Earthquake intensity rapid reporting system, method and related equipment for a repair site
By rapidly monitoring and assessing earthquake intensity after an earthquake occurs, generating early warning information and disaster assessment information, the problem of complex and time-consuming disaster assessment has been solved, enabling rapid response and efficient disaster relief.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- YUNNAN POWER GRID CO LTD ELECTRIC POWER RES INST
- Filing Date
- 2022-11-03
- Publication Date
- 2026-07-31
AI Technical Summary
In the aftermath of an earthquake, disaster assessment is complex, time-consuming, and labor-intensive. Traditional communication equipment is prone to failure, making it difficult to quickly dispatch personnel to the disaster area. Mission execution is dangerous and inefficient.
A rapid earthquake intensity reporting system for emergency repair sites is provided, comprising multiple vibration intensity monitoring modules, intensity data processing modules, data storage modules, communication modules, and information prompting units. It can monitor and assess earthquake intensity in real time, generate early warning information and disaster assessment information, and transmit them through various communication methods.
It enables rapid acquisition of disaster information and generation of early warning information after an earthquake, improves the efficiency and targeting of rescue efforts, ensures the normal operation of communication modules during disasters, and enhances the emergency response capability after an earthquake.
Smart Images

Figure CN115755160B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of earthquake information technology, and in particular to an earthquake intensity rapid reporting system for emergency repair sites, an earthquake intensity rapid reporting method for emergency repair sites, a computer-readable storage medium, and a control device. Background Technology
[0002] After an earthquake, factory equipment and essential public facilities may suffer varying degrees of damage. Post-earthquake repairs and maintenance are necessary. Given current technology, disaster assessment after an earthquake is a complex, labor-intensive, time-consuming, and costly task. Traditional communication equipment is prone to losing its function due to the disaster, requiring specific personnel to travel to the affected area for assessment. However, it is often difficult to dispatch personnel to the disaster area after the disaster is reported. If it is necessary to send specialists to parachute into the earthquake zone, the mission is dangerous and inefficient. Summary of the Invention
[0003] The present invention aims to solve at least one of the technical problems existing in the prior art or related art.
[0004] Therefore, a first aspect of the present invention provides an earthquake intensity rapid reporting system for emergency repair sites.
[0005] A second aspect of the present invention provides a method for rapid reporting of earthquake intensity at emergency repair sites.
[0006] A third aspect of the present invention provides a computer-readable storage medium.
[0007] A fourth aspect of the present invention provides a control device.
[0008] In view of this, a rapid earthquake intensity reporting system for emergency repair sites is proposed according to a first aspect of the embodiments of this application, comprising:
[0009] Multiple vibration intensity monitoring modules are used to be installed in multiple monitoring areas, and the intensity monitoring modules are configured to monitor the seismic intensity data of the monitoring areas;
[0010] The intensity data processing module is communicatively connected to multiple vibration intensity monitoring modules.
[0011] A data storage module is communicatively connected to multiple vibration intensity monitoring modules and is used to store the monitoring results of the vibration intensity monitoring modules.
[0012] A communication module is connected to the data storage module and the intensity data processing module;
[0013] An information prompting unit is communicatively connected to the intensity data processing module, and the information prompting unit is used to display the processing results of the intensity data processing module;
[0014] A communication assurance module, wherein the communication module is disposed within the communication assurance module;
[0015] The intensity data processing module is used to obtain the monitoring results stored in the data storage module through the communication module. The intensity data processing module is also used to generate early warning information and disaster assessment information based on the monitoring results of multiple vibration intensity monitoring modules.
[0016] In one feasible implementation, the communication assurance module includes:
[0017] seat body;
[0018] A first crossbeam and a second crossbeam are disposed on the base body;
[0019] The first vertical beam and the second vertical beam are slidably connected to the first horizontal beam and the second horizontal beam;
[0020] A sliding beam is slidably connected to the first vertical beam and the second vertical beam, and is located between the first horizontal beam and the second horizontal beam;
[0021] A turntable is rotatably mounted on the sliding beam;
[0022] A first support arm, one end of which is hinged to the sliding beam and the other end of which is hinged to the turntable;
[0023] The second support arm has one end hinged to the sliding beam and the other end hinged to the turntable;
[0024] The communication module is mounted on the turntable.
[0025] A housing, which is connected to the base, and the communication module is located inside the housing.
[0026] In one feasible implementation, the information prompting unit includes:
[0027] A text message notification unit, wherein the text message notification unit is used to send text message notifications to electronic devices;
[0028] A platform notification unit is used to send notifications through the platform.
[0029] In one feasible implementation, the communication module includes one or more of the following: a wireless communication module, a BeiDou communication module, a 4G communication module, and a 5G communication module.
[0030] In one feasible implementation, the vibration intensity monitoring module includes:
[0031] A vibration sensor unit, wherein the vibration sensor unit is used to monitor vibration data of the monitoring area;
[0032] An accelerometer unit, comprising an east-west accelerometer, a north-south accelerometer, and a vertical accelerometer, is used to monitor acceleration data in the monitoring area.
[0033] A power supply unit is provided to supply power to the vibration sensor unit and the accelerometer unit.
[0034] In one feasible implementation, the vibration intensity monitoring module further includes:
[0035] Instrument calibration, wherein the instrument calibration and monitoring unit is used to calibrate the vibration sensor unit and the accelerometer unit;
[0036] A monitoring unit is provided to monitor the operating status of the vibration sensor and the accelerometer unit.
[0037] According to a second aspect of the embodiments of this application, a method for rapid earthquake intensity reporting at emergency repair sites is provided, characterized in that it is applied to an earthquake intensity rapid reporting system for emergency repair sites as described in any of the above technical solutions, wherein the method for rapid earthquake intensity reporting at emergency repair sites includes:
[0038] If the monitoring result of the vibration intensity monitoring module exceeds the preset value, the intensity data processing module is controlled to obtain the monitoring results of multiple vibration intensity monitoring modules through the data storage module and the communication module.
[0039] Based on the monitoring results of multiple vibration intensity monitoring modules, intensity rapid reporting information and intensity rapid reporting images are generated;
[0040] The information prompt module of the earthquake intensity rapid reporting system used for emergency repair sites displays the generated intensity rapid reporting information and the intensity rapid reporting image.
[0041] In one feasible implementation, the step of generating a rapid intensity report image based on the monitoring results of multiple vibration intensity monitoring modules includes:
[0042] When the earthquake intensity in the monitoring area exceeds the threshold, the monitoring results of the vibration intensity monitoring module stored in the data storage module are obtained through the intensity data processing module.
[0043] Based on the monitoring results of each of the data storage modules, the region to which each of the monitoring areas belongs is determined, and an intensity rapid report image is drawn;
[0044] The intensity rapid reporting image includes the area affected by different intensities and the name of the affected area.
[0045] A computer-readable storage medium is provided according to a third aspect of the embodiments of this application.
[0046] The computer-readable storage medium stores a computer program that implements the earthquake intensity rapid reporting method for emergency repair sites as described in any of the above technical solutions.
[0047] A control device is provided according to a fourth aspect of the embodiments of this application, comprising:
[0048] Memory, which stores computer programs;
[0049] The processor executes the computer program;
[0050] When the processor executes the computer program, it implements the earthquake intensity rapid reporting method for emergency repair sites as described in any of the above technical solutions.
[0051] Compared with the prior art, the present invention has at least the following beneficial effects: The earthquake intensity rapid reporting system for emergency repair sites provided in this application includes multiple vibration intensity monitoring modules and intensity data processing modules. During the use of the earthquake intensity rapid reporting system for emergency repair sites, the earthquake intensity rapid reporting system provided in this application can be deployed in earthquake-prone areas, that is, multiple vibration intensity monitoring modules can be deployed in earthquake-prone areas. The intensity data processing module communicates with the multiple vibration intensity monitoring modules, and the intensity data processing module can obtain the monitoring results of the multiple vibration intensity monitoring modules in real time. The intensity data processing module can further generate early warning information and disaster assessment information based on the monitoring results. The earthquake intensity rapid reporting system for emergency repair sites provided in this application embodiment can be deployed in advance in earthquake-prone areas. On the one hand, after an earthquake occurs, disaster information of the earthquake area can be directly obtained; on the other hand, in the early stage of an earthquake, the vibration intensity monitoring module can quickly detect vibration signals, and the intensity data processing module can quickly identify vibration signals, thereby generating early warning information, which can remind people to evacuate, and enable emergency departments to know about the occurrence of the earthquake and the state of the disaster as soon as possible, thereby improving the efficiency and targeting of emergency rescue. Attached Figure Description
[0052] Various other advantages and benefits will become apparent to those skilled in the art upon reading the following detailed description of preferred embodiments. The accompanying drawings are for illustrative purposes only and are not intended to limit the scope of this application. Furthermore, the same reference numerals denote the same parts throughout the drawings. In the drawings:
[0053] Figure 1 A schematic structural block diagram of an earthquake intensity rapid reporting system for emergency repair sites, provided in this application;
[0054] Figure 2 A schematic diagram of the structure of a communication guarantee module according to an embodiment of this application;
[0055] Figure 3 A schematic flowchart illustrating the steps of an embodiment of a rapid earthquake intensity reporting method for emergency repair sites provided in this application;
[0056] Figure 4 A structural block diagram of a computer-readable storage medium according to an embodiment of this application;
[0057] Figure 5 This is a structural block diagram of a control device according to an embodiment of this application.
[0058] in, Figure 2 The correspondence between the reference numerals and component names in the attached drawings is as follows:
[0059] 110 Vibration intensity monitoring module, 120 Intensity data processing module, 130 Data storage module, 140 Communication module, 150 Information prompting unit, 160 Communication support module;
[0060] 161. Seat, 162. First crossbeam, 163. Second crossbeam, 164. First vertical beam, 165. Second vertical beam, 166. Sliding beam, 167. Turntable, 168. First support arm, 169. Second support arm. Detailed Implementation
[0061] To better understand the above technical solutions, the technical solutions of the embodiments of this application will be described in detail below with reference to the accompanying drawings and specific embodiments. It should be understood that the embodiments of this application and the specific features in the embodiments are detailed descriptions of the technical solutions of the embodiments of this application, rather than limitations on the technical solutions of this application. In the absence of conflict, the embodiments of this application and the technical features in the embodiments can be combined with each other.
[0062] like Figure 1 and Figure 2As shown, according to a first aspect of the embodiments of this application, a rapid earthquake intensity reporting system for emergency repair sites is proposed, comprising: multiple vibration intensity monitoring modules 110, which are configured to be installed in multiple monitoring areas and are used to monitor earthquake intensity data in the monitoring areas; an intensity data processing module 120, which is communicatively connected to the multiple vibration intensity monitoring modules 110; a data storage module 130, which is communicatively connected to the multiple vibration intensity monitoring modules 110 and is used to store the monitoring results of the vibration intensity monitoring modules 110; and a communication module 140. The communication module 140 is connected to the data storage module 130 and the intensity data processing module 120; the information prompting unit 150 is communicatively connected to the intensity data processing module 120 and is used to display the processing results of the intensity data processing module 120; the communication support module 160 is located within the communication support module 160; wherein, the intensity data processing module 120 is used to obtain the monitoring results stored in the data storage module 130 through the communication module, and the intensity data processing module 120 is also used to generate early warning information and disaster assessment information based on the monitoring results of multiple vibration intensity monitoring modules 110.
[0063] The earthquake intensity rapid reporting system for emergency repair sites provided in this application embodiment includes multiple vibration intensity monitoring modules 110 and an intensity data processing module 120. During the use of the earthquake intensity rapid reporting system for emergency repair sites, the system can be deployed in earthquake-prone areas, that is, multiple vibration intensity monitoring modules 110 can be deployed in earthquake-prone areas. The intensity data processing module 120 communicates with the multiple vibration intensity monitoring modules 110, and can obtain the monitoring results of the multiple vibration intensity monitoring modules 110 in real time. The intensity data processing module 120 can further generate early warning information and disaster assessment information based on the monitoring results. The earthquake intensity rapid reporting system for emergency repair sites provided in this application embodiment can be deployed in advance in earthquake-prone areas. On the one hand, after an earthquake occurs, disaster information of the earthquake area can be directly obtained; on the other hand, in the early stage of an earthquake, the vibration intensity monitoring module 110 can quickly detect vibration signals, and the intensity data processing module 120 can quickly identify vibration signals, thereby generating early warning information, which can remind people to evacuate, and enable emergency departments to know about the occurrence of the earthquake and the state of the disaster as soon as possible, thereby improving the efficiency and targeting of emergency rescue.
[0064] Understandably, the data storage module 130 is connected to multiple vibration intensity monitoring modules 110 for communication. Under normal conditions, the monitoring results of multiple vibration intensity monitoring modules 110 are stored in the data storage module 130. When multiple vibration intensity monitoring modules 110 malfunction, the communication module can directly send the data stored in the data storage module 130 to the intensity data processing module 120. The intensity data processing module 120 can then analyze the data to determine the earthquake status or disaster status. On the one hand, after an earthquake occurs, disaster information in the earthquake zone can be directly obtained. On the other hand, in the early stages of an earthquake, the vibration intensity monitoring modules 110 can quickly detect vibration signals, and the intensity data processing module 120 can quickly identify the vibration signals, thereby generating early warning information to remind people to evacuate. This allows emergency response departments to be informed of the earthquake's occurrence and the disaster status as soon as possible, improving the efficiency and targeting of rescue efforts.
[0065] Understandably, when the monitoring result of the vibration intensity monitoring module 110 is less than the threshold, it indicates that no danger has occurred. In this case, the data only needs to be stored in the data storage module 130 and does not need to be sent to the intensity data processing module 120 for processing. Only when the monitoring result of the vibration intensity monitoring module 110 exceeds the threshold will the data be sent to the intensity data processing module 120 for processing. This setting can reduce the data processing load of the intensity data processing module 120, allowing the intensity data processing module 120 to correspond to more vibration intensity monitoring modules 110. This enables one intensity data processing module 120 to be responsible for monitoring the earthquake status of multiple areas, which can further reduce the cost of earthquake intensity rapid reporting for emergency repair sites and is particularly beneficial for the promotion of earthquake intensity rapid reporting systems for emergency repair sites.
[0066] Understandably, the information prompting unit 150 can display the processing results of the intensity data processing module 120, enabling people and disaster relief departments to quickly obtain disaster information and facilitate emergency response.
[0067] It is understood that the communication module 140 is housed within the communication protection module 160 provided in this application embodiment. This arrangement takes into account that in the event of an earthquake, the communication module may be tilted or impacted due to the collapse of buildings or changes in terrain, causing the communication module 140 in earthquake-prone areas to lose its communication function. The communication module 140 of the earthquake intensity rapid reporting system for emergency repair sites provided in this application embodiment is housed within the communication protection module 160. The communication protection module 160 can protect the communication module 140 and ensure that the communication module 140 can work normally in the event of a disaster.
[0068] like Figure 2 As shown, in one feasible embodiment, the communication support module 160 includes: a base 161; a first crossbeam 162 and a second crossbeam 163, the first crossbeam 162 and the second crossbeam 163 being disposed on the base 161; a first vertical beam 164 and a second vertical beam 165, the first vertical beam 164 and the second vertical beam 165 being slidably connected to the first crossbeam 162 and the second crossbeam 163; and a sliding beam 166, slidably connected to the first vertical beam 164 and the second vertical beam 165, located on the first crossbeam 161. Between beam 162 and the second crossbeam 163; turntable 167, rotatably mounted on sliding beam 166; first support arm 168, one end of which is hinged to sliding beam 166 and the other end of which is hinged to turntable 167; second support arm 169, one end of which is hinged to sliding beam 166 and the other end of which is hinged to turntable 167; wherein, a communication module is mounted on turntable 167; a housing, connected to base 161, with the communication module located inside the housing.
[0069] This technology further provides the structural composition of a communication protection module 160, which includes a base 161, a first crossbeam 162, a second crossbeam 163, a first vertical beam 164, a second vertical beam 165, a sliding beam 166, a turntable 167, a first support arm 168, a second support arm 169, and a housing. The housing is connected to the base 161, and the communication module 140 is located inside the housing. The housing protects the communication module from damage caused by falling heavy objects. Furthermore, the housing also houses the first crossbeam 162, the second crossbeam 163, the first vertical beam 164, the second vertical beam 165, the sliding beam 166, the turntable 167, the first support arm 168, and the second support arm 169. The first crossbeam 162 and the second crossbeam 163 are both connected to the base 161, enhancing mechanical strength. Simultaneously, the first crossbeam 162 and the second crossbeam 163 increase the communication... The ground clearance of the communication module 140 is further improved by the sliding connection of the first vertical beam 164 and the second vertical beam 165 to the first horizontal beam 162 and the second horizontal beam 163, and the sliding beam 166 to the first vertical beam 164 and the second vertical beam 165. This is combined with a turntable 167 rotatably mounted on the sliding beam 166. The turntable 167 has multiple degrees of freedom relative to the base. The communication module 140 is then mounted on the turntable 167, giving it multiple degrees of freedom. Even if the communication module 160 experiences significant vibration, the communication module 140 can utilize the degrees of freedom of the turntable 167 for buffering, greatly reducing the probability of damage and tipping. This ensures the normal operation of the communication module 140 and guarantees the normal communication of the earthquake intensity rapid reporting system used at the emergency repair site. It is particularly beneficial for ensuring the efficient transmission of information in the earthquake zone after an earthquake, facilitating rescue operations.
[0070] In one feasible implementation, the information prompting unit 150 includes: a text message prompting unit for sending text message prompts to electronic devices; and a platform prompting unit for sending prompts through a platform.
[0071] In this technical solution, the structure of the information prompting unit 150 is further provided. The information prompting unit 150 may include an SMS prompting unit and a platform prompting unit. Through the SMS prompting unit, early warning information and disaster assessment information generated based on monitoring results can be sent to electronic devices via SMS. The electronic devices can be mobile phones, computers, tablets, and other devices with communication functions, which can improve the speed of information dissemination, so that people can learn about the occurrence of disasters as soon as possible and facilitate rapid emergency response.
[0072] In this technical solution, the information prompting unit 150 may also include a platform prompting unit. The platform prompting unit can display early warning information and disaster assessment information by displaying information, which can improve the speed of information dissemination, enable people to know about the occurrence of disaster as soon as possible, and facilitate rapid emergency response.
[0073] In one feasible implementation, the communication module 140 includes one or more of the following: wireless communication module 140, Beidou communication module 140, 4G communication module 140, and 5G communication module 140.
[0074] In this technical solution, the structure of the communication module 140 is further provided. The communication module 140 may include one or more of the following: wireless communication module 140, Beidou communication module 140, 4G communication module 140 and 5G communication module 140. This configuration can improve communication efficiency and facilitate the intensity data processing module 120 to quickly collect the monitoring results of multiple vibration intensity monitoring modules 110 when an anomaly occurs.
[0075] In one feasible implementation, the vibration intensity monitoring module 110 includes: a vibration sensor unit for monitoring vibration data of the monitoring area; an accelerometer unit including an east-west accelerometer, a north-south accelerometer, and a vertical accelerometer for monitoring acceleration data of the monitoring area; and a power supply unit for supplying power to the vibration sensor unit and the accelerometer unit.
[0076] In this technical solution, the structure of the vibration intensity monitoring module 110 is further provided. The vibration intensity monitoring module 110 includes a vibration sensor unit, an accelerometer unit, and a power supply unit. The power supply unit is used to supply power to the vibration sensor unit and the accelerometer unit so that the vibration sensor unit and the accelerometer unit can work normally. The vibration sensor unit can monitor the vibration data, and the accelerometer unit can monitor the vibration direction. Based on this, the vibration information of the monitoring area can be determined.
[0077] In one feasible implementation, the vibration intensity monitoring module 110 further includes: an instrument calibration unit for calibrating the vibration sensor unit and the accelerometer unit; and a monitoring unit for monitoring the working status of the vibration sensor and the accelerometer unit.
[0078] In this technical solution, the vibration intensity monitoring module 110 may also include an instrument calibration and monitoring unit. The positions of the vibration sensor unit and the accelerometer unit can be determined by setting the instrument calibration, and the working status of the vibration sensor unit and the accelerometer unit can be determined by setting the monitoring unit.
[0079] The earthquake intensity rapid reporting system for emergency repair sites provided in this application embodiment can be a dedicated earthquake early warning terminal, or it can be embedded in the required terminal device in software form. When an earthquake reaches or exceeds a threshold, the intensity data processing module 120 automatically extracts the intensity data of the earthquake from the data storage module 130, and draws an intensity rapid reporting image based on different intensity data and information about the monitoring area where the intensity detection module is located. The intensity rapid reporting image includes the area affected by different intensities, and also displays the names of the districts, counties, and townships affected by different intensities. Simultaneously, users can access and query historical data in the data storage module 130, and can also view typical cases. Typical cases can be pre-built into the data storage module 130 or data of earthquakes that have occurred locally.
[0080] like Figure 3 As shown, according to a second aspect of the embodiments of this application, a method for rapid earthquake intensity reporting at emergency repair sites is proposed, characterized in that it is applied to an earthquake intensity rapid reporting system for emergency repair sites as described in any of the above technical solutions, and the method for rapid earthquake intensity reporting at emergency repair sites includes:
[0081] Step 201: If the monitoring result of the vibration intensity monitoring module exceeds the preset value, the intensity data processing module controls the acquisition of the monitoring results of multiple vibration intensity monitoring modules through the data storage module and the communication module.
[0082] Step 202: Based on the monitoring results of multiple vibration intensity monitoring modules, generate intensity rapid report information and intensity rapid report images;
[0083] Step 203: Display the generated intensity rapid report information and intensity rapid report image through the information prompt module of the earthquake intensity rapid report system used at the repair site.
[0084] The earthquake intensity rapid reporting method for emergency repair sites provided in this application embodiment, since it is applied to any of the above-mentioned technical solutions for earthquake intensity rapid reporting systems for emergency repair sites, therefore, the earthquake intensity rapid reporting method for emergency repair sites possesses all the beneficial effects of the above-mentioned technical solutions for earthquake intensity rapid reporting systems for emergency repair sites.
[0085] The earthquake intensity rapid reporting method for emergency repair sites provided in this application first generates intensity rapid reporting information and intensity rapid reporting images based on the monitoring results of multiple vibration intensity monitoring modules. Then, the generated intensity rapid reporting information and intensity rapid reporting images are displayed through the information prompt module of the earthquake intensity rapid reporting system for emergency repair sites. On the one hand, after an earthquake occurs, disaster information in the earthquake-stricken area can be directly obtained. On the other hand, in the early stage of an earthquake, the vibration intensity monitoring module can quickly detect vibration signals, and the intensity data processing module can quickly identify vibration signals, thereby generating early warning information, which can remind people to evacuate. It can enable emergency departments to know about the occurrence of the earthquake and the state of the disaster as soon as possible, thereby improving the efficiency and targeting of emergency rescue.
[0086] Understandably, when the monitoring results of the vibration intensity monitoring module exceed the preset value, the control intensity data processing module obtains the monitoring results of multiple vibration intensity monitoring modules through the data storage module and communication module. This setting ensures that the intensity data processing module only accesses the control and analysis process in case of an anomaly. The intensity data processing module only collects data when an anomaly occurs, which reduces the data processing load of the intensity data processing module and allows one intensity data processing module to monitor multiple areas. This further reduces the cost and energy consumption of implementing earthquake intensity rapid reporting methods at the repair site.
[0087] In one feasible implementation, the step of generating an intensity rapid report image based on the monitoring results of multiple vibration intensity monitoring modules includes: when the earthquake intensity in the monitoring area exceeds a threshold, obtaining the monitoring results of the vibration intensity monitoring modules stored in the data storage module through the intensity data processing module; determining the region to which each monitoring area belongs based on the monitoring results of each data storage module, and drawing an intensity rapid report image; wherein, the intensity rapid report image includes the area affected by different intensities and the name of the area affected by different intensities.
[0088] This technical solution further provides specific steps for generating intensity rapid reporting images. Based on the monitoring results of each data storage module, the region to which each monitoring area belongs is determined, and an intensity rapid reporting image is drawn. The intensity rapid reporting image includes the area affected by different intensities and the name of the area affected by different intensities, which enables the emergency response department to quickly learn about the earthquake status and disaster status of different areas, facilitating the rapid establishment of emergency response plans.
[0089] like Figure 4 As shown, according to a third aspect of the embodiments of this application, a computer-readable storage medium 301 is provided, which stores a computer program 302 to implement a method for rapid reporting of earthquake intensity at emergency repair sites, as described in any of the above technical solutions.
[0090] The computer-readable storage medium 301 provided in this application embodiment implements the earthquake intensity rapid reporting method for emergency repair sites as described in any of the above technical solutions, and therefore possesses all the beneficial effects of the earthquake intensity rapid reporting method for emergency repair sites described in the above technical solutions.
[0091] The computer-readable storage medium 301 provided in this application embodiment first generates intensity rapid reporting information and intensity rapid reporting images based on the monitoring results of multiple vibration intensity monitoring modules. Then, the generated intensity rapid reporting information and intensity rapid reporting images are displayed through the information prompt module of the earthquake intensity rapid reporting system used for emergency repair sites. On the one hand, after an earthquake occurs, disaster information in the earthquake area can be directly obtained. On the other hand, in the early stage of an earthquake, the vibration intensity monitoring module can quickly detect vibration signals, and the intensity data processing module can quickly identify vibration signals, thereby generating early warning information, which can remind people to evacuate. It can enable emergency departments to know about the occurrence of the earthquake and the state of the disaster as soon as possible, and can improve the efficiency and targeting of emergency rescue.
[0092] Based on this understanding, the technical solution of this application can be embodied in the form of a software product. This software product can be stored in a non-volatile storage medium (such as a CD-ROM, USB flash drive, or portable hard drive), and includes several instructions to cause a computer device (such as a personal computer, server, or network device) to execute the methods described in the various implementation scenarios of this application.
[0093] like Figure 5 As shown, a control device is proposed according to a fourth aspect of the embodiments of this application, comprising: a memory 401 storing a computer program; and a processor 402 executing the computer program; wherein, when executing the computer program, the processor 402 implements a method for rapid reporting of earthquake intensity at emergency repair sites as described in any of the above technical solutions.
[0094] The control device provided in this application embodiment, because it implements the earthquake intensity rapid reporting method for emergency repair sites as described in any of the above technical solutions, possesses all the beneficial effects of the earthquake intensity rapid reporting method for emergency repair sites described in the above technical solutions.
[0095] The control device provided in this application first generates intensity rapid reporting information and intensity rapid reporting images based on the monitoring results of multiple vibration intensity monitoring modules. Then, the generated intensity rapid reporting information and intensity rapid reporting images are displayed through the information prompt module of the earthquake intensity rapid reporting system used at the repair site. On the one hand, after an earthquake occurs, disaster information in the earthquake area can be directly obtained. On the other hand, in the early stage of an earthquake, the vibration intensity monitoring module can quickly detect vibration signals, and the intensity data processing module can quickly identify vibration signals, thereby generating early warning information, which can remind people to evacuate. It can enable emergency departments to know about the occurrence of the earthquake and the state of the disaster as soon as possible, thereby improving the efficiency and targeting of emergency rescue.
[0096] In some examples, the control device may also include a user interface, a network interface, a camera, radio frequency (RF) circuitry, sensors, audio circuitry, a Wi-Fi module, and so on. The user interface may include a display screen, input units such as a keyboard, and optional user interfaces may include USB ports, card reader ports, etc. The network interface may optionally include standard wired interfaces, wireless interfaces (such as Wi-Fi interfaces), etc.
[0097] In an exemplary embodiment, the control device may further include an input / output interface and a display device, wherein the various functional units can communicate with each other via a bus. The memory stores a computer program, and a processor is used to execute the program stored in the memory, performing the methods described in the above embodiments.
[0098] The aforementioned storage medium may also include an operating system and a network communication module. The operating system is a program that manages the hardware and software resources of the physical device described above, supporting the operation of information processing programs and other software and / or programs. The network communication module is used to enable communication between the various components within the storage medium, as well as communication with other hardware and software in the information processing physical device.
[0099] Through the above description of the embodiments, those skilled in the art can clearly understand that this application can be implemented by means of software plus necessary general-purpose hardware platform, or it can be implemented by hardware.
[0100] This application is described with reference to flowchart illustrations and / or block diagrams of methods, apparatus (systems), and computer program products according to embodiments of this application. It will be understood that each block of the flowchart illustrations and / or block diagrams, and combinations of blocks in the flowchart illustrations and / or block diagrams, can be implemented by computer program instructions. These computer program instructions can be provided to a processor of a general-purpose computer, special-purpose computer, embedded computer, or other programmable data processing apparatus to produce a machine, such that the instructions, which execute via the processor of the computer or other programmable data processing apparatus, create a machine for implementing the flowchart illustrations. Figure 1 One or more processes and / or boxes Figure 1 A device that provides the functions specified in one or more boxes.
[0101] In this invention, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance; the term "multiple" refers to two or more unless otherwise explicitly defined. The terms "install," "connect," "link," and "fix" should be interpreted broadly. For example, "connect" can be a fixed connection, a detachable connection, or an integral connection; "link" can be a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0102] In the description of this invention, it should be understood that the terms "upper," "lower," "left," "right," "front," "rear," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or unit referred to must have a specific orientation or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.
[0103] In the description of this specification, the terms "one embodiment," "some embodiments," "specific embodiment," etc., refer to a specific feature, structure, material, or characteristic described in connection with that embodiment or example, which is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.
[0104] The above are merely preferred embodiments of the present invention and are not intended to limit the present invention. Various modifications and variations can be made to the present invention by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the scope of protection of the present invention.
Claims
1. A seismic intensity rapid reporting system for use at a repair site, characterized by, include: Multiple vibration intensity monitoring modules are used to be installed in multiple monitoring areas, and the intensity monitoring modules are configured to monitor the seismic intensity data of the monitoring areas; The intensity data processing module is communicatively connected to multiple vibration intensity monitoring modules; A data storage module is communicatively connected to multiple vibration intensity monitoring modules, and the data storage module is used to store the monitoring results of the vibration intensity monitoring modules; A communication module is connected to the data storage module and the intensity data processing module; An information prompting unit is communicatively connected to the intensity data processing module, and the information prompting unit is used to display the processing results of the intensity data processing module; A communication assurance module, wherein the communication module is disposed within the communication assurance module; The intensity data processing module is used to obtain the monitoring results stored in the data storage module through the communication module. The intensity data processing module is also used to generate early warning information and disaster assessment information based on the monitoring results of multiple vibration intensity monitoring modules. The communication security module includes: seat body; A first crossbeam and a second crossbeam are disposed on the base body; The first vertical beam and the second vertical beam are slidably connected to the first horizontal beam and the second horizontal beam; A sliding beam is slidably connected to the first vertical beam and the second vertical beam, and is located between the first horizontal beam and the second horizontal beam; A turntable is rotatably mounted on the sliding beam; A first support arm, one end of which is hinged to the sliding beam and the other end of which is hinged to the turntable; The second support arm has one end hinged to the sliding beam and the other end hinged to the turntable; The communication module is mounted on the turntable. A housing, which is connected to the base, and the communication module is located inside the housing.
2. The seismic intensity rapid reporting system for a repair site according to claim 1, wherein The information prompting unit includes: A text message notification unit, wherein the text message notification unit is used to send text message notifications to electronic devices; A platform notification unit is used to send notifications through the platform.
3. The earthquake intensity rapid reporting system for emergency repair sites according to claim 1, characterized in that, The communication module includes one or more of the following: wireless communication module, Beidou communication module, 4G communication module, and 5G communication module.
4. The seismic intensity rapid reporting system for a repair site according to any one of claims 1 to 3, characterized by, The vibration intensity monitoring module includes: A vibration sensor unit, wherein the vibration sensor unit is used to monitor vibration data of the monitoring area; An accelerometer unit, comprising an east-west accelerometer, a north-south accelerometer, and a vertical accelerometer, is used to monitor acceleration data in the monitoring area. A power supply unit is provided to supply power to the vibration sensor unit and the accelerometer unit.
5. The seismic intensity rapid reporting system for a repair site according to claim 4, wherein The vibration intensity monitoring module also includes: Instrument calibration, wherein the instrument calibration is used to calibrate the vibration sensor unit and the accelerometer unit; A monitoring unit is provided to monitor the operating status of the vibration sensor and the accelerometer unit.
6. A method for rapidly reporting seismic intensity at a repair site, characterized by, The earthquake intensity rapid reporting system for emergency repair sites, as described in any one of claims 1 to 5, comprises the following method: If the monitoring result of the vibration intensity monitoring module exceeds the preset value, the intensity data processing module is controlled to obtain the monitoring results of multiple vibration intensity monitoring modules through the data storage module and the communication module. Based on the monitoring results of multiple vibration intensity monitoring modules, intensity rapid reporting information and intensity rapid reporting images are generated; The information prompt module of the earthquake intensity rapid reporting system used for emergency repair sites displays the generated intensity rapid reporting information and the intensity rapid reporting image.
7. The method for rapid earthquake intensity reporting at emergency repair sites according to claim 6, characterized in that, The steps for generating a rapid intensity report image based on the monitoring results of multiple vibration intensity monitoring modules include: When the earthquake intensity in the monitoring area exceeds the threshold, the monitoring results of the vibration intensity monitoring module stored in the data storage module are obtained through the intensity data processing module. Based on the monitoring results of each of the data storage modules, the region to which each of the monitoring areas belongs is determined, and an intensity rapid report image is drawn; The intensity rapid reporting image includes the area affected by different intensities and the name of the affected area.
8. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores a computer program that implements the earthquake intensity rapid reporting method for emergency repair sites as described in claim 6 or 7.
9. A control device characterized by comprising: include: Memory, which stores computer programs; The processor executes the computer program; When the processor executes the computer program, it implements the earthquake intensity rapid reporting method for emergency repair sites as described in claim 6 or 7.