Method and system for monitoring a heating state

By acquiring and analyzing the temperature information of the heating area and adjusting the opening of the heating pipes, the temperature deviation problem of the heating system in high-rise buildings is solved, the heating effect and monitoring convenience are improved, and a convenient maintenance plan is provided in the event of a fault.

CN116045360BActive Publication Date: 2025-10-14TIANJIN HUACHUN NEW ENERGY TECH DEV CO LTD
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Patent Information

Application Number
CN202310025610.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-01-09
Publication Date
2025-10-14
Estimated Expiration
2043-01-09

AI Technical Summary

Technical Problem

In high-rise buildings, there is hydraulic imbalance in the heating pipe network system, which leads to large indoor temperature deviations, uneven heating and cooling, and reduced heating effects.

Method used

By obtaining the temperature information of the heating area and using the processor to compare the preset threshold, the adjustment information of the electric control valve is generated, and the opening of the heating pipe is adjusted to adjust the flow of the heating area and sub-area. The indoor temperature collector and household heat meter data are combined to form a comprehensive temperature field, which is viewed by the monitoring terminal and generates fault alarm information in the event of a fault.

Benefits of technology

It reduces the temperature deviation of each sub-area within the heating area, improves the heating effect of the heating system, makes it more convenient for monitoring personnel to understand the temperature situation, and facilitates system troubleshooting and maintenance in the event of a fault.

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Patent Text Reader

Abstract

The application relates to a heat supply state monitoring method and system, and relates to the heat supply monitoring field.The method comprises the following steps: acquiring temperature information of a current heat supply area; comparing the temperature information with a preset threshold value to determine whether the opening of an electric regulating valve in a heat supply pipeline needs to be adjusted; if yes, generating adjustment information of the electric regulating valve.The application adjusts the flow of the heat supply area and each sub-area in the heat supply area, reduces the temperature deviation of each sub-area in the heat supply area, and improves the heat supply effect of the heat supply system.
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Description

Technical Field

[0001] The present application relates to the field of heating status monitoring, and in particular to a method and system for monitoring heating status. Background Art

[0002] At present, as high-rise or low-rise buildings such as office buildings and residential buildings account for an increasingly larger proportion in urban construction and development, generally in winter, most office buildings, residential buildings and other buildings in the north use centralized heating to heat the rooms on each floor.

[0003] Currently, the relevant technology mainly involves laying heating pipes on each floor of buildings such as office buildings and residential buildings. The heating pipes are controlled by a unified heating system, and heat is dissipated outward through the heating pipes to provide heat to the rooms on each floor. However, in the heating pipe network systems of most office buildings, residential buildings and other buildings, hydraulic working conditions are generally unbalanced, resulting in a serious "hot near and cold far" phenomenon, causing large deviations in the indoor temperature of users, uneven heating and cooling, and reduced heating effects. Summary of the Invention

[0004] In order to reduce temperature deviation and improve heating effect, the present application provides a heating status monitoring method and system.

[0005] In a first aspect, the present application provides a method for monitoring heating status, which adopts the following technical solution:

[0006] A method for monitoring a heating state, comprising:

[0007] Get the temperature information of the current heating area;

[0008] Comparing the temperature information with a preset threshold value to determine whether the opening of the electric regulating valve in the heating pipe needs to be adjusted;

[0009] If so, the adjustment information of the electric control valve is generated.

[0010] By adopting the above technical solution, the processor adjusts the opening of multiple electric control valves according to the adjustment information, thereby adjusting the flow of the heating area and each sub-area within the heating area, reducing the temperature deviation of each sub-area within the heating area, and improving the heating effect of the heating system.

[0011] Optionally, obtaining the temperature information of the current heating area includes:

[0012] Acquire first temperature data collected by multiple indoor temperature collectors in the current heating area;

[0013] Acquire second temperature data collected by multiple household heat meters in the current heating area;

[0014] After obtaining the temperature information of the current heating area, the following steps are also included:

[0015] Calculating a first temperature field based on a plurality of the first temperature data;

[0016] Calculating a second temperature field based on the plurality of second temperature data;

[0017] A comprehensive temperature field of the heating area is generated based on the first temperature field and the second temperature field.

[0018] By adopting the above technical solution, the first temperature field and the second temperature field are combined to form a comprehensive temperature field that can reflect the overall temperature distribution of the heating area. The processor can send the comprehensive temperature field to the monitoring terminal, and the monitoring personnel can view the temperature conditions in the current heating area through the monitoring terminal, thereby improving the convenience for the monitoring personnel to understand the temperature conditions in the current heating area.

[0019] Optionally, after generating the regulating information of the electric regulating valve, the method further includes:

[0020] Reacquiring first temperature data and second temperature data of the current heating area;

[0021] determining whether the reacquired first temperature data is consistent with the original first temperature data and whether the reacquired second temperature data is consistent with the original second temperature data;

[0022] If so, a fault alarm message is generated and sent to the maintenance terminal.

[0023] By adopting the above technical solution, if the re-acquired first temperature data is consistent with the original first temperature data and the re-acquired second temperature data is consistent with the original second temperature data, it means that the adjustment information of the electric control valve has not been executed. Therefore, in order to reduce the impact of the heating system failure on the electric control valve adjustment, it is necessary to immediately check the heating system according to the fault alarm information.

[0024] Optionally, generating fault alarm information includes:

[0025] Get the fault type and fault location;

[0026] obtaining a maintenance strategy based on the fault type;

[0027] obtaining a guidance route based on the fault location;

[0028] The fault warning information is generated based on the maintenance strategy and the guidance route.

[0029] By adopting the above technical solution, a guidance route is generated according to the location of the maintenance terminal and the location of the equipment component that needs to be repaired, thereby improving the convenience for maintenance personnel to reach the location of the equipment component that needs to be repaired.

[0030] Optionally, after generating the regulating information of the electric regulating valve, the method further includes:

[0031] Obtaining the historical number of adjustments of the electric regulating valve in the current heating area within a statistical period;

[0032] Obtain the number level corresponding to the historical adjustment number;

[0033] The identification information of the adjustment information is acquired based on the number level, and the adjustment information and the identification information are sent to a monitoring terminal.

[0034] By adopting the above technical solution, the monitoring terminal displays the adjustment information and temperature information in a differentiated manner, which is convenient for monitoring personnel in the monitoring room to view.

[0035] Optionally, the adjustment information includes a current adjustment amount;

[0036] The generating of the regulating information of the electric regulating valve includes:

[0037] Obtaining the preset threshold corresponding to the current heating area;

[0038] Obtaining a difference between the temperature information and the preset threshold;

[0039] A current adjustment amount of the electric control valve is obtained based on the difference.

[0040] Optionally, acquiring the current adjustment amount of the electric regulating valve based on the difference includes:

[0041] Determining whether the current heating area data module stores first adjustment history information that is identical to the difference;

[0042] If not, obtaining second adjustment history information corresponding to each of the difference values ​​in a plurality of other heating area data modules of the local time period, wherein the second adjustment history information includes adjustment amounts of other heating areas;

[0043] Selecting the best second adjustment history information, and using the other heating area adjustment amount corresponding to the best second adjustment history information as the current adjustment amount and storing it in the current heating area data module;

[0044] If so, the adjustment amounts of the other heating areas stored in the current heating area data module are corrected based on the first adjustment history information.

[0045] By adopting the above technical solution, the accuracy of setting the adjustment amount is improved.

[0046] In a second aspect, the present application provides a heating status monitoring device, which adopts the following technical solution:

[0047] A heating status monitoring device, comprising:

[0048] The first acquisition module is used to obtain the temperature information of the current heating area;

[0049] A comparison and judgment module is used to compare the temperature information with a preset threshold value to determine whether the opening of the electric regulating valve in the heating pipe needs to be adjusted;

[0050] A generating module is used to generate regulating information of the electric regulating valve.

[0051] In a third aspect, the present application provides a heating status monitoring system, which adopts the following technical solutions:

[0052] A heating status monitoring system includes electronic equipment, an electric regulating valve, an indoor temperature collector, a household heat meter, a maintenance terminal and a monitoring terminal;

[0053] The electronic device is communicatively connected with the electric regulating valve, the indoor temperature collector, the household heat meter, the maintenance terminal and the monitoring terminal;

[0054] The electronic device is used to execute any one of the methods described in the first aspect.

[0055] In a fourth aspect, the present application provides a computer-readable storage medium, which adopts the following technical solution:

[0056] A computer-readable storage medium stores a computer program that can be loaded by a processor and execute the method according to the first aspect. BRIEF DESCRIPTION OF THE DRAWINGS

[0057] Figure 1 It is a flow chart of a heating status monitoring method according to an embodiment of the present application.

[0058] Figure 2 This is a structural block diagram of a heating status monitoring device according to an embodiment of the present application.

[0059] Figure 3 This is a structural block diagram of an electronic device according to an embodiment of the present application.

[0060] Figure 4 This is a structural block diagram of a heating status monitoring system according to an embodiment of the present application. DETAILED DESCRIPTION

[0061] The present application is further described in detail below with reference to the accompanying drawings.

[0062] The present application provides a method for monitoring heating status. The method can be performed by a device, which can be a server or a terminal device. The server can be a standalone physical server, a server cluster or distributed system composed of multiple physical servers, or a cloud server providing cloud computing services. The terminal device can be, but is not limited to, a smartphone, a tablet computer, or a desktop computer.

[0063] like Figure 1 As shown, a method for monitoring heating status is executed by a processor. The main process of the method is described as follows (steps S101 to S103):

[0064] Step S101: Acquire the temperature information of the current heating area.

[0065] The current heating area can be a residential building, a community, a shopping mall or an office building, and the heating area is heated by the same thermal system.

[0066] In this embodiment, the temperature information includes first temperature data and second temperature data collected at the same time. Step S101 includes the following processing:

[0067] Step S1011: Acquire first temperature data collected by multiple indoor temperature collectors in the current heating area.

[0068] The current heating area includes multiple sub-areas, which can be independent or connected. For example, if the current heating area is a residential building, the residential areas of multiple households in the building are independent sub-areas; if the current heating area is a shopping mall, the same floor of the mall can be divided into multiple connected sub-areas.

[0069] Indoor temperature collectors are installed in multiple sub-areas, and the indoor temperature collectors can collect the temperature of the sub-areas. The indoor temperature collectors are all communicatively connected to the processor. In this embodiment, the indoor temperature collector model is EDM-STR-04, the transmission power is less than 30 dBm, and the receiving sensitivity is less than -104 dBm.

[0070] Step S1012: Acquire second temperature data collected by multiple household heat meters in the current heating area.

[0071] The thermal system in the current heating area also includes multiple household heat meters installed on the household heating pipes. The household heat meters are all connected to the processor for communication and are used to collect the temperature in the heating pipes.

[0072] The first temperature data and the second temperature data can reflect the overall temperature condition of the current heating area, thereby improving the convenience of adjusting the temperature deviation.

[0073] After obtaining the first temperature data and the second temperature data, the following processing is also included:

[0074] A first temperature field is calculated based on a plurality of first temperature data; a second temperature field is calculated based on a plurality of second temperature data; and a comprehensive temperature field of the heating area is generated based on the first temperature field and the second temperature field.

[0075] The processor pre-stores the position coordinates of the sub-areas, and calculates the first indoor temperature field in the current heating area based on the position coordinates and temperatures of multiple sub-areas, where the temperature is the temperature collected by multiple indoor temperature collectors at the same time.

[0076] The processor pre-stores the position coordinates of the household heat meters, and calculates the second temperature field of the current heating area based on the position coordinates and temperatures of multiple household heat meters, where the temperature is the temperature collected by multiple household heat meters at the same time.

[0077] The first temperature field and the second temperature field are combined to form a comprehensive temperature field that can reflect the overall temperature distribution of the heating area. The processor can send the comprehensive temperature field to the monitoring terminal. In this embodiment, the monitoring terminal is a computer. The monitoring personnel can view the temperature conditions in the current heating area through the monitoring terminal, which improves the convenience for the monitoring personnel to understand the temperature conditions in the current heating area.

[0078] Step S102: Compare the temperature information with a preset threshold to determine whether the opening of the electric regulating valve in the heating pipe needs to be adjusted. If so, proceed to step S103.

[0079] The processor pre-stores a preset threshold value, which can be a certain value or an interval. In this embodiment, the preset threshold value is an interval value. When the temperature data is not within the preset threshold value, the temperature data is unqualified temperature data, and the heating system needs to be adjusted.

[0080] For example, the numerical range corresponding to the preset threshold is 18-24 degrees Celsius. When the temperature data is 15 degrees Celsius, the temperature data is unqualified temperature data.

[0081] Step S103: Generate adjustment information of the electric control valve.

[0082] The electric regulating valve includes a valve for controlling the flow into the sub-area and a valve for controlling the total flow into the current thermal area. The processor is respectively communicated with multiple electric regulating valves. The processor adjusts the opening of multiple electric regulating valves according to the adjustment information, thereby adjusting the flow of the heating area and each sub-area within the heating area, reducing the temperature deviation of each sub-area within the heating area, and improving the heating effect of the heating system.

[0083] In this embodiment, the adjustment information includes the current adjustment amount; step S103 includes the following processing:

[0084] Step S1031: Obtain the preset threshold corresponding to the current heating area.

[0085] The preset thresholds for different heating areas may be different, and the preset thresholds need to be set in combination with the local historical weather conditions in the heating area.

[0086] Step S1032: Obtain the difference between the temperature information and a preset threshold.

[0087] In this embodiment, the difference is the absolute value of the temperature data minus the preset threshold.

[0088] Step S1033: obtaining the current adjustment amount of the electric control valve based on the difference.

[0089] The current adjustment amount is the opening adjustment amount corresponding to the electric control valve that needs to be adjusted, and the corresponding relationship between the current adjustment amount and the difference is pre-stored in the processor.

[0090] Step S1033 includes the following processing: determine whether the current heating area data module stores the first adjustment history information that is the same as the difference; if not, obtain the second adjustment history information corresponding to each difference in multiple other heating area data modules of the local period, and the second adjustment history information includes the adjustment amounts of other heating areas; select the optimal second adjustment history information, and use the adjustment amounts of other heating areas corresponding to the optimal second adjustment history information as the current adjustment amount and store it in the current heating area data module; if so, correct the adjustment amounts of other heating areas stored in the current heating area data module based on the first adjustment history information.

[0091] The processor is electrically connected to a data module corresponding to the heating area, and the data module is used to store all data in the heating area. In this embodiment, there are multiple heating areas, so there are also multiple data modules.

[0092] If the current heating area data module does not store the first adjustment history information that is the same as the difference, it means that the difference appears for the first time. Therefore, in order to improve the accuracy of the adjustment, the second adjustment history information corresponding to each difference in multiple other heating area data modules of the same period can be obtained.

[0093] The closer the distance to the current heating area, the higher the parameter similarity between the two heating areas. Therefore, the second adjustment history information corresponding to the other heating areas closest to the current heating area among multiple other heating areas can be selected and used as the optimal second adjustment history information.

[0094] If the current heating area data module stores first adjustment history information that is identical to the difference, it indicates that the current heating area has an operation history of generating adjustment information according to the adjustment amounts of other heating areas stored in the current heating area data module, and determines whether the same electric control valve is subsequently repeatedly adjusted. If so, it is necessary to obtain the number of adjustments in the subsequent adjustments and the adjustment amount of each subsequent adjustment, calculate the first sum of the adjustment amounts in the subsequent adjustments, and calculate the second sum of the first sum and the adjustment amounts of other heating areas stored in the current heating area data module, and use the second sum as the corrected adjustment amount, thereby improving the accuracy of the adjustment amount setting.

[0095] In this embodiment, after step S103, the following processing is further included:

[0096] Step a: reacquire the first temperature data and the second temperature data of the current heating area;

[0097] Step b: determining whether the reacquired first temperature data is consistent with the original first temperature data and whether the reacquired second temperature data is consistent with the original second temperature data;

[0098] Step c: If yes, generate fault alarm information and send the fault alarm information to the maintenance terminal.

[0099] If the reacquired first temperature data is consistent with the original first temperature data and the reacquired second temperature data is consistent with the original second temperature data, it means that the adjustment information of the electric control valve has not been executed. Therefore, in order to reduce the impact of the heating system failure on the electric control valve adjustment, the heating system needs to be checked immediately.

[0100] The maintenance terminal is the maintenance personnel's mobile phone, which is connected to the processor for communication. The maintenance personnel can inspect and repair the heating system based on the fault alarm information received by the mobile phone.

[0101] In this embodiment, step c includes the following processes: obtaining the fault type and the fault location; obtaining a maintenance strategy based on the fault type; obtaining a guidance route based on the fault location; and generating fault alarm information based on the maintenance strategy and the guidance route.

[0102] Fault types include processor sending fault and electric control valve receiving fault; the processor is communicatively connected to a spare detection control valve. When it is necessary to determine the fault type, the processor first sends a detection instruction to the spare detection control valve. If the processor receives a feedback signal sent by the spare detection control valve, no processor sending fault occurs. If the processor does not receive a feedback signal sent by the spare detection control valve, the fault type is a processor sending fault. If no processor sending fault occurs and the processor first sends a fault alarm message to the electric control valve but does not receive the feedback information sent by the electric control valve, the fault type is an electric control valve receiving fault.

[0103] The processor pre-stores maintenance strategies corresponding to the fault types, which can be summarized by maintenance personnel.

[0104] The processor can obtain the location of the processor sending component, electric control valve, electric control valve receiving component and the location of the maintenance terminal, and generate a guidance route based on the location of the maintenance terminal and the location of the equipment component that needs to be repaired, thereby improving the convenience for maintenance personnel to reach the location of the equipment component that needs to be repaired.

[0105] After step S103, the following processing is also included: obtaining the historical adjustment times of the electric regulating valve in the current heating area within the statistical period; obtaining the number level corresponding to the historical adjustment times; obtaining the identification information of the adjustment information based on the number level, and sending the adjustment information and identification information to the monitoring terminal.

[0106] In order to facilitate visual monitoring of multiple heating areas, the processor is also communicatively connected to a monitoring terminal, which displays adjustment information and temperature information for easy viewing by monitoring personnel in the monitoring room.

[0107] The processor pre-stores the number levels corresponding to the historical adjustment times. For example, the statistical period is three days, and the number levels include the first level, the second level and the third level. The historical adjustment times corresponding to the first level are less than 5 times, the historical adjustment times corresponding to the second level are greater than 5 times and less than 10 times, and the historical adjustment times corresponding to the third level are greater than 10 times.

[0108] Identification information corresponding to the number of times level is pre-stored in the processor, and the identification information includes color information. Different number of times levels correspond to different display colors of the monitoring terminal.

[0109] As another optional implementation of the embodiment, the state type to which the current heating area belongs can be determined according to the number of unqualified temperature data in the temperature information, wherein the state type includes: a normal state, a pre-warning state and an alarm state; if the number of unqualified temperature data in the current heating area is less than a first state threshold, it is determined that the heating state of the current heating area is the normal state; if the number of unqualified temperature data in the current heating area is greater than the first state threshold and less than a second state threshold, it is determined that the heating state of the current heating area is the pre-warning state; if the number of unqualified temperature data in the current heating area is greater than the second state threshold and less than a third state threshold, it is determined that the heating state of the current heating area is the abnormal state; wherein the first state threshold is less than the second state threshold which is less than the third state threshold, and specifically, the first state threshold, the second state threshold and the third state threshold can be set according to the actual situation of the current heating area.

[0110] The processor sends the state type of the current heating area to the monitoring terminal in real time, and if unqualified data occurs in the plurality of heating areas managed, the monitoring terminal can obtain the priority level of the heating system adjustment according to the state type of the heating area, and in the embodiment, the priority level of the heating system adjustment in the normal state is less than that in the pre-warning state which is less than that in the alarm state, so that the monitoring terminal can preferentially display the heating area with serious unqualified temperature data, thereby facilitating the monitoring personnel to preferentially dispatch the maintenance personnel and improving the rationality of the maintenance personnel dispatching.

[0111] Based on the same technical concept, the present application also provides a heating state monitoring device, as shown in the figure, the heating state monitoring device 200 mainly includes: Figure 2

[0112] The first acquisition module 201 is configured to acquire the temperature information of the current heating area.

[0113] The comparison and judgment module 202 is configured to compare the temperature information with a preset threshold to determine whether the opening of the electric regulating valve in the heating pipeline needs to be adjusted.

[0114] The generation module 203 is configured to generate the adjustment information of the electric regulating valve.

[0115] Optionally, the first acquisition module 201 includes:

[0116] The first acquisition sub-module is configured to acquire the first temperature data collected by the plurality of indoor temperature collectors in the current heating area.

[0117] The second acquisition sub-module is configured to acquire the second temperature data collected by the plurality of household heat meters in the current heating area.

[0118] Optionally, the first acquisition module 201 is followed by:​

[0119] A first calculation module, configured to calculate a first temperature field based on a plurality of first temperature data;

[0120] A second calculation module, configured to calculate a second temperature field based on a plurality of second temperature data;

[0121] A generation module is used to generate a comprehensive temperature field of the heating area based on the first temperature field and the second temperature field.

[0122] Optionally, after generating module 203, the following steps are included:

[0123] A re-acquisition module, used to re-acquire the first temperature data and the second temperature data of the current heating area;

[0124] a judgment module, configured to judge whether the reacquired first temperature data is consistent with the original first temperature data and whether the reacquired second temperature data is consistent with the original second temperature data;

[0125] The generation and sending module is used to generate fault alarm information and send the fault alarm information to the maintenance terminal.

[0126] Optionally, generating a sending module includes:

[0127] The third acquisition submodule is used to obtain the fault type and fault location;

[0128] A fourth acquisition submodule is used to acquire a maintenance strategy based on the fault type;

[0129] a fifth acquisition submodule, configured to acquire a guidance route based on the fault location;

[0130] The generation submodule is used to generate fault alarm information based on the maintenance strategy and guidance route.

[0131] Optionally, after generating module 203, the following steps are included:

[0132] The second acquisition module is used to obtain the historical adjustment times of the electric regulating valve in the current heating area within the statistical period;

[0133] The third acquisition module is used to obtain the number level corresponding to the number of historical adjustments;

[0134] The fourth acquisition module is used to obtain identification information of the adjustment information based on the number level, and send the adjustment information and identification information to the monitoring terminal.

[0135] Optionally, the generating module 203 includes:

[0136] A sixth acquisition submodule is used to obtain a preset threshold corresponding to the current heating area;

[0137] A seventh acquisition submodule, configured to obtain a difference between the temperature information and a preset threshold;

[0138] The eighth acquisition submodule is configured to acquire a current adjustment value of the electric control valve based on the difference.

[0139] Optionally, the eighth acquisition submodule includes:

[0140] a judgment submodule, configured to judge whether the current heating area data module stores first adjustment history information identical to the difference;

[0141] A ninth acquisition submodule is configured to acquire second adjustment history information corresponding to each of the differences in a plurality of other heating area data modules of the local area during the same period, wherein the second adjustment history information includes adjustment amounts of other heating areas;

[0142] A selection submodule, configured to select the optimal second adjustment history information, and use the adjustment amount of the other heating areas corresponding to the optimal second adjustment history information as the current adjustment amount and store it in the current heating area data module;

[0143] A correction submodule is used to correct the adjustment amount of the other heating areas stored in the current heating area data module based on the first adjustment history information.

[0144] In one example, the module in any of the above devices can be one or more integrated circuits configured to implement the above methods, such as: one or more application specific integrated circuits (ASICs), or one or more digital signal processors (DSPs), or one or more field programmable gate arrays (FPGAs), or a combination of at least two of these integrated circuit forms.

[0145] For another example, when the modules in the device can be implemented in the form of a processing element scheduling program, the processing element can be a general-purpose processor, such as a central processing unit (CPU) or other processor capable of calling programs. For another example, these modules can be integrated together and implemented in the form of a system-on-a-chip (SOC).

[0146] Various objects such as various messages / information / equipment / network elements / systems / devices / actions / operations / processes / concepts that may appear in this application are named. It can be understood that these specific names do not constitute a limitation on the relevant objects. The names assigned may change with factors such as scenarios, contexts or usage habits. The understanding of the technical meaning of the technical terms in this application should be mainly determined from the functions and technical effects embodied / executed in the technical solutions.

[0147] Those skilled in the art will clearly understand that, for the convenience and brevity of description, the specific working processes of the systems, devices and modules described above can refer to the corresponding processes in the aforementioned method embodiments and will not be repeated here.

[0148] Those skilled in the art will appreciate that the modules and algorithm steps of each example described in conjunction with the embodiments disclosed herein can be implemented in electronic hardware, or a combination of computer software and electronic hardware. Whether these functions are performed in hardware or software depends on the specific application and design constraints of the technical solution. Professional and technical personnel can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of this application.

[0149] Based on the same technical concept, the present application also provides an electronic device, such as Figure 3 As shown, the electronic device 300 includes a processor 301 and a memory 302 , and may further include an information input / information output (I / O) interface 303 , one or more communication components 304 , and a communication bus 305 .

[0150] The processor 301 is used to control the overall operation of the electronic device 300 to complete all or part of the steps in the above-mentioned heating status monitoring method; the memory 302 is used to store various types of data to support the operation of the electronic device 300. Such data may include, for example, instructions for any application or method operating on the electronic device 300, as well as application-related data. The memory 302 can be implemented by any type of volatile or non-volatile storage device or a combination thereof, such as one or more of static random access memory (SRAM), electrically erasable programmable read-only memory (EEPROM), erasable programmable read-only memory (EPROM), programmable read-only memory (PROM), read-only memory (ROM), magnetic memory, flash memory, magnetic disk, or optical disk.

[0151] The I / O interface 303 provides an interface between the processor 301 and other interface modules, which may be a keyboard, a mouse, buttons, etc. These buttons may be virtual buttons or physical buttons. The communication component 304 is used to test wired or wireless communication between the electronic device 300 and other devices. Wireless communication, such as Wi-Fi, Bluetooth, Near Field Communication (NFC), 2G, 3G or 4G, or a combination of one or more thereof, therefore, the corresponding communication component 104 may include: Wi-Fi components, Bluetooth components, NFC components.

[0152] Communication bus 305 may include a path for transmitting information between the aforementioned components. Communication bus 305 may be a PCI (Peripheral Component Interconnect) bus or an EISA (Extended Industry Standard Architecture) bus, for example. Communication bus 305 may be divided into an address bus, a data bus, a control bus, and the like.

[0153] The electronic device 300 can be implemented by one or more application-specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field programmable gate arrays (FPGAs), controllers, microcontrollers, microprocessors or other electronic components to execute the heating status monitoring method given in the above embodiment.

[0154] The electronic device 300 may include, but is not limited to, mobile terminals such as digital broadcast receivers, PDAs (Personal Digital Assistants), and PMPs (Portable Multimedia Players), and fixed terminals such as digital TVs and desktop computers, and may also be servers.

[0155] Based on the same technical concept, this application also provides a heating status monitoring system, such as Figure 4 As shown, the heating status monitoring system 400 includes an electronic device 300. In this embodiment, the electronic device 300 is a processor 301. The heating status monitoring system 400 also includes an electric regulating valve 401, an indoor temperature collector 402, a household heat meter 403, a maintenance terminal 404 and a monitoring terminal 405.

[0156] The processor 301 is in communication with the electric regulating valve 401, the indoor temperature collector 402, the household heat meter 403, the maintenance terminal 404 and the monitoring terminal 405; the processor 301 is used to execute the steps of the above-mentioned heating status monitoring method.

[0157] Based on the same technical concept, the present application also provides a computer-readable storage medium, on which a computer program is stored. When the computer program is executed by a processor, the steps of the above-mentioned heating status monitoring method are implemented.

[0158] The computer-readable storage medium may include: a USB flash drive, a mobile hard disk, a read-only memory (ROM), a random access memory (RAM), a magnetic disk, or an optical disk, etc., which can store program codes.

[0159] The terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed or inherent to such process, method, article, or apparatus.

[0160] The above description is merely a preferred embodiment of the present application and an illustration of the technical principles employed. Those skilled in the art should understand that the scope of application involved in this application is not limited to the technical solutions formed by a specific combination of the above-mentioned technical features, but should also cover other technical solutions formed by any combination of the above-mentioned technical features or their equivalents without departing from the aforementioned application concept. For example, a technical solution formed by replacing the above-mentioned features with (but not limited to) technical features with similar functions applied for in this application.

Claims

1. A method for monitoring heating status, characterized in that: include: Get the temperature information of the current heating area; Comparing the temperature information with a preset threshold value to determine whether the opening of the electric regulating valve in the heating pipe needs to be adjusted; If yes, then generating adjustment information of the electric regulating valve; After generating the adjustment information of the electric regulating valve, the method further includes: obtaining a historical number of adjustments of the electric regulating valve in the current heating area within a statistical period; obtaining a number level corresponding to the historical number of adjustments; obtaining identification information of the adjustment information based on the number level, and sending the adjustment information and the identification information to a monitoring terminal; The adjustment information includes a current adjustment amount; generating the adjustment information of the electric control valve includes: obtaining the preset threshold corresponding to the current heating area; obtaining a difference between the temperature information and the preset threshold; and obtaining the current adjustment amount of the electric control valve based on the difference; The method of obtaining the current adjustment amount of the electric control valve based on the difference includes: determining whether the current heating area data module stores first adjustment history information that is the same as the difference; if not, obtaining second adjustment history information corresponding to each of the differences in multiple other heating area data modules of the local period, the second adjustment history information including the adjustment amounts of other heating areas; selecting the optimal second adjustment history information, and using the adjustment amounts of other heating areas corresponding to the optimal second adjustment history information as the current adjustment amount and storing it in the current heating area data module; if so, correcting the adjustment amounts of other heating areas stored in the current heating area data module based on the first adjustment history information.

2. The method according to claim 1, characterized in that The method of obtaining the temperature information of the current heating area includes: obtaining first temperature data collected by multiple indoor temperature collectors in the current heating area; obtaining second temperature data collected by multiple household heat meters in the current heating area; wherein, after obtaining the temperature information of the current heating area, it also includes: calculating a first temperature field based on multiple first temperature data; calculating a second temperature field based on multiple second temperature data; generating a comprehensive temperature field of the heating area based on the first temperature field and the second temperature field.

3. The method according to claim 2, characterized in that After generating the adjustment information of the electric regulating valve, it also includes: re-acquiring the first temperature data and the second temperature data of the current heating area; judging whether the re-acquired first temperature data is consistent with the original first temperature data and whether the re-acquired second temperature data is consistent with the original second temperature data; if so, generating a fault alarm message and sending the fault alarm message to the maintenance terminal.

4. The method according to claim 3, characterized in that The generating of the fault alarm information includes: acquiring a fault type and a fault location; acquiring a maintenance strategy based on the fault type; acquiring a guidance route based on the fault location; and generating the fault alarm information based on the maintenance strategy and the guidance route.

5. A heating status monitoring device, characterized in that: include: The first acquisition module is used to obtain the temperature information of the current heating area; A comparison and judgment module is used to compare the temperature information with a preset threshold value to determine whether the opening of the electric regulating valve in the heating pipe needs to be adjusted; A generating module, configured to generate regulating information of the electric regulating valve; The generating module is configured to, after generating the adjustment information of the electric regulating valve, further include: obtaining a historical number of adjustments of the electric regulating valve in the current heating area within a statistical period; obtaining a number level corresponding to the historical number of adjustments; obtaining identification information of the adjustment information based on the number level, and sending the adjustment information and the identification information to a monitoring terminal; A generating module, wherein the regulating information includes a current regulating amount; wherein the generating of the regulating information of the electric regulating valve includes: obtaining the preset threshold corresponding to the current heating area; obtaining a difference between the temperature information and the preset threshold; and obtaining the current regulating amount of the electric regulating valve based on the difference; The generation module is also used to obtain the current adjustment amount of the electric control valve based on the difference, including: judging whether the current heating area data module stores the first adjustment history information that is the same as the difference; if not, obtaining the second adjustment history information corresponding to each of the differences in multiple other heating area data modules of the local period, the second adjustment history information including the adjustment amounts of other heating areas; selecting the optimal second adjustment history information, and using the adjustment amounts of other heating areas corresponding to the optimal second adjustment history information as the current adjustment amount and storing it in the current heating area data module; if so, correcting the adjustment amounts of other heating areas stored in the current heating area data module based on the first adjustment history information.

6. A heating status monitoring system, characterized in that: The device comprises an electronic device, an electric regulating valve, an indoor temperature collector, a household heat meter, a maintenance terminal and a monitoring terminal; the electronic device is communicatively connected to the electric regulating valve, the indoor temperature collector, the household heat meter, the maintenance terminal and the monitoring terminal; the electronic device is used to execute the method described in any one of claims 1 to 4.

7. A computer-readable storage medium, characterized in that A computer program is stored which can be loaded by a processor and execute the method according to any one of claims 1 to 4.

Citation Information

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