invention provides a temperature control method for a semi-enclosed space. The method includes: after an air conditioner is running, acquiring first operating parameters of the air conditioner and first body temperature change rate, second body temperature change rate, and inner ambient temperature change rate within a first preset time period; determining second operating parameter values of the air conditioner based on the first operating parameter values and the inner ambient temperature change rate; and adjusting third operating parameter values of the air conditioner based on the second operating parameter values, the first body temperature change rate, and the second body temperature change rate. The first operating parameter values are the values of the air conditioner's operating parameters at a first moment, the second operating parameter values are the values of the air conditioner's operating parameters at a second moment, and the third operating parameter values are the values of the air conditioner's operating parameters at a third moment. The operating parameters include the air conditioner's fan speed; the first body temperature change rate is the body temperature change rate of a first target object, and the second body temperature change rate is the body temperature change rate of a second target object.
[0005] Compared with existing technologies, the technical effects achieved by this solution are as follows: the effect of the air conditioner on indoor temperature regulation can be determined by the rate of change of the inner ambient temperature. Therefore, when the rate of change of the inner ambient temperature is too large, the air conditioner's effect on regulating the indoor ambient temperature is good, but the indoor ambient temperature changes too quickly, which can easily cause discomfort to users. Therefore, it is necessary to adjust the second operating parameter value of the air conditioner according to the first operating parameter value to adjust the air conditioner's effect on regulating the indoor ambient temperature and avoid the discomfort caused by the rapid change of the indoor ambient temperature. At the same time, the second operating parameter value serves as the basis for subsequent adjustment of the third operating parameter value, further making the control more precise and adaptable to different usage scenarios. The body temperature change rates of the first and second target objects within a first preset time period are obtained. The first and second body temperature change rates can be used to determine the impact of the air conditioner on the body temperature of target objects at two different locations: the entrance / exit of the semi-enclosed space and the center of the semi-enclosed space. If the first and second body temperature change rates are too large when the air conditioner is in cooling mode, it means that the cooling capacity provided by the air conditioner under the second operating parameters is insufficient to meet the comfort level of the target object at the entrance and central location at the current moment. It is necessary to further adjust the second operating parameters to regulate the indoor ambient temperature, thereby achieving the purpose of regulating the comfort level of the target object and improving the temperature control effect of the air conditioner.
[0006] In one embodiment of the present invention, determining a second operating parameter value for an air conditioner based on a first operating parameter value and an inner ambient temperature change rate includes: determining the second operating parameter value based on the first operating parameter value, the inner ambient temperature change rate, and an inner ambient temperature change rate threshold; when the inner ambient temperature change rate is less than or equal to the inner ambient temperature change rate threshold, the second operating parameter value is equal to the first operating parameter value; and / or when the inner ambient temperature change rate is greater than the inner ambient temperature change rate threshold, the second operating parameter value is determined based on the first operating parameter value.
[0007] Compared with existing technologies, the technical effects achieved by this solution are as follows: A threshold for the rate of change of the inner ambient temperature is set. By comparing the rate of change of the inner ambient temperature with the threshold, it is determined whether the rate of change is too large. When the rate of change is too large, the air conditioner's regulation of the indoor ambient temperature is effective, but the rapid change in indoor temperature can easily cause discomfort to users. Therefore, it is necessary to adjust the second operating parameter value of the air conditioner based on the first operating parameter value to adjust the air conditioner's regulation of the indoor ambient temperature and avoid user discomfort caused by excessively rapid changes in indoor ambient temperature. By comparing the set threshold for the rate of change of the inner ambient temperature with the rate of change, the judgment of excessive inner ambient temperature change is no longer a vague standard, making the judgment more accurate and scientific.
[0008] In one embodiment of the present invention, adjusting the third operating parameter value of the air conditioner based on the second operating parameter value, the first body temperature change rate, and the second body temperature change rate includes: determining whether the air conditioner meets the first adjustment condition based on the first body temperature change rate and the second body temperature change rate; if the first adjustment condition is met, determining the magnitude relationship between the first body temperature change rate and the second body temperature change rate, and adjusting the third operating parameter value based on the second operating parameter value and the magnitude relationship; wherein, the first adjustment condition is: simultaneously satisfying: the first body temperature change rate is greater than or equal to the first change threshold, the second body temperature change rate is greater than or equal to the second change threshold, and the second change threshold is greater than the first change threshold.
[0009] Compared with existing technologies, the technical effects achieved by this technical solution are as follows: by setting a first temperature change threshold and a second temperature change threshold, and by comparing the magnitude of the first temperature change rate and the first temperature change threshold, the temperature regulation effect of the air conditioner on users near the entrance / exit of a semi-enclosed space can be determined; by comparing the magnitude of the second temperature change rate and the second temperature change threshold, the temperature regulation effect of the air conditioner on users near the center of a semi-enclosed space can be determined.
[0010] In one embodiment of the present invention, when the first adjustment condition is met, the relationship between the first body temperature change rate and the second body temperature change rate is determined, and the third operating parameter value is adjusted according to the second operating parameter value and the relationship between them, including: when the first body temperature change rate is greater than or equal to the second body temperature change rate, the third operating parameter value is adjusted according to the second operating parameter value to adjust the indoor ambient temperature; and / or when the first body temperature change rate is less than the second body temperature change rate, the third operating parameter value is adjusted according to the second operating parameter value to maintain the indoor ambient temperature.
[0011] Compared with existing technologies, the technical effect achieved by adopting this technical solution is as follows: by prioritizing the determination of whether the air conditioner meets the first adjustment condition by judging the first body temperature change rate and the second body temperature change rate, and then determining whether to compare the magnitude of the first body temperature change rate and the second body temperature change rate, this design in the control method can save more steps, reduce unnecessary judgment and detection steps, and make the control process more efficient.
[0012] In one embodiment of the present invention, after the air conditioner is running, acquiring the first operating parameters of the air conditioner and the first body temperature change rate, the second body temperature change rate, and the inner ring temperature change rate within a first preset time period includes: acquiring the first indoor ambient temperature, the temperature of the first target detection object, and the temperature of the second target detection object after the air conditioner is running; acquiring the first preset time period based on the time required for the first indoor ambient temperature to change to a first inner ring temperature difference set value; calculating the inner ring temperature change rate based on the first indoor ambient temperature, the first inner ring temperature difference set value, and the first preset time period; wherein, the temperature of the first target detection object is the body temperature value of the first target detection object at the first moment, and the temperature of the second target detection object is the body temperature value of the second target detection object at the first moment.
[0013] Compared with existing technologies, the technical effects achieved by this technical solution are as follows: The specific process of obtaining the rate of change of the inner ambient temperature within the first preset time period is as follows: The first indoor ambient temperature (i.e., the indoor ambient temperature at the first moment) is obtained through the acquisition module. The rate of change of the inner ambient temperature under this environment can be obtained by calculating the time required for the first indoor ambient temperature to change the first inner ambient temperature difference set value. The first preset time period is assigned based on the time required for the first indoor ambient temperature to change the first inner ambient temperature difference set value. The first preset time period can be obtained by calculating the first preset time period based on the first inner ambient temperature difference set value. The rate of change of the inner ambient temperature can be evaluated by monitoring the indoor ambient temperature.
[0014] In one embodiment of the present invention, after obtaining a first preset time based on the time required for the change of the first indoor ambient temperature to a first inner ring temperature difference set value, the method further includes: obtaining a second time based on the first preset time and a first time; obtaining a third human body temperature and a fourth human body temperature; calculating a first body temperature change rate and a second body temperature change rate based on the temperature of the first target detection object, the temperature of the second target detection object, the third human body temperature, the fourth human body temperature, and the first preset time; wherein, the third human body temperature is the body temperature value of the first target detection object at the second time, and the fourth human body temperature is the body temperature value of the second target detection object at the second time.
[0015] Compared with existing technologies, the technical effects achieved by adopting this technical solution are as follows: around the first preset time period and the first moment, a second moment is obtained; the first body temperature change rate is calculated by the first human body temperature obtained at the first moment and the third human body temperature obtained at the second moment; the second body temperature change rate is calculated by the second human body temperature obtained at the first moment and the fourth human body temperature obtained at the second moment.
[0016] On the other hand, embodiments of the present invention also provide a temperature control device for a semi-enclosed space. The temperature control device includes: an acquisition module, configured to acquire, after the air conditioner is running, a first operating parameter of the air conditioner and a first body temperature change rate, a second body temperature change rate, and an inner ambient temperature change rate within a first preset time period; an adjustment module, configured to determine a second operating parameter value of the air conditioner based on the first operating parameter value and the inner ambient temperature change rate; and a control module, configured to adjust a third operating parameter value of the air conditioner based on the second operating parameter value, the first body temperature change rate, and the second body temperature change rate.
[0017] Compared with the prior art, the technical effect achieved by adopting this technical solution is as follows: The temperature control device for the semi-enclosed space in this embodiment is used to implement the temperature control method for the semi-enclosed space as in any embodiment of the present invention, and therefore it has all the beneficial effects of the temperature control method for the semi-enclosed space as in any embodiment of the present invention, which will not be repeated here.
[0018] In another aspect, embodiments of the present invention also provide an air conditioner, which includes: a processor, a memory, and a program or instructions stored in the memory and executable on the processor. When the program or instructions are executed by the processor, they implement the steps of the temperature control method for a semi-enclosed space as described in any of the above embodiments.
[0019] Compared with the prior art, the technical effect achieved by adopting this technical solution is as follows: the air conditioner in this embodiment operates as the temperature control method for a semi-enclosed space in any embodiment of the present invention, and therefore has all the beneficial effects of the temperature control method for a semi-enclosed space in any embodiment of the present invention, which will not be repeated here.
[0020] In another aspect, embodiments of the present invention also provide a readable storage medium storing a program or instructions, which, when executed by a processor, implement the steps of the temperature control method for a semi-enclosed space as described in any of the above embodiments.
[0021] Compared with the prior art, the technical effect achieved by adopting this technical solution is as follows: The readable storage medium in this embodiment is used to store the temperature control method of a semi-enclosed space as in any embodiment of the present invention, and therefore it has all the beneficial effects of the temperature control method of a semi-enclosed space as in any embodiment of the present invention, which will not be repeated here.
[0022] After adopting the technical solution of the present invention, the following technical effects can be achieved: The readable storage medium in this embodiment is used to store the temperature control method of a semi-enclosed space as in any embodiment of the present invention, and therefore has all the beneficial effects of the temperature control method of a semi-enclosed space as in any embodiment of the present invention, which will not be repeated here.
[0023] (1) Obtain the body temperature change rate of the first target object and the body temperature change rate of the second target object within a first preset time period. The body temperature change rate and the body temperature change rate can be used to determine the impact of the air conditioner on the body temperature of the target objects at two different locations: the entrance / exit of the semi-enclosed space and the center of the semi-enclosed space. When the air conditioner is in cooling mode, if the body temperature change rate and the body temperature change rate are too large, it indicates that the cooling capacity provided by the air conditioner under the second operating parameters cannot meet the body comfort of the target objects at the entrance / exit and the center at the current moment. It is necessary to further adjust the second operating parameters to adjust the indoor ambient temperature, thereby achieving the purpose of adjusting the body comfort of the target objects and improving the temperature control effect of the air conditioner.
[0024] (2) The effect of the air conditioner on the indoor temperature regulation can be judged by the rate of change of the inner ambient temperature. Therefore, when the rate of change of the inner ambient temperature is too large, the air conditioner has a better effect on regulating the indoor temperature, and the indoor temperature changes too quickly, which can easily cause discomfort to users. Therefore, it is necessary to adjust the second operating parameter value of the air conditioner according to the first operating parameter value to adjust the air conditioner's effect on regulating the indoor temperature and avoid the indoor temperature changing too quickly, which can cause discomfort to users. At the same time, the second operating parameter value is used as the basis for subsequent adjustment of the third operating parameter value, which further makes the control more precise and has strong applicability to different usage scenarios. Attached Figure Description
[0025] Figure 1 This is a flowchart of a temperature control method for a semi-enclosed space provided in Embodiment 1 of the present invention.
[0026] Figure 2 This is a schematic block diagram of a temperature control device for a semi-enclosed space provided in the second embodiment of the present invention.
[0027] Figure 3 This is a block diagram of an air conditioner provided in the third embodiment of the present invention.
[0028] Figure 4 This is a schematic diagram of the structure of a readable storage medium provided in the fourth embodiment of the present invention.
[0029] Explanation of reference numerals in the attached figures:
[0030] 100 - Temperature control device for semi-enclosed space; 101 - Radar module; 102 - Neural network module; 103 - Execution module; 200 - Air conditioner; 210 - Memory; 211 - Computer program; 220 - Processor; 300 - Readable storage medium; 310 - Computer-executable instructions. Detailed Implementation
[0031] To make the above-mentioned objectives, features, and advantages of the present invention more apparent and understandable, the technical solutions in the embodiments of the present invention are clearly and completely described. 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.
[0032] Example 1
[0033] See Figure 1 This is a flowchart of a temperature control method for a semi-enclosed space provided in the first embodiment of the present invention. The temperature control method includes:
[0034] Step S100: After the air conditioner is running, obtain the first operating parameters of the air conditioner and the first body temperature change rate, the second body temperature change rate, and the inner ambient temperature change rate within a first preset time period;
[0035] Step S200: Determine the second operating parameter value of the air conditioner based on the first operating parameter value and the rate of change of the indoor ambient temperature;
[0036] Step S300: Adjust the third operating parameter value of the air conditioner according to the second operating parameter value, the first body temperature change rate, and the second body temperature change rate;
[0037] The first operating parameter value is the value of the air conditioner's operating parameters at the first moment, the second operating parameter value is the value of the air conditioner's operating parameters at the second moment, and the third operating parameter value is the value of the air conditioner's operating parameters at the third moment; the operating parameters include the air conditioner's fan speed; the first body temperature change rate is the body temperature change rate of the first target object, and the second body temperature change rate is the body temperature change rate of the second target object.
[0038] In a specific embodiment, after the air conditioner is turned on, the air conditioner operates in the initial operating state set by the user, and the initial time is set as the first time. At this time, the first operating parameter value of the air conditioner in the initial operating state is obtained by the acquisition module, and the first body temperature change rate, the second body temperature change rate and the inner ring temperature change rate within the first preset time period are obtained. By obtaining the inner ring temperature change rate, the effect of the air conditioner on the indoor ambient temperature in the semi-enclosed space can be accurately determined.
[0039] The rate of change of the inner ambient temperature can be used to determine the air conditioner's effectiveness in regulating indoor temperature. Therefore, when the rate of change of the inner ambient temperature is too large, the air conditioner's effect on regulating indoor temperature is good, but the rapid change in indoor temperature can easily cause discomfort to users. Thus, it is necessary to adjust the air conditioner's second operating parameter value based on the first operating parameter value to adjust the air conditioner's effect on regulating indoor temperature and avoid excessively rapid temperature changes that could cause user discomfort. Simultaneously, the second operating parameter value serves as the basis for subsequent adjustments to the third operating parameter value, further enhancing control precision and making it more applicable to different usage scenarios.
[0040] Specifically, this invention also acquires the body temperature change rate of the first and second target objects within a first preset time period. These rates allow for the determination of the air conditioner's impact on the body temperature of target objects at two different locations: the entrance / exit and the center of the semi-enclosed space. When the air conditioner is in cooling mode, if the first and second body temperature change rates are too high, it indicates that the cooling capacity provided by the air conditioner under the second operating parameters is insufficient to meet the comfort level of the target objects at the entrance / exit and the center at the current moment. Further adjustment of the second operating parameters is needed to regulate the indoor ambient temperature, thereby achieving the goal of regulating the comfort level of the target objects and improving the temperature control effect of the air conditioner.
[0041] Preferably, the first target to be detected is the security personnel near the entrance / exit of the semi-enclosed space; the second target to be detected is the service personnel located away from the entrance / exit of the semi-enclosed space and near the center of the semi-enclosed space.
[0042] Preferably, the operating parameters also include the speed of the air conditioner's outdoor fan.
[0043] Preferably, the indoor ambient temperature is collected in real time by an indoor temperature sensing bag, and the body temperature of the target object is detected by an infrared temperature detection module.
[0044] Furthermore, step S200 includes:
[0045] Step S210: Determine the second operating parameter value based on the first operating parameter value, the inner ring temperature change rate, and the inner ring temperature change rate threshold;
[0046] Step S211: When the rate of change of the inner ambient temperature is less than or equal to the threshold value of the rate of change of the inner ambient temperature, the value of the second operating parameter is equal to the value of the first operating parameter; and / or
[0047] Step S212: When the rate of change of the inner ring temperature is greater than the threshold of the rate of change of the inner ring temperature, determine the value of the second operating parameter based on the value of the first operating parameter.
[0048] Specifically, an inner ring temperature change rate threshold is set. By comparing the inner ring temperature change rate with the threshold, it is determined whether the inner ring temperature change rate is too large. When the inner ring temperature change rate is too large, the air conditioner's regulation effect on the indoor ambient temperature is good, but the indoor ambient temperature changes too quickly, which can easily cause discomfort to users. Therefore, it is necessary to adjust the air conditioner's second operating parameter value according to the first operating parameter value to adjust the air conditioner's regulation effect on the indoor ambient temperature and avoid discomfort caused by excessively rapid changes in the indoor ambient temperature. By comparing the set inner ring temperature change rate threshold with the inner ring temperature change rate, the judgment of excessive inner ring temperature change rate is no longer a vague standard, making the judgment more accurate and scientific.
[0049] Furthermore, step S300 includes:
[0050] Step S310: Determine whether the air conditioner meets the first adjustment condition based on the first body temperature change rate and the second body temperature change rate;
[0051] Step S320: Under the condition that the first adjustment condition is met, determine the relationship between the first body temperature change rate and the second body temperature change rate, and adjust the third operating parameter value according to the second operating parameter value and the relationship between them;
[0052] The first adjustment condition is that the following conditions must be met simultaneously: the first body temperature change rate is greater than or equal to the first change threshold, the second body temperature change rate is greater than or equal to the second change threshold, and the second change threshold is greater than the first change threshold.
[0053] Specifically, a first temperature change threshold and a second temperature change threshold are set. By comparing the magnitude of the first temperature change rate and the first temperature change threshold, the temperature regulation effect of the air conditioner on users near the entrance / exit of the semi-enclosed space can be determined. By comparing the magnitude of the second temperature change rate and the second temperature change threshold, the temperature regulation effect of the air conditioner on users near the center of the semi-enclosed space can be determined. When the air conditioner is in cooling mode, if the first temperature change rate is greater than or equal to the first temperature change threshold and the second temperature change rate is greater than or equal to the second temperature change threshold, the air conditioner's regulation and control effect is poor, and a third operating parameter value needs to be adjusted based on the relationship between the second operating parameter value and the magnitudes of the first and second temperature change rates.
[0054] Furthermore, step S320 includes:
[0055] Step S321: When the first body temperature change rate is greater than or equal to the second body temperature change rate, adjust the third operating parameter value according to the second operating parameter value to regulate the indoor ambient temperature; and / or
[0056] Step S322: When the first body temperature change rate is less than the second body temperature change rate, adjust the third operating parameter value according to the second operating parameter value to maintain the indoor ambient temperature.
[0057] Specifically, when the first body temperature change rate is greater than or equal to the second body temperature change rate, it means that the temperature change rate at the entrance and exit of the semi-enclosed space is greater than or equal to the temperature change rate at the center of the semi-enclosed space. The air conditioner's ability to regulate the ambient temperature at the entrance and exit is weak. Therefore, it is necessary to adjust the third operating parameter value according to the second operating parameter value to regulate the indoor ambient temperature, thereby improving the air conditioner's temperature regulation ability at the entrance and exit.
[0058] Furthermore, by prioritizing the determination of the first and second body temperature change rates to determine whether the air conditioner meets the first adjustment condition, and then determining whether to compare the magnitude of the first and second body temperature change rates, this design in the control method can save more steps, reduce unnecessary judgment and detection steps, and make the control process more efficient.
[0059] Furthermore, step S100 includes:
[0060] Step S110: After the air conditioner is running, acquire the first indoor ambient temperature, the temperature of the first target object, and the temperature of the second target object;
[0061] Step S120: Obtain the first preset duration based on the duration required for the first indoor ambient temperature to change to the first inner ring temperature difference set value;
[0062] Step S140: Calculate the rate of change of the inner ring temperature based on the first indoor ambient temperature, the first inner ring temperature difference set value, and the first preset duration;
[0063] Wherein, the temperature of the first target object is the body temperature value of the first target object at the first moment, and the temperature of the second target object is the body temperature value of the second target object at the first moment.
[0064] Specifically, the process of obtaining the rate of change of the inner ambient temperature within the first preset time period is as follows: the first indoor ambient temperature (i.e., the indoor ambient temperature at the first moment) is obtained through the acquisition module; the rate of change of the inner ambient temperature under this environment can be obtained by calculating the time required for the first indoor ambient temperature to change the first inner ambient temperature difference set value; the first preset time period is assigned based on the time required for the first indoor ambient temperature to change the first inner ambient temperature difference set value; the first preset time period is obtained by calculating the first preset time period based on the first inner ambient temperature difference set value. This allows for better monitoring of the indoor ambient temperature, and the rate of change of the inner ambient temperature can be evaluated by monitoring the indoor ambient temperature.
[0065] Preferably, the set value of the first inner ring temperature difference is 1℃.
[0066] Furthermore, after step S120, the following steps are also included:
[0067] Step S131: Obtain the second moment based on the first preset duration and the first moment;
[0068] Step S132: Obtain the third and fourth human body temperatures;
[0069] Step S133: Calculate the first body temperature change rate and the second body temperature change rate based on the temperature of the first target detected object, the temperature of the second target detected object, the third human body temperature, the fourth human body temperature and the first preset time.
[0070] Among them, the third human body temperature is the body temperature value of the first target detection object at the second moment, and the fourth human body temperature is the body temperature value of the second target detection object at the second moment.
[0071] Specifically, based on the first preset duration and the first moment, the second moment is obtained. The first body temperature change rate is calculated using the first human body temperature obtained at the first moment and the third human body temperature obtained at the second moment. The second body temperature change rate is calculated using the second human body temperature obtained at the first moment and the fourth human body temperature obtained at the second moment.
[0072]
Example 2
[0073] See Figure 2 This embodiment also provides a temperature control device 100 for a semi-enclosed space, which includes, for example: an acquisition module 101, which is used to acquire the first operating parameters of the air conditioner and the first body temperature change rate, the second body temperature change rate, and the inner ambient temperature change rate within a first preset time after the air conditioner is running; an adjustment module 102, which is used to determine the second operating parameter value of the air conditioner based on the first operating parameter value and the inner ambient temperature change rate; and a control module 103, which is used to adjust the third operating parameter value of the air conditioner based on the second operating parameter value, the first body temperature change rate, and the second body temperature change rate.
[0074] In one specific embodiment, the temperature control device 100 of the semi-enclosed space, consisting of the acquisition module 101, the adjustment module 102, and the control module 103, works together to implement the temperature control method for the semi-enclosed space as described in the first embodiment above, which will not be repeated here.
[0075]
Example 3
[0076] See Figure 3 This embodiment provides a schematic diagram of the structure of an air conditioner 200. The air conditioner 200 includes, for example, a processor 220 and a memory 210 electrically connected to the processor 220. The memory 210 stores a computer program 211. The processor 220 loads the computer program 211 to implement the temperature control method for a semi-enclosed space as described in the first embodiment.
[0077]
Example 4
[0078] See Figure 4 This embodiment also provides a readable storage medium 300, which stores computer-executable instructions 310. When the computer-executable instructions 310 are read and run by the processor, they control the air conditioner where the readable storage medium 300 is located to implement the temperature control method for a semi-enclosed space as described in the first embodiment.
[0079] In the several embodiments provided in this application, it should be understood that the disclosed apparatus and methods can also be implemented in other ways. The apparatus embodiments described above are merely illustrative. For example, the functional modules in the various embodiments of the present invention can be integrated together to form an independent part, or each module can exist independently, or two or more modules can be integrated to form an independent part.
[0080] If the functionality is implemented as a software module and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of this invention, or the part that contributes to the prior art, or a part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the steps of the methods of the various embodiments of this invention. The aforementioned readable storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.
[0081] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, and not to limit them; 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; and these 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. A method of temperature control of a semi-enclosed space, characterized by, The temperature control method includes: After the air conditioner is started, the first operating parameter value of the air conditioner and the first body temperature change rate, the second body temperature change rate, and the inner ambient temperature change rate within a first preset time period are obtained. The second operating parameter value of the air conditioner is determined based on the first operating parameter value and the rate of change of the inner ambient temperature; The third operating parameter value of the air conditioner is adjusted based on the second operating parameter value, the first body temperature change rate, and the second body temperature change rate. Wherein, the first operating parameter value is the value of the operating parameter of the air conditioner at a first moment, the second operating parameter value is the value of the operating parameter of the air conditioner at a second moment, and the third operating parameter value is the value of the operating parameter of the air conditioner at a third moment; the operating parameter includes the fan speed of the air conditioner; the first body temperature change rate is the body temperature change rate of the first target detection object, and the second body temperature change rate is the body temperature change rate of the second target detection object; The step of adjusting the third operating parameter value of the air conditioner based on the second operating parameter value, the first body temperature change rate, and the second body temperature change rate includes: Based on the first body temperature change rate and the second body temperature change rate, determine whether the air conditioner meets the first adjustment condition; If the first adjustment condition is met, determine the relationship between the first body temperature change rate and the second body temperature change rate, and adjust the third operating parameter value according to the second operating parameter value and the relationship between them. The first adjustment condition is: simultaneously satisfying the following: the first body temperature change rate is greater than or equal to the first change threshold, the second body temperature change rate is greater than or equal to the second change threshold, and the second change threshold is greater than the first change threshold; The step of determining the relationship between the first body temperature change rate and the second body temperature change rate when the first adjustment condition is met, and adjusting the third operating parameter value according to the second operating parameter value and the relationship, includes: When the first body temperature change rate is greater than or equal to the second body temperature change rate, the third operating parameter value is adjusted according to the second operating parameter value to regulate the indoor ambient temperature; and / or When the first body temperature change rate is less than the second body temperature change rate, the third operating parameter value is adjusted according to the second operating parameter value to maintain the indoor ambient temperature.
2. The temperature control method according to claim 1, characterized in that, Determining the second operating parameter value of the air conditioner based on the first operating parameter value and the inner ambient temperature change rate includes: The second operating parameter value is determined based on the first operating parameter value, the inner ring temperature change rate, and the inner ring temperature change rate threshold. When the rate of change of the inner ring temperature is less than or equal to the threshold value of the rate of change of the inner ring temperature, the second operating parameter value is equal to the first operating parameter value; and / or When the rate of change of the inner ring temperature is greater than the threshold value of the rate of change of the inner ring temperature, the value of the second operating parameter is determined based on the value of the first operating parameter.
3. The temperature control method according to claim 1, characterized in that, The step of acquiring the first operating parameters of the air conditioner and the first body temperature change rate, second body temperature change rate, and inner ambient temperature change rate within a first preset time period after the air conditioner is running includes: After the air conditioner is running, the first indoor ambient temperature, the temperature of the first target object, and the temperature of the second target object are acquired. The first preset duration is obtained based on the duration required for the first indoor ambient temperature to change to the first inner ring temperature difference setting value; The rate of change of the inner ring temperature is calculated based on the first indoor ambient temperature, the first inner ring temperature difference setting value, and the first preset duration. Wherein, the temperature of the first target object is the body temperature value of the first target object at the first moment, and the temperature of the second target object is the body temperature value of the second target object at the first moment.
4. The temperature control method according to claim 3, characterized in that, After obtaining the first preset duration based on the time required for the change in the first indoor ambient temperature to the first inner ring temperature difference set value, the method further includes: The second moment is obtained based on the first preset duration and the first moment; Obtain the third and fourth human body temperatures; The first body temperature change rate and the second body temperature change rate are calculated based on the temperature of the first target detected object, the temperature of the second target detected object, the temperature of the third human body, the temperature of the fourth human body, and the first preset duration. Wherein, the third human body temperature is the body temperature value of the first target detection object at the second time, and the fourth human body temperature is the body temperature value of the second target detection object at the second time.
5. A temperature control device for a semi-enclosed space, characterized in that, The temperature control device includes: The acquisition module is used to acquire the first operating parameters of the air conditioner and the first body temperature change rate, the second body temperature change rate, and the inner ambient temperature change rate within a first preset time period after the air conditioner is running. An adjustment module is used to determine a second operating parameter value for the air conditioner based on the first operating parameter value and the rate of change of the inner ambient temperature; The control module is used to adjust the third operating parameter value of the air conditioner based on the second operating parameter value, the first body temperature change rate, and the second body temperature change rate.
6. An air conditioner, characterized in that, The air conditioner includes: a processor, a memory, and a program or instructions stored in the memory and executable on the processor, wherein the program or instructions, when executed by the processor, implement the steps of the temperature control method for a semi-enclosed space as described in any one of claims 1 to 4.
7. A readable storage medium, characterized in that, The readable storage medium stores a program or instructions that, when executed by a processor, implement the steps of the temperature control method for a semi-enclosed space as described in any one of claims 1 to 4.