Equipment state adjusting method and device, computer equipment and storage medium
By acquiring and analyzing real-time and historical data of energy consumption equipment, setting safety thresholds and adjustment modes, and adjusting the operating parameters of energy consumption equipment in real time, the problem of uncomprehensive adjustment of energy consumption equipment in the existing technology is solved, and the efficient operation and energy efficiency improvement of energy consumption equipment is achieved.
Patent Information
- Application Number
- CN202510419625.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-03
- Publication Date
- 2025-06-10
AI Technical Summary
The prior art lacks comprehensive consideration of dynamic multi-factors when adjusting the state of energy consumption equipment, resulting in equipment still operating in a high-energy-consuming mode when the flow of people is low, or equipment overload due to adjustment lag in extreme temperatures, resulting in waste of resources and shortening of equipment life.
By obtaining equipment information, real-time energy consumption, temperature and flow of people, analyzing historical data to set safety thresholds and adjustment modes, and adjusting the operating parameters of energy consumption equipment in real time to adapt to environmental needs.
It realizes the automatic adaptation of the status of energy-consuming equipment and environmental requirements, improves the energy efficiency of energy-consuming equipment, extends the service life of the equipment, and avoids waste of resources.
Smart Images

Figure CN120120701A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of data processing, and particularly to a method and device for adjusting the state of a device, a computer device, and a storage medium. Background Art
[0002] In the fields of industry, commerce, and public facilities, the adjustment of the state of energy-consuming devices (such as air-conditioning systems, ventilation devices, lighting systems, etc.) is crucial for energy efficiency management, extending the lifespan of devices, and controlling environmental comfort.
[0003] Traditional device adjustment methods mostly rely on fixed thresholds or single environmental parameters (such as temperature, humidity) for control, lacking comprehensive consideration of dynamic multi-factors. However, most energy-consuming devices still operate in a high-energy consumption mode when the number of people is low, or are overloaded due to lag in adjustment under extreme temperatures, resulting in waste of resources and attenuation of the lifespan of energy-consuming devices.
[0004] Therefore, how to automatically adapt the state of energy-consuming devices to environmental requirements to improve the energy efficiency of energy-consuming devices has become an urgent problem to be solved. Summary of the Invention
[0005] Embodiments of the present invention provide a method and device for adjusting the state of a device, a computer device, and a storage medium to solve the problem of how to automatically adapt the state of energy-consuming devices to environmental requirements to improve the energy efficiency of energy-consuming devices.
[0006] In a first aspect, embodiments of the present invention provide a method for adjusting the state of a device, including: Obtain the device information of the energy-consuming device, the real-time energy consumption collected by the sensor in real time during the operation of the energy-consuming device, the current temperature collected by the detection device in real time, and the number of people entering and leaving a specified area, and determine the current number of people based on the number of people entering and the number of people leaving; Extract the standard operating lifespan of the energy-consuming device from the device information, obtain the energy consumption critical value of the energy-consuming device based on the standard operating lifespan, and set the safety threshold of the energy-consuming device according to the energy consumption critical value of the energy-consuming device; Obtain the historical energy consumption information of the energy-consuming device, the historical temperature and historical number of people collected by the detection device, analyze the historical energy consumption information and the historical temperature, record the historical temperature corresponding to when a preset energy consumption threshold is reached as the first temperature, determine whether the current temperature conforms to the first temperature, and if it does not conform to the first temperature, adjust the real-time energy consumption in combination with the safety threshold to obtain a temperature adjustment mode; According to the historical energy consumption information and historical pedestrian flow, record the historical pedestrian flow corresponding to when the preset energy consumption threshold is reached as the flow threshold, and determine whether the current pedestrian flow conforms to the flow threshold. If it does not conform to the flow threshold, then in combination with the safety threshold, adjust the temperature regulation mode to obtain the real-time regulation mode of the energy consumption device.
[0007] In a second aspect, an embodiment of the present invention provides a device state regulation device, including: An information extraction module, configured to obtain the device information of the energy consumption device, the real-time energy consumption collected by the sensor in real time during the operation of the energy consumption device, the current temperature collected by the detection device, and the number of people entering and leaving a specified area, and determine the current pedestrian flow according to the number of people entering and leaving. A safety threshold determination module, configured to extract the standard operating life of the energy consumption device from the device information, obtain the energy consumption critical value of the energy consumption device according to the standard operating life, and set the safety threshold of the energy consumption device according to the energy consumption critical value of the energy consumption device. A temperature regulation module, configured to obtain the historical energy consumption information of the energy consumption device, the historical temperature and historical pedestrian flow collected by the detection device, analyze the historical energy consumption information and the historical temperature, record the historical temperature corresponding to when the preset energy consumption threshold is reached as the first temperature, and determine whether the current temperature conforms to the first temperature. If it does not conform to the first temperature, then in combination with the safety threshold, adjust the real-time energy consumption to obtain the temperature regulation mode. A real-time regulation module, configured to record the historical pedestrian flow corresponding to when the preset energy consumption threshold is reached as the flow threshold according to the historical energy consumption information and historical pedestrian flow, determine whether the current pedestrian flow conforms to the flow threshold. If it does not conform to the flow threshold, then in combination with the safety threshold, adjust the temperature regulation mode to obtain the real-time regulation mode of the energy consumption device.
[0008] In a third aspect, an embodiment of the present invention provides a computer device, including a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, the above-mentioned device state regulation method is implemented.
[0009] In a fourth aspect, an embodiment of the present invention provides a computer-readable storage medium, where the computer-readable storage medium stores a computer program, and when the computer program is executed by a processor, the above-mentioned device state regulation method is implemented.
[0010] The beneficial effects of the present invention compared with the prior art are as follows: By obtaining the device information of the energy-consuming device, the real-time energy consumption collected by the sensor in real time during the operation of the energy-consuming device, the current temperature collected by the detection device in real time, the number of people entering and leaving within a specified area, determining the current pedestrian flow according to the number of people entering and leaving, extracting the standard operating life of the energy-consuming device from the device information, obtaining the energy consumption critical value of the energy-consuming device according to the standard operating life, setting the safety threshold of the energy-consuming device according to the energy consumption critical value of the energy-consuming device, obtaining the historical energy consumption information of the energy-consuming device, the historical temperature and historical pedestrian flow collected by the detection device, analyzing the historical energy consumption information and historical temperature, recording the historical temperature corresponding to when the preset energy consumption threshold is reached as the first temperature, judging whether the current temperature conforms to the first temperature, if it does not conform to the first temperature, then combining the safety threshold to adjust the real-time energy consumption to obtain the temperature adjustment mode, recording the historical pedestrian flow corresponding to when the preset energy consumption threshold is reached as the flow threshold according to the historical energy consumption information and historical pedestrian flow, judging whether the current pedestrian flow conforms to the flow threshold, if it does not conform to the flow threshold, then combining the safety threshold to adjust the temperature adjustment mode to obtain the real-time adjustment mode of the energy-consuming device. By analyzing the device information of the energy-consuming device and the current flow during the operation of the energy-consuming device, and combining the historical energy consumption information and historical pedestrian flow, the operation mode of the energy-consuming device is adjusted to obtain the real-time adjustment mode. Thus, the state of the energy-consuming device is automatically adapted to the environmental requirements, and the energy efficiency of the energy-consuming device is improved. BRIEF DESCRIPTION OF THE DRAWINGS
[0011] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following will briefly introduce the drawings required for the description of the embodiments of the present invention. Obviously, the following drawings are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0012] Figure 1 is a schematic diagram of the application environment of a device state adjustment method provided in Embodiment 1 of the present invention; Figure 2 is a schematic flowchart of a device state adjustment method provided in Embodiment 2 of the present invention; Figure 3 is a schematic flowchart of a device state adjustment method provided in Embodiment 3 of the present invention; Figure 4 is a schematic flowchart of a device state adjustment method provided in Embodiment 4 of the present invention; Figure 5 is a schematic flowchart of a device state adjustment method provided in Embodiment 5 of the present invention; Figure 6It is a schematic flowchart of a device state adjustment method provided in Embodiment 6 of the present invention; Figure 7 It is a schematic structural diagram of a device state adjustment device provided in Embodiment 7 of the present invention; Figure 8 It is a schematic structural diagram of a computer device provided in Embodiment 8 of the present invention. Detailed implementation manners
[0013] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0014] As Figure 1 shown, it is a schematic diagram of an application environment of a device state adjustment method provided in Embodiment 1 of the present invention. Among them, the client and the server are connected for communication. The user can provide conditions, requirements, operation instructions, etc. for device state adjustment to the server by operating the client. The server is used to execute the device state adjustment method of the present invention according to the relevant content sent by the client. Among them, the client includes, but is not limited to, various computer devices such as personal computers, laptop computers, smart phones, tablet computers, and portable wearable devices. The computer device corresponding to the server can be implemented by an independent server or a server cluster composed of multiple servers.
[0015] As Figure 2 shown, it is a schematic flowchart of a device state adjustment method provided in Embodiment 2 of the present invention. Among them, the device state adjustment method is applied to the Figure 1 server in. The device state adjustment method may include the following steps: Step S201, obtain the device information of the energy-consuming device, the real-time energy consumption collected by the sensor in real time during the operation of the energy-consuming device, the current temperature collected by the detection device in real time, and the number of people entering and leaving the specified area, and determine the current traffic flow according to the number of people entering and leaving.
[0016] Among them, the static parameters of the energy-consuming device (such as air conditioner, lighting system), including model, rated power, design life, etc., provide a basis for calculating the energy consumption safety threshold of the device in the follow-up. For example, the rated power of the device is used to judge whether the current energy consumption is overloaded; the design life is used to estimate the energy consumption critical value for long-term safe operation.
[0017] Sensors are used to monitor the current energy consumption of equipment (such as electricity meter data, power meter readings), which reflect the real-time operating load of the equipment and are the direct basis for regulation. For example, if the current hourly power consumption of an air conditioner is 50 kW, it is necessary to compare it with its rated power (such as 80 kW) to determine whether it is close to the limit. The current ambient temperature collected by a temperature sensor in the detection equipment (such as the indoor temperature of 25 °C) directly affects the equipment load. For example, in hot weather, the air conditioner requires higher energy consumption to maintain the set temperature.
[0018] Counters (such as turnstiles, cameras) record the number of people entering and leaving the area, and the traffic flow affects the equipment demand. For example, an increase in the traffic flow in a shopping mall causes the air conditioner to cool more people, resulting in an increase in energy consumption.
[0019] Step S202: Extract the standard operating life of the energy-consuming equipment from the equipment information. According to the standard operating life, obtain the energy consumption critical value of the energy-consuming equipment. According to the energy consumption critical value of the energy-consuming equipment, set the safety threshold of the energy-consuming equipment.
[0020] Among them, the theoretical service life of the equipment provided by the manufacturer under ideal conditions (such as 10 years), the energy consumption critical value is the upper limit of the long-term average energy consumption that the equipment can withstand during the standard life cycle. If this value is exceeded for a long time, the equipment life will be significantly shortened.
[0021] Assume that the total energy consumption of the equipment during the standard operating life is evenly distributed. Then, the total designed energy consumption of the equipment during the standard operating life can be divided by the duration of the standard operating life to obtain the energy consumption critical value per unit time. For example, if the standard operating life of a device is 10 years and the total designed energy consumption is 100,000 kWh, and one year is calculated as 365 days, then the daily energy consumption critical value = 100,000÷(10×365)≈27.4 kWh.
[0022] The safety threshold can prevent the equipment from operating at a high energy consumption level for a long time, reduce the probability of equipment wear and failure, extend the service life of the equipment, help to reasonably control the energy consumption of the equipment, avoid unnecessary energy waste, improve energy utilization efficiency, and reduce operating costs.
[0023] Step S203: Obtain the historical energy consumption information of the energy-consuming equipment, the historical ambient temperature and historical traffic flow collected by the detection equipment. Analyze the historical energy consumption information and historical ambient temperature, record the historical ambient temperature corresponding to when the preset energy consumption threshold is reached as the first ambient temperature, judge whether the current ambient temperature conforms to the first ambient temperature. If it does not conform to the first ambient temperature, then combine the safety threshold to adjust the real-time energy consumption to obtain the ambient temperature adjustment mode.
[0024] Among them, the historical energy consumption information part of the data records the energy consumption of energy-consuming equipment over a past period of time, including the energy consumption values in different time periods (such as daily, weekly, monthly, etc.). These data can be obtained from the energy consumption monitoring system of the equipment, which can reflect the energy consumption law of the equipment under various working conditions.
[0025] The historical temperature is the ambient temperature data over a past period of time collected by specialized detection equipment (such as thermometers, weather stations, etc.). Temperature is one of the important factors affecting the energy consumption of energy-consuming equipment. For example, in hot summers, the energy consumption of air-conditioning equipment usually increases significantly.
[0026] The historical pedestrian flow is also the pedestrian flow data in a specific area over different past time periods collected by corresponding detection equipment (such as pedestrian flow counters, etc.). The amount of pedestrian flow will also affect the energy consumption of energy-consuming equipment. For example, when there is a large number of people in a shopping mall, the energy consumption of lighting, ventilation and other equipment will increase accordingly.
[0027] Among them, with the increase or decrease of temperature, the energy consumption of energy-consuming equipment will also change accordingly. By analyzing historical data, the law and trend of this change can be understood. Statistical methods can be used, such as drawing scatter plots, calculating correlation coefficients, etc. For example, draw a scatter plot of historical energy consumption and historical temperature to observe whether there is a linear or non-linear relationship between the two. If the correlation coefficient is high, it indicates a strong correlation between energy consumption and temperature.
[0028] The safety threshold of the energy-consuming equipment set in step S202. When the energy consumption of the equipment reaches this threshold, it means that the energy consumption of the equipment is at a relatively high level and needs attention. The first temperature is the temperature corresponding to when the energy consumption of the equipment reaches the preset energy consumption threshold. This temperature value is a key reference point, which represents the temperature condition under a specific energy consumption situation. Obtain the current ambient temperature in real time and compare it with the first temperature. Judge whether the two are close or equal. An allowable error range can be set, such as ±2°C. If the current temperature conforms to the first temperature within this error range, it is considered that the current temperature conforms to the first temperature; otherwise, it is considered not to conform. When the current temperature does not conform to the first temperature, it means that the current temperature condition is different from the temperature condition when the energy consumption reached the threshold in history. In order to avoid too high or too low energy consumption of the equipment, it is necessary to adjust the real-time energy consumption of the equipment to adapt to the current temperature environment.
[0029] Adjust the operating parameters of the device according to the difference between the current temperature and the first temperature. For example, if the current temperature is lower than the first temperature and the energy-consuming device is an air-conditioning device, the cooling power of the air conditioner can be appropriately reduced to keep the energy consumption of the device within the safety threshold; if the current temperature is higher than the first temperature, an appropriate increase in the operating power of the device can be considered, but it is also necessary to ensure that it does not exceed the safety threshold. Through the above adjustment process, a set of device operating modes suitable for the current temperature conditions, namely the temperature adjustment mode, is determined. This mode stipulates the optimal operating parameters of the device at the current temperature, such as temperature setting, wind speed adjustment, etc., to achieve reasonable control of energy consumption and efficient operation of the device.
[0030] Optionally, if the current temperature meets the first temperature, adjust the real-time energy consumption to the preset energy consumption threshold and operate the energy-consuming device at the current temperature using the preset energy consumption threshold.
[0031] Among them, the obtained current temperature is compared with the preset first temperature. Here, "meeting" has certain judgment criteria. In practical applications, a reasonable error range is set, such as ±0.5°C or ±1°C, etc. If the current temperature falls within this error range, it is considered that the current temperature meets the first temperature.
[0032] The preset energy consumption threshold is an energy consumption reference value determined by analyzing a large amount of historical energy consumption data and temperature data in the early stage. It represents the reasonable energy that the energy-consuming device needs to consume to meet specific functional requirements (such as maintaining the indoor temperature, providing ventilation, etc.) under the first temperature condition.
[0033] Once it is determined that the current temperature meets the first temperature, the real-time energy consumption of the energy-consuming device needs to be adjusted to reach the preset energy consumption threshold. This may involve adjusting various operating parameters of the energy-consuming device. For example, for an air-conditioning device, the operating frequency of the compressor, the rotation speed of the fan, the cooling / heating power, etc. can be adjusted; for lighting devices, the brightness of the lights can be adjusted, etc., so as to change the energy consumption level of the device and make it approach the preset energy consumption threshold.
[0034] After the real-time energy consumption of the energy-consuming device is adjusted to the preset energy consumption threshold, let the device continue to operate at this energy consumption level. During the operation, continuously monitor the changes in temperature and energy consumption to ensure that the current temperature still meets the first temperature and the energy consumption is stable near the preset energy consumption threshold. Although the current is in a relatively stable operating state, if subsequent temperature or other environmental factors change, resulting in the current temperature no longer meeting the first temperature, it is necessary to re-adjust the operation of the energy-consuming device according to the new situation to ensure that the device always operates at a reasonable energy consumption level while meeting the usage requirements.
[0035] Step S204: Based on the historical energy consumption information and historical pedestrian flow, record the historical pedestrian flow corresponding to when the preset energy consumption threshold is reached as the flow threshold, and determine whether the current pedestrian flow conforms to the flow threshold. If it does not conform to the flow threshold, then in combination with the safety threshold, adjust the temperature regulation mode to obtain the real-time regulation mode of the energy-consuming equipment.
[0036] Among them, the historical energy consumption information records the energy consumption values of the energy-consuming equipment in different past time periods, and the historical pedestrian flow data reflects the number of people flowing in a specific area during the same time period. These data are usually collected through an energy consumption monitoring system and a pedestrian flow statistics device (such as an infrared sensor, a camera, etc.).
[0037] The preset energy consumption threshold has been determined in step S202. In the historical data, when the energy consumption of the energy-consuming equipment reaches this preset threshold, the corresponding historical pedestrian flow is recorded as the flow threshold. For example, when the energy consumption of the air-conditioning system in a shopping mall reached the preset threshold during a certain past period, the number of people in the shopping mall was 500, then this 500 people is the flow threshold.
[0038] The current pedestrian flow can be obtained by using a pedestrian flow statistics device installed in the relevant area to count the current pedestrian flow in real time. Compare the current pedestrian flow with the flow threshold. Similar to judging whether the temperature conforms to the first temperature, a reasonable error range can also be set here, such as ±10%. If the current pedestrian flow is within the error range of the flow threshold, it is considered that the current pedestrian flow conforms to the flow threshold; otherwise, it does not conform.
[0039] The change in pedestrian flow will have a significant impact on the energy consumption of the energy-consuming equipment. For example, in a shopping mall, an increase in pedestrian flow will bring more heat and moisture, which requires the air-conditioning system to consume more energy to maintain a suitable indoor environment; when the pedestrian flow decreases, the energy consumption demand will also decrease accordingly. Therefore, when the current pedestrian flow does not match the flow threshold, the temperature regulation mode determined based on the temperature before may no longer be applicable and needs to be adjusted.
[0040] The safety threshold is the upper limit of the energy consumption of the equipment. This factor must be considered when adjusting the temperature adjustment mode to ensure that the adjusted energy consumption does not exceed the safety threshold. For example, if the current flow of people is greater than the flow threshold, it means that the energy demand may increase. At this time, when adjusting the temperature adjustment mode, it may be necessary to appropriately lower the set temperature of the air conditioner or increase the power of the ventilation equipment, but ensure that the total energy consumption of the equipment does not exceed the safety threshold; conversely, if the current flow of people is less than the flow threshold, the set temperature of the air conditioner can be appropriately increased or the power of the ventilation equipment can be reduced. After adjusting the temperature adjustment mode, the current temperature and flow of people are comprehensively considered, and finally a set of real-time adjustment modes suitable for the current operation of energy-consuming equipment is determined. This mode specifies the various operating parameters of the equipment under the current environmental conditions, such as temperature setting, wind speed, power, etc., to achieve precise control of energy consumption and efficient operation of the equipment.
[0041] Optionally, if the current flow of people meets the flow threshold, the real-time energy consumption is adjusted to a preset energy consumption threshold, and the preset energy consumption threshold is used to execute the operation of energy-consuming equipment at the current temperature.
[0042] Among them, when the real-time energy consumption of the energy-consuming equipment is successfully adjusted to the preset energy consumption threshold, the equipment is allowed to continue to operate at this energy consumption level. During operation, the changes in human flow, temperature and energy consumption are continuously monitored to ensure that the current human flow still meets the flow threshold and the energy consumption is stable near the preset energy consumption threshold. Although the current equipment is in a relatively stable operating state, if the subsequent human flow, temperature or other environmental factors change, causing the current human flow to no longer meet the flow threshold, it is necessary to readjust the operation of the energy-consuming equipment according to the new situation to ensure that the equipment always operates at a reasonable energy consumption level and meets the actual usage needs.
[0043] In the embodiment of the present application, by obtaining the equipment information of the energy-consuming equipment and the real-time energy consumption collected by the sensor when the energy-consuming equipment is running in real time, and the current temperature and the number of people entering and leaving the specified area collected in real time by the detection equipment, the current flow of people is determined according to the number of people entering and leaving, the standard operating life of the energy-consuming equipment in the equipment information is extracted, and the energy consumption critical value of the energy-consuming equipment is obtained according to the standard operating life. According to the energy consumption critical value of the energy-consuming equipment, the safety threshold of the energy-consuming equipment is set, the historical energy consumption information of the energy-consuming equipment, the historical temperature and the historical flow of people collected by the detection equipment are obtained, the historical energy consumption information and the historical temperature are analyzed, and the historical temperature corresponding to the time when the preset energy consumption threshold is reached is recorded as the first temperature, and it is judged whether the current temperature meets the first temperature. If it does not meet the first temperature, the real-time energy consumption is adjusted in combination with the safety threshold to obtain the temperature adjustment mode, and according to the historical energy consumption information and the historical flow of people, the historical flow of people corresponding to the time when the preset energy consumption threshold is reached is recorded as the flow threshold, and it is judged whether the current flow of people meets the flow threshold. If it does not meet the flow threshold, the temperature adjustment mode is adjusted in combination with the safety threshold to obtain the real-time adjustment mode of the energy-consuming equipment. By analyzing the equipment information of energy-consuming equipment and the current flow rate of energy-consuming equipment during operation, combined with historical energy consumption information and historical human flow, the operation mode of energy-consuming equipment is adjusted to obtain a real-time adjustment mode. In this way, the state of energy-consuming equipment is automatically adapted to environmental requirements, and the energy efficiency of energy-consuming equipment is improved.
[0044] like Figure 3 As shown, it is a flow chart of a device state adjustment method provided by Embodiment 3 of the present invention. After the first temperature is not met in step S203, the device state adjustment method may further include the following steps: Step S301, based on the historical energy consumption information and the historical temperature, the historical temperature corresponding to the lowest historical energy consumption is recorded as the second temperature, and the historical temperature corresponding to the highest historical energy consumption is recorded as the third temperature.
[0045] Among them, two key temperature reference points are found in the historical energy consumption information and historical temperature data, namely the second temperature corresponding to the lowest historical energy consumption and the third temperature corresponding to the highest historical energy consumption. These two temperature values represent the typical temperature environment of energy-consuming equipment at different energy consumption levels, which will help to make more detailed energy consumption adjustments based on the current temperature in the future.
[0046] The historical energy consumption information and historical temperature data are comprehensively sorted and analyzed to find out the historical temperature corresponding to the lowest energy consumption of the energy-consuming equipment in the past operation process, and record it as the second temperature; similarly, find out the historical temperature corresponding to the highest energy consumption, and record it as the third temperature. For example, after analyzing the historical data of the air-conditioning system of an office building, it is found that when the outdoor temperature is 20℃, the air-conditioning system has the lowest energy consumption, so 20℃ is the second temperature; when the outdoor temperature is 35℃, the air-conditioning system has the highest energy consumption, and 35℃ is the third temperature.
[0047] Step S302, determine whether the current temperature is within the numerical range of the second temperature and the first temperature. If the current temperature is within the numerical range of the second temperature and the first temperature, the real-time energy consumption is reduced in combination with the minimum historical energy consumption, the preset energy consumption threshold, and the safety threshold to obtain the temperature adjustment mode.
[0048] Among them, the current ambient temperature is obtained in real time, and compared with the second temperature and the first temperature to determine whether the current temperature is within the numerical range formed by the second temperature and the first temperature. For example, if the second temperature is 20°C, the first temperature is 25°C, and the current temperature is 22°C, the current temperature is within this range. When the current temperature is within this range, it means that the current temperature conditions are relatively suitable, and the equipment may operate at a lower energy consumption. The real-time energy consumption is reduced and adjusted in combination with the lowest historical energy consumption, the preset energy consumption threshold and the safety threshold. The lowest historical energy consumption provides a feasible low-energy consumption target for energy consumption adjustment; the preset energy consumption threshold is used as an upper limit reference for energy consumption to ensure that the adjusted energy consumption does not exceed this limit; the safety threshold is a stricter energy consumption upper limit to ensure the safety and stability of equipment operation. According to the relationship between the three, the operating power of the equipment is appropriately reduced, the operating parameters are adjusted, etc. For example, for air-conditioning equipment, the set temperature can be appropriately increased, the wind speed can be reduced, etc., so that the energy consumption of the equipment is close to the lowest historical energy consumption, but at the same time, it must be ensured that it does not exceed the preset energy consumption threshold and safety threshold, and finally a temperature adjustment mode suitable for the current temperature is obtained.
[0049] Step S303, determine whether the current temperature is within the numerical range of the third temperature and the first temperature. If it is within the numerical range of the third temperature and the first temperature, increase the real-time energy consumption in combination with the highest historical energy consumption, the preset energy consumption threshold, and the safety threshold to obtain the temperature adjustment mode.
[0050] Among them, the current temperature is also obtained in real time, and it is determined whether it is within the numerical range formed by the third temperature and the first temperature. For example, if the third temperature is 35°C, the first temperature is 25°C, and the current temperature is 30°C, then the current temperature is in this range. When the current temperature is in this range, it means that the current temperature is relatively high, and the device may need to consume more energy to maintain normal operation. At this time, the real-time energy consumption is increased and adjusted in combination with the highest historical energy consumption, the preset energy consumption threshold and the safety threshold. The highest historical energy consumption reflects the maximum energy consumption of the device in a similar high temperature environment, and provides a reference upper limit for the increase in energy consumption. The preset energy consumption threshold and safety threshold limit the increase in energy consumption to avoid excessive energy consumption of the device.
[0051] According to the actual situation, appropriately increase the operating power of the equipment, increase the cooling or heating capacity, etc. For example, for air-conditioning equipment, you can appropriately lower the set temperature, increase the wind speed, etc., but ensure that the energy consumption is within the preset energy consumption threshold and safety threshold, so as to obtain a temperature adjustment mode that adapts to the current temperature. In this embodiment, by dividing the temperature intervals more finely and performing targeted energy consumption adjustments, more precise energy-saving control can be achieved under different temperature conditions to avoid energy waste.
[0052] like Figure 4 As shown, it is a flow chart of a device state adjustment method provided by Embodiment 4 of the present invention. After the flow threshold is not met in step S204, the device state adjustment method may further include the following steps: Step S401 , based on historical energy consumption information and historical human flow, the historical human flow when the lowest historical energy consumption is reached is recorded as the first human flow, and the historical human flow when the highest historical energy consumption is reached is recorded as the second human flow.
[0053] Among them, historical energy consumption information and historical traffic data are deeply analyzed. Find out the historical traffic corresponding to the lowest historical energy consumption of energy-consuming equipment, and record it as the first traffic; similarly, find out the historical traffic corresponding to the highest historical energy consumption, and record it as the second traffic. For example, when analyzing the energy consumption and traffic data of a shopping mall, it is found that when the traffic in the mall is 50 people, the energy consumption of energy-consuming equipment is the lowest, so 50 people is the first traffic; when the traffic reaches 500 people, the energy consumption is the highest, and 500 people is the second traffic.
[0054] Step S402, determine whether the current human flow is within the numerical range of the first human flow and the flow threshold. If it is within the numerical range of the first human flow and the flow threshold, then combine the minimum historical energy consumption, the preset energy consumption threshold, and the safety threshold to reduce the power of the energy-consuming equipment in the temperature adjustment mode to obtain the real-time adjustment mode of the energy-consuming equipment.
[0055] The human flow data of the current area is obtained in real time and compared with the first human flow and the flow threshold to determine whether the current human flow is within the interval formed by the two values. For example, if the first human flow is 50 people, the flow threshold is 200 people, and the current human flow is 100 people, then the current human flow is within the interval.
[0056] When the current flow of people is in this range, it indicates that the current flow of people is relatively small, and the equipment does not need to consume too much energy to meet the demand. At this time, the power of energy-consuming equipment is reduced and adjusted in combination with the lowest historical energy consumption, the preset energy consumption threshold and the safety threshold. The lowest historical energy consumption provides a feasible energy-saving target for power reduction. The preset energy consumption threshold stipulates the upper limit of energy consumption to avoid excessive power reduction affecting the normal operation of the equipment; the safety threshold ensures that the adjustment is within the safe range from the perspective of safe operation of the equipment. According to these conditions, the power of energy-consuming equipment in the temperature adjustment mode is adjusted. For example, for the air-conditioning system of the shopping mall, the cooling power and the fan speed can be appropriately reduced; for the lighting system, the number of lights can be reduced, etc., so that the energy consumption of the equipment is close to the lowest historical energy consumption, while ensuring that the energy consumption level is not lower than the energy consumption level that meets the basic functional requirements and does not exceed the preset energy consumption threshold and safety threshold, thereby obtaining the real-time adjustment mode of the energy-consuming equipment.
[0057] Step S403, determine whether the current human flow is within the numerical range of the second human flow and the flow threshold. If it is within the numerical range of the second human flow and the flow threshold, then combine the highest historical energy consumption, the preset energy consumption threshold, and the safety threshold to increase the power of the energy-consuming equipment in the temperature adjustment mode to obtain the real-time adjustment mode of the energy-consuming equipment.
[0058] Among them, the current flow of people is also obtained in real time to determine whether it is in the interval formed by the second flow of people and the flow threshold. For example, if the second flow of people is 500 people, the flow threshold is 200 people, and the current flow of people is 300 people, then the current flow of people is in this interval. When the current flow of people is in this interval, it means that the current flow of people is relatively large, and the equipment needs to consume more energy to maintain normal operation and service. The power increase adjustment of energy-consuming equipment is carried out in combination with the highest historical energy consumption, the preset energy consumption threshold and the safety threshold. The highest historical energy consumption provides a reference upper limit for power increase; the preset energy consumption threshold and the safety threshold limit the amplitude of power increase to prevent excessive energy consumption of equipment from causing safety hazards or energy waste. According to the actual situation, the power of energy-consuming equipment in the temperature adjustment mode is increased. For example, for the air-conditioning system, the set temperature can be lowered and the fan speed can be increased; for the ventilation equipment, the ventilation volume can be increased, etc., but it is necessary to ensure that the energy consumption is within the preset energy consumption threshold and the safety threshold, so as to obtain a real-time adjustment mode of energy-consuming equipment that adapts to the current flow of people.
[0059] In this embodiment, by more accurately adjusting the power of energy-consuming equipment according to changes in the flow of people, unreasonable energy consumption when the flow of people changes can be avoided, and energy-saving goals can be achieved while improving energy utilization efficiency.
[0060] like Figure 5 FIG. 2 is a flow chart of a device state adjustment method provided in Embodiment 5 of the present invention. After obtaining the real-time adjustment mode of the energy-consuming device in step S204, the device state adjustment method may further include the following steps: Step S501, determining whether the real-time energy consumption is higher than a safety threshold.
[0061] Step S502: if the real-time energy consumption is higher than the safety threshold, a warning signal is generated for the energy-consuming device.
[0062] The real-time energy consumption data is compared with the pre-set safety threshold. If the real-time energy consumption value is greater than the safety threshold, it means that the current energy consumption state of the device has a safety risk; if the real-time energy consumption value is less than or equal to the safety threshold, it means that the device is operating within a safe energy consumption range.
[0063] When the judgment result of step S501 is that the real-time energy consumption is higher than the safety threshold, the early warning mechanism will be triggered, which indicates that the energy consumption of the device has exceeded the safety range and may pose a potential threat to the device itself or the surrounding environment. Once the early warning is triggered, the system will immediately generate an early warning signal. The early warning signal can be in various forms, and the common ones are sound and light alarms, SMS or email notifications, system interface prompts, etc.
[0064] Among them, sound and light alarms can refer to the sound and light alarms installed near the equipment that emit loud sounds and flashing lights to attract the attention of on-site staff. SMS or email notifications can refer to the system automatically sending text messages to the mobile phones of equipment managers, or sending emails to their email addresses to inform them of abnormal equipment energy consumption. System interface prompts can refer to the pop-up of a striking prompt box on the operation interface of the equipment monitoring system, displaying specific information about abnormal energy consumption, such as real-time energy consumption values, safety thresholds, and the time when the abnormality occurred.
[0065] After the early warning signal is generated, relevant personnel need to take timely measures. Possible treatment methods include checking whether the equipment has faults, adjusting the equipment's operating parameters to reduce energy consumption, and performing maintenance or repairs on the equipment to ensure that the equipment returns to a safe operating state as soon as possible.
[0066] In this embodiment, the monitoring and early warning of abnormal energy consumption can help discover energy waste problems during equipment operation, prompting enterprises to take measures to optimize equipment operation and improve energy efficiency.
[0067] like Figure 6FIG. 2 is a flow chart of a device state adjustment method provided in Embodiment 6 of the present invention. After obtaining the real-time adjustment mode of the energy-consuming device in step S204, the device state adjustment method may further include the following steps: Step S601: collecting real-time energy consumption of energy-consuming devices in real-time adjustment mode.
[0068] Step S602: Analyze whether there are abnormal values in real-time energy consumption based on historical energy consumption information, and obtain analysis results, which are used to optimize the operation mode of energy-consuming equipment.
[0069] Among them, the normal fluctuation range of equipment energy consumption is calculated based on historical data, and a reasonable threshold is set. When the real-time energy consumption exceeds this threshold, it is considered an abnormal value. For example, the power of a certain device in normal operation is usually between 50 and 100 kilowatts. If the real-time monitoring shows that its power reaches 150 kilowatts, which exceeds the set threshold, it can be judged as abnormal.
[0070] Observe the trend of real-time energy consumption over time and compare it with the trend of historical energy consumption. If the trend of real-time energy consumption is significantly different from the historical situation, it may also mean that there is an anomaly. For example, under the same adjustment mode, historical data shows that the energy consumption of the equipment is gradually and steadily increasing, while the current real-time energy consumption suddenly fluctuates greatly. This requires further investigation and the use of machine learning or statistical analysis methods to establish an energy consumption prediction model based on historical energy consumption data. The real-time energy consumption data is input into the model for prediction. If the deviation between the actual value and the predicted value is too large, it is judged as an anomaly.
[0071] The analysis results are mainly used to optimize the operation mode of energy-consuming equipment. If abnormal values are found in real-time energy consumption, it means that there may be problems with the current real-time adjustment mode, and the operation parameters and adjustment strategies of the equipment need to be adjusted. For example, if the energy consumption is abnormally high due to a failure of a certain component of the equipment, it is necessary to repair it in time; if the adjustment mode is unreasonable, it is necessary to re-optimize the adjustment parameters to reduce energy consumption and improve the operation efficiency and stability of the equipment.
[0072] In this embodiment, by timely discovering energy consumption anomalies and performing optimization and adjustment, unnecessary energy waste of equipment can be avoided and operating costs can be reduced.
[0073] like Figure 7 As shown, it is a schematic diagram of a device state adjustment device provided by Embodiment 7 of the present invention, and the device state adjustment device corresponds to the device state adjustment method in the above embodiment. The device state adjustment device includes an information extraction module 71, a safety threshold determination module 72, a temperature adjustment module 73, and a real-time adjustment module 74. Each functional module is described in detail as follows: The information extraction module 71 is used to obtain the equipment information of the energy-consuming equipment and the real-time energy consumption collected by the sensor when the energy-consuming equipment is running, as well as the current temperature collected by the detection equipment in real time and the number of people entering and leaving the designated area, and determine the current flow of people according to the number of people entering and leaving; The safety threshold determination module 72 is used to extract the standard operating life of the energy-consuming equipment in the equipment information, obtain the energy consumption critical value of the energy-consuming equipment according to the standard operating life, and set the safety threshold of the energy-consuming equipment according to the energy consumption critical value of the energy-consuming equipment; The temperature adjustment module 73 is used to obtain the historical energy consumption information of the energy consumption equipment, the historical temperature and the historical flow of people collected by the detection equipment, analyze the historical energy consumption information and the historical temperature, record the historical temperature corresponding to the preset energy consumption threshold as the first temperature, judge whether the current temperature meets the first temperature, and if it does not meet the first temperature, adjust the real-time energy consumption in combination with the safety threshold to obtain the temperature adjustment mode; The real-time adjustment module 74 is used to record the historical human flow corresponding to the preset energy consumption threshold as the flow threshold based on the historical energy consumption information and the historical human flow, and determine whether the current human flow meets the flow threshold. If it does not meet the flow threshold, the temperature adjustment mode is adjusted in combination with the safety threshold to obtain the real-time adjustment mode of the energy-consuming equipment.
[0074] Optionally, the device state adjustment device further includes: A temperature recording module is used to record the historical temperature corresponding to the lowest historical energy consumption as the second temperature and the historical temperature corresponding to the highest historical energy consumption as the third temperature based on the historical energy consumption information and the historical temperature after the first temperature is not met; A temperature adjustment module is used to determine whether the current temperature is within the numerical interval between the second temperature and the first temperature. If the current temperature is within the numerical interval between the second temperature and the first temperature, the real-time energy consumption is reduced by combining the lowest historical energy consumption, the preset energy consumption threshold, and the safety threshold to obtain a temperature adjustment mode; The temperature judgment module is used to judge whether the current temperature is within the numerical range of the third temperature and the first temperature. If it is within the numerical range of the third temperature and the first temperature, the real-time energy consumption is increased in combination with the highest historical energy consumption, the preset energy consumption threshold and the safety threshold to obtain the temperature adjustment mode.
[0075] Optionally, the device state adjustment device further includes: A pedestrian flow recording module, for recording the historical pedestrian flow when the lowest historical energy consumption is reached as the first pedestrian flow, and recording the historical pedestrian flow when the highest historical energy consumption is reached as the second pedestrian flow, based on the historical energy consumption information and the historical pedestrian flow, after the flow threshold is not met; A pedestrian flow determination module is used to determine whether the current pedestrian flow is within the numerical range of the first pedestrian flow and the flow threshold. If it is within the numerical range of the first pedestrian flow and the flow threshold, the energy consumption equipment in the temperature adjustment mode is reduced in power based on the lowest historical energy consumption, the preset energy consumption threshold, and the safety threshold, so as to obtain a real-time adjustment mode for the energy consumption equipment. The pedestrian flow regulation module is used to determine whether the current pedestrian flow is within the numerical range of the second pedestrian flow and the flow threshold. If it is within the numerical range of the second pedestrian flow and the flow threshold, the power of the energy-consuming equipment in the temperature regulation mode is increased in combination with the highest historical energy consumption, the preset energy consumption threshold, and the safety threshold to obtain a real-time regulation mode of the energy-consuming equipment.
[0076] Optionally, the device state adjustment device further includes: The first temperature execution module is used to determine whether the current temperature meets the first temperature. If the current temperature meets the first temperature, the real-time energy consumption is adjusted to a preset energy consumption threshold, and the preset energy consumption threshold is used to execute the operation of the energy-consuming equipment at the current temperature.
[0077] Optionally, the device state adjustment device further includes: The current pedestrian flow execution module is used to determine whether the current pedestrian flow meets the flow threshold. If the current pedestrian flow meets the flow threshold, the real-time energy consumption is adjusted to the preset energy consumption threshold, and the preset energy consumption threshold is used to execute the operation of energy-consuming equipment under the current pedestrian flow.
[0078] Optionally, the device state adjustment device further includes: A threshold judgment module is used to judge whether the real-time energy consumption is higher than the safety threshold after obtaining the real-time adjustment mode of the energy-consuming device; The early warning generation module is used to generate an early warning signal for the energy consuming equipment if the real-time energy consumption is higher than the safety threshold.
[0079] Optionally, the device state adjustment device further includes: A real-time energy consumption acquisition module is used to collect the real-time energy consumption of the energy-consuming device in the real-time adjustment mode after obtaining the real-time adjustment mode of the energy-consuming device; The operation optimization module is used to analyze whether there are abnormal values in real-time energy consumption based on historical energy consumption information, and obtain analysis results, which are used to optimize the operation mode of energy-consuming equipment.
[0080] For the specific definition of the device state adjustment device, please refer to the definition of the device state adjustment method above, which will not be repeated here. Each module in the above-mentioned device state adjustment device can be implemented in whole or in part by software, hardware and a combination thereof. The above-mentioned modules can be embedded in or independent of the processor in the computer device in the form of hardware, or can be stored in the memory of the computer device in the form of software, so that the processor can call and execute the operations corresponding to the above modules.
[0081] like Figure 8 As shown, it is a schematic diagram of the structure of a computer device provided in Embodiment 8 of the present invention. The computer device includes a processor, a memory, a network interface and a database connected via a system bus. Among them, the processor of the computer device is used to provide computing and control capabilities. The memory of the computer device includes a non-volatile storage medium and an internal memory. The non-volatile storage medium stores an operating system, a computer program and a database. The internal memory provides an environment for the operation of the operating system and the computer program in the non-volatile storage medium. The network interface of the computer device is used to communicate with an external terminal via a network connection. When the computer program is executed by the processor, a device state adjustment method is implemented.
[0082] In one embodiment, a computer device is provided, including a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, the device state adjustment method in the above embodiment is implemented, for example Figures 2 to 6 Alternatively, when the processor executes the computer program, the functions of each module / unit in the embodiment of the device state adjustment device are realized, for example Figure 7 The functions of the information extraction module 71, the safety threshold determination module 72, the temperature adjustment module 73, and the real-time adjustment module 74 are not described here in detail to avoid repetition.
[0083] In one embodiment, a computer-readable storage medium is provided, on which a computer program is stored. When the computer program is executed by a processor, the device state adjustment method in the above embodiment is implemented, such as Figures 2 to 6 Alternatively, when the computer program is executed by the processor, the functions of each module / unit in the embodiment of the device state adjustment device are realized, for example Figure 7 The functions of the information extraction module 71, the safety threshold determination module 72, the temperature adjustment module 73, and the real-time adjustment module 74 are not described here in detail to avoid repetition. The computer-readable storage medium may be non-volatile or volatile.
[0084] Those of ordinary skill in the art can understand that all or part of the processes in the above-mentioned embodiment methods can be completed by instructing the relevant hardware through a computer program, and the computer program can be stored in a non-volatile computer-readable storage medium. When the computer program is executed, it can include the processes of the embodiments of the above-mentioned methods. Among them, any reference to memory, storage, database or other media used in the embodiments provided in this application may include non-volatile and / or volatile memory. Non-volatile memory may include read-only memory (ROM), programmable ROM (PROM), electrically programmable ROM (EPROM), electrically erasable programmable ROM (EEPROM) or flash memory. Volatile memory may include random access memory (RAM) or external cache memory. By way of illustration and not limitation, RAM is available in many forms, such as static RAM (SRAM), dynamic RAM (DRAM), synchronous DRAM (SDRAM), double data rate SDRAM (DDRSDRAM), enhanced SDRAM (ESDRAM), synchronous link (Synchlink) DRAM (SLDRAM), memory bus (Rambus) direct RAM (RDRAM), direct memory bus dynamic RAM (DRDRAM), and memory bus dynamic RAM (RDRAM), etc.
[0085] Those skilled in the art can clearly understand that for the convenience and simplicity of description, only the division of the above-mentioned functional units and modules is used as an example. In actual applications, the above-mentioned functions can be distributed and completed by different functional units and modules as needed, that is, the internal structure of the device can be divided into different functional units or modules to complete all or part of the functions described above.
[0086] The embodiments described above are only used to illustrate the technical solutions of the present invention, rather than to limit the same. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that the technical solutions described in the aforementioned embodiments may still be modified, or some of the technical features may be replaced by equivalents. Such modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the embodiments of the present invention, and should all be included in the protection scope of the present invention.
Claims
1. A method for adjusting the state of an equipment, characterized in that: include: Obtaining equipment information of energy-consuming equipment and real-time energy consumption collected by sensors when the energy-consuming equipment is running, as well as current temperature and the number of people entering and leaving a specified area collected by detection equipment in real time, and determining the current flow of people based on the number of people entering and leaving the area; Extracting the standard operating life of the energy-consuming device in the device information, obtaining the critical value of energy consumption of the energy-consuming device according to the standard operating life, and setting the safety threshold of the energy-consuming device according to the critical value of energy consumption of the energy-consuming device; Obtaining historical energy consumption information of the energy-consuming device, historical air temperature and historical flow of people collected by the detection device, analyzing the historical energy consumption information and the historical air temperature, recording the historical air temperature corresponding to when a preset energy consumption threshold is reached as a first air temperature, judging whether the current air temperature meets the first air temperature, and if it does not meet the first air temperature, adjusting the real-time energy consumption in combination with the safety threshold to obtain an air temperature adjustment mode; According to the historical energy consumption information and historical human flow, the historical human flow corresponding to the time when the preset energy consumption threshold is reached is recorded as the flow threshold, and it is determined whether the current human flow meets the flow threshold. If it does not meet the flow threshold, the temperature adjustment mode is adjusted in combination with the safety threshold to obtain the real-time adjustment mode of the energy-consuming equipment.
2. The device state adjustment method according to claim 1, characterized in that: After the first temperature is not met, the method further includes: According to the historical energy consumption information and the historical temperature, the historical temperature corresponding to the lowest historical energy consumption is recorded as the second temperature, and the historical temperature corresponding to the highest historical energy consumption is recorded as the third temperature; Determine whether the current temperature is within the numerical interval between the second temperature and the first temperature; if the current temperature is within the numerical interval between the second temperature and the first temperature, reduce the real-time energy consumption in combination with the minimum historical energy consumption, the preset energy consumption threshold, and the safety threshold, and obtain a temperature adjustment mode; Determine whether the current temperature is within the numerical interval of the third temperature and the first temperature; if it is within the numerical interval of the third temperature and the first temperature, then combine the highest historical energy consumption, the preset energy consumption threshold, and the safety threshold to increase the real-time energy consumption and obtain a temperature adjustment mode.
3. The device state adjustment method according to claim 1, characterized in that: After the flow threshold is not met, the method further includes: According to the historical energy consumption information and the historical flow of people, the historical flow of people when the lowest historical energy consumption is reached is recorded as the first flow of people, and the historical flow of people when the highest historical energy consumption is recorded as the second flow of people; Determine whether the current human flow is within the numerical interval between the first human flow and the flow threshold; if so, combine the minimum historical energy consumption, the preset energy consumption threshold, and the safety threshold to reduce the power of the energy-consuming device in the temperature adjustment mode, and obtain a real-time adjustment mode for the energy-consuming device; Determine whether the current human flow is within the numerical interval of the second human flow and the flow threshold. If it is within the numerical interval of the second human flow and the flow threshold, then combine the highest historical energy consumption, the preset energy consumption threshold, and the safety threshold to increase the power of the energy-consuming equipment in the temperature adjustment mode to obtain a real-time adjustment mode of the energy-consuming equipment.
4. The device state adjustment method according to claim 1, characterized in that: After determining whether the current temperature meets the first temperature, the method further includes: If the current temperature matches the first temperature, the real-time energy consumption is adjusted to the preset energy consumption threshold, and the preset energy consumption threshold is used to execute the operation of the energy-consuming equipment at the current temperature.
5. The device state adjustment method according to claim 1, characterized in that: After determining whether the current flow of people meets the flow threshold, the method further includes: If the current flow of people meets the flow threshold, the real-time energy consumption is adjusted to the preset energy consumption threshold, and the preset energy consumption threshold is used to execute the operation of the energy-consuming equipment at the current flow of people.
6. The device state adjustment method according to claim 1, characterized in that: After obtaining the real-time adjustment mode of the energy-consuming device, the method further includes: Determining whether the real-time energy consumption is higher than the safety threshold; If the real-time energy consumption is higher than the safety threshold, a warning signal is generated for the energy consuming device.
7. The device state adjustment method according to claim 1, characterized in that: After obtaining the real-time adjustment mode of the energy-consuming device, the method further includes: Collecting the real-time energy consumption of the energy-consuming device in the real-time adjustment mode; The real-time energy consumption is analyzed based on the historical energy consumption information to determine whether there are abnormal values, and an analysis result is obtained. The analysis result is used to optimize the operation mode of the energy-consuming device.
8. A device for adjusting the state of an equipment, characterized in that: include: An information extraction module is used to obtain the equipment information of energy-consuming equipment and the real-time energy consumption collected by sensors when the energy-consuming equipment is running, as well as the current temperature and the number of people entering and leaving the designated area collected by the detection equipment in real time, and determine the current flow of people based on the number of people entering and leaving the designated area; A safety threshold determination module, used to extract the standard operating life of the energy-consuming device in the device information, obtain the energy consumption critical value of the energy-consuming device according to the standard operating life, and set the safety threshold of the energy-consuming device according to the energy consumption critical value of the energy-consuming device; a temperature adjustment module, for obtaining historical energy consumption information of the energy-consuming equipment, historical temperatures and historical flow of people collected by the detection equipment, analyzing the historical energy consumption information and the historical temperatures, recording the historical temperatures corresponding to when a preset energy consumption threshold is reached as the first temperature, determining whether the current temperature meets the first temperature, and if it does not meet the first temperature, adjusting the real-time energy consumption in combination with the safety threshold to obtain a temperature adjustment mode; The real-time adjustment module is used to record the historical human flow corresponding to the time when the preset energy consumption threshold is reached as the flow threshold according to the historical energy consumption information and the historical human flow, and judge whether the current human flow meets the flow threshold. If it does not meet the flow threshold, the temperature adjustment mode is adjusted in combination with the safety threshold to obtain the real-time adjustment mode of the energy-consuming equipment.
9. A computer device comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, characterized in that: When the processor executes the computer program, the device state adjustment method according to any one of claims 1 to 7 is implemented.
10. A computer-readable storage medium storing a computer program, characterized in that: When the computer program is executed by a processor, the device state adjustment method according to any one of claims 1 to 7 is implemented.