Leakage water detection method and device based on leakage water detection equipment, electronic equipment and storage medium

By combining the water collection structure and the water level measurement structure, a leakage warning signal is generated and sent, which solves the problem of low accuracy in detecting leakage in power distribution rooms and power well rooms, and realizes timely defect warning and safety assurance.

CN120274956BActive Publication Date: 2026-03-20HUIZHOU POWER SUPPLY BUREAU OF GUANGDONG POWER GRID CO LTD
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Patent Information

Application Number
CN202510292635.1
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-12
Publication Date
2026-03-20
Estimated Expiration
2045-03-12

AI Technical Summary

Technical Problem

In existing technologies, the accuracy of water leakage detection in power distribution rooms and electrical well rooms is low, which leads to the failure to detect water leakage in time, potentially causing busbar burnout and prolonged power outages, resulting in a high risk of complaints.

Method used

The method based on water leakage detection equipment utilizes a water collection structure and a water level measurement structure, including a water level sensor and a conductive strip, to generate a first warning signal and a second warning signal. The water level sensor detects the water level and speed of the leaking water, and generates and sends the warning signal to the monitoring equipment.

Benefits of technology

It improved the accuracy of water leakage detection, promptly alerted maintenance personnel and property management, reduced the occurrence and escalation of accidents, and ensured the safety of power distribution rooms and electrical well rooms.

✦ Generated by Eureka AI based on patent content.

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Abstract

Embodiments of the present application provide a leakage water detection method and device based on a leakage water detection apparatus, electronic equipment and a storage medium. It relates to the technical field of power grid. The leakage water detection apparatus comprises a water collecting structure and a water level measuring structure, the water level measuring structure comprising a water level sensor, a conductive strip and electronic equipment; the method comprises: in the process of accumulating water when the actual water level of the leakage water reaches a preset dangerous warning water level, if the actual water level of the leakage water is detected by the water level sensor to reach the preset dangerous warning water level, the leakage water is discharged from the water collecting structure; according to the emptying water collecting structure and the conductive strip, a first warning signal is generated. In the process of accumulating water, if the leakage water speed of the leakage water is detected by the water level sensor to be greater than or equal to a preset leakage threshold, a second warning signal is generated. The first warning signal and / or the second warning signal is sent to a preset monitoring device. The method is used to improve the detection accuracy of the leakage water generated in the power distribution room and the electric well room.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of power grid, and in particular to a leakage water detection method and device based on a leakage water detection equipment, an electronic device and a storage medium. BACKGROUND

[0002] At present, with the rapid development of economy, there are more and more high-rise communities, and water leakage often occurs in power distribution rooms and electric well rooms. At present, the power distribution room can only be monitored by patrol, and the ceiling condition is easy to be ignored, and the timely discovery of water leakage in the power distribution room depends on the qualifications and patrol habits of the operation and maintenance personnel. The electric well room is usually supervised by the property, and the electrician level of each community is uneven, and the water leakage in the electric well room is not discovered in time, which leads to the burning of the bus duct, long power outage time, high complaint risk, and inaccurate judgment of suspected water leakage in the ceiling and other positions.

[0003] Therefore, there is an urgent need for a method that can accurately determine whether water leakage occurs in the ceiling and other positions. SUMMARY

[0004] The embodiments of the present application provide a leakage water detection method and device based on a leakage water detection equipment, an electronic device and a storage medium, so as to improve the detection accuracy of water leakage in power distribution rooms and electric well rooms.

[0005] In a first aspect, the embodiments of the present application provide a leakage water detection method based on a leakage water detection equipment, the leakage water detection equipment comprising a water collecting structure and a water level measuring structure, the water level measuring structure comprising a water level sensor, a conductive strip and an electronic device; the method is applied to the electronic device; and the method comprises:

[0006] In the process of accumulating water when the actual water level of the leakage water reaches the preset dangerous warning water level, if the actual water level of the leakage water reaches the preset dangerous warning water level is detected by the water level sensor, the leakage water is discharged from the water collecting structure; and a first warning signal is generated according to the emptying water collecting structure and the conductive strip;

[0007] In the process of accumulating water, if the water leakage speed of the leakage water is greater than or equal to the preset water leakage threshold value is detected by the water level sensor, a second warning signal is generated;

[0008] The first warning signal and / or the second warning signal is sent to a preset monitoring device.

[0009] In a possible implementation, the water collecting structure comprises a first structure and a second structure, the first structure is connected with the second structure; the first structure is a multi-face polyhedron with one open face, the one open face faces the gap where the leakage water occurs; and the second structure is a cylindrical body;

[0010] The water level measuring structure comprises at least one water level sensor; the water level sensor is located at the inner side of the cylinder, and the height of the water level sensor at the inner side is a self-defined height.

[0011] In a possible implementation, the water level measuring structure comprises at least one water level sensor; a first water level sensor is arranged at the preset dangerous warning water level;

[0012] In the water accumulation process of the actual water level of the leakage water reaching the preset dangerous warning water level, if the actual water level of the leakage water reaching the preset dangerous warning water level is detected by the water level sensor, the leakage water is discharged from the water collecting structure, comprising:

[0013] In the water accumulation process of the actual water level of the leakage water reaching the preset dangerous warning water level, if the actual water level of the leakage water reaching the preset dangerous warning water level is detected by the first water level sensor, the leakage water is discharged from the water collecting structure.

[0014] In a possible implementation, the conductive strip comprises an anode conductive strip and a cathode conductive strip; the water level measuring structure comprises a power supply;

[0015] The positive pole of the power supply is connected with the anode conductive strip, and the anode conductive strip is located in the interior of the cylinder; the negative pole of the power supply is connected with the cathode conductive strip, and the cathode conductive strip is located in the interior of the cylinder;

[0016] The first warning signal is generated according to the emptied water collecting structure and the conductive strip, comprising:

[0017] The first warning signal is generated according to the emptied water collecting structure, the anode conductive strip, and the cathode conductive strip.

[0018] In a possible implementation, the water level measuring structure comprises a first water level sensor and a second water level sensor; the first water level sensor is located at the preset dangerous warning water level, and the second water level sensor is located at a preset distance below the dangerous warning water level;

[0019] In the water accumulation process, if the leakage water speed of the leakage water is greater than or equal to a preset leakage threshold value, a second warning signal is generated, comprising:

[0020] In the water accumulation process, if the actual water level of the leakage water reaches the preset distance is detected by the second water level sensor, and the actual water level of the leakage water reaching the dangerous warning water level is detected by the first water level sensor, a time difference of the actual water level rising from the preset distance to the dangerous warning water level is determined.

[0021] The leakage rate is determined based on the time difference, the first preset resistance value corresponding to the preset distance, and the second preset resistance value corresponding to the danger warning water level.

[0022] If the leakage rate of the leaking water is determined to be greater than or equal to a preset leakage threshold, a second warning signal is generated.

[0023] In one possible implementation, if the leakage rate of the leaking water is determined to be greater than or equal to a preset leakage threshold, a second warning signal is generated, including:

[0024] The leakage rate of the leaking water is compared with a preset leakage threshold; wherein the leakage threshold includes thresholds for multiple warning levels.

[0025] If the leakage rate of the leaking water is determined to be greater than or equal to the threshold of any warning level, then a second warning signal is generated based on the warning level corresponding to the threshold.

[0026] In one possible implementation, the method further includes:

[0027] Based on the first warning signal and / or the second warning signal, control a preset buzzer to sound an alarm.

[0028] Secondly, embodiments of this application provide a water leakage detection device based on a water leakage detection equipment. The water leakage detection equipment includes a water collection structure and a water level measurement structure. The water level measurement structure includes a water level sensor, a conductive strip, and electronic equipment. The device includes:

[0029] The drainage module is used to discharge the leaking water from the water collection structure when the actual water level of the leaking water reaches the preset danger warning water level during the water accumulation process. If the water level sensor detects that the actual water level of the leaking water has reached the preset danger warning water level, the module will discharge the leaking water from the water collection structure.

[0030] The first generation module is used to generate a first warning signal based on the drained water collection structure and the conductive strip;

[0031] The second generation module is used to generate a second warning signal if the leakage rate of the leaking water detected by the water level sensor is greater than or equal to a preset leakage threshold during the water accumulation process.

[0032] The sending module is used to send the first warning signal and / or the second warning signal to a preset monitoring device.

[0033] In a possible implementation, the water collecting structure comprises a first structure and a second structure, the first structure is connected with the second structure; the first structure is a polyhedron with one open face, the one open face faces the gap where the leakage water occurs; the second structure is a cylinder;

[0034] The water level measuring structure comprises at least one water level sensor; the water level sensor is located on the inner side of the cylinder, and the height of the water level sensor on the inner side is a self-defined height.

[0035] In a possible implementation, the water level measuring structure comprises at least one water level sensor; a first water level sensor is arranged at the preset dangerous warning water level;

[0036] The drainage module, in particular, is used for:

[0037] In the water accumulation process of the actual water level of the leakage water reaching the preset dangerous warning water level, if the actual water level of the leakage water reaching the preset dangerous warning water level is detected by the first water level sensor, the leakage water is drained out of the water collecting structure.

[0038] In a possible implementation, the conductive strip comprises an anode conductive strip and a cathode conductive strip; the water level measuring structure comprises a power supply;

[0039] The positive electrode of the power supply is connected with the anode conductive strip, and the anode conductive strip is located in the interior of the cylinder; the negative electrode of the power supply is connected with the cathode conductive strip, and the cathode conductive strip is located in the interior of the cylinder;

[0040] The first generating module, in particular, is used for:

[0041] According to the drained water collecting structure, the anode conductive strip, and the cathode conductive strip, a first warning signal is generated.

[0042] In a possible implementation, the water level measuring structure comprises a first water level sensor and a second water level sensor; the first water level sensor is located at the preset dangerous warning water level, and the second water level sensor is located at a preset distance below the dangerous warning water level;

[0043] The second generating module comprises:

[0044] The first determining unit is configured to, in the water accumulation process, if the actual water level of the leakage water reaching the preset distance is detected by the second water level sensor, and the actual water level of the leakage water reaching the dangerous warning water level is detected by the first water level sensor, determine a time difference from when the actual water level rises from the preset distance to the dangerous warning water level.

[0045] The second determining unit is configured to determine a water leakage speed according to the time difference, a first preset resistance value corresponding to the preset distance, and a second preset resistance value corresponding to the dangerous warning water level.

[0046] The third determining unit is configured to generate a second warning signal if it is determined that the water leakage speed of the seepage water is greater than or equal to a preset water leakage threshold.

[0047] In a possible implementation, the third determining unit is specifically configured to:

[0048] compare the water leakage speed of the seepage water with the preset water leakage threshold, wherein the water leakage threshold includes threshold values of multiple warning levels;

[0049] generate the second warning signal according to a warning level corresponding to the threshold value greater than or equal to if it is determined that the water leakage speed of the seepage water is greater than or equal to the threshold value of any warning level.

[0050] In a possible implementation, the apparatus is further specifically configured to:

[0051] control a preset buzzer to alarm based on the first warning signal and / or the second warning signal.

[0052] In a third aspect, an embodiment of the present application provides an electronic device, including: a memory, a processor;

[0053] The memory stores computer execution instructions.

[0054] The processor executes the computer execution instructions stored in the memory, so that the processor executes various possible implementations of the first aspect.

[0055] In a fourth aspect, an embodiment of the present application provides a computer readable storage medium, which stores computer execution instructions, and the computer execution instructions are executed by a processor to implement various possible implementations of the first aspect.

[0056] In a fifth aspect, an embodiment of the present application provides a computer program product, which includes a computer program, and the computer program is executed by a processor to implement various possible implementations of the first aspect.

[0057] The embodiment of the present application provides a leakage water detection method, device, electronic equipment and storage medium based on a leakage water detection equipment. The leakage water detection equipment comprises a water collecting structure and a water level measuring structure. The water level measuring structure comprises a water level sensor, a conductive strip and an electronic equipment. In the water accumulation process of the actual water level of the leakage water reaching a preset dangerous warning water level, if the actual water level of the leakage water reaching the preset dangerous warning water level is detected by the water level sensor, the leakage water is discharged from the water collecting structure; and the first warning signal is generated according to the emptying water collecting structure and the conductive strip. In the water accumulation process, if the leakage water speed detected by the water level sensor is greater than or equal to the preset leakage threshold, the second warning signal is generated. The first warning signal and / or the second warning signal is sent to the preset monitoring equipment. In the scheme, the water level measuring structure measures the water level of the water collecting structure. If there is leakage, the first warning signal and / or the second warning signal is generated, and the first warning signal and / or the second warning signal is immediately sent to the preset monitoring equipment, so that the operation and maintenance personnel of the monitoring equipment can quickly obtain the defect early warning according to the received warning signal, the property or the resident can quickly access when hearing the buzzer alarm, accidents are avoided and expanded, and the effect of improving the detection accuracy of the leakage water of the power distribution room and the electric well room is achieved. BRIEF DESCRIPTION OF DRAWINGS

[0058] The accompanying drawings, which are incorporated into and form a part of the specification, illustrate preferred embodiments consistent with the present application and, together with the description, serve to explain the principles of the application.

[0059] Figure 1 A leakage water detection method based on a leakage water detection equipment provided by the embodiment of the present application Figure One ;

[0060] Figure 2 A top view structure diagram of a leakage water detection equipment based on the leakage water detection equipment provided by the embodiment of the present application

[0061] Figure 3 A front view structure diagram of a leakage water detection equipment based on the leakage water detection equipment provided by the embodiment of the present application

[0062] Figure 4 Another leakage water detection method based on a leakage water detection equipment provided by the embodiment of the present application Figure Two ;

[0063] Figure 5 A cross-sectional view of a leakage water detection equipment based on the leakage water detection equipment provided by the embodiment of the present application

[0064] Figure 6 A scene diagram of a leakage water detection method based on a leakage water detection equipment provided by the embodiment of the present application Figure Three ;

[0065] Figure 7 A structural schematic diagram of a leakage water detection device based on a leakage water detection equipment is provided for an embodiment of the present application.

[0066] Figure 8 A structural schematic diagram of another leakage water detection device based on a leakage water detection equipment is provided for an embodiment of the present application.

[0067] Figure 9 A structural schematic diagram of an electronic device is provided for an embodiment of the present application.

[0068] The specific embodiments of the present application have been shown through the above-described drawings, and will be described in more detail hereinafter. These drawings and written descriptions are not intended to limit the scope of the concept 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

[0069] The exemplary embodiments will be described in detail herein with reference to the attached drawings. In the following description, the same numbers are used to indicate the same or similar components. The embodiments described in the following exemplary embodiments are not intended to represent all embodiments consistent with the present application. Rather, they are merely examples of apparatus and methods consistent with some aspects of the present application as detailed in the appended claims.

[0070] At present, with the rapid economic development, there are more and more high-rise communities, and water leakage often occurs in power distribution rooms and electric well rooms. At present, the power distribution room can only be monitored by patrol, and the ceiling condition is easy to be ignored, and timely discovery of power distribution room leakage depends on the qualifications and patrol habits of operation and maintenance personnel. And the electric well room is usually taken care of by the property, and the electrician level of each community is uneven, and the water and leakage of the electric well room are not discovered in time, which leads to the burning of the bus duct, long power outage time, high complaint risk, and the suspected leakage of the ceiling and other positions cannot be accurately judged. Therefore, there is an urgent need for a method that can accurately determine whether the ceiling and other positions produce leakage.

[0071] In view of the above scenario, in the prior art, there is a technical problem of low detection accuracy of leakage water generated in the power distribution room and the electric well room.

[0072] The leakage water detection method based on the leakage water detection equipment provided by the present application solves the technical problem of low detection accuracy of leakage water generated in the power distribution room and the electric well room.

[0073] The technical solution of this application and how the technical solution of this application solves the above-mentioned technical problems are described in detail below with specific embodiments. These specific embodiments can be combined with each other, and the same or similar concepts or processes may not be described again in some embodiments. The embodiments of this application will now be described with reference to the accompanying drawings.

[0074] Figure 1 A flowchart illustrating a water leakage detection method based on a water leakage detection device provided in this application. Figure One The leakage detection equipment includes a water collection structure and a water level measurement structure. The water level measurement structure includes a water level sensor, a conductive strip, and electronic equipment. The method is applied to electronic equipment; such as... Figure 1 As shown, the method includes:

[0075] S101. During the process of water accumulation where the actual water level of the leaking water reaches the preset danger warning water level, if the water level sensor detects that the actual water level of the leaking water has reached the preset danger warning water level, the leaking water will be discharged from the water collection structure; and a first warning signal will be generated based on the emptied water collection structure and the conductive strip.

[0076] For example, the executing entity of this embodiment can be an electronic device, a terminal device, a water leakage detection device or equipment based on a water leakage detection device, or other devices or equipment capable of executing this embodiment, and there is no limitation thereto. In this embodiment, the executing entity is described as an electronic device.

[0077] First, the leakage detection equipment includes a water collection structure and a water level measurement structure. The water collection structure comprises a first structure and a second structure, which are connected and interconnected. The first structure is a polyhedron with one open side facing the leak. The second structure is a cylinder. The water level measurement structure includes at least one water level sensor, a conductive strip, and electronic equipment. The water level sensor is fixed to the inside of the cylinder, and its height within the cylinder is user-defined and not limited. The water level sensor is used to detect whether the actual water level of the leak has reached the location of the sensor. A preset danger warning water level is located inside the cylinder and is user-defined; this level is also not limited.

[0078] In this step, a water level sensor is installed at a preset danger warning water level. During the accumulation of water as the actual water level of the leak reaches the preset danger warning water level, if the water level sensor detects that the actual water level of the leak has reached the preset danger warning water level, a preset drain outlet is opened to discharge the leaking water into the water collection structure. There is at least one preset drain outlet, and its location can be the bottom of a cylinder, etc., without limitation. Then, based on the emptied water collection structure and the conductive strip located inside the cylinder, a first warning signal is generated. This first warning signal indicates that the actual water level has reached the preset danger warning water level.

[0079] For example, Figure 2 A top view of a water leakage detection device provided in this application embodiment, as shown below. Figure 2 As shown, the system includes a rectangular water collection structure and a cylindrical base for collecting water. One side has a rectangular opening. The water collection structure creates a low position through slopes and grooves, using gravity to collect leaking water into the cylindrical base (i.e., the measuring box). The water collection structure can be made square, rectangular, or adjusted according to the size of the cracks to ensure that leaks in the roof and ceiling do not continue, while also protecting and shielding electrically operated equipment below. When the collected leaking water reaches a preset danger warning level, the drain outlet opens, discharging the accumulated water outside the electrical room, while a counter records the number of drainage cycles. Figure 3 A front view structural diagram of a water leakage detection device provided in this application embodiment is shown below. Figure 3 As shown, this includes the front view of the water collection structure and the front view of the cylinder.

[0080] S102. During the water accumulation process, if the water level sensor detects that the leakage rate of the leaking water is greater than or equal to the preset leakage threshold, a second warning signal is generated.

[0081] Exemplarily, in the cylinder, in order to monitor the actual water level in real time, a first water level sensor 1 can be arranged at a preset dangerous warning water level, and a first preset resistance value 1 is arranged when the actual water level reaches the dangerous warning water level. Water level sensors can also be installed at other water levels, for example, a second water level sensor 2 is installed at a preset distance below the dangerous warning water level, and a second preset resistance value 2 is arranged when the actual water level reaches the first preset distance. During the water accumulation process, if the actual water level is detected to rise to the first preset distance by the second water level sensor 2, and the actual water level is detected to rise to the dangerous warning water level by the first water level sensor 1, then the leakage rate of the leakage water is determined according to the first preset resistance value 1, the second preset resistance value 2, and the time difference between the actual water level rising from the preset distance to the dangerous warning water level, and if the leakage rate of the leakage water is greater than or equal to the preset leakage threshold value detected by the water level sensor, a second warning signal is generated, and the second warning signal is used to indicate that the leakage rate of the leakage water has reached the preset leakage rate threshold value.

[0082] S103, send the first warning signal and / or the second warning signal to the preset monitoring device.

[0083] Exemplarily, the first warning signal and / or the second warning signal are sent to the preset monitoring device, thereby reminding the user in time that leakage water has occurred.

[0084] The leakage water detection method based on the leakage water detection device provided by the embodiment of the present application includes a water collecting structure and a water level measuring structure, the water level measuring structure includes a water level sensor, a conductive strip and an electronic device; during the water accumulation process when the actual water level of the leakage water reaches a preset dangerous warning water level, if the actual water level of the leakage water reaches the preset dangerous warning water level is detected by the water level sensor, the leakage water is discharged from the water collecting structure; and a first warning signal is generated according to the emptying of the water collecting structure and the conductive strip. If the leakage rate of the leakage water is greater than or equal to the preset leakage threshold value detected by the water level sensor during the water accumulation process, a second warning signal is generated. The first warning signal and / or the second warning signal are sent to the preset monitoring device. In the present scheme, the water level measuring structure measures the water level of the water collecting structure, generates the first warning signal and / or the second warning signal if there is leakage, immediately sends the first warning signal and / or the second warning signal to the preset monitoring device, and then the operation and maintenance personnel of the monitoring device can quickly obtain the defect early warning according to the received warning signal, the property or the resident can quickly access when hearing the buzzer alarm, accidents are avoided and expanded, and the effect of improving the detection accuracy of the leakage water generated in the power distribution room and the electric well room is achieved.

[0085] Figure 4 The flowchart of the leakage water detection method based on the leakage water detection device provided by the present applicationFigure Two As shown in Figure 4 the embodiment, on the basis of the Figure 1 embodiment, the leakage water detection method based on the leakage water detection device is described in detail, and the method comprises the following steps:

[0086] S201, in the process of the actual water level of the leakage water reaching the preset dangerous warning water level, if the actual water level of the leakage water reaching the preset dangerous warning water level is detected by the water level sensor, the leakage water is discharged from the water collecting structure.

[0087] In one example, the water collecting structure comprises a first structure and a second structure, the first structure is connected with the second structure; the first structure is a polyhedron with one open side, and the open side faces the gap where the leakage water occurs; the second structure is a cylinder; the water level measuring structure comprises at least one water level sensor; the water level sensor is located on the inner side of the cylinder, and the height of the water level sensor on the inner side is a self-defined height.

[0088] In one example, the water level measuring structure comprises at least one water level sensor; a first water level sensor is arranged at the preset dangerous warning water level; S201 comprises: in the process of the actual water level of the leakage water reaching the preset dangerous warning water level, if the actual water level of the leakage water reaching the preset dangerous warning water level is detected by the first water level sensor, the leakage water is discharged from the water collecting structure.

[0089] Exemplarily, this step can refer to step 101 in Figure 1 , and will not be described here.

[0090] S202, generating a first warning signal according to the emptied water collecting structure and the conductive strip.

[0091] In one example, the conductive strip comprises an anode conductive strip and a cathode conductive strip; the water level measuring structure comprises a power supply; the positive electrode of the power supply is connected with the anode conductive strip, and the anode conductive strip is located in the interior of the cylinder; the negative electrode of the power supply is connected with the cathode conductive strip, and the cathode conductive strip is located in the interior of the cylinder; S202 comprises: generating a first warning signal according to the emptied water collecting structure, the anode conductive strip and the cathode conductive strip.

[0092] Exemplarily, Figure 5 a cross-sectional view based on the leakage water detection device provided by the embodiment of the present application, as shown in Figure 5As shown, the cross-sectional view of the cylinder is shown; the conductive strips include an anode conductive strip and a cathode conductive strip, both of which are located inside the cylinder, which can be the side or bottom of the inside of the cylinder, and the anode conductive strip and the cathode conductive strip can be located at the same horizontal level or at different heights, which is not limited. The water level measuring structure is provided with a power supply, the positive electrode of the power supply is connected with the anode conductive strip, and the negative electrode of the power supply is connected with the cathode conductive strip. The power supply can be a power supply device such as a battery, which is not limited. For example, in order to make the detection of the leaking water more accurate, the negative and positive electrodes of the water level measurement, i.e. the anode conductive strip and the cathode conductive strip, can be arranged at the bottom of the cylinder of the water collecting structure, so as to facilitate the first warning of a small amount of water leakage; then the height distance between the electrode and the bottom can be manually adjusted, and when the water level rises to a certain position, the alarm is triggered again; the highest position can be adjusted to the dangerous warning water level. If water leakage occurs, the water level line of the leaking water in the cylinder of the water level measuring structure rises, and rises to the preset dangerous warning water level, at which time the loop is closed, triggering the alarm, transmitting information through the communication loop, and the buzzer alarm.

[0093] In this step, the device is powered by the power supply. The anode conductive strip, the cathode conductive strip, the leaking water, and the power supply form a loop. When there is no leaking water, the loop is open. When there is leaking water, the leaking water collected in the water collecting structure can close the positive and negative electrodes of the power supply to form a loop and send a water leakage signal. Therefore, a first warning signal, i.e. a water leakage signal, can be generated based on the emptying of the water collecting structure, the anode conductive strip, and the cathode conductive strip. For example, as shown in the figure, the end of the cathode conductive strip is located at the preset dangerous warning water level inside the cylinder, and the anode conductive strip is located above the preset dangerous warning water level. If water leakage occurs, the water level line of the leaking water in the cylinder of the water level measuring structure rises, and rises to the preset dangerous warning water level, at which time the loop is closed, triggering the alarm, transmitting information through the preset communication loop, and the buzzer alarm. Figure 5

[0094] It should be noted that, Figure 5 Only one case is shown, and the cathode conductive strip and the anode conductive strip can also be arranged at other various different custom positions, so that an alarm can be triggered each time the leaking water rises, which is not limited.

[0095] S203, in the process of water accumulation, if the water leakage speed of the leaking water detected by the water level sensor is greater than or equal to the preset water leakage threshold, a second warning signal is generated.

[0096] ​In one example, the water level measuring structure includes a first water level sensor and a second water level sensor. The first water level sensor is located at a preset dangerous warning water level, and the second water level sensor is located at a preset distance below the dangerous warning water level. In S203, if the actual water level of the leakage water reaches the preset distance detected by the second water level sensor and the actual water level of the leakage water reaches the dangerous warning water level detected by the first water level sensor during the water accumulation process, the time difference from the preset distance to the dangerous warning water level is determined. According to the time difference, the first preset resistance value corresponding to the preset distance, and the second preset resistance value corresponding to the dangerous warning water level, the leakage water speed is determined. If the leakage water speed of the leakage water is greater than or equal to the preset leakage threshold, a second warning signal is generated.

[0097] In one example, if the leakage water speed is greater than or equal to the preset leakage threshold, a second warning signal is generated, which includes comparing the leakage water speed with the preset leakage threshold. The leakage threshold includes multiple warning level thresholds. If the leakage water speed is greater than or equal to any warning level threshold, a second warning signal is generated according to the warning level corresponding to the greater than or equal to threshold.

[0098] In one example, the water level measuring structure reflects the water level rising speed by Ohm value change, denoted as XΩ / h, according to the characteristic that the resistance value between the electrodes decreases with the increase of the liquid between the two electrodes. This characteristic is a nonlinear change, which is calibrated by the construction installer on site before being enabled. When the water level rising speed XΩ / h increases sharply, it indicates that the leakage situation is getting worse. The water level measuring structure includes a first water level sensor 1 and a second water level sensor 2. The first water level sensor 1 is located at a preset dangerous warning water level, and the second water level sensor 2 is located at a preset distance below the dangerous warning water level. The first water level sensor 1 is provided with a first preset resistance value 1 when the actual water level reaches the dangerous warning water level, and the second water level sensor 2 is provided with a second preset resistance value 2 when the actual water level reaches the first preset distance. In this step, if the actual water level of the leakage water reaches the preset distance detected by the second water level sensor 2 and the actual water level of the leakage water reaches the preset dangerous warning water level detected by the first water level sensor 1 during the water accumulation process, the time difference t from the preset distance to the dangerous warning water level is determined. According to the time difference, the first preset resistance value 1 corresponding to the preset distance, and the second preset resistance value 2 corresponding to the dangerous warning water level, the leakage water speed X is calculated as (second preset resistance value 2-first preset resistance value 1) divided by t. The leakage water speed X of the leakage water is compared with the preset leakage threshold. If the leakage water speed X of the leakage water is greater than or equal to the preset leakage threshold, a second warning signal is generated.

[0099] Further, the leakage speed of the leaking water can be compared with a preset leakage threshold. The leakage threshold includes thresholds of multiple warning levels. If it is determined that the leakage speed of the leaking water is greater than or equal to the threshold of any warning level, a second warning signal is generated according to the warning level corresponding to the threshold greater than or equal to.

[0100] S204, the first warning signal and / or the second warning signal are sent to a preset monitoring device.

[0101] Exemplarily, the first warning signal and / or the second warning signal each include a warning signal and a position number. The electronic device can automatically send the first warning signal and / or the second warning signal to a preset monitoring device, such as a on-duty mobile phone of a power operation and maintenance personnel, through a wireless network, and simultaneously deliver the first warning signal and / or the second warning signal to a preset property monitoring system through an optical fiber. The water leakage signal triggers the first segment of the alarm, i.e., the first warning signal, by the water level measuring structure, and triggers the second segment of the alarm, i.e., the second warning signal, by the leakage speed XΩ / h greater than the preset leakage speed threshold, for monitoring the water leakage and the deterioration of the water leakage. The two segments of the alarm can exist simultaneously or be covered by the second segment of the alarm, and the monitoring device can distinguish the two signals through yellow and red lights. The alarm signal cannot be reset remotely and needs to be manually reset by personnel on site, thereby ensuring timely checking and repairing of the leaking water.

[0102] S205, based on the first warning signal and / or the second warning signal, a preset buzzer is controlled to alarm.

[0103] Exemplarily, the electronic device can control the preset buzzer to alarm based on the first warning signal and / or the second warning signal, so that an alarm buzzer is emitted when a fault occurs. For example, when a fault buzzer is emitted, nearby property patrol personnel, residents, and operation and maintenance personnel can further shorten the fault positioning and disposal time, thereby facilitating people to find abnormalities.

[0104] The leakage water detection method based on the leakage water detection equipment provided in the embodiment of the application, in the process of the actual water level of the leakage water reaching the preset dangerous warning water level, if the actual water level of the leakage water reaching the preset dangerous warning water level is detected by the water level sensor, the leakage water is discharged from the water collecting structure. The first warning signal is generated according to the emptying water collecting structure and the conductive strip. In the process of water accumulation, if the leakage water speed of the leakage water is greater than or equal to the preset leakage threshold value, the second warning signal is generated. The first warning signal and / or the second warning signal is sent to the preset monitoring equipment. Based on the first warning signal and / or the second warning signal, the preset buzzer is controlled to alarm. In the scheme, the water level measuring structure measures the water level of the water collecting structure, generates the first warning signal and / or the second warning signal if there is leakage, immediately sends the first warning signal and / or the second warning signal to the preset monitoring equipment, and then the operation and maintenance personnel of the monitoring equipment can quickly obtain the defect early warning according to the received warning signal, the property or the resident can quickly access after hearing the buzzer alarm, accidents are avoided and expanded, and the effect of improving the detection accuracy of the leakage water generated in the power distribution room and the electric well room is achieved.

[0105] On the basis of the above embodiment, Figure 6 The scene of the leakage water detection method based on the leakage water detection equipment provided in the embodiment of the application is shown in the figure Figure Three As Figure 6 shown, it includes a water collecting structure, a water level measuring structure, a loop conduction if leakage water occurs, a preset communication module triggered to send alarm information and location, and a buzzer alarm.

[0106] On the basis of the above embodiment, the application provides a leakage monitoring system, which includes a water collecting structure, a water level measuring structure, a wireless communication module and a buzzer alarm device. The water collecting structure can be installed at a position prone to leakage water, such as the ceiling above the electric room, without limitation on the position. The water level measuring structure measures the water level in the water collecting structure, and immediately sends the received data to the operation and maintenance personnel and issues a buzzer alarm if there is leakage. The operation and maintenance personnel can quickly obtain the defect early warning according to the received signal and the device number, the property or the resident can quickly access after hearing the buzzer alarm, and accidents are avoided and expanded.

[0107] Figure 7 The structure of the leakage water detection device based on the leakage water detection equipment provided in the application is shown in the figure. The leakage water detection equipment includes a water collecting structure and a water level measuring structure. The water level measuring structure includes a water level sensor, a conductive strip and an electronic device. As Figure 7 shown, the leakage water detection device 40 based on the leakage water detection equipment provided in the embodiment includes:

[0108] The drainage module 41 is configured to drain the seepage water out of the water collecting structure if the actual water level of the seepage water reaches the preset dangerous warning water level during the water accumulation process.

[0109] The first generation module 42 is configured to generate a first warning signal according to the drained water collecting structure and the conductive strip.

[0110] The second generation module 43 is configured to generate a second warning signal if the water leakage speed of the seepage water detected by the water level sensor is greater than or equal to the preset water leakage threshold during the water accumulation process.

[0111] The sending module 44 is configured to send the first warning signal and / or the second warning signal to a preset monitoring device.

[0112] Figure 8 Another structure diagram of the seepage water detection device provided by the embodiment of the present application is shown in FIG. 4. Figure 7 As shown in FIG. 5, the water collecting structure includes a first structure and a second structure, and the first structure is connected with the second structure. Figure 8 The first structure is a polyhedron with one open face, and the open face faces the gap where the seepage water occurs.

[0113] The water level measuring structure includes at least one water level sensor. The water level sensor is located on the inner side of the cylindrical body, and the height of the water level sensor on the inner side is a self-defined height.

[0114] In a possible implementation, the water level measuring structure includes at least one water level sensor. A first water level sensor is arranged at the preset dangerous warning water level.

[0115] The drainage module 41 is specifically configured to:

[0116] The drainage module 41 is configured to drain the seepage water out of the water collecting structure if the actual water level of the seepage water reaches the preset dangerous warning water level during the water accumulation process.

[0117] In a possible implementation, the conductive strip includes an anode conductive strip and a cathode conductive strip. The water level measuring structure includes a power supply.

[0118] The positive pole of the power supply is connected with the anode conductive strip, and the anode conductive strip is located in the interior of the cylindrical body. The negative pole of the power supply is connected with the cathode conductive strip, and the cathode conductive strip is located in the interior of the cylindrical body.

[0119] The first generation module 42 is specifically configured to:

[0120] According to the emptying water collecting structure, the anode conductive strip, and the cathode conductive strip, a first warning signal is generated.

[0121] In a possible implementation, the water level measuring structure includes a first water level sensor and a second water level sensor; the first water level sensor is located at a preset dangerous warning water level, and the second water level sensor is located at a preset distance below the dangerous warning water level.

[0122] The second generating module 43 includes:

[0123] The first determining unit 431 is configured to, during the water accumulation process, if it is detected by the second water level sensor that the actual water level of the leakage water reaches the preset distance and it is detected by the first water level sensor that the actual water level of the leakage water reaches the dangerous warning water level, determine a time difference between when the actual water level rises from the preset distance to the dangerous warning water level.

[0124] The second determining unit 432 is configured to determine a leakage water speed according to the time difference, a first preset resistance value corresponding to the preset distance, and a second preset resistance value corresponding to the dangerous warning water level.

[0125] The third determining unit 433 is configured to, if it is determined that the leakage water speed of the leakage water is greater than or equal to a preset leakage water threshold, generate a second warning signal.

[0126] In a possible implementation, the third determining unit 433 is specifically configured to:

[0127] compare the leakage water speed of the leakage water with the preset leakage water threshold; wherein the leakage water threshold includes threshold values of multiple warning levels.

[0128] If it is determined that the leakage water speed of the leakage water is greater than or equal to a threshold value of any warning level, the second warning signal is generated according to a warning level corresponding to the greater-than-or-equal-to threshold value.

[0129] In a possible implementation, the apparatus is specifically configured to:

[0130] The preset buzzer is controlled to perform alarm based on the first warning signal and / or the second warning signal.

[0131] The apparatus provided in this embodiment can execute the method provided in the method embodiments, and has similar implementation principles and technical effects, which will not be described here in detail.

[0132] Figure 9 The structural schematic diagram of the electronic device provided in this application is shown in FIG. 1. Figure 9As shown, the electronic device 50 provided by the embodiment includes at least one processor 501 and a memory 502. Optionally, the device 50 further includes a communication component 503. Wherein, the processor 501, the memory 502 and the communication component 503 are connected through a bus 504.

[0133] In the process of implementation, the at least one processor 501 executes the computer execution instructions stored in the memory 502, so that the at least one processor 501 executes the above-mentioned method.

[0134] The specific implementation process of the processor 501 can refer to the above-mentioned method embodiment, which has similar implementation principles and technical effects, and will not be described here in detail.

[0135] In the above-mentioned embodiment, it should be understood that the processor can be a central processing unit (English: Central Processing Unit, for short: CPU), and can also be other general-purpose processors, digital signal processors (English: Digital Signal Processor, for short: DSP), application specific integrated circuits (English: Application Specific Integrated Circuit, for short: ASIC) and the like. The general-purpose processor can be a microprocessor, or the processor can be any conventional processor, etc. The steps of the method disclosed in combination with the application can be directly embodied as the execution of the hardware processor, or executed by the combination of hardware and software modules in the processor.

[0136] The memory can contain a random access memory (Random Access Memory, RAM), and can also include a non-volatile memory (Non-volatile Memory, NVM), for example, at least one disk memory.

[0137] The bus can be an industry standard architecture (Industry Standard Architecture, ISA) bus, a peripheral component (Peripheral Component, PCI) bus or an extended industry standard architecture (Extended Industry Standard Architecture, EISA) bus, etc. The bus can be divided into an address bus, a data bus, a control bus, etc. For the convenience of representation, the bus in the drawings of the present application does not limit only one bus or one type of bus.

[0138] The present application also provides a computer program product, including a computer program, which is executed by the processor to realize the above-mentioned method.

[0139] The application further provides a computer readable storage medium, and the computer readable storage medium stores computer execution instructions.

[0140] The readable storage medium can be implemented by any type of volatile or nonvolatile storage devices or a combination thereof, such as static random access memory (SRAM), electrically erasable programmable read-only memory (EEPROM), erasable programmable read-only memory (EPROM), programmable read-only memory (PROM), read-only memory (ROM), magnetic storage, flash memory, magnetic disk or optical disk. The readable storage medium can be any available medium that can be accessed by a general or special purpose computer.

[0141] An exemplary readable storage medium is coupled to the processor, so that the processor can read information from the readable storage medium and write information to the readable storage medium. Of course, the readable storage medium can also be an integral part of the processor. The processor and the readable storage medium can be located in an application specific integrated circuit (ASIC). Of course, the processor and the readable storage medium can also exist as discrete components in the device.

[0142] The division of units is only a logical function division, and in actual implementation, there can be another division mode, for example, multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. In addition, the coupling or direct coupling or communication connection between the units shown or discussed can be indirect coupling or communication connection through some interfaces, devices or units, which can be electrical, mechanical or other forms.

[0143] The units described as separate components can or can not be physically separated, and the components shown as units can or can not be physical units, that is, they can be located in one place, or they can be distributed on multiple network units. According to actual needs, some or all of the units can be selected to achieve the purpose of the embodiment.

[0144] In addition, the functional units in each embodiment of the application can be integrated into one processing unit, or each unit can be physically present alone, or two or more units can be integrated into one unit.

[0145] If the functions are implemented in the form of software function units and sold or used as independent products, they can be stored in a computer readable storage medium. Based on this understanding, the technical solutions of the present application or the parts of the technical solutions that essentially contribute to the prior art can be embodied in the form of a software product. The computer software product is stored in a storage medium and includes a number of instructions for causing a computer device (which can be a personal computer, a server, or a network device, etc.) to execute all or part of the steps of the embodiments of the method of the present application. The aforementioned storage medium includes: a U disk, a mobile hard disk, a read-only memory (ROM, Read-Only Memory), a random access memory (RAM, Random Access Memory), a magnetic disk or an optical disk, and various media that can store program codes.

[0146] It can be understood by those skilled in the art that all or part of the steps of the above-mentioned method embodiments can be completed by program instruction related hardware. The aforementioned program can be stored in a computer readable storage medium. When the program is executed, the steps of the above-mentioned method embodiments are executed; and the aforementioned storage medium includes: ROM, RAM, magnetic disk or optical disk, and various media that can store program codes.

[0147] Finally, it should be noted that: those skilled in the art will easily think of other embodiments of the present application after considering the specification and practicing the application disclosed herein. The present application is intended to cover any variations, uses or adaptations of the present application that follow the general principles of the present application and include common knowledge or conventional technical means in the art that are not disclosed in the present application, and is not limited to the precise structure described above and shown in the drawings, and various modifications and changes can be made without departing from the scope thereof. The scope of the present application is only limited by the appended claims.

Claims

1. A method for detecting water leakage based on a water leakage detection device, characterized in that, The water leakage detection device includes a water collection structure and a water level measurement structure. The water level measurement structure includes a water level sensor, a conductive strip, and electronic equipment. The water collection structure includes a first structure and a second structure, with the first structure connected to the second structure. The first structure is a polyhedron with one open side facing the gap where water leakage occurs. The second structure is a cylinder; the method is applied to the electronic device; the method includes: During the process of water accumulation where the actual water level of the leaking water reaches the preset danger warning level, if the water level sensor detects that the actual water level of the leaking water has reached the preset danger warning level, the leaking water will be discharged from the water collection structure; and a first warning signal will be generated based on the emptied water collection structure and the conductive strip. During the water accumulation process, if the water level sensor detects that the leakage rate of the leaking water is greater than or equal to a preset leakage threshold, a second warning signal is generated. Send the first warning signal and / or the second warning signal to a preset monitoring device; The water level measurement structure includes a first water level sensor and a second water level sensor; the first water level sensor and the second water level sensor are located inside the cylinder, the first water level sensor is located at the preset danger warning water level, and the second water level sensor is located at a preset distance below the danger warning water level; During the water accumulation process, if the water level sensor detects that the leakage rate of the leaking water is greater than or equal to a preset leakage threshold, a second warning signal is generated, including: During the water accumulation process, if the second water level sensor detects that the actual water level of the leaking water has reached the preset distance, and the first water level sensor detects that the actual water level of the leaking water has reached the danger warning water level, then the time difference between the actual water level rising from the preset distance to the danger warning water level is determined. The leakage rate is determined based on the time difference, the first preset resistance value corresponding to the preset distance, and the second preset resistance value corresponding to the danger warning water level. If the leakage rate of the leaking water is determined to be greater than or equal to a preset leakage threshold, a second warning signal is generated.

2. The method according to claim 1, characterized in that, During the water accumulation process where the actual water level of the leaking water reaches the preset danger warning level, if the water level sensor detects that the actual water level of the leaking water has reached the preset danger warning level, then the leaking water is discharged from the water collection structure, including: If, during the process of water accumulation where the actual water level of the leaking water reaches the preset danger warning level, the first water level sensor detects that the actual water level of the leaking water has reached the preset danger warning level, then the leaking water will be discharged from the water collection structure.

3. The method according to claim 1, characterized in that, The conductive strip includes an anode conductive strip and a cathode conductive strip; the water level measuring structure includes a power supply. The positive terminal of the power supply is electrically connected to the anode conductive strip, which is located inside the cylinder; the negative terminal of the power supply is electrically connected to the cathode conductive strip, which is located inside the cylinder. The generation of a first warning signal based on the emptied water collection structure and the conductive strip includes: A first warning signal is generated based on the drained water collection structure, the anode conductive strip, and the cathode conductive strip.

4. The method according to claim 1, characterized in that, If the leakage rate of the leaking water is determined to be greater than or equal to a preset leakage threshold, a second warning signal is generated, including: The leakage rate of the leaking water is compared with a preset leakage threshold; wherein the leakage threshold includes thresholds for multiple warning levels. If the leakage rate of the leaking water is determined to be greater than or equal to the threshold of any warning level, then a second warning signal is generated based on the warning level corresponding to the threshold.

5. The method according to any one of claims 1-4, characterized in that, The method further includes: Based on the first warning signal and / or the second warning signal, control a preset buzzer to sound an alarm.

6. A leakage detection device based on a leakage detection equipment, characterized in that, The water leakage detection device includes a water collection structure and a water level measurement structure. The water level measurement structure includes a water level sensor, a conductive strip, and electronic equipment. The water collection structure includes a first structure and a second structure, with the first structure connected to the second structure. The first structure is a polyhedron with one open side facing the gap where water leakage occurs. The second structure is a cylinder; the device includes: The drainage module is used to discharge the leaking water from the water collection structure when the actual water level of the leaking water reaches the preset danger warning water level during the water accumulation process. If the water level sensor detects that the actual water level of the leaking water has reached the preset danger warning water level, the module will discharge the leaking water from the water collection structure. The first generation module is used to generate a first warning signal based on the drained water collection structure and the conductive strip; The second generation module is used to generate a second warning signal if the leakage rate of the leaking water detected by the water level sensor is greater than or equal to a preset leakage threshold during the water accumulation process. The sending module is used to send the first warning signal and / or the second warning signal to a preset monitoring device; The water level measurement structure includes a first water level sensor and a second water level sensor; the first water level sensor and the second water level sensor are located inside the cylinder, the first water level sensor is located at the preset danger warning water level, and the second water level sensor is located at a preset distance below the danger warning water level; The second generation module includes a first determining unit, a second determining unit, and a third determining unit. The first determining unit is configured to, during the water accumulation process, if the second water level sensor detects that the actual water level of the leaking water has reached the preset distance, and the first water level sensor detects that the actual water level of the leaking water has reached the danger warning water level, then determine the time difference between the actual water level rising from the preset distance to the danger warning water level. The second determining unit is used to determine the leakage rate based on the time difference, the first preset resistance value corresponding to the preset distance, and the second preset resistance value corresponding to the danger warning water level. The third determining unit is used to generate a second warning signal if it determines that the leakage rate of the leaking water is greater than or equal to a preset leakage threshold.

7. An electronic device, characterized in that, include: Memory, processor; The memory stores computer-executed instructions; The processor executes computer execution instructions stored in the memory, causing the processor to perform the method as described in any one of claims 1-5.

8. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores computer-executable instructions, which, when executed by a processor, are used to implement the method as described in any one of claims 1-5.

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