Energy consumption management method and system based on carbon-neutral digital economy

By monitoring and controlling circulating personnel and equipment in the energy consumption management area, and real-time update of carbon quota values ​​and equipment replacement ratios, the carbon emission control problem has been solved, the carbon neutrality goal and environmental protection needs have been achieved, and the equipment operation efficiency has been improved.

CN118967362BActive Publication Date: 2025-09-02JIANGSU CONFIDANT NEW ENERGY TECH CO LTD
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Patent Information

Application Number
CN202411108931.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-08-13
Publication Date
2025-09-02
Estimated Expiration
2044-08-13

AI Technical Summary

Technical Problem

In the existing technology, schools, industrial parks, hospitals and other places lack effective carbon emission control methods, making it difficult to implement carbon neutrality on a small scale and the problem of carbon emission cannot be properly resolved.

Method used

By monitoring circulating personnel and equipment in the energy consumption management area, the carbon quota value is updated in real time, and combining prediction models and equipment control, the total carbon absorption value management of capacity equipment is achieved, including monitoring personnel carbon emissions, equipment carbon emissions and energy-saving equipment replacement ratios, and achieving the carbon neutrality target.

Benefits of technology

Carbon neutrality is achieved in designated energy consumption management areas, environmental protection indicators are met, the operation efficiency and carbon absorption effect of capacity equipment are improved, and refined energy management is achieved.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The present application provides an energy consumption management method and system based on a carbon-neutral digital economy. The method includes: monitoring the current circulation personnel in the energy consumption management area, and updating the carbon quota value of the energy consumption management area in real time based on the current circulation personnel; determining the first total carbon emission value of the current circulation personnel; determining the second total carbon emission value of the target energy-consuming equipment in the energy consumption management area, the energy-consuming equipment includes pure energy-consuming equipment, energy-saving equipment, and production equipment, and the target energy-consuming equipment does not include production equipment; based on the carbon quota value, the first total carbon emission value, and the second total carbon emission value, using the following formula to update the target carbon absorption value of the production equipment in real time: #imgabs0#; sending the target carbon absorption value to the production equipment management subsystem, so that the production equipment management subsystem controls each production equipment so that the carbon absorption value of each production equipment reaches the target carbon absorption value.
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Description

Technical Field

[0001] This application relates to the field of energy and energy consumption management, and specifically, to an energy consumption management method and system based on a carbon-neutral digital economy. Background Art

[0002] Carbon neutrality refers to the total amount of greenhouse gases or greenhouse gas emissions directly or indirectly generated by an entity within a certain period of time. Through afforestation, energy conservation and emission reduction, etc., the greenhouse gases or greenhouse gas emissions generated by itself can be offset to achieve positive and negative offset and achieve relative "zero emissions".

[0003] With the development of science and the digital economy, innovation and integration of information and communication technologies (ICTs), such as cloud computing, big data, artificial intelligence, the Internet of Things (IoT), blockchain, and mobile internet, are driving changes in social production methods and improving production efficiency. This is accompanied by a growing awareness of environmental protection, and theories such as carbon neutrality are gradually being established and developed into mature and comprehensive systems. However, currently, a reasonable and effective method for regulating carbon-emitting units within places like schools, industrial parks, and hospitals has not yet been proposed, making carbon neutrality difficult to implement on a small scale and preventing the carbon emission problem from being properly addressed.

[0004] Therefore, this application provides an energy consumption management method and system based on a carbon-neutral digital economy to solve one of the above technical problems. Summary of the Invention

[0005] The purpose of this application is to provide an energy consumption management method and system based on a carbon-neutral digital economy, which can solve at least one of the technical problems mentioned above. The specific solution is as follows:

[0006] According to the specific implementation of this application, in the first aspect, this application provides an energy consumption management method based on a carbon-neutral digital economy, including:

[0007] Monitor the current circulation personnel in the energy consumption management area, and update the carbon quota value of the energy consumption management area in real time based on the current circulation personnel; determine the first total carbon emission value of the current circulation personnel; determine the second total carbon emission value of the target energy-consuming equipment in the energy consumption management area, the energy-consuming equipment includes pure energy-consuming equipment, energy-saving equipment, and production equipment, and the target energy-consuming equipment does not include the production equipment; based on the carbon quota value, the first total carbon emission value, and the second total carbon emission value, use the following formula to update the target carbon absorption value of the production equipment in real time:

[0008]

[0009] Among them, Ab Denotes the total carbon absorption value of the production equipment, D e1 Indicates the total value of the first carbon emission, D e2 represents the total value of the second carbon emission, δ represents the absorption emission ratio of a single production capacity equipment, δA b represents the carbon emission value of the production capacity equipment, M represents the carbon quota value, E c represents the total carbon savings value, n is an adaptation parameter taking a value within a specified numerical range, and is used to adjust the total carbon absorption value to an integer multiple of the carbon absorption value of a single production capacity device; the target total carbon absorption value is sent to the production capacity device management subsystem, so that the production capacity device management subsystem controls each of the production capacity devices so that the total carbon absorption value of each of the production capacity devices reaches the target total carbon absorption value.

[0010] In one embodiment, the monitoring of current circulation personnel in the energy consumption management area includes: real-time acquisition of personnel information collected when each gate in the energy consumption management area verifies access; based on the portrait recognition of the current monitoring screen of each image acquisition unit, obtaining the identity information of the recognized portrait; based on the identity information of the portrait, supplementing the collected personnel information to obtain the supplemented personnel information; based on the real-time updated and supplemented personnel information, monitoring the current circulation personnel in the energy consumption management area.

[0011] In one embodiment, the updating of the carbon quota value of the energy consumption management area in real time based on the current circulation personnel includes:

[0012] Determine the basic carbon quota value that matches the current circulation personnel; input the gender information, age information, and exercise status information contained in the supplemented personnel information into the preconfigured prediction model to obtain the total carbon emissions prediction value of each personnel in the energy consumption management area after unit time output by the prediction model; if the total carbon emissions prediction value is less than or equal to the basic carbon quota value, then the basic carbon quota value is used as the carbon quota value for the current update; if the total carbon emissions prediction value is greater than the basic carbon quota value, and the total carbon emissions prediction value is greater than the carbon quota value last updated, then the carbon quota value last updated is used as the carbon quota value for the current update; if the total carbon emissions prediction value is greater than the basic carbon quota value, and the total carbon emissions prediction value is less than or equal to the carbon quota value last updated, then the total carbon emissions prediction value is used as the carbon quota value for the current update.

[0013] In one embodiment, determining the first total carbon emission value of the current circulation personnel includes: collecting data on each of the current circulation personnel based on an infrared collection unit to obtain a temperature map of each of the current circulation personnel, wherein the temperature map is marked with a portrait frame of the circulation personnel and temperature data of each point in the portrait frame; based on the temperature map, performing carbon emission simulation on each of the current circulation personnel to obtain the first total carbon emission value of the current circulation personnel.

[0014] In one embodiment, the method further includes: determining a total carbon saving value of the energy-saving device, the total carbon saving value being the total difference in carbon emissions between the energy-saving device and the pre-associated pure energy-consuming device; displaying the total carbon saving value based on a display component; in response to an input target carbon saving value, determining an equipment replacement ratio based on the target carbon saving value and the total carbon saving value, the equipment replacement ratio representing the quantitative ratio between the pre-activated number of energy-saving devices and the pre-associated closed number of pure energy-consuming devices; sending the equipment replacement ratio to a pure energy-consuming device management subsystem and an energy-saving device management subsystem, so that the pure energy-consuming device management subsystem and the energy-saving device management subsystem perform device control; wherein, based on the device control, the equipment replacement ratio is satisfied between the newly activated energy-saving device and the newly closed pure energy-consuming device.

[0015] In one embodiment, the method further includes: determining the net carbon emission value of the energy consumption management area in response to the total carbon absorption value of the production capacity equipment reaching a threshold or starting the energy-saving mode; sending the net carbon emission value to the pure energy-consuming equipment management subsystem, so that the pure energy-consuming equipment management subsystem performs energy-saving control on each of the pure energy-consuming equipment according to the net carbon emission value.

[0016] According to a specific embodiment of the present application, in a second aspect, an energy consumption management system based on a carbon-neutral digital economy is characterized by including:

[0017] A monitoring unit is used to monitor the current circulation personnel in the energy consumption management area and update the carbon quota value of the energy consumption management area in real time based on the current circulation personnel; a processing unit is used to determine the first total carbon emission value of the current circulation personnel; used to determine the second total carbon emission value of the target energy-consuming equipment in the energy consumption management area, the energy-consuming equipment includes pure energy-consuming equipment, energy-saving equipment, and production equipment, and the target energy-consuming equipment does not include the production equipment; and used to update the target total carbon absorption value of the production equipment in real time based on the carbon quota value, the first total carbon emission value De7, and the second total carbon emission value De8 using the following formula:

[0018]

[0019] Among them, A b Denotes the total carbon absorption value of the production equipment, De1 Indicates the total value of the first carbon emission, D e2 represents the total value of the second carbon emission, δ represents the absorption emission ratio of a single production capacity equipment, δA b represents the carbon emission value of the production capacity equipment, M represents the carbon quota value, E c represents the total carbon savings value, n is an adaptation parameter taking a value within a specified numerical range, and is used to adjust the total carbon absorption value to an integer multiple of the carbon absorption value of a single production capacity device; the communication unit is used to send the target total carbon absorption value to the production capacity device management subsystem, so that the production capacity device management subsystem controls each of the production capacity devices so that the total carbon absorption value of each of the production capacity devices reaches the target total carbon absorption value.

[0020] In one embodiment, the monitoring unit monitors the current circulation personnel in the energy consumption management area in the following manner: real-time acquisition of personnel information recorded when each gate in the energy consumption management area verifies access; based on the portrait recognition of the current monitoring screen of each image acquisition unit, the identity information of the recognized portrait is obtained; based on the identity information of the portrait, the recorded personnel information is supplemented to obtain the supplemented personnel information; based on the real-time updated and supplemented personnel information, the current circulation personnel in the energy consumption management area are monitored.

[0021] In one embodiment, the monitoring unit updates the carbon quota value of the energy consumption management area in real time based on the current circulation personnel in the following manner: determining a basic carbon quota value that matches the current circulation personnel; inputting the gender information, age information, and exercise status information contained in the supplemented personnel information into a preconfigured prediction model to obtain the total carbon emissions prediction value of each person in the energy consumption management area after unit time output by the prediction model; if the total carbon emissions prediction value is less than or equal to the basic carbon quota value, the basic carbon quota value is used as the carbon quota value for the current update; if the total carbon emissions prediction value is greater than the basic carbon quota value, and the total carbon emissions prediction value is greater than the carbon quota value last updated, the carbon quota value last updated is used as the carbon quota value for the current update; if the total carbon emissions prediction value is greater than the basic carbon quota value, and the total carbon emissions prediction value is less than or equal to the carbon quota value last updated, the total carbon emissions prediction value is used as the carbon quota value for the current update.

[0022] In one embodiment, the processing unit is further used to: determine the total carbon savings value of the energy-saving equipment, the total carbon savings value being the total difference in carbon emissions between the energy-saving equipment and the pre-associated pure energy-consuming equipment; display the total carbon savings value based on the display component; in response to the input target carbon savings value, determine the equipment replacement ratio based on the target carbon savings value and the total carbon savings value, the equipment replacement ratio representing the quantitative ratio between the pre-activated number of energy-saving equipment and the pre-associated closed number of pure energy-consuming equipment; the communication unit is further used to: send the equipment replacement ratio to the pure energy-consuming equipment management subsystem and the energy-saving equipment management subsystem, so that based on the control of the pure energy-consuming equipment management subsystem and the energy-saving equipment management subsystem, the equipment replacement ratio is satisfied between the newly activated energy-saving equipment and the newly closed pure energy-consuming equipment.

[0023] Compared with the prior art, the above solution of the embodiment of the present application has at least the following beneficial effects:

[0024] This application provides an energy consumption management method and system based on a carbon-neutral digital economy. The method manages carbon by strictly controlling the energy consumption management area. It regards the personnel circulating in the area and various energy-consuming equipment as carbon emission units, and regards the energy-saving equipment and production equipment in the energy-consuming equipment as carbon absorption units. It comprehensively considers the carbon flow in the area and then calculates the control scheme of the production equipment so that under the calculated control scheme, the area meets carbon neutrality. This application achieves carbon neutrality in the designated energy consumption management area by controlling carbon emissions and carbon absorption, thereby achieving environmental protection indicators in the area and meeting environmental protection needs. BRIEF DESCRIPTION OF THE DRAWINGS

[0025] Figure 1 A flowchart of an energy consumption management method based on a carbon-neutral digital economy according to an embodiment of the present application is shown;

[0026] Figure 2 A flow chart of a method for monitoring current circulation personnel in an energy consumption management area according to an embodiment of the present application is shown;

[0027] Figure 3 A flowchart of a method for updating the carbon quota value of an energy consumption management area based on current circulation personnel in real time according to an embodiment of the present application is shown;

[0028] Figure 4 A flow chart of a method for determining a first total carbon emission value of current circulation personnel according to an embodiment of the present application is shown;

[0029] Figure 5 A flow chart of a method for proportionally replacing energy-saving devices with pure energy-consuming devices according to an embodiment of the present application is shown;

[0030] Figure 6A block diagram of an energy consumption management system based on a carbon-neutral digital economy according to an embodiment of the present application is shown. DETAILED DESCRIPTION

[0031] To make the objectives, technical solutions, and advantages of this application more clear, this application will be further described in detail below with reference to the accompanying drawings. Obviously, the embodiments described are only some of the embodiments of this application, not all of them. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making any creative efforts are within the scope of protection of this application.

[0032] The terms used in the examples of this application are for the purpose of describing specific embodiments only and are not intended to limit this application. The singular forms "a," "the," and "the" used in the examples of this application and the appended claims are also intended to include plural forms, and unless the context clearly indicates otherwise, "a plurality" generally includes at least two.

[0033] It should be understood that the term "and / or" as used herein is merely a description of the relationship between associated objects, indicating that three possible relationships exist. For example, "A and / or B" can represent: A exists alone, A and B exist simultaneously, or B exists alone. Furthermore, the character " / " in this document generally indicates that the associated objects are in an "or" relationship.

[0034] It should be understood that although the terms first, second, third, etc. may be used to describe in the embodiments of the present application, these descriptions should not be limited to these terms. These terms are only used to distinguish the descriptions. For example, without departing from the scope of the embodiments of the present application, the first may also be referred to as the second, and similarly, the second may also be referred to as the first.

[0035] As used herein, the words "if" and "if" may be interpreted as "at the time of" or "when" or "in response to determining" or "in response to detecting," depending on the context. Similarly, the phrases "if it is determined" or "if (stated condition or event) is detected" may be interpreted as "when it is determined" or "in response to the determination" or "when detecting (stated condition or event)" or "in response to detecting (stated condition or event)," depending on the context.

[0036] It should also be noted that the terms "include," "comprises," or any other variations thereof are intended to encompass non-exclusive inclusion, such that a product or device comprising a series of elements includes not only those elements but also other elements not explicitly listed, or elements inherent to such product or device. In the absence of further limitations, an element defined by the phrase "comprises a..." does not exclude the presence of other identical elements in the product or device comprising the element.

[0037] It should be noted in particular that any symbols and / or numbers in the specification that are not marked in the accompanying drawings are not drawing marks.

[0038] Carbon neutrality refers to the total amount of greenhouse gases or greenhouse gas emissions directly or indirectly generated by an entity within a certain period of time. Through tree planting, energy conservation and emission reduction, etc., the greenhouse gases or greenhouse gas emissions generated by itself are offset to achieve positive and negative offset and achieve relative "zero emissions".

[0039] With the development of science and the digital economy, innovation and integration of information and communication technologies (ICTs), such as cloud computing, big data, artificial intelligence, the Internet of Things (IoT), blockchain, and mobile internet, are driving changes in social production methods and improving production efficiency. This is accompanied by a growing awareness of environmental protection, and theories such as carbon neutrality are gradually being established and developed into mature and comprehensive systems. However, currently, a reasonable and effective method for regulating carbon-emitting units within places like schools, industrial parks, and hospitals has not yet been proposed, making carbon neutrality difficult to implement on a small scale and preventing the carbon emission problem from being properly addressed.

[0040] In view of this, the present application provides an energy consumption management method and system based on a carbon-neutral digital economy to solve the above-mentioned problems.

[0041] The optional embodiments of the present application are described in detail below with reference to the accompanying drawings.

[0042] The embodiment provided in this application is an embodiment of an energy consumption management method based on a carbon-neutral digital economy.

[0043] The following combination Figure 1 The embodiments of the present application are described in detail.

[0044] Figure 1 A flow chart of an energy consumption management method based on a carbon-neutral digital economy according to an embodiment of the present application is shown, as shown in FIG. Figure 1 As shown, the following steps are included.

[0045] Step S101 : monitoring the current circulation personnel in the energy consumption management area, and updating the carbon quota value of the energy consumption management area in real time based on the current circulation personnel.

[0046] Step S102: determining the first total carbon emission value of the current circulation personnel.

[0047] Step S103: determining a second total carbon emission value of the target energy-consuming equipment in the energy consumption management area.

[0048] Among them, energy-consuming equipment includes pure energy-consuming equipment, energy-saving equipment, and production capacity equipment, and target energy-consuming equipment does not include production capacity equipment.

[0049] Step S104: Based on the carbon quota value, the first carbon emission total value, and the second carbon emission total value, the formula Update the target total carbon absorption value of production equipment in real time.

[0050] Among them, Ab represents the total carbon absorption value of the production equipment, that is, the production capacity value of the production equipment, D e1 Indicates the total value of the first carbon emission, D e2 represents the second total carbon emission value, δ represents the absorption-emission ratio of a single production capacity equipment, that is, the ratio between the carbon absorption value and the carbon emission value of the production capacity equipment, δA b represents the carbon emission value of the production capacity equipment, M represents the carbon quota value, E c It represents the total carbon savings, and n is an adaptation parameter within a specified range of values, which is used to adjust the total carbon absorption value to an integer multiple of the carbon absorption value of a single production capacity equipment.

[0051] Step S105 : sending the target carbon absorption total value to the production equipment management subsystem, so that the production equipment management subsystem controls each production equipment so that the carbon absorption total value of each production equipment reaches the target carbon absorption total value.

[0052] In this application, production equipment is placed within an energy consumption management area and is used to offset carbon emissions within the energy consumption management area through production capacity, thereby achieving carbon absorption. The production capacity value of the production equipment and its carbon absorption value meet a preset ratio, such as 1:n, where n is an adjustment coefficient that meets the relevant requirements of carbon neutrality, so that the conversion relationship between the production capacity value and the carbon absorption value conforms to actual carbon neutrality. In this application, the carbon absorption value of the production equipment can be converted based on the production capacity value according to the preset ratio.

[0053] This application implements carbon management by strictly controlling energy consumption management areas. It considers personnel and various energy-consuming equipment within the area as carbon emission units, and energy-saving equipment and production equipment within the energy-consuming equipment as carbon absorption units. It comprehensively considers the carbon flow within the area and then calculates a control plan for the production equipment so that the area meets carbon neutrality under the calculated control plan. This application achieves carbon neutrality within the designated energy consumption management area by controlling carbon emissions and carbon absorption, thereby achieving environmental protection indicators and meeting environmental protection needs within the area.

[0054] Figure 2 FIG. 1 shows a flow chart of a method for monitoring current circulation personnel in an energy consumption management area according to an embodiment of the present application. Figure 2 As shown, the following steps are included.

[0055] Step S201: obtaining in real time the personnel information recorded when each gate in the energy consumption management area verifies access.

[0056] Step S202 : Based on the portrait recognition of the current monitoring image of each image acquisition unit, identity information of the recognized portrait is obtained.

[0057] Step S203: supplement the recorded personnel information based on the identity information of the portrait to obtain supplemented personnel information.

[0058] Step S204: Based on the real-time updated and supplemented personnel information, monitor the current circulation personnel in the energy consumption management area.

[0059] This application records the personnel information collected when the gate verifies access, and then supplements the recording through the image acquisition unit configured in the energy consumption management area, so that the final confirmed number of people reaches a certain accuracy. In addition, the information obtained by the image acquisition unit, such as age, physical condition, etc., which changes over time, is more timely than the information collected by the gate. While supplementing the recording, the collected information is overwritten to keep the personnel information more timely, thereby achieving better estimation accuracy for the overall area.

[0060] Figure 3 A flow chart of a method for updating the carbon quota value of an energy consumption management area based on current circulation personnel in real time according to an embodiment of the present application is shown. Figure 3 As shown, the following steps are included.

[0061] Step S301: Determine the basic carbon quota value that matches the current circulation personnel.

[0062] Among them, the basic carbon quota value corresponds one-to-one to the number of circulation personnel, and the basic carbon quota value matched to different numbers of circulation personnel is different.

[0063] In step S302, the gender information, age information, and exercise status information included in the supplemented personnel information are input into a pre-configured prediction model to obtain a predicted value of the total carbon emissions of each person in the energy consumption management area after a unit time output by the prediction model.

[0064] The prediction model is pre-trained, and the training samples include different genders, ages, and exercise states, as well as the actual carbon emissions generated by people in these states, such as body surface temperature and the difference between the amount of greenhouse gases released during exhalation and inhalation. Regarding the carbon emissions generated by breathing, one implementation method can be greenhouse gas concentration monitoring in a confined room, although the actual method is not limited to this, and this application does not impose specific restrictions on this.

[0065] Step S303a: If the total carbon emission forecast value is less than or equal to the basic carbon quota value, the basic carbon quota value is used as the carbon quota value for the current update.

[0066] Step S303b: If the total carbon emission forecast value is greater than the basic carbon quota value, and the total carbon emission forecast value is greater than the last updated carbon quota value, the last updated carbon quota value is used as the currently updated carbon quota value.

[0067] Step S303c: If the total carbon emission forecast value is greater than the basic carbon quota value, and the total carbon emission forecast value is less than or equal to the last updated carbon quota value, the total carbon emission forecast value is used as the current updated carbon quota value.

[0068] In this application, the carbon quota is reduced to promote the increase of carbon absorption intensity, thereby ensuring the reduction of carbon emissions. Among them, when the total carbon emission forecast value is less than or equal to the basic carbon quota value, it means that the carbon emissions are not exceeded. In this case, a calibrated value is given to minimize the pressure of the production capacity equipment while ensuring carbon neutrality. Therefore, the basic carbon quota value is used as the carbon quota value for the current update. When the total carbon emission forecast value is greater than the basic carbon quota value, and the total carbon emission forecast value is greater than the carbon quota value last updated, it means that the carbon emissions are exceeded but gradually decreasing. At this time, the carbon peak is maintained in the energy consumption management area, and the pressure on the production capacity equipment should be reduced. Therefore, the carbon quota value last updated is used as the carbon quota value for the current update. In this case, the excess carbon emissions will be reduced at a rate of decrease that is first fast and then slow. The amount of reduction changes with time approximately as y= (For example, y represents the reduction amount, t represents time, and μ represents a constant) until the carbon neutrality standard is reached. When the total carbon emissions forecast value is greater than the basic carbon quota value, and the total carbon emissions forecast value is less than or equal to the carbon quota value of the last update, it means that carbon emissions have exceeded the quota, but are showing a gradual decline. Therefore, the total carbon emissions forecast value is used as the carbon quota value for the current update, so that the production capacity equipment can absorb an equal amount of carbon due to the full allocation of carbon quotas, thus achieving carbon neutrality.

[0069] Figure 4 A flow chart of a method for determining the first total carbon emission value of current circulation personnel according to an embodiment of the present application is shown. Figure 4 As shown, the following steps are included.

[0070] Step S401: collect data of each current circulating person based on the infrared collection unit to obtain a temperature map of each current circulating person.

[0071] The temperature map is marked with a portrait frame of the circulation personnel and temperature data of each point in the portrait frame.

[0072] Step S402 : Based on the temperature map, a carbon emission simulation is performed on each current circulation personnel to obtain a first total carbon emission value of the current circulation personnel.

[0073] In this application, an infrared collection unit is pre-configured in the energy consumption management area, which can collect information such as temperature and human outline, and on this basis, the first total carbon emission value of the circulation personnel is obtained through carbon emission simulation.

[0074] Figure 5 A flow chart of a method for proportionally replacing energy-saving devices with pure energy-consuming devices according to an embodiment of the present application is shown. Figure 5 As shown, the following steps are included.

[0075] Step S501 : determining the total carbon savings of the energy-saving device, where the total carbon savings is the total difference in carbon emissions between the energy-saving device and pre-associated pure energy-consuming devices.

[0076] Step S502: Display the total carbon saving value based on the display component.

[0077] In this application, a display component for human monitoring and intervention is pre-configured in the energy consumption management area. It should be noted that step S502 is an optional implementation step. In a feasible implementation, step S503 may be directly executed without executing step S502.

[0078] Step S503 : In response to the input of the target carbon saving value, determining the equipment replacement ratio based on the target carbon saving value and the total carbon saving value.

[0079] The device replacement ratio represents the ratio between the number of energy-saving devices that are expected to be turned on and the number of pure energy-consuming devices that are expected to be turned off.

[0080] Step S504: sending the equipment replacement ratio to the pure energy-consuming equipment management subsystem and the energy-saving equipment management subsystem, so that the pure energy-consuming equipment management subsystem and the energy-saving equipment management subsystem can perform equipment control.

[0081] In this application, by turning on energy-saving devices and turning off pure energy-consuming devices, the total carbon emissions of the energy management area are further adjusted through the energy consumption difference to achieve overall carbon neutrality. In particular, based on device control, the equipment replacement ratio between the newly turned on energy-saving devices and the newly turned off pure energy-consuming devices is met.

[0082] In addition, this application can determine the net carbon emissions value of the energy consumption management area when the total carbon absorption value of the production equipment reaches a threshold or energy-saving mode is activated. Furthermore, the net carbon emissions value can be sent to the pure energy-consuming equipment management subsystem, so that the pure energy-consuming equipment management subsystem can perform energy-saving control on each pure energy-consuming equipment according to the net carbon emissions value.

[0083] As a practical application scenario of this application, energy consumption management areas can be industrial parks, schools, hospitals, and other areas. Energy-saving equipment can be equipment such as photovoltaic systems that can supply energy to the entire area. Energy-saving equipment can be ground-source heat pumps such as air-suspended heat pump units. Pure energy-consuming equipment corresponding to energy-saving equipment can be, for example, lighting systems, air conditioners, and monitoring equipment. The predefined pure energy-consuming equipment corresponding to energy-saving equipment can be, for example, air conditioners.

[0084] As a feasible embodiment, the carbon absorption value of the power generation equipment can be controlled by controlling the extension area of ​​the photovoltaic equipment, the number of equipment turned on, etc. The air conditioner used to perform the same work can be replaced by power adjustment and opening number control of the air suspension heat pump unit, and then the total carbon emission value in the energy consumption management area can be controlled by the carbon emission difference. In addition, for pure energy-consuming equipment, energy-saving control can be performed on the pure energy-consuming equipment by turning on and off the light group, adjusting the brightness of the light group, turning on and off the air conditioner, adjusting the air conditioner power, etc. This control scheme meets practical application scenarios such as energy-saving mode or the total carbon absorption value reaches a threshold. As a further feasible embodiment, taking the school scenario as an example, for example, it can be based on the location of the students in the classroom to turn on the small area light group corresponding to the location, or to adjust the power of the air conditioner according to the number of people in the classroom, such as lowering the power when there are few people.

[0085] This application monitors the current circulation personnel in the energy consumption management area and determines the personnel's carbon emissions, thereby achieving precise management and control of personnel's carbon emissions. This application updates the carbon quota value of the energy consumption management area in real time according to the current circulation personnel situation, can flexibly adapt to changes in personnel flow and carbon emissions, and helps to better achieve the carbon neutrality goal. This application calculates and manages the carbon emissions of various types of equipment, including pure energy-consuming equipment, energy-saving equipment, and production capacity equipment, and achieves comprehensive control of energy-consuming equipment in the entire energy consumption management area. Based on the carbon quota value, the total carbon emissions of personnel and the total carbon emissions of equipment, this application updates the target total carbon absorption value of the production capacity equipment in real time, so that the production capacity equipment can absorb carbon according to actual conditions, thereby improving the operating efficiency and carbon absorption effect of the production capacity equipment. This application supplements the personnel information collected when the gate verifies the access and the portrait recognition of the image acquisition unit, thereby achieving precise monitoring of the current circulation personnel in the energy consumption management area. This application inputs the personnel's gender, age, exercise status and other information into the pre-configured prediction model to obtain the total carbon emission prediction value, which provides a scientific basis for updating the carbon quota value. This application flexibly adjusts the carbon quota value of the current update based on the relationship between the total carbon emission forecast value and the basic carbon quota value and the carbon quota value of the last update, which helps to reasonably adjust the pressure of production capacity equipment while ensuring carbon neutrality. This application determines the total carbon savings of energy-saving equipment, and controls the number of energy-saving equipment and pure energy-consuming equipment turned on and off through the equipment replacement ratio, further adjusting the total carbon emissions of the energy consumption management area, and achieving the goal of energy conservation and emission reduction. This application can be applied to various areas such as industrial parks, schools, hospitals, etc., and has a wide range of practical application scenarios and high practicality. For pure energy-consuming equipment, this application can perform energy-saving control in a variety of ways, meeting the needs of practical application scenarios such as energy-saving mode or the total carbon absorption value reaching a threshold, and realizing refined energy management.

[0086] The present application also provides a system embodiment that is consistent with the above embodiment, which is used to implement the method steps of the above embodiment. The explanation based on the same name meaning is the same as the above embodiment, and has the same technical effect as the above embodiment, which will not be repeated here.

[0087] like Figure 6 As shown, the present application provides an energy consumption management system 600 based on a carbon-neutral digital economy, including:

[0088] The monitoring unit 601 is used to monitor the current circulation personnel in the energy consumption management area and update the carbon quota value of the energy consumption management area in real time based on the current circulation personnel. The processing unit 602 is used to determine the first total carbon emission value of the current circulation personnel. It is used to determine the second total carbon emission value of the target energy-consuming equipment in the energy consumption management area. The energy-consuming equipment includes pure energy-consuming equipment, energy-saving equipment, and production equipment. The target energy-consuming equipment does not include production equipment. And it is used to update the target carbon absorption total value of the production equipment in real time based on the carbon quota value, the first total carbon emission value De7, and the second total carbon emission value De8 using the following formula:

[0089] Among them, A b Denotes the total carbon absorption value of the production equipment, D e1 Indicates the total value of the first carbon emission, D e2 represents the total value of the second carbon emission, δ represents the absorption emission ratio of a single production capacity equipment, δA b represents the carbon emission value of the production capacity equipment, M represents the carbon quota value, E c represents the total carbon savings, and n is an adaptation parameter within a specified range, used to adjust the total carbon absorption value to an integer multiple of the carbon absorption value of a single production equipment. Communication unit 603 is used to send the target total carbon absorption value to the production equipment management subsystem, so that the production equipment management subsystem controls each production equipment to ensure that the total carbon absorption value of each production equipment reaches the target total carbon absorption value.

[0090] In one embodiment, the monitoring unit 601 monitors the current flow of people within the energy consumption management area by acquiring, in real time, the personnel information recorded by each gate during access verification within the energy consumption management area. Based on the portrait recognition of the person in the current monitoring image of each image acquisition unit, the identity information of the recognized person is obtained. Based on the identity information of the person, the recorded personnel information is supplemented to obtain the supplemented personnel information. Based on the real-time updated supplemented personnel information, the current flow of people within the energy consumption management area is monitored.

[0091] In one embodiment, the monitoring unit 601 updates the carbon quota value of the energy consumption management area in real time based on the current circulation personnel in the following manner: a basic carbon quota value matching the current circulation personnel is determined. The gender information, age information, and exercise status information contained in the supplemented personnel information are input into a preconfigured prediction model to obtain the total carbon emissions prediction value of each person in the energy consumption management area after a unit of time, as output by the prediction model. If the total carbon emissions prediction value is less than or equal to the basic carbon quota value, the basic carbon quota value is used as the carbon quota value for the current update. If the total carbon emissions prediction value is greater than the basic carbon quota value, and the total carbon emissions prediction value is greater than the carbon quota value last updated, the carbon quota value last updated is used as the carbon quota value for the current update. If the total carbon emissions prediction value is greater than the basic carbon quota value, and the total carbon emissions prediction value is less than or equal to the carbon quota value last updated, the total carbon emissions prediction value is used as the carbon quota value for the current update.

[0092] In one embodiment, the processing unit 602 is further configured to determine a total carbon savings value for the energy-saving devices, where the total carbon savings value is the total difference in carbon emissions between the energy-saving devices and pre-associated pure energy-consuming devices. The total carbon savings value is displayed based on a display component. In response to an input target carbon savings value, the processing unit 602 determines a device replacement ratio based on the target carbon savings value and the total carbon savings value. The device replacement ratio represents the ratio between the number of energy-saving devices that were pre-activated and the number of pre-associated pure energy-consuming devices that were pre-activated. The communication unit 603 is further configured to transmit the device replacement ratio to the pure energy-consuming device management subsystem and the energy-saving device management subsystem, so that, under the control of the pure energy-consuming device management subsystem and the energy-saving device management subsystem, the device replacement ratio is satisfied between the newly activated energy-saving devices and the newly deactivated pure energy-consuming devices.

[0093] In this application, the energy consumption management system based on the carbon-neutral digital economy interacts with other external subsystems based on the collaboration of the above-mentioned units to obtain feedback data from each subsystem and to implement the scheduling of each subsystem. Among them, the subsystems external to the energy consumption management system mentioned in this application may include, for example, a pure energy-consuming equipment management subsystem, an energy-saving equipment management subsystem, a production capacity equipment management subsystem, etc.

[0094] Regarding the system in the above embodiment, the specific manner in which each module performs operations has been described in detail in the embodiment of the method, and will not be elaborated here.

[0095] Although operations are described in a particular order in the drawings, this should not be understood as requiring that the operations be performed in the particular order shown or in serial order, or that all shown operations be performed to obtain the desired results. In certain circumstances, multitasking and parallel processing may be advantageous.

[0096] The methods and systems of the present application can be implemented using standard programming techniques, using rule-based logic or other logic to implement the various method steps. It should also be noted that the terms "means" and "module" as used herein and in the claims are intended to include implementations using one or more lines of software code and / or hardware implementations and / or devices for receiving input.

[0097] Any steps, operations or procedures described herein may be performed or implemented using one or more hardware or software modules, either alone or in combination with other devices. In one embodiment, the software modules are implemented using a computer program product comprising a computer-readable medium containing computer program code, which can be executed by a computer processor to perform any or all of the steps, operations or procedures described.

[0098] The foregoing description of the implementation of the present application has been provided for purposes of illustration and description. The foregoing description is not intended to be exhaustive or to limit the present application to the precise form disclosed, and various variations and modifications are possible in accordance with the above teachings or may result from the practice of the present application. These embodiments have been selected and described in order to illustrate the principles of the present application and its practical application, so as to enable those skilled in the art to utilize the present application in various embodiments and modifications as appropriate for the particular use contemplated.

[0099] It is further understood that, unless otherwise specified, “connection” includes a direct connection where there are no other components between the two elements, and also includes an indirect connection where there are other elements between the two elements.

[0100] It should be further understood that although operations are described in a particular order in the drawings in the embodiments of the present application, this should not be construed as requiring that these operations be performed in the particular order shown or in a serial order, or that all of the illustrated operations be performed to obtain the desired results. In certain circumstances, multitasking and parallel processing may be advantageous.

[0101] Those skilled in the art will readily appreciate other embodiments of the present application after considering the specification and practicing the invention disclosed herein. This application is intended to encompass any variations, uses, or adaptations of the present application that follow the general principles of the present application and include common knowledge or customary techniques in the field of the present application that are not disclosed herein. The specification and examples are intended to be exemplary only, and the true scope and spirit of the present application are indicated by the scope of claims below.

[0102] It should be understood that the present application is not limited to the precise structures described above and shown in the drawings, and that various modifications and changes may be made without departing from the scope thereof. The scope of the present application is limited only by the scope of the appended claims.

[0103] The above embodiments are only used to illustrate the technical solutions of the present application, rather than to limit them. Although the present application has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. However, these 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 application.

Claims

1. An energy consumption management method based on a carbon-neutral digital economy, characterized in that: The method comprises: Monitoring current circulation personnel in the energy consumption management area, and updating the carbon quota value of the energy consumption management area in real time based on the current circulation personnel; Determining a first total carbon emission value of the current circulation personnel; Determining a second total carbon emission value of target energy-consuming equipment in the energy consumption management area, wherein the energy-consuming equipment includes pure energy-consuming equipment, energy-saving equipment, and production equipment, and the target energy-consuming equipment does not include the production equipment; Based on the carbon quota value, the first total carbon emission value, and the second total carbon emission value, the target total carbon absorption value of the production equipment is updated in real time using the following formula: Among them, A b Denotes the total carbon absorption value of the production equipment, D e1 Indicates the total value of the first carbon emission, D e2 represents the total value of the second carbon emission, δ represents the absorption emission ratio of a single production capacity equipment, δA b represents the carbon emission value of the production capacity equipment, M represents the carbon quota value, E c represents the total carbon savings, where n is an adaptation parameter within a specified range, used to adjust the total carbon absorption value to an integer multiple of the carbon absorption value of a single production capacity device; the production capacity value of the production capacity device and the carbon absorption value meet the preset ratio; Sending the target total carbon absorption value to the production equipment management subsystem, so that the production equipment management subsystem controls each of the production equipment so that the total carbon absorption value of each of the production equipment reaches the target total carbon absorption value; The current circulation personnel in the energy consumption management area to be monitored include: Real-time acquisition of personnel information recorded by each gate during access verification in the energy consumption management area; Based on the portrait recognition of the current monitoring screen of each image acquisition unit, the identity information of the recognized portrait is obtained; Based on the identity information of the portrait, the recorded personnel information is supplemented to obtain supplemented personnel information; Based on the real-time updated and recorded personnel information, monitor the current circulation personnel in the energy consumption management area; The real-time updating of the carbon quota value of the energy consumption management area based on the current circulation personnel includes: Determine a basic carbon quota value that matches the current circulation personnel; Inputting the gender information, age information, and exercise status information contained in the supplemented personnel information into a preconfigured prediction model to obtain a predicted value of the total carbon emissions per unit time for each person in the energy consumption management area output by the prediction model; If the predicted total carbon emissions value is less than or equal to the basic carbon quota value, the basic carbon quota value will be used as the carbon quota value for the current update; If the predicted total carbon emissions value is greater than the basic carbon quota value, and the predicted total carbon emissions value is greater than the last updated carbon quota value, the last updated carbon quota value will be used as the current updated carbon quota value; If the total carbon emissions forecast value is greater than the basic carbon quota value, and the total carbon emissions forecast value is less than or equal to the last updated carbon quota value, the total carbon emissions forecast value will be used as the current updated carbon quota value.

2. The method according to claim 1, characterized in that The determining of the first total carbon emission value of the current circulation personnel includes: The infrared acquisition unit collects data of each of the current circulation personnel to obtain a temperature map of each of the current circulation personnel, wherein the temperature map is marked with a portrait frame of the circulation personnel and temperature data of each point in the portrait frame; Based on the temperature map, a carbon emission simulation is performed on each of the current circulation personnel to obtain a first total carbon emission value of the current circulation personnel.

3. The method according to claim 1, characterized in that The method further comprises: Determining a total carbon savings value of the energy-saving device, where the total carbon savings value is a total difference in carbon emissions between the energy-saving device and pre-associated pure energy-consuming devices; displaying the total carbon savings value based on a display component; In response to an input target carbon saving value, determining an equipment replacement ratio based on the target carbon saving value and the total carbon saving value, the equipment replacement ratio representing a ratio between the number of energy-saving devices turned on and the number of pre-associated pure energy-consuming devices turned off; The equipment replacement ratio is sent to the pure energy-consuming equipment management subsystem and the energy-saving equipment management subsystem so that the pure energy-consuming equipment management subsystem and the energy-saving equipment management subsystem perform equipment control; wherein, based on the equipment control, the equipment replacement ratio is satisfied between the newly turned-on energy-saving equipment and the newly turned-off pure energy-consuming equipment.

4. The method according to claim 1, wherein The method further comprises: In response to the total carbon absorption value of the energy-saving equipment reaching a threshold or starting an energy-saving mode, determining the net carbon emission value of the energy consumption management area; The net carbon emission value is sent to the pure energy consuming equipment management subsystem, so that the pure energy consuming equipment management subsystem performs energy-saving control on each of the pure energy consuming equipment according to the net carbon emission value.

5. An energy consumption management system based on a carbon-neutral digital economy, characterized in that: include: A monitoring unit, configured to monitor current circulation personnel in an energy consumption management area and update the carbon quota value of the energy consumption management area in real time based on the current circulation personnel; A processing unit is configured to determine a first total carbon emission value of the current circulation personnel; to determine a second total carbon emission value of target energy-consuming equipment in the energy consumption management area, wherein the energy-consuming equipment includes pure energy-consuming equipment, energy-saving equipment, and production equipment, and the target energy-consuming equipment does not include the production equipment; and to update the target total carbon absorption value of the production equipment in real time based on the carbon quota value, the first total carbon emission value De7, and the second total carbon emission value De8 using the following formula: Among them, A b Denotes the total carbon absorption value of the production equipment, D e1 Indicates the total value of the first carbon emission, D e2 represents the total value of the second carbon emission, δ represents the absorption emission ratio of a single production capacity equipment, δA b represents the carbon emission value of the production capacity equipment, M represents the carbon quota value, E c represents the total carbon savings, where n is an adaptation parameter within a specified range, used to adjust the total carbon absorption value to an integer multiple of the carbon absorption value of a single production capacity device; the production capacity value of the production capacity device and the carbon absorption value meet the preset ratio; a communication unit, configured to send the target total carbon absorption value to the production equipment management subsystem, so that the production equipment management subsystem controls each of the production equipment so that the total carbon absorption value of each of the production equipment reaches the target total carbon absorption value; The monitoring unit monitors the current circulation personnel in the energy consumption management area in the following manner: Real-time acquisition of personnel information recorded by each gate during access verification in the energy consumption management area; Based on the portrait recognition of the current monitoring screen of each image acquisition unit, the identity information of the recognized portrait is obtained; Based on the identity information of the portrait, the recorded personnel information is supplemented to obtain supplemented personnel information; Based on the real-time updated and recorded personnel information, monitor the current circulation personnel in the energy consumption management area; The monitoring unit updates the carbon quota value of the energy consumption management area in real time based on the current circulation personnel in the following manner: Determine a basic carbon quota value that matches the current circulation personnel; Inputting the gender information, age information, and exercise status information contained in the supplemented personnel information into a preconfigured prediction model to obtain a predicted value of the total carbon emissions per unit time for each person in the energy consumption management area output by the prediction model; If the predicted total carbon emissions value is less than or equal to the basic carbon quota value, the basic carbon quota value will be used as the carbon quota value for the current update; If the predicted total carbon emissions value is greater than the basic carbon quota value, and the predicted total carbon emissions value is greater than the last updated carbon quota value, the last updated carbon quota value will be used as the current updated carbon quota value; If the total carbon emissions forecast value is greater than the basic carbon quota value, and the total carbon emissions forecast value is less than or equal to the last updated carbon quota value, the total carbon emissions forecast value will be used as the current updated carbon quota value.

6. The system according to claim 5, characterized in that The processing unit is further configured to: Determining a total carbon savings value of the energy-saving device, where the total carbon savings value is a total difference in carbon emissions between the energy-saving device and pre-associated pure energy-consuming devices; displaying the total carbon savings value based on a display component; In response to an input target carbon saving value, determining an equipment replacement ratio based on the target carbon saving value and the total carbon saving value, the equipment replacement ratio representing a ratio between a predetermined number of energy-saving devices to be turned on and a predetermined number of energy-only consuming devices to be turned off; The communication unit is also used to: send the equipment replacement ratio to the pure energy-consuming equipment management subsystem and the energy-saving equipment management subsystem, so that based on the control of the pure energy-consuming equipment management subsystem and the energy-saving equipment management subsystem, the equipment replacement ratio is satisfied between the newly turned-on energy-saving equipment and the newly turned-off pure energy-consuming equipment.

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