Inspection acquisition system

By designing a patrol and collection system, including patrol equipment, information collection devices and servers, the problem of inability to monitor the inspection process in the computer room is solved, accurate monitoring of the inspection process and true reflection of the equipment status is achieved, and the safety of the computer room is ensured.

CN222914233UActive Publication Date: 2025-05-27INDUSTRIAL AND COMMERCIAL BANK OF CHINA
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Patent Information

Application Number
CN202420804164.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-04-17
Publication Date
2025-05-27
Estimated Expiration
2034-04-17

AI Technical Summary

Technical Problem

The inspection process of the computer room inspection personnel cannot be monitored, resulting in false reporting of equipment status and safety hazards.

Method used

Design a patrol and collection system, including patrol and information collection device and server. The inspection equipment enters the inspection areas of each equipment to be tested in a preset order. The inspection information collection device powers up when the inspection equipment enters the area, communicates with it, and transmits inspection information, including inspection time and equipment sampling information. The server determines the inspection situation based on this information.

Benefits of technology

Accurate monitoring of the inspection process is achieved, the authenticity of inspection information is ensured, and safety hazards are reduced.

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Abstract

The utility model provides an inspection collection system, which is applied to the field of financial science and technology or other related fields, and in the inspection collection system, inspection equipment enters inspection areas corresponding to equipment to be detected according to a preset inspection sequence; at least one inspection information acquisition device correspondingly arranged in an inspection area corresponding to the at least one to-be-detected device is powered on when the inspection device enters the inspection area, is in communication connection with the inspection device and outputs inspection information, and the inspection information comprises inspection time; the server in communication connection with the inspection equipment accurately obtains the inspection condition of the inspection equipment on each to-be-detected equipment and the condition of each to-be-detected equipment based on the inspection information uploaded by each inspection information acquisition device, and accurately monitors the overall inspection condition of the inspection equipment according to the sequence of the obtained inspection information acquisition devices. And the accuracy of the inspection information generated in the inspection process is ensured.
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Description

Technical Field

[0001] The present application relates to the field of financial technology or other related fields, and in particular to an inspection and collection system. Background Art

[0002] In recent years, with the rapid development of big data, cloud computing, and the Internet of Things, the importance of data centers has become increasingly prominent. Computer room equipment such as air conditioners and uninterruptible equipment, as support and auxiliary facilities for IT equipment, plays an important role in protecting and maintaining the safe and stable operation of IT equipment.

[0003] Inspection of equipment in the computer room of a data center is one of the important contents of daily management of the computer room, and is an important means to identify and discover unsafe factors and prevent failures. In the related technology, a check-in point is generally set up in the computer room, and the computer room inspectors register their inspection status and the operating status of the equipment through the check-in point. It is easy for the inspectors to be careless in the inspection of the equipment or miss the inspection and then falsely report the equipment status when checking in. It is impossible to monitor the inspection process of the inspectors, resulting in safety hazards in the computer room. Utility Model Content

[0004] The present application provides an inspection collection system to solve the technical problem that the inspection process of the computer room inspection personnel cannot be monitored.

[0005] The present application provides a patrol inspection and collection system, comprising:

[0006] The inspection device is configured to enter the inspection area corresponding to each device to be inspected according to a preset inspection sequence;

[0007] At least one inspection information collection device is correspondingly arranged in the inspection area corresponding to at least one device to be detected, and the inspection information collection device is configured to communicate with the inspection device when the inspection device is in its corresponding inspection area, and transmit inspection information to the inspection device; the inspection information includes the inspection time and the sampling information of the corresponding device to be detected;

[0008] The server is communicatively connected with the inspection device and is configured to obtain the inspection information through the inspection device and determine the inspection status based on the inspection information.

[0009] Optionally, the inspection information collection device includes:

[0010] at least one sensor, corresponding to at least one preset sampling point disposed in the inspection area, configured to generate at least one sampling signal when the inspection device enters the inspection area corresponding to the inspection information collection device;

[0011] a timer, electrically connected to the at least one sensor, and configured to output a timing signal based on the at least one sampling signal;

[0012] a transceiver, electrically connected to the timer, configured to obtain the timing signal, count the residence time of the device to be detected in the inspection area based on the timing signal, and transmit the residence time to the inspection device;

[0013] a power supply unit, electrically connected to the at least one sensor, the timer and the transceiver, and configured to provide a power supply signal;

[0014] The distances between the sensors, the timers, and the transceivers are greater than a preset distance.

[0015] Optionally, the inspection information collection device further includes a controller, which is electrically connected to the at least one sensor and the power supply unit, and is configured as follows:

[0016] At least one sampling signal generated by the at least one sensor is obtained, and based on the at least one sampling signal, the power supply unit is controlled to supply power to the timer and the transceiver respectively.

[0017] Optionally, the power supply unit includes a power supply, a first controllable switch and a second controllable switch;

[0018] The controller is configured to generate a power supply control signal when the at least one sampling information satisfies a preset power supply condition;

[0019] The first controllable switch is electrically connected in series between the power supply and the timer, and a control end thereof is electrically connected to the controller, and is configured to be turned on based on the power supply control signal;

[0020] The second controllable switch is electrically connected in series between the power supply and the transceiver, and a control end thereof is electrically connected to the controller, and is configured to be turned on based on the power supply control signal.

[0021] Optionally, the inspection information collection device is arranged under the anti-static floor of the inspection area of ​​the corresponding equipment to be inspected;

[0022] The at least one sensor includes at least one pressure sensor, and each of the pressure sensors is respectively placed at an edge point of the antistatic floor.

[0023] Optionally, the antistatic floor is a double-layer floor, and the at least one sensor is placed between the double-layer floors.

[0024] Optionally, the pressure sensor comprises a set of sensing resistors;

[0025] When the inspection information collection device includes at least four groups of inductive resistors, the at least four groups of inductive resistors are electrically connected in a bridge type, and the controller is electrically connected in series between two diagonal points;

[0026] The controller is configured to control the power supply unit to supply power to the timer and the transceiver when a voltage difference between the two diagonal points is greater than a preset threshold.

[0027] Optionally, the group of sensing resistors includes a positive strain resistor and a negative strain resistor, and the second end of the positive strain resistor is electrically connected to the first end of the negative strain resistor;

[0028] When the positive strain resistors in the adjacent first and second groups of sensing resistors are adjacent, the first ends of the positive strain resistors in the two groups of sensing resistors are electrically connected;

[0029] When the negative strain resistors are adjacent to each other, the second ends of the negative strain resistors in the two groups of sensing resistors are electrically connected.

[0030] Optionally, the inspection information collection device includes a third group of non-adjacent inductive resistors and a fourth group of inductive resistors;

[0031] In the third group of inductive resistors, the second end of the positive strain resistor is electrically connected to the positive output end of the power supply unit;

[0032] In the fourth group of induction resistors, the second end of the positive strain resistor is electrically connected to the negative output end of the power supply unit;

[0033] In a fifth group of sensing resistors in which the positive strain resistors of the third group of sensing resistors and the negative strain resistors of the fourth group of sensing resistors are electrically connected in series, the second end of the positive strain resistor is electrically connected to the first signal input end of the controller;

[0034] In the sixth group of sensing resistors in which the negative strain resistor of the third group of sensing resistors and the positive strain resistor of the fourth group of sensing resistors are electrically connected in series, the second end of the positive strain resistor is electrically connected to the second signal input end of the controller.

[0035] Optionally, the device to be detected includes an air conditioner, an uninterruptible power supply device or an intelligent power distribution cabinet;

[0036] The air conditioner comprises an air conditioner data collector, the air conditioner data collector is electrically connected to the transceiver, and the transceiver is configured to obtain the operating state information and the surrounding environment information of the air conditioner from the air conditioner data collector;

[0037] The uninterruptible power supply device comprises a monitoring device, the monitoring device is electrically connected to the transceiver, and the transceiver is configured to obtain the operating status information of the uninterruptible power supply device from the monitoring device;

[0038] The intelligent power distribution cabinet comprises a communication module, the communication module is in communication connection with the transceiver, and the transceiver is configured to obtain power distribution information of the intelligent power distribution cabinet from the communication module.

[0039] In the inspection and collection system provided by the present application, the inspection equipment enters the inspection area corresponding to each device to be inspected according to a preset inspection order, and at least one inspection information collection device corresponding to at least one device to be inspected is communicated with and connected to the inspection area when the inspection equipment enters the inspection area, and outputs inspection information, which includes the inspection time and sampling information of the corresponding device to be inspected. The server communicatively connected to the inspection equipment accurately obtains the inspection status of each device to be inspected and the status of each device to be inspected by the inspection equipment based on the inspection information uploaded by each inspection information collection device, and accurately monitors the overall inspection status of the inspection equipment according to the order in which each inspection information collection device is obtained, thereby ensuring the accuracy of the inspection information generated during the inspection process. BRIEF DESCRIPTION OF THE DRAWINGS

[0040] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the present application and, together with the description, serve to explain the principles of the present application.

[0041] Figure 1 A schematic diagram of a scenario of an inspection and collection system application provided by an exemplary embodiment of the present application;

[0042] Figure 2 A flowchart of a method for collecting inspection information provided by an exemplary embodiment of the present application;

[0043] Figure 3 A schematic diagram of setting an inspection area provided for an exemplary embodiment of the present application;

[0044] Figure 4 A schematic diagram of the structure of an inspection information collection device provided for an exemplary embodiment of the present application;

[0045] Figure 5 A schematic diagram of the layout of a patrol equipment collection device provided for an exemplary embodiment of the present application;

[0046] Figure 6 A schematic diagram of the electrical connection relationship between the sensing resistor and the controller provided by an exemplary embodiment of the present application;

[0047] Figure 7 A flowchart of an inspection quality evaluation method provided for an exemplary embodiment of the present application;

[0048] Figure 8A schematic diagram of the structure of an inspection quality evaluation device provided for an exemplary embodiment of the present application;

[0049] Fig. 9 A schematic diagram of the structure of a server provided for an exemplary embodiment of the present application.

[0050] The above drawings have shown clear embodiments of the present application, which will be described in more detail later. These drawings and text descriptions are not intended to limit the scope of the present application in any way, but to illustrate the concept of the present application to those skilled in the art by referring to specific embodiments. DETAILED DESCRIPTION

[0051] Exemplary embodiments will be described in detail herein, examples of which are shown in the accompanying drawings. When the following description refers to the drawings, the same numbers in different drawings represent the same or similar elements unless otherwise indicated. The implementations described in the following exemplary embodiments do not represent all implementations consistent with the present application. Instead, they are merely examples of devices and methods consistent with some aspects of the present application as detailed in the appended claims.

[0052] It should be noted that the user information (including but not limited to user device information, user personal information, etc.) and data (including but not limited to data used for analysis, stored data, displayed data, etc.) involved in this application are all information and data authorized by the user or fully authorized by all parties, and the collection, use, processing, transmission, provision, disclosure and application of the relevant data comply with the relevant laws, regulations and standards of the relevant countries and regions, take necessary confidentiality measures, do not violate public order and good morals, and provide corresponding operation entrances for users to choose to authorize or refuse.

[0053] In addition, this application involves big data analysis of user information (including but not limited to personal biometrics, identity data, consumption data, asset data, electronic terminal operation data, etc.), and the use of artificial intelligence technology for automated decision-making, and a technical solution for making decisions that have a significant impact on personal rights and interests based on the results of automated decision-making. The application provides users with corresponding operation entrances for them to choose to agree or reject the results of automated decision-making; if the user chooses to reject, the expert decision-making process will be entered.

[0054] It should be noted that the inspection and collection system provided in this application can be used in the field of financial technology, and can also be used in any field other than the field of financial technology. The application field of the inspection and collection system provided in this application is not limited.

[0055] The schematic diagram of the data center room 110 is as follows Figure 1As shown, it includes a plurality of computers 111 and auxiliary equipment for maintaining the normal operation of the computers 111. In some embodiments, the auxiliary equipment includes but is not limited to a computer room air conditioner 112, an uninterruptible power supply 113, and an intelligent power distribution cabinet 114.

[0056] The computer room air conditioner 112 is configured to maintain the temperature of the computer room environment and the plurality of computers 111;

[0057] The uninterruptible power supply 113 is configured to provide a stable power supply to the plurality of computers 111;

[0058] The intelligent power distribution cabinet 114 is configured to collect data on power consumption parameters of multiple computers 111 and status of the power distribution system, analyze and protect against faults of the computers 111, and perform energy efficiency detection and data analysis on loads.

[0059] Data centers are devices for data processing and storage and are an important part of the IT industry. The stable operation of multiple computers 111 in a data center is the basis for ensuring that the data center can provide stable IT resources. Therefore, it is necessary to regularly inspect the data center, discover unsafe factors in a timely manner, and take corresponding maintenance measures to prevent failures.

[0060] In the related art, data centers are inspected based on inspections by inspection personnel. Figure 1 Taking the scenario shown as an example, a clock-in machine can be set up at the door of the data center room 110. The inspection personnel 116 enter the data center room 110 from the door and perform corresponding inspections and records one by one according to the arrangement order of the computers and auxiliary equipment therein. After the monitoring of the computers and auxiliary equipment is completed, the clock-in machine is used to mark the inspection completion and record the status information of each device.

[0061] However, the inspection results obtained based on the above inspection method can only be obtained through the inspection personnel's clock-in results and registered status information. It is impossible to monitor the inspection process of the inspection personnel, and it is impossible to ensure the authenticity of the results submitted by them. It is easy for the inspection personnel to be careless in the inspection of the equipment or miss the inspection and then falsely report the equipment status when clocking in, resulting in safety hazards in the computer room.

[0062] The inspection and collection system provided in this application is intended to solve at least one of the above technical problems.

[0063] The technical solution of the present application and how the technical solution of the present application solves the above-mentioned technical problems are described in detail below with specific embodiments. The following specific embodiments can be combined with each other, and the same or similar concepts or processes may not be repeated in some embodiments. The embodiments of the present application will be described below in conjunction with the accompanying drawings.

[0064] Figure 1The following is a schematic diagram of a patrol inspection and collection system application scenario provided by an exemplary embodiment of the present application. Figure 1 As shown, it includes a data center room 110 and an inspection and collection system, wherein the structure of the data center room 110 has been explained in the foregoing content and will not be repeated here.

[0065] The inspection and collection system includes at least one inspection information collection device 119 , an inspection device 115 and a server 100 .

[0066] The inspection device 115 is a device for recording the status information of each device to be inspected.

[0067] In some embodiments, the inspection device 115 is an electronic device that can operate independently, approach each device to be inspected one by one, and collect inspection information of the device to be inspected, such as a robot with automatic tracking.

[0068] In other embodiments, the inspection device 115 is a handheld electronic device, and the inspection personnel 116 are required to hold the device and approach each device to be inspected one by one along a preset path, and enter the corresponding inspection information into the inspection device 115 .

[0069] At least one inspection information collection device 119 is correspondingly arranged in the inspection area corresponding to at least one device to be inspected. The device to be inspected includes but is not limited to: a computer, a computer room air conditioner 112, an uninterruptible power supply 113 or an intelligent power distribution cabinet 114.

[0070] In some embodiments, each device to be detected corresponds to at least one inspection area, and at least one inspection information collection device 119 is set in the corresponding at least one inspection area.

[0071] The inspection information collection device 119 is configured to communicate with the inspection device 115 when the inspection device 115 is in the inspection area of ​​the corresponding device to be inspected, and transmit the inspection information to the inspection device.

[0072] In some embodiments, the inspection information collection device 119 is also configured to power on after the inspection device 115 enters the inspection area of ​​its corresponding device to be inspected, and then communicate with the inspection device 115 to transmit the inspection information to the inspection device, and power off when the inspection device 115 leaves the inspection area to reduce the energy consumption of the inspection information collection device 119.

[0073] In some embodiments, the inspection information includes the inspection time, which is the time the inspection device 115 stays in the inspection area.

[0074] In other embodiments, the inspection information also includes operating status information of the device to be inspected.

[0075] For example, for the computer room air conditioner 112 , the corresponding operation status information is the currently set temperature, the air outlet temperature, and the return air outlet temperature of the computer room air conditioner 112 .

[0076] The inspection information collection device 119 is also configured to disconnect the communication connection with the device to be inspected corresponding to the inspection area after the inspection device 115 leaves the inspection area.

[0077] The communication connection between the inspection device 115 and the device to be inspected may be a wireless communication connection, or an electrical connection via a network cable or a data cable.

[0078] The server 100 is in communication connection with the inspection device 115 , and is configured to obtain inspection information from the inspection device 115 .

[0079] Based on the above application scenario, this application provides a method for collecting inspection information. The process example of the method is as follows: Figure 2 As shown, including:

[0080] S101, the inspection equipment enters the inspection area corresponding to each device to be inspected according to a preset inspection sequence.

[0081] The inspection area is the area around the device to be inspected. In some embodiments, the area is also an area that is convenient for inspection personnel or inspection equipment to check the operating status of the device to be inspected. For example: when the device to be inspected is an air conditioner, the inspection area is the front and rear areas of the air conditioner, which is convenient for inspection personnel or inspection equipment to check whether the air conditioner control panel, the location of the temperature sensors set on the front and rear sides of the air conditioner, and the related circuit connections meet the specifications.

[0082] A schematic diagram of the inspection area is shown below: Figure 3 As shown, in Figure 3 In the embodiment, the inspection area of ​​the device to be detected can be set in the inspection area 11 in front of it, or in the inspection area 12 on its right side. Sensors are provided inside the inspection area, or sensors are provided around the inspection area, so that after the inspection device 115 enters the inspection area, the sensor related to the device to be detected can detect it.

[0083] In some embodiments, a pressure sensor may be provided in the inspection area, and the pressure sensor detects pressure changes to determine that the inspection device 115 enters the inspection area or the inspection personnel 116 holding the inspection device 115 enters the inspection area.

[0084] In other embodiments, a photoelectric sensor may be installed in the inspection area or on the equipment to be inspected to detect the situation where the inspection equipment 115 enters the inspection area based on the changing photoelectric sensing information. When the photoelectric sensor is a camera, the identity of the inspection personnel entering the inspection area can also be verified through identification.

[0085] In other embodiments, the sensor provided in the inspection area may also be an ultrasonic sensor, and when the distance between the object and the sensor is less than a preset distance, it can be determined that the inspection device has entered the inspection area.

[0086] S102. The inspection information collection device is powered on when the inspection equipment enters its corresponding inspection area, and is connected to the inspection equipment for communication.

[0087] The inspection information collection device is a device installed in the inspection area to collect the operation information of the equipment to be inspected.

[0088] The inspection information collection device includes the sensors involved in step S101. After the sensor detects that the inspection equipment has entered the inspection area, the inspection information collection device will be powered on and a communication connection with the inspection equipment will be established. After the inspection equipment leaves the inspection area, the inspection information collection device will be powered off based on the information detected by the sensor and the communication connection with the inspection equipment will also be disconnected.

[0089] S103, the inspection information collection device outputs the inspection information to the inspection equipment.

[0090] During the process of communication connection with the inspection equipment, the inspection information collection device transmits the acquired operation information of the equipment to be inspected and the relevant information of the equipment to be inspected to the inspection equipment.

[0091] S104: The inspection device outputs inspection information to the server.

[0092] In some embodiments, the inspection device acts as a transfer station for the inspection information collection device to transmit information to the server, and directly forwards the inspection information it obtains to the server.

[0093] In other embodiments, after obtaining the inspection information, the inspection device processes the inspection information and then uploads it to the server.

[0094] The inspection equipment processes the inspection information in the following ways:

[0095] Obtain device status information of the device to be detected from the inspection information;

[0096] Compare the device status information with the corresponding status standard range;

[0097] When the device status information is within the corresponding status standard range, the device status information is uploaded to the server;

[0098] When the device status information is not within the corresponding status standard range, the corresponding emergency treatment measures are output based on the device status information, and when the inspection device leaves the inspection area, the device status information and the emergency treatment results are uploaded to the server.

[0099] In some embodiments, a storage module is provided in the inspection equipment, which stores an emergency handling manual. The emergency handling manual includes at least one emergency plan corresponding to each device to be inspected. When the equipment status information is not within the corresponding status standard range, the corresponding emergency handling measures are output based on the equipment status information, so that the inspection personnel can perform corresponding maintenance on the equipment with reference to the emergency handling measures. After the maintenance is completed, the equipment status information of the equipment is re-acquired, and the emergency handling result is determined based on the newly acquired equipment status information, so that the processing result and the equipment status information sampled twice in succession are uploaded to the server.

[0100] In other embodiments, an expert system is provided in the server, and when the inspection device determines that the device status information is not within the corresponding status standard range, it generates a fault request including the existence status standard information, and the inspection device sends the fault request to the server.

[0101] The server queries the expert system based on the status standard information in the fault request, determines at least one corresponding emergency plan and a reference score for each emergency plan, and transmits the same to the inspection device.

[0102] The inspection device outputs various emergency plans based on the reference scores in descending order, so that the inspection personnel can refer to at least one emergency plan for corresponding maintenance. After the maintenance is completed, the emergency measures adopted during the maintenance and the maintenance results are input into the inspection device, so that the inspection device uploads the input information to the server, so that the server updates the expert system based on the uploaded information.

[0103] The reference score of the emergency plan output by the expert system is generated based on the maintenance cost and maintenance time. For example, the reference score is the product of the maintenance cost and the first preset weight and the product of the maintenance time and the second preset weight.

[0104] When outputting the emergency plan, the inspection equipment may display the image information or video information of the emergency plan through the display device therein, and may also play the steps of the emergency plan through the speaker therein, which is not specifically limited here.

[0105] In other embodiments, the inspection terminal includes a video call module. When the inspection personnel encounter complex faults that require technical expert support to solve, they can connect to the server and then further connect to the monitoring display screen. Technical experts can guide the inspection personnel to solve the faults in the central control center.

[0106] S105. The server determines the inspection status based on the inspection information.

[0107] In the above technical scheme, the inspection equipment enters the inspection area corresponding to each device to be inspected according to a preset inspection order. At least one inspection information collection device corresponding to at least one device to be inspected is powered on when the inspection equipment enters the inspection area, communicates with it, and outputs inspection information. The inspection information includes the inspection time. The server communicates with the inspection equipment and accurately obtains the inspection status of each device to be inspected and the status of each device to be inspected based on the inspection information uploaded by each inspection information collection device. The server also accurately monitors the overall inspection status of the inspection equipment according to the order in which each inspection information collection device is obtained, thereby ensuring the accuracy of the inspection information generated during the inspection process.

[0108] The circuit structure of the inspection information collection device is explained below.

[0109] Figure 4 A schematic diagram of the structure of an inspection information collection device provided by an exemplary embodiment of the present application is shown in FIG. Figure 4 As shown, the inspection information collection device 119 includes:

[0110] At least one sensor 1191, corresponding to at least one preset sampling point set in the inspection area, is configured to generate at least one sampling signal when the inspection device enters the inspection area corresponding to the inspection information collection device.

[0111] The timer 1192 is electrically connected to the at least one sensor and is configured to output a timing signal based on the at least one sampling signal.

[0112] The transceiver 1193 is electrically connected to the timer, and is configured to obtain a timing signal, count the residence time of the device to be detected in the inspection area based on the timing signal, and transmit the residence time to the inspection device.

[0113] The power supply unit 1194 is electrically connected to at least one sensor, a timer and a transceiver, and is configured to provide a power supply signal.

[0114] In some embodiments, the inspection information collection device 119 further includes a controller 1195 , and the controller 1195 is electrically connected to at least one sensor 1191 and a power supply unit 1194 .

[0115] The controller 1195 is configured to obtain at least one sampling signal generated by at least one sensor 1191, and control the power supply unit 1194 to supply power to the timer and the transceiver respectively based on the at least one sampling signal.

[0116] More specifically, the controller 1195 is configured to generate a power supply control signal when at least one sampling information satisfies a preset power supply condition.

[0117] The power supply unit 1194 includes a power supply 1196, a first controllable switch K1 and a second controllable switch K2, wherein the first controllable switch K1 is electrically connected in series between the power supply 1196 and the power supply end of the timer 1192, and its control end is electrically connected to the controller 1195, and is configured to be turned on based on a power supply control signal;

[0118] The second controllable switch K2 is electrically connected in series between the power supply 1196 and the power supply end of the transceiver 1193, and its control end is electrically connected to the controller 1195, and is configured to be turned on based on a power supply control signal.

[0119] The first controllable switch K1 and the second controllable switch K2 may be turned on at the same time. After the timer 1192 completes counting and feeds back to the controller 1195 , the controller 1195 may output a power supply control signal to the second controllable switch K2 based on the feedback information.

[0120] In the above circuit structure, the distance between each sensor, timer, and transceiver is greater than a preset distance to avoid electromagnetic interference.

[0121] In some embodiments, the inspection information collection device is arranged under the anti-static floor of the inspection area of ​​the corresponding equipment to be detected, and the layout diagram of the inspection equipment collection device is as follows: Figure 5 shown.

[0122] In the inspection information collection device, at least one sensor 1191 includes at least one pressure sensor, and each pressure sensor is placed at an edge point of the anti-static floor 1197.

[0123] Taking the air conditioner as an example, the length of the computer room air conditioner is 1.8m, and the anti-static floor is generally a square floor with a side length of 600mm. When the inspection area is set along the length of the computer room air conditioner, three anti-static floors 1197 are covered in the inspection area, and four pressure sensor measuring points are installed near the four corners of the rectangle formed by the three anti-static floors; the transceiver 1193, the timer 1192 and the power supply unit 1194 are bonded under the floor, and the modules are more than 10cm apart to avoid electromagnetic interference between the modules. Among them, the power supply unit 1194 is a low-voltage power supply.

[0124] In some embodiments, the antistatic floor is a double-layer floor, and each pressure sensor is disposed between the double-layer floor.

[0125] Each pressure sensor includes a sensing resistor that changes resistance based on the pressure to which it is subjected.

[0126] The inductive resistor includes a positive strain resistor and a negative strain resistor, wherein the positive strain resistor is a resistor whose resistance increases with increasing pressure, and the negative strain resistor is a resistor whose resistance decreases with increasing pressure.

[0127] The above four pressure sensors include four groups of sensing resistors, the four groups of sensing resistors are electrically connected in a bridge structure, and the controller is electrically connected in series between two diagonal points of the bridge structure.

[0128] More specifically, the electrical connection relationship between the sensing resistor and the controller is as follows: Figure 6 As shown, each group of sensing resistors includes at least one positive strain resistor and at least one negative strain resistor. In each group of sensing resistors, the positive strain resistor and the negative strain resistor are electrically connected in series, that is, the second end of the positive strain resistor is electrically connected to the first end of the negative strain resistor. After the two groups of sensing resistors are connected in series, they are electrically connected in parallel with the other two groups of sensing resistors connected in series to form a bridge structure. In two adjacent groups of sensing resistors, when the positive strain resistors are adjacent, the first ends of the positive strain resistors in the two groups of sensing resistors are electrically connected, as shown in the connection relationship between the positive strain resistors R21 and R22; when the negative strain resistors are adjacent, the second ends of the negative strain resistors in the two groups of sensing resistors are electrically connected, as shown in the connection relationship between the negative strain resistors R11 and R14.

[0129] The first set of sensing resistors (such as Figure 6 The electrical connection point of the negative strain resistor R11 and the positive strain resistor R21 is used as the positive power supply terminal E+ of the bridge structure, and is electrically connected to the positive output terminal of the power supply unit. The second group of induction resistors (such as Figure 6 The electrical connection point of the negative strain resistor R12 and the positive strain resistor R22 is used as the positive signal output terminal of the bridge structure and is electrically connected to the first signal input terminal S+ of the controller 1196; the second set of sensing resistors (as shown in the left resistor) of the other two sets of sensing resistors electrically connected in series is connected to the first signal input terminal S+ of the controller 1196. Figure 6 The electrical connection point of the negative strain resistor R13 and the positive strain resistor R23 is used as the negative power supply terminal E- of the bridge structure, and is electrically connected to the negative output terminal of the power supply unit. The second group of induction resistors (such as Figure 6 As shown on the right side, the electrical connection point of the negative strain resistor R14 and the positive strain resistor R24 ​​serves as the negative signal output terminal of the bridge structure and is electrically connected to the second signal input terminal S- of the controller 1196.

[0130] The power supply continuously outputs power supply electrical signals to the positive power supply terminal E+, the negative power supply terminal E- and the power supply terminal of the controller. When the controller detects that the voltage difference between the first voltage signal obtained at its first signal input terminal and the second voltage signal obtained at its second signal input terminal is greater than a preset voltage threshold, it determines that an inspection device has entered the inspection area, and the controller outputs a power supply control signal to turn on at least one controllable switch.

[0131] In some embodiments, the device to be detected includes an air conditioner, an uninterruptible power supply device, or an intelligent power distribution cabinet;

[0132] The air conditioner includes an air conditioner data collector, which is electrically connected to a transceiver, and the transceiver is configured to obtain operating status information and surrounding environment information of the air conditioner from the air conditioner data collector. For the precision air conditioner in the computer room, the air conditioner data collector is installed around the liquid crystal display module on the door, which is convenient for collecting information such as air conditioner temperature and humidity, fault alarm records, etc., and is also conducive to reducing the length of the air conditioner wiring.

[0133] The uninterruptible power supply equipment includes a monitoring device, which is electrically connected to a transceiver, and the transceiver is configured to obtain the operating status information of the uninterruptible power supply equipment from the monitoring device; for the uninterruptible power supply equipment in the computer room, the monitoring device is an SNMP card, which is generally installed on the door of the uninterruptible power supply equipment for easy installation and debugging, and can be used to collect information such as the output power, input / output voltage, input / output current, fault records, etc. of the uninterruptible power supply equipment.

[0134] In the above technical solution, the inspection information sampling device controls the power supply to supply power to the counter and transceiver therein only after the inspection equipment enters its corresponding inspection area, and the power is cut off when the inspection equipment leaves, thereby reducing the power consumption of the inspection information sampling device.

[0135] When inspecting multiple devices to be inspected, the inspection device will enter each inspection area one by one according to the preset inspection path. When the inspection device is a terminal device held by the inspection personnel, the inspection device outputs the inspection path to guide the inspection personnel to walk along the inspection path.

[0136] In some embodiments, the inspection path is a fixed route set in the inspection equipment.

[0137] In other embodiments, the inspection path is generated by the server based on the location information and the location information of the device to be inspected, and the inspection path is fed back to the inspection device.

[0138] When inspectors conduct inspections with handheld inspection terminals, the inspection terminals can record the inspection time of a single device and the time interval between inspections of two devices by inspectors. The server can use the Dijkstra algorithm to calculate the shortest path based on the inspection time and time interval, thereby replanning the inspection route pre-stored in the original server and transmitting the planned route to the inspection terminal to guide the inspection order of inspectors.

[0139] In the above technical solution, based on the changes in the inspection position and the inspection time, the server can promptly correct the inspection path when the inspection personnel do not move according to the preset inspection path, so as to ensure that the path to be inspected by the inspection equipment is the optimal path, thereby saving the inspection time of the inspection equipment.

[0140] In some embodiments, the server also determines the inspection quality of the inspection device or the inspection personnel holding the inspection device based on the inspection time of a single device and the time interval between the inspection personnel inspecting two devices.

[0141] More specifically, the server determines evaluation quantitative data based on the inspection time and the inspection quality evaluation formula, and determines the inspection quality based on the evaluation quantitative data;

[0142] Among them, the inspection quality evaluation formula includes:

[0143]

[0144] If Ta,i'≥Ta,i, then Na,i=1, otherwise Na,i=0, n is the total number of equipment A;

[0145] If Tb,i'≥Tb,i, then Mb,i=1, otherwise Mb,i=0, m is the total number of devices B;

[0146] If Tc,i'≥Tc,i, then Pc,i=1, otherwise Pc,i=0, where P is the total number of devices C;

[0147] Ta,i represents the standard inspection time for the i-th device A to be inspected;

[0148] Tb,i represents the standard inspection time for the i-th device B to be inspected;

[0149] Tc,i represents the standard inspection time for inspecting the i-th device C to be inspected;

[0150] Ta,i' represents the actual inspection time of the i-th device A to be inspected;

[0151] Tb,i' represents the actual inspection time of the i-th device B to be inspected;

[0152] Tc,i' represents the actual inspection time of the i-th device C to be inspected;

[0153] X represents the inspection weight coefficient of device A;

[0154] Y represents the inspection weight coefficient of device B;

[0155] Z represents the inspection weight coefficient of device C.

[0156] In the above technical scheme, through the above inspection quality evaluation formula, it is possible to monitor whether the inspection time of each device to be inspected meets the corresponding standard inspection time, so as to ensure that the inspection personnel have enough time to inspect the inspection process of each device to be inspected, and realize the server's monitoring of the inspection process of the inspection personnel or the inspection equipment. At the same time, based on the inspection information collection device corresponding to each device to be inspected, it is ensured that the inspection equipment can accurately obtain the operating status of the device to be inspected, thereby ensuring the inspection quality.

[0157] Figure 7 This is a flow chart of a method for evaluating inspection quality provided by the present application according to an exemplary embodiment, such as Figure 7 As shown, including:

[0158] S201. When the inspection device enters the inspection area corresponding to each device to be inspected according to a preset inspection sequence, the server obtains the inspection information output by the inspection information collection device corresponding to the device to be inspected through the inspection device.

[0159] The inspection information collection device is arranged in the inspection area corresponding to the device to be inspected, is powered on when the inspection device enters the inspection area, and is connected to the inspection device for communication.

[0160] S202: The server determines the inspection status based on the inspection information.

[0161] More specifically, the controller determines the inspection status based on the inspection quality evaluation formula involved in the above embodiment and the inspection time of each device to be inspected.

[0162] In the above technical scheme, when the inspection equipment enters the inspection area corresponding to each device to be detected according to the preset inspection order and obtains the inspection information from the inspection information collection device corresponding to each device to be detected, the server obtains the inspection information from the inspection equipment, and can obtain the inspection content in time, and obtain the inspection status of each device to be detected by the inspection equipment, so as to ensure that the server and other monitoring equipment associated with the server can obtain the inspection information in time, so as to discover potential problems in time. In addition, after the inspection equipment completes the inspection, the server can also quantitatively analyze the overall inspection status of the inspection equipment based on the inspection status of each device to be detected, so as to provide effective reference information for improving the inspection quality.

[0163] Figure 8 This is a schematic diagram of the structure of an inspection quality evaluation device provided by the present application according to an exemplary embodiment. Figure 8 As shown, the inspection quality evaluation device 300 includes:

[0164] The acquisition module 301 is used to obtain the inspection information output by the inspection information collection device corresponding to each device to be detected through the inspection device when the inspection device enters the inspection area corresponding to the device to be detected according to the preset inspection order; the inspection information includes the inspection time;

[0165] The processing module 302 is used to determine the inspection status based on the inspection information.

[0166] It should be noted that, for the aforementioned method embodiments, for the sake of simplicity, they are all expressed as a series of action combinations, but those skilled in the art should be aware that the present application is not limited by the described order of actions, because according to the present application, certain steps can be performed in other orders or simultaneously. Secondly, those skilled in the art should also be aware that the embodiments described in the specification are all optional embodiments, and the actions and modules involved are not necessarily required by the present application.

[0167] It should be further noted that, although the various steps in the flowchart are displayed in sequence according to the indication of the arrows, these steps are not necessarily executed in sequence in the order indicated by the arrows. Unless there is a clear description in this article, the execution of these steps is not strictly limited in order, and these steps can be executed in other orders. Moreover, at least a portion of the steps in the flowchart may include multiple sub-steps or multiple stages, and these sub-steps or stages are not necessarily executed at the same time, but can be executed at different times, and the execution order of these sub-steps or stages is not necessarily to be carried out in sequence, but can be executed in turn or alternately with other steps or at least a portion of the sub-steps or stages of other steps.

[0168] It should be understood that the above-mentioned device embodiments are only illustrative, and the device of the present application can also be implemented in other ways. For example, the division of units / modules in the above-mentioned embodiments is only a logical function division, and there may be other division methods in actual implementation. For example, multiple units, modules or components can be combined, or can be integrated into another system, or some features can be ignored or not executed.

[0169] In addition, unless otherwise specified, each functional unit / module in each embodiment of the present application may be integrated into one unit / module, each unit / module may exist physically separately, or two or more units / modules may be integrated together. The above-mentioned integrated unit / module may be implemented in the form of hardware or in the form of a software program module.

[0170] If the integrated unit / module is implemented in the form of hardware, the hardware can be a digital circuit, an analog circuit, etc. The physical implementation of the hardware structure includes but is not limited to transistors, memristors, etc. If not specifically stated, the processor can be any appropriate hardware processor, such as CPU, GPU, FPGA, DSP, ASIC, etc. If not specifically stated, the storage unit can be any appropriate magnetic storage medium or magneto-optical storage medium, such as resistive random access memory RRAM (Resistive Random Access Memory), dynamic random access memory DRAM (Dynamic Random Access Memory), static random access memory SRAM (Static Random-Access Memory), enhanced dynamic random access memory EDRAM (Enhanced Dynamic Random Access Memory), high-bandwidth memory HBM (High-Bandwidth Memory), hybrid memory cube HMC (Hybrid Memory Cube), etc. In some embodiments, the circuit structure of the server implementing the above embodiments can be as follows Fig. 9 As shown, the server 400 includes a memory 401 and a processor 402, and the memory 401 and the processor 402 are connected via a bus.

[0171] If the integrated unit / module is implemented in the form of a software program module and sold or used as an independent product, it can be stored in a computer-readable memory. Based on this understanding, the technical solution of the present application, or the part that contributes to the prior art or all or part of the technical solution, can be embodied in the form of a software product, which is stored in a memory and includes several instructions for a computer device (which can be a personal computer, a server or a network device, etc.) to perform all or part of the steps of the various embodiments of the present application. The aforementioned memory includes: U disk, read-only memory (ROM, Read-Only Memory), random access memory (RAM, Random Access Memory), mobile hard disk, disk or optical disk and other media that can store program codes.

[0172] In the above embodiments, the description of each embodiment has its own emphasis. For parts not described in detail in a certain embodiment, please refer to the relevant description of other embodiments. The technical features of the above embodiments can be combined arbitrarily. In order to make the description concise, all possible combinations of the technical features in the above embodiments are not described. However, as long as there is no contradiction in the combination of these technical features, they should be considered to be within the scope of this specification.

[0173] Those skilled in the art will readily appreciate other embodiments of the present application after considering the specification and practicing the utility model disclosed herein. The present application is intended to cover any variations, uses or adaptations of the present application, which follow the general principles of the present application and include common knowledge or customary techniques in the art that are not disclosed in the present application. The specification and examples are intended to be exemplary only, and the true scope and spirit of the present application are indicated by the following claims.

[0174] It should be understood that the present application is not limited to the precise structures that have been described above and shown in the drawings, and that various modifications and changes may be made without departing from the scope thereof. The scope of the present application is limited only by the appended claims.

Claims

1. A patrol inspection and collection system, characterized in that: include: The inspection device is configured to enter the inspection area corresponding to each device to be inspected according to a preset inspection sequence; At least one inspection information collection device is correspondingly arranged in the inspection area corresponding to at least one device to be detected, and the inspection information collection device is configured to communicate with the inspection device when the inspection device is in its corresponding inspection area, and transmit the inspection information to the inspection device; The inspection information includes the inspection time and the sampling information of the corresponding equipment to be inspected; The server is communicatively connected with the inspection device and is configured to obtain the inspection information through the inspection device and determine the inspection status based on the inspection information.

2. The system according to claim 1, characterized in that The inspection information collection device comprises: at least one sensor, corresponding to at least one preset sampling point disposed in the inspection area, configured to generate at least one sampling signal when the inspection device enters the inspection area corresponding to the inspection information collection device; a timer, electrically connected to the at least one sensor, and configured to output a timing signal based on the at least one sampling signal; a transceiver, electrically connected to the timer, configured to obtain the timing signal, count the residence time of the device to be detected in the inspection area based on the timing signal, and transmit the residence time to the inspection device; a power supply unit, electrically connected to the at least one sensor, the timer and the transceiver, and configured to provide a power supply signal; The distances between the sensors, the timers, and the transceivers are greater than a preset distance.

3. The system according to claim 2, characterized in that The inspection information collection device further includes a controller, which is electrically connected to the at least one sensor and the power supply unit and is configured as follows: At least one sampling signal generated by the at least one sensor is obtained, and based on the at least one sampling signal, the power supply unit is controlled to supply power to the timer and the transceiver respectively.

4. The system according to claim 3, characterized in that The power supply unit comprises a power supply, a first controllable switch and a second controllable switch; The controller is configured to generate a power supply control signal when the at least one sampling information satisfies a preset power supply condition; The first controllable switch is electrically connected in series between the power supply and the timer, and a control end thereof is electrically connected to the controller, and is configured to be turned on based on the power supply control signal; The second controllable switch is electrically connected in series between the power supply and the transceiver, and a control end thereof is electrically connected to the controller, and is configured to be turned on based on the power supply control signal.

5. The system according to any one of claims 2 to 4, characterized in that The inspection information collection device is arranged under the anti-static floor of the inspection area of ​​the corresponding equipment to be inspected; The at least one sensor includes at least one pressure sensor, and each of the pressure sensors is respectively placed at an edge point of the antistatic floor.

6. The system according to claim 5, characterized in that The antistatic floor is a double-layer floor, and the at least one sensor is placed between the double-layer floors.

7. The system according to claim 5, characterized in that The pressure sensor includes a set of sensing resistors; When the inspection information collection device includes at least four groups of inductive resistors, the at least four groups of inductive resistors are electrically connected in a bridge type, and the controller is electrically connected in series between two diagonal points; The controller is configured to control the power supply unit to supply power to the timer and the transceiver when a voltage difference between the two diagonal points is greater than a preset threshold.

8. The system according to claim 7, characterized in that The group of sensing resistors includes a positive strain resistor and a negative strain resistor, and the second end of the positive strain resistor is electrically connected to the first end of the negative strain resistor; When the positive strain resistors in the adjacent first and second groups of sensing resistors are adjacent, the first ends of the positive strain resistors in the two groups of sensing resistors are electrically connected; When the negative strain resistors are adjacent to each other, the second ends of the negative strain resistors in the two groups of sensing resistors are electrically connected.

9. The system according to claim 8, characterized in that The inspection information collection device includes a third group of non-adjacent inductive resistors and a fourth group of inductive resistors; In the third group of inductive resistors, the second end of the positive strain resistor is electrically connected to the positive output end of the power supply unit; In the fourth group of induction resistors, the second end of the positive strain resistor is electrically connected to the negative output end of the power supply unit; In a fifth group of sensing resistors in which the positive strain resistors of the third group of sensing resistors and the negative strain resistors of the fourth group of sensing resistors are electrically connected in series, the second end of the positive strain resistor is electrically connected to the first signal input end of the controller; In the sixth group of induction resistors, in which the negative strain resistors of the third group of induction resistors and the positive strain resistors of the fourth group of induction resistors are electrically connected in series, the second end of the positive strain resistor is electrically connected to the second signal input end of the controller.

10. The system according to claim 2, characterized in that The equipment to be tested includes an air conditioner, an uninterruptible power supply device or an intelligent power distribution cabinet; The air conditioner comprises an air conditioner data collector, the air conditioner data collector is electrically connected to the transceiver, and the transceiver is configured to obtain the operating state information and the surrounding environment information of the air conditioner from the air conditioner data collector; The uninterruptible power supply device comprises a monitoring device, the monitoring device is electrically connected to the transceiver, and the transceiver is configured to obtain the operating status information of the uninterruptible power supply device from the monitoring device; The intelligent power distribution cabinet comprises a communication module, the communication module is in communication connection with the transceiver, and the transceiver is configured to obtain power distribution information of the intelligent power distribution cabinet from the communication module.

Citation Information

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