Water seepage early warning management equipment, method and device

By combining environmental sensors and processors upstairs, real-time monitoring and generation of water seepage warning solutions can be achieved, solving the problem of downstairs users being unable to detect water seepage upstairs in a timely manner and achieving efficient water seepage warning management.

CN111708311BActive Publication Date: 2025-09-30QINGDAO HAIER SMART TECH R & D CO LTD +1
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Patent Information

Application Number
CN202010432156.2
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2020-05-20
Publication Date
2025-09-30
Estimated Expiration
2040-05-20

AI Technical Summary

Technical Problem

In traditional technology, users downstairs are unable to detect water seepage upstairs in time, resulting in water seepage accidents that cause inconvenience in life and property losses.

Method used

The upstairs environmental sensor is used to collect parameters, the water seepage risk is determined through the processor, and an early warning plan is generated. This includes a current detection circuit composed of a hygroscopic resistor and a power supply, combined with data collected by the upstairs and downstairs environmental sensors, to monitor and issue early warnings in real time.

Benefits of technology

The timeliness of water seepage warning has been improved, and users can take preventive measures in time to avoid water seepage accidents and reduce property losses.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to a water seepage warning management device, method and apparatus. The water seepage warning management device includes: an upstairs environmental sensor, which is used to collect the upstairs environmental parameters of the upstairs space; a processor, which is arranged in the downstairs space, and is communicatively connected to the upstairs environmental sensor, for determining whether there is a water seepage risk from the upstairs space to the downstairs space based on the upstairs environmental parameters, and generating a corresponding water seepage warning plan when there is a water seepage risk. The use of the above-mentioned water seepage warning management device can enable downstairs users to monitor whether the upstairs space will cause a water seepage risk to their downstairs space, thereby improving the timeliness of the warning, and can also provide users with corresponding water seepage warning plans, thereby achieving comprehensive and timely water seepage warning management.
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Description

Technical Field

[0001] The present application relates to the field of smart home technology, and in particular to a water seepage early warning management device, method and apparatus. Background Art

[0002] In modern life, people live at a fast pace and cannot monitor water seepage in their houses at all times, which leads to water seepage and disasters affecting people living downstairs.

[0003] In traditional technology, users downstairs usually observe with the naked eye whether there are watermarks or dripping on the indoor roof to determine whether there is water seepage upstairs.

[0004] Due to the poor timeliness of traditional technology, by the time users downstairs discover watermarks or dripping with the naked eye, the water seepage has already become serious, causing inconvenience to the lives of users downstairs. Summary of the Invention

[0005] Based on this, it is necessary to provide a water seepage early warning management equipment, method and device to address the above technical problems.

[0006] A water seepage early warning management device, comprising:

[0007] an upstairs environmental sensor, the upstairs environmental sensor being used to collect upstairs environmental parameters of the upstairs space;

[0008] A processor is provided in the downstairs space and is communicatively connected to the upstairs environmental sensor for determining, based on the upstairs environmental parameters, whether there is a water seepage risk from the upstairs space to the downstairs space, and generating a corresponding water seepage warning plan when there is a water seepage risk.

[0009] In one embodiment, the device further comprises:

[0010] a current detection circuit, the current detection circuit being located on the lower surface of the floor between the upstairs space and the downstairs space; the current detection circuit comprising a humidifier and a power supply; the humidifier and the power supply forming a closed loop;

[0011] The upstairs sensor is a current sensor. The upstairs environmental sensor is electrically connected to the current detection circuit and is used to determine whether there is current in the current detection circuit.

[0012] In one embodiment, the device further comprises:

[0013] A downstairs environment sensor is located in the downstairs space and is used to obtain downstairs environment parameters of the downstairs space; wherein the downstairs environment sensor is connected to the processor;

[0014] The processor is used to determine whether there is a water seepage risk from the upstairs space to the downstairs space based on the environmental parameter difference between the upstairs environmental parameters and the downstairs environmental parameters, and generate a corresponding water seepage warning plan when there is a water seepage risk.

[0015] In one embodiment, the upstairs environmental sensor and the downstairs environmental sensor are humidity sensors, the upstairs environmental sensor is located at a preset distance from the ground of the upstairs space, and is used to collect the upstairs floor humidity of the upstairs space; the downstairs environmental sensor is located on the lower surface of the floor between the upstairs space and the downstairs space, and is used to collect the downstairs roof humidity of the downstairs space; or

[0016] The upstairs environmental sensor and the downstairs environmental sensor are pressure sensors. The upstairs environmental sensor is located at the water outlet of the tap water pipe in the upstairs space and is used to collect the water pressure of the upstairs pipe; the downstairs environmental sensor is located at the water outlet of the tap water pipe in the downstairs space and is used to collect the water pressure of the downstairs pipe.

[0017] A water seepage early warning management method, the method comprising:

[0018] Get upstairs environment parameters of upstairs space;

[0019] Determine whether there is a risk of water seepage from the upstairs space to the downstairs space based on the upstairs environmental parameters;

[0020] When there is a risk of water seepage, a corresponding water seepage early warning plan is generated.

[0021] In one embodiment, determining whether there is a risk of water seepage from the upstairs space to the downstairs space based on the upstairs environmental parameters includes:

[0022] Determining whether current exists in a current detection circuit; wherein the current detection circuit is located on the lower surface of the floor between the upstairs space and the downstairs space, the current detection circuit includes a humidity resistor and a power supply, and the humidity resistor and the power supply form a closed loop;

[0023] If so, it is determined that there is a risk of water seepage from the upstairs space to the downstairs space;

[0024] If not, it is determined that there is no risk of water seepage from the upstairs space to the downstairs space.

[0025] In one embodiment, the method further comprises:

[0026] Obtaining downstairs environmental parameters of the downstairs space;

[0027] Determine whether there is a water seepage risk from the upstairs space to the downstairs space based on an environmental parameter difference between the upstairs environmental parameter and the downstairs environmental parameter.

[0028] In one embodiment, when the upstairs environmental parameter is the upstairs ground humidity of the upper surface of the floor between the upstairs space and the downstairs space, the downstairs environmental parameter is the downstairs roof humidity of the lower surface of the floor between the upstairs space and the downstairs space;

[0029] The determining, based on the environmental parameter difference between the upstairs environmental parameter and the downstairs environmental parameter, whether there is a water seepage risk from the upstairs room to the downstairs room includes:

[0030] Determining whether a floor humidity difference between the upstairs ground humidity and the downstairs roof humidity is greater than a preset humidity difference;

[0031] If so, it is determined that there is a risk of water seepage from the upstairs space to the downstairs space;

[0032] If not, it is determined that there is no water seepage risk from the upstairs space to the downstairs space.

[0033] In one embodiment, when the upstairs environmental parameter is the water pressure of the upstairs pipe at the water outlet of the tap water pipe in the upstairs space, the downstairs environmental parameter is the water pressure of the downstairs pipe at the water outlet of the tap water pipe in the downstairs space;

[0034] The determining whether there is a water seepage risk from the upstairs space to the downstairs space based on the environmental parameter difference between the upstairs environmental parameter and the downstairs environmental parameter includes:

[0035] When the water pressure in the upstairs pipeline is lower than the water pressure in the downstairs pipeline, determining whether the pipeline water pressure difference between the upstairs pipeline water pressure and the downstairs pipeline water pressure is greater than a preset water pressure difference;

[0036] If so, it is determined that there is a risk of water seepage from the upstairs space to the downstairs space;

[0037] If not, it is determined that there is no water seepage risk from the upstairs space to the downstairs space.

[0038] A water seepage early warning management device, comprising:

[0039] An upstairs parameter acquisition module is used to obtain upstairs environmental parameters of the upstairs space;

[0040] A risk judgment module, configured to determine whether there is a risk of water seepage from the upstairs space to the downstairs space based on the upstairs environmental parameters;

[0041] The solution generation module is used to generate a corresponding water seepage warning solution when there is a water seepage risk.

[0042] In the above-mentioned water seepage warning management equipment, method and device, the water seepage warning management equipment includes an upstairs environmental sensor and a processor, the upstairs environmental sensor and the processor are communicatively connected, and the processor determines whether there is a water seepage risk from the upstairs space to the downstairs space based on the upstairs environmental parameters collected by the upstairs environmental sensor. The above-mentioned upstairs environmental sensor can directly collect physical quantities that directly / indirectly characterize whether there is water accumulation / leakage in the upstairs space. After comparison and processing by the processor, it can be determined whether there is a water seepage risk from the upstairs space to the downstairs space. The entire / partial water seepage warning management equipment can be set in the downstairs space, so as to enable the downstairs user to monitor whether the upstairs space will cause a water seepage risk to the downstairs space where he is located. Since the collection of the above-mentioned physical quantities is simple and easy to implement, and the data acquisition takes a short time, the timeliness of the warning is improved, which provides time for taking effective preventive measures to avoid the occurrence of water seepage accidents. When the above-mentioned water seepage warning management equipment determines that there is a water seepage risk, it can also provide users with corresponding water seepage warning plans to avoid users wasting time due to not knowing how to deal with emergencies, resulting in water seepage accidents, or even serious property losses caused by water seepage. Therefore, comprehensive and timely water seepage warning management can be achieved through the above-mentioned water seepage warning management equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0043] Figure 1a This is a structural block diagram of a water seepage early warning management device in one embodiment;

[0044] Figure 1b A schematic diagram of an application environment of a water seepage early warning management device in one embodiment;

[0045] Figure 2a is a structural block diagram of a water seepage early warning management device in another embodiment;

[0046] Figure 2b A schematic diagram of an application environment of a water seepage early warning management device in another embodiment;

[0047] Figure 2c is a circuit diagram of a current detection circuit in one embodiment;

[0048] Figure 3a is a structural block diagram of a water seepage early warning management device in another embodiment;

[0049] Figure 3b A schematic diagram of an application environment of a water seepage early warning management device in another embodiment;

[0050] Figure 4 Schematic diagram of a flow chart of a water seepage early warning management method in one embodiment;

[0051] Figure 5 A schematic flow chart of a water seepage early warning management method in another embodiment;

[0052] Figure 6 This is a structural block diagram of a water seepage early warning management device in one embodiment;

[0053] Figure 7 FIG. 1 is a diagram showing the internal structure of a computer device in one embodiment. DETAILED DESCRIPTION

[0054] In order to make the purpose, technical solutions and advantages of this application more clear, the following further describes this application in detail with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain this application and are not intended to limit this application.

[0055] Figure 1a This is a schematic diagram of a water seepage warning management device in one embodiment. This device enables downstairs users to monitor the risk of water seepage in their upstairs spaces. The device 100 includes an upstairs environmental sensor 110 and a processor 120.

[0056] Among them, the upstairs environmental sensor 110 is used to collect the upstairs environmental parameters of the upstairs space. The upstairs environmental parameters are physical quantities used to characterize the upstairs space environment, such as humidity, temperature, pressure, etc. The above physical quantities can directly / indirectly reflect whether the upstairs space poses a water seepage risk to the downstairs space. Specific values ​​can be collected by corresponding sensor devices, such as humidity values ​​collected by a humidity sensor, temperature values ​​collected by a temperature sensor, and pressure values ​​collected by a pressure sensor. The processor 120 is set in the downstairs space and is in communication with the upstairs environmental sensor 110. It is used to determine whether there is a water seepage risk from the upstairs space to the downstairs space based on the upstairs environmental parameters, and generate a corresponding water seepage warning plan when there is a water seepage risk.

[0057] Specifically, combined Figure 1bThe upstairs environmental sensor 110 may be a humidity sensor, located on a wall at a certain height from the ground in the upstairs space, and connected to the processor 120 via a wireless network. The processor 120 is located in the downstairs space. The upstairs space may be an upstairs bathroom. The humidity sensor in the water seepage warning management device 100 collects the upstairs floor humidity of the upstairs space and transmits the upstairs floor humidity to the processor 120. The processor 120 determines whether the upstairs floor humidity is greater than a preset floor humidity to determine whether there is a water seepage risk from the upstairs space to the downstairs space. The preset floor humidity may be the floor humidity when water accumulation is determined, such as 85% RH. If the upstairs floor humidity is greater than the preset floor humidity, the processor 120 determines that there is a water seepage risk from the upstairs space to the downstairs space; if the upstairs floor humidity is less than or equal to the preset floor humidity, the processor 120 determines that there is no water seepage risk from the upstairs space to the downstairs space.

[0058] Furthermore, the processor 120 may also determine whether the difference between the upstairs floor humidity and a preset floor humidity is greater than the preset humidity difference to determine whether there is a water leakage risk from the upstairs space to the downstairs space. The preset floor humidity may be the floor's average humidity for most of the time. Specifically, the preset floor humidity may be the mode of a preset number of humidity levels collected by the humidity sensor within a preset time period. For example, if the humidity sensor collects 100 humidity levels over a 24-hour period, including 50 at 50% RH, 30 at 70% RH, and 20 at 85% RH, then 50% RH of these 100 humidity levels is the preset floor humidity. If the floor humidity difference is greater than the preset humidity difference, the processor 120 determines that there is a water leakage risk from the upstairs bathroom to the downstairs space. If the floor humidity difference is less than or equal to the preset humidity difference, the processor 120 determines that there is no water leakage risk from the upstairs space to the downstairs space. After determining that there is a water leakage risk from the upstairs space to the downstairs space, the processor 120 may also generate a corresponding water leakage warning plan. For example, a diversion layer is added to the lower surface of the floor between the upstairs space and the downstairs space; a diversion and drainage solution is provided with a diversion groove around the sewer pipe in the upstairs space.

[0059] In this embodiment, the water seepage warning management device includes an upstairs environmental sensor and a processor, the environmental sensor and the processor are communicatively connected, and the processor determines whether there is a water seepage risk from the upstairs space to the downstairs space based on the upstairs environmental parameters collected by the upstairs environmental sensor. The above-mentioned upstairs environmental sensor can directly collect physical quantities that directly / indirectly characterize whether there is water accumulation / leakage in the upstairs space. After comparison and processing by the processor, it can be determined whether there is a water seepage risk from the upstairs space to the downstairs space. The entire / partial water seepage warning management device can be set in the downstairs space, so that the downstairs user can monitor whether the upstairs space will cause a water seepage risk to the downstairs space where he is located, and timely discover the water seepage risk to avoid water seepage accidents. Since the collection of the above-mentioned physical quantities is simple and easy to implement, and the data acquisition takes a short time, the timeliness of the warning is improved, which provides time for taking effective preventive measures to avoid the occurrence of water seepage accidents. When the above-mentioned water seepage warning management equipment determines that there is a water seepage risk, it can also provide users with corresponding water seepage warning plans to avoid users wasting time due to not knowing how to deal with emergencies, resulting in water seepage accidents and causing property losses. Therefore, comprehensive and timely water seepage warning management can be achieved through the above-mentioned water seepage warning management equipment.

[0060] In one embodiment, Figure 2a As shown, the water seepage early warning management device 200 further includes a current detection circuit 230 , and the upstairs environmental sensor 210 is electrically connected to the current detection circuit 230 .

[0061] Among them, Figure 2b As shown, the current detection circuit 230 is located on the lower surface of the floor between the upstairs space and the downstairs space. Figure 2c As shown, the current detection circuit 230 includes a humidity-sensitive resistor R and a power supply S, and the humidity-sensitive resistor R and the power supply S form a closed loop.

[0062] Specifically, the upstairs environmental sensor 210 is a current sensor, which is also located on the lower surface of the floor between the upstairs space and the downstairs space, that is, the roof of the downstairs space. The upstairs environmental sensor 210 is used to determine whether there is current in the current detection circuit 230. In a dry environment, the resistance of the humidity-sensitive resistor R is infinite, and it can be regarded as no current passing through the current detection circuit 230. As the ambient humidity increases, the resistance of the humidity-sensitive resistor R decreases, and current appears in the current detection circuit 230. The processor 220 in the water seepage warning management device 200 determines whether there is current in the current detection circuit 230 through the current sensor. If the current sensor detects that there is no current in the current detection circuit 230, the processor 220 determines that there is no water seepage risk from the upstairs space to the downstairs space; if the current sensor detects that there is current in the current detection circuit 230, the processor 120 determines that there is a water seepage risk from the upstairs space to the downstairs space.

[0063] When the sensitivity of the humidity sensor R is high, even a small change in air humidity can cause the resistance of the humidity sensor R to decrease, causing the current sensor to detect a current flowing in the current detection circuit 230, resulting in a water seepage warning error. To avoid such a water seepage warning error, the current detection circuit 230 in the water seepage warning management device 200 also includes an ammeter connected in series to the current detection circuit 230. The processor 220 can further determine whether there is a water seepage risk from the upstairs space to the downstairs space based on the current generated by the current detection circuit 230 measured by the ammeter. For example, the processor 220 determines whether the current measured by the ammeter is greater than a preset current to determine whether there is a water seepage risk from the upstairs space to the downstairs space. If the current measured by the ammeter is greater than the preset current, the processor 220 determines that there is a water seepage risk from the upstairs space to the downstairs space; if the current measured by the ammeter is less than or equal to the preset current, the processor 220 determines that there is no water seepage risk from the upstairs space to the downstairs space.

[0064] Furthermore, the current detection circuit may further include at least one of a light bulb and an electric bell, and when current exists in the current detection circuit, light emission and sound alarm may be emitted.

[0065] In this embodiment, the water seepage warning management device also includes a current detection circuit composed of a humidity-sensitive resistor and a power supply, which is located on the roof of the downstairs space. The upstairs environmental sensor is a current sensor that can be used to detect whether there is current in the current detection circuit. The processor in the water seepage warning management device can determine whether there is a water seepage risk from the upstairs space to the downstairs space based on the detection result of the current sensor. The current detection circuit has a simple structure, is easy to implement, occupies a small space, and is convenient for home use. The humidity-sensitive resistor is sensitive to humidity and can effectively improve the sensitivity of the water seepage warning of the entire water seepage warning management device. When the water seepage is not serious and has not yet caused a water seepage accident, a water seepage warning plan is generated to assist users in implementing emergency measures to avoid causing greater losses.

[0066] In one embodiment, Figure 3a As shown, the water seepage early warning management device 300 also includes: a downstairs environment sensor 340.

[0067] The downstairs environmental sensor 340 is located in the downstairs space and is configured to collect downstairs environmental parameters of the downstairs space. The downstairs environmental sensor 340 is in communication with the processor 320. The processor 320 is configured to determine whether there is a water seepage risk from the upstairs space to the downstairs space based on the difference between the upstairs environmental parameters and the downstairs environmental parameters, and to generate a corresponding water seepage warning solution if there is a water seepage risk.

[0068] Specifically, combined Figure 3bThe upstairs environmental sensor 310 and the downstairs environmental sensor 340 may be air pressure sensors. The upstairs environmental sensor 310 may be located on a wall of the upstairs space at a certain height, such as 10 cm, from the ground. The downstairs environmental sensor 340 may be located on the lower surface of the floor between the upstairs and downstairs spaces. The upstairs environmental sensor 310 and the downstairs environmental sensor 340 are connected to the processor 320 via a wireless network. In the water seepage warning management device 300, the air pressure sensor located in the upstairs space collects the upstairs air pressure of the upstairs space and transmits the upstairs air pressure to the processor 320. The air pressure sensor located in the downstairs space collects the downstairs air pressure of the downstairs space and transmits the downstairs air pressure to the processor 320. When the upstairs air pressure is lower than the downstairs air pressure, the processor 320 determines whether the pressure difference between the upstairs and downstairs air pressures is greater than a preset humidity difference to determine whether there is a water seepage risk from the upstairs space to the downstairs space. If the pressure difference is greater than the preset pressure difference, the processor 320 determines that there is a risk of water leakage from the upstairs space to the downstairs space. If the pressure difference is less than or equal to the preset pressure difference, the processor 320 determines that there is no risk of water leakage from the upstairs space to the downstairs space. After determining that there is a risk of water leakage from the upstairs space to the downstairs space, the processor 320 may also generate a corresponding water leakage warning plan.

[0069] In this embodiment, the water seepage warning management device includes an upstairs environmental sensor located in the upstairs space and a downstairs environmental sensor located in the downstairs space. These sensors collect upstairs and downstairs environmental parameters, respectively. A processor in the water seepage warning management device compares the difference between the upstairs and downstairs environmental parameters to determine whether there is a water seepage risk from the upstairs space to the downstairs space. The upstairs and downstairs environmental sensors enable simultaneous data collection from upstairs and downstairs, improving data collection efficiency and further enhancing the timeliness of the overall water seepage warning management process.

[0070] In one embodiment, in the water seepage warning management device 300 , the upstairs environmental sensor 310 and the downstairs environmental sensor 340 are humidity sensors.

[0071] The upstairs environmental sensor 310 is located at a preset distance from the ground of the upstairs space and is used to collect the upstairs floor humidity of the upstairs space. The downstairs environmental sensor 340 is located on the lower surface of the floor between the upstairs space and the downstairs space and is used to collect the downstairs roof humidity of the downstairs space.

[0072] Specifically, the humidity sensor located in the upstairs space transmits the collected upstairs floor humidity to the processor 320, and the humidity sensor located in the downstairs space transmits the collected downstairs roof humidity to the processor 320. When the upstairs floor humidity is greater than the downstairs roof humidity, the processor 320 determines whether the floor humidity difference between the upstairs floor humidity and the downstairs roof humidity is greater than a preset humidity difference, thereby determining whether there is a water seepage risk from the upstairs space to the downstairs space. If the floor humidity difference is greater than the preset humidity difference, the processor 320 determines that there is a water seepage risk from the upstairs space to the downstairs space; if the floor humidity difference is less than or equal to the preset humidity difference, the processor 320 determines that there is no water seepage risk from the upstairs space to the downstairs space. After determining that there is a water seepage risk from the upstairs space to the downstairs space, the processor 320 may also generate a corresponding water seepage warning plan.

[0073] In this embodiment, both the upstairs and downstairs sensors in the water seepage warning management device are humidity sensors. They determine whether water is accumulated on the upstairs floor by measuring the difference in floor humidity between the upstairs and downstairs spaces relative to a preset humidity difference. This floor humidity difference accurately reflects the presence of water accumulation on the upstairs floor and, accordingly, accurately determines the risk of water seepage from the upstairs floor to the downstairs space. This further improves the accuracy of detecting water seepage risks caused by water accumulation on the upstairs floor, achieving a professional and targeted water seepage warning.

[0074] In one embodiment, in the water seepage early warning management device 300 , the upstairs environmental sensor 310 and the downstairs environmental sensor 340 are pressure sensors.

[0075] The upstairs environmental sensor 310 is located at the outlet of the water pipe in the upstairs space, and is used to collect the water pressure of the upstairs pipe. The downstairs environmental sensor 340 is located at the outlet of the water pipe in the downstairs space, and is used to collect the water pressure of the downstairs pipe.

[0076] Specifically, a pressure sensor located at the outlet of the water pipe in the upstairs space transmits the collected water pressure in the upstairs pipe to the processor 320, and a pressure sensor located at the outlet of the water pipe in the downstairs space transmits the collected water pressure in the downstairs pipe to the processor 320. Under normal water supply conditions, when the water pressure in the upstairs pipe is lower than the water pressure in the downstairs pipe, the processor 320 determines whether the pipe pressure difference between the upstairs and downstairs pipes is greater than a preset pressure difference to determine whether there is a water seepage risk from the upstairs space to the downstairs space. If the pipe pressure difference is greater than the preset pressure difference, the processor 320 determines that there is a water seepage risk from the upstairs space to the downstairs space; if the pipe pressure difference is less than or equal to the preset pressure difference, the processor 320 determines that there is no water seepage risk from the upstairs space to the downstairs space. After determining that there is a water seepage risk from the upstairs space to the downstairs space, the processor 320 may also generate a corresponding water seepage warning plan.

[0077] In this embodiment, both the upstairs and downstairs sensors in the water seepage warning management device are pressure sensors. They determine whether there is a leak in the upstairs water pipe by comparing the water pressure difference between the upstairs and downstairs water pipes with a preset pressure difference. This pressure difference accurately reflects the presence of a leak in the upstairs water pipe and, accordingly, accurately determines the risk of water seepage from the upstairs space to the downstairs space. This further improves the accuracy of detecting water seepage risks caused by sewer pipe leaks, achieving a professional and targeted water seepage warning.

[0078] In one embodiment, Figure 4 As shown, a water seepage early warning management method is provided. This method can be applied to water seepage early warning management by downstairs users to determine whether there is a risk of water seepage in the upstairs space of their downstairs space. This embodiment uses the method applied to a terminal as an example. It is understood that the method can also be applied to a server, and can also be applied to a system including a terminal and a server, and implemented through the interaction between the terminal and the server. The terminal can be, but is not limited to, various personal computers, laptops, smartphones, tablets, and portable wearable devices. The server can be implemented as a standalone server or a server cluster consisting of multiple servers.

[0079] In this embodiment, the method includes the following steps:

[0080] S410: Obtain upstairs environmental parameters of the upstairs space.

[0081] The upstairs environmental parameters are physical quantities used to characterize the upstairs environment, such as humidity, temperature, and pressure. These parameters can directly or indirectly reflect whether there is water accumulation or leakage in the upstairs space. Specific values ​​can be collected using corresponding sensor devices, such as humidity values ​​collected by a humidity sensor, temperature values ​​collected by a temperature sensor, and pressure values ​​collected by a pressure sensor.

[0082] S420: Determine whether there is a water seepage risk from the upstairs space to the downstairs space based on the upstairs environmental parameters.

[0083] Specifically, the computer device obtains the upstairs floor humidity measured by a humidity sensor located in the upstairs space and determines whether the upstairs floor humidity is greater than a preset floor humidity to determine whether there is a risk of water leakage from the upstairs space to the downstairs space. The preset floor humidity can be the floor humidity at which water accumulation is determined to exist, such as 85% RH. If the upstairs floor humidity is greater than the preset floor humidity, the computer device determines that there is a risk of water leakage from the upstairs space to the downstairs space. If the upstairs floor humidity is less than or equal to the preset floor humidity, the computer device determines that there is no risk of water leakage from the upstairs space to the downstairs space.

[0084] Furthermore, the computer device may also determine whether the difference in ground humidity between the upstairs floor humidity and the preset ground humidity is greater than the preset humidity difference, thereby determining whether there is a risk of water leakage from the upstairs space to the downstairs space. The preset ground humidity may be the floor's normal humidity for most of the time. Specifically, the mode of a preset number of humidity levels collected by the humidity sensor within a preset time period may be used as the preset ground humidity. If the ground humidity difference is greater than the preset humidity difference, the computer device determines that there is a risk of water leakage from the upstairs bathroom space to the downstairs space. If the ground humidity difference is less than or equal to the preset humidity difference, the computer device determines that there is no risk of water leakage from the upstairs space to the downstairs space.

[0085] S430: When there is a water seepage risk, generate a corresponding water seepage warning plan.

[0086] The water seepage warning solution is an emergency measure provided to users to avoid water seepage accidents when there is a risk of water seepage, for example, adding a diversion layer.

[0087] Specifically, when the upstairs floor humidity exceeds the preset floor humidity, the computer device can determine that there is water accumulation on the floor of the upstairs space, and further determine that there is a risk of water leakage from the upstairs space to the downstairs space. The computer device can then issue a leakage alarm and generate a diversion solution by adding a diversion layer to the lower surface of the floor between the upstairs space and the downstairs space where the water is accumulated. The leakage alarm can be at least one of an audible, vibrating, and luminous alarm. The diversion solution includes adding a diversion layer to the lower surface of the floor between the upstairs space and the downstairs space, tilting the diversion layer, and connecting the tilted lower end of the diversion layer to other drainage pipes, drainage outlets, or water tanks.

[0088] The water seepage early warning management method provided in this embodiment is applied to the above-mentioned equipment embodiment. Its implementation principle and technical effects are similar and will not be described in detail here.

[0089] In one embodiment, the step S420 of determining whether there is a risk of water seepage from the upstairs space to the downstairs space based on the upstairs environmental parameters includes:

[0090] Determine whether there is current in the current detection circuit.

[0091] As shown in FIG2 , the current detection circuit is located on the lower surface of the floor between the upstairs space and the downstairs space. The current detection circuit includes a humidity-sensitive resistor and a power supply. The humidity-sensitive resistor and the power supply form a closed loop.

[0092] If so, it is determined that there is a risk of water seepage from the upstairs space to the downstairs space;

[0093] If not, it is determined that there is no risk of water seepage from the upstairs space to the downstairs space.

[0094] Specifically, in a dry environment, the resistance of the humidity-sensitive resistor 231 in the current detection circuit 230 is infinite, and no current can be considered to flow through the current detection circuit 230. However, as the ambient humidity increases, the resistance of the humidity-sensitive resistor 231 decreases, and current flows through the current detection circuit 230. The computer device uses the current sensor to determine whether there is current in the current detection circuit 230. If the current sensor detects no current in the current detection circuit 230, the computer device determines that there is no risk of water leakage from the upstairs space to the downstairs space; if the current sensor detects current in the current detection circuit 230, the computer device determines that there is a risk of water leakage from the upstairs space to the downstairs space.

[0095] Furthermore, the computer device can also determine whether there is a risk of water leakage from the upstairs space to the downstairs space based on the current level in the current detection circuit. For example, the current detection circuit 230 also includes an ammeter connected in series with the current detection circuit 230. The computer device determines whether the current measured by the ammeter is greater than a preset current to determine whether there is a risk of water leakage from the upstairs space to the downstairs space. If the current measured by the ammeter is greater than the preset current, the computer device determines that there is a risk of water leakage from the upstairs space to the downstairs space; if the current measured by the ammeter is less than or equal to the preset current, the computer device determines that there is no risk of water leakage from the upstairs space to the downstairs space.

[0096] The water seepage early warning management method provided in this embodiment is applied to the above-mentioned equipment embodiment. Its implementation principle and technical effects are similar and will not be described in detail here.

[0097] In one embodiment, Figure 5 As shown, the method further includes:

[0098] S510: Obtain downstairs environmental parameters of the downstairs space.

[0099] S520: Determine whether there is a water seepage risk from the upstairs space to the downstairs space based on the environmental parameter difference between the upstairs environmental parameter and the downstairs environmental parameter.

[0100] Specifically, the computer device obtains the upstairs air pressure measured by the air pressure sensor located in the upstairs space and the downstairs air pressure measured by the air pressure sensor located in the downstairs space. When the upstairs air pressure is lower than the downstairs air pressure, the computer device determines whether the pressure difference between the upstairs and downstairs air pressures is greater than a preset pressure difference, thereby determining whether there is a water seepage risk from the upstairs space to the downstairs space. If the pressure difference is greater than the preset pressure difference, the computer device determines that there is a water seepage risk from the upstairs space to the downstairs space; if the pressure difference is less than or equal to the preset pressure difference, the computer device determines that there is no water seepage risk from the upstairs space to the downstairs space.

[0101] The water seepage early warning management method provided in this embodiment is applied to the above-mentioned equipment embodiment. Its implementation principle and technical effects are similar and will not be described in detail here.

[0102] Generally, floor humidity within a house doesn't fluctuate significantly over time. When water accumulates, the humidity rises. When the water is relatively small, there's no risk of water seepage. However, if the floor humidity in a room continues to rise, creating a significant fluctuation with the humidity in the downstairs space, a water seepage risk may be identified. Therefore, a computer can determine whether a water seepage risk exists in an upstairs space based on the increase in floor humidity relative to the roof humidity in the downstairs space.

[0103] In one embodiment, when the upstairs environmental parameter is the upstairs ground humidity of the upper surface of the floor between the upstairs space and the downstairs space, the downstairs environmental parameter is the downstairs roof humidity of the lower surface of the floor between the upstairs space and the downstairs space.

[0104] The step S420 of determining whether there is a water seepage risk from the upstairs room to the downstairs room based on the difference between the upstairs environmental parameters and the downstairs environmental parameters includes:

[0105] It is determined whether the floor humidity difference between the upstairs ground humidity and the downstairs roof humidity is greater than a preset humidity difference.

[0106] If so, it is determined that there is a risk of water seepage from the upstairs space to the downstairs space.

[0107] If not, it is determined that there is no water seepage risk from the upstairs space to the downstairs space.

[0108] Specifically, the computer device obtains the upstairs floor humidity measured by a humidity sensor located in the upstairs space and the downstairs roof humidity measured by a humidity sensor located in the downstairs space, and determines whether the floor humidity difference between the upstairs floor humidity and the downstairs roof humidity is greater than a preset humidity difference, thereby determining whether there is a water seepage risk from the upstairs space to the downstairs space. If the floor humidity difference is greater than the preset humidity difference, the computer device determines that there is a water seepage risk from the upstairs space to the downstairs space; if the floor humidity difference is less than or equal to the preset humidity difference, the computer device determines that there is no water seepage risk from the upstairs space to the downstairs space.

[0109] The water seepage early warning management method provided in this embodiment is applied to the above-mentioned equipment embodiment. Its implementation principle and technical effects are similar and will not be described in detail here.

[0110] Due to water supply needs, the water pressure at the upstairs sewer outlet will be slightly greater than that at the downstairs sewer outlet, but there will also be certain fluctuations. Under normal water supply conditions, if the water pressure at the upstairs sewer outlet is less than that at the downstairs sewer outlet, it can be determined that there is a risk of water seepage from the upstairs space to the downstairs space. Taking into account the presence of fluctuations, the computer equipment can determine whether there is a risk of water seepage from the upstairs space to the downstairs space based on the degree of water pressure drop at the upstairs sewer outlet relative to the downstairs sewer outlet.

[0111] In one embodiment, when the upstairs environmental parameter is the upstairs pipe water pressure at the water outlet of the tap water pipe in the upstairs space, the downstairs environmental parameter is the downstairs pipe water pressure at the water outlet of the tap water pipe in the downstairs space;

[0112] The step S420 of determining whether there is a water seepage risk from the upstairs space to the downstairs space based on the difference between the upstairs environmental parameters and the downstairs environmental parameters includes:

[0113] When the water pressure in the upstairs pipeline is lower than the water pressure in the downstairs pipeline, it is determined whether the pipeline water pressure difference between the upstairs pipeline water pressure and the downstairs pipeline water pressure is greater than a preset water pressure difference.

[0114] If so, it is determined that there is a risk of water seepage from the upstairs space to the downstairs space.

[0115] If not, it is determined that there is no water seepage risk from the upstairs space to the downstairs space.

[0116] Specifically, the computer device obtains the water pressure in the upstairs pipe, as measured by a pressure sensor located at the outlet of the water pipe supplying the upstairs space, and the water pressure in the downstairs pipe, as measured by a pressure sensor located at the outlet of the water pipe supplying the downstairs space. When the water pressure in the upstairs pipe is lower than the water pressure in the downstairs pipe, the computer device determines whether the pipe water pressure difference between the upstairs and downstairs pipes is greater than a preset water pressure difference, thereby determining whether there is a water seepage risk from the upstairs space to the downstairs space. If the pipe water pressure difference is greater than the preset water pressure difference, the computer device determines that there is a water seepage risk from the upstairs space to the downstairs space; if the pipe water pressure difference is less than or equal to the preset water pressure difference, the computer device determines that there is no water seepage risk from the upstairs space to the downstairs space.

[0117] The water seepage early warning management method provided in this embodiment is applied to the above-mentioned equipment embodiment. Its implementation principle and technical effects are similar and will not be described in detail here.

[0118] It should be understood that although Figure 4-5 The steps in the flowchart are shown in sequence as indicated by the arrows, but these steps are not necessarily executed in the order indicated by the arrows. Unless otherwise specified in this document, there is no strict order restriction for the execution of these steps, and these steps can be executed in other orders. In addition, Figure 4-5 At least part of the steps may include multiple steps or multiple stages. These steps or stages are not necessarily performed at the same time, but can be performed at different times. The order of execution of these steps or stages is not necessarily one by one, but can be performed in turn or alternately with other steps or at least part of the steps or stages in other steps.

[0119] In one embodiment, Figure 6 As shown, a water seepage early warning management device is provided. The water seepage early warning management device 600 includes: an upstairs parameter acquisition module 610, a risk judgment module 620 and a solution generation module 630, wherein:

[0120] The upstairs parameter acquisition module 610 is used to obtain upstairs environmental parameters of the upstairs space.

[0121] The risk judgment module 620 is used to determine whether there is a water seepage risk from the upstairs space to the downstairs space based on the upstairs environmental parameters.

[0122] The solution generation module 630 is used to generate a corresponding water seepage warning solution when there is a water seepage risk.

[0123] In one embodiment, the risk determination module 620 includes:

[0124] a current detection unit, configured to determine whether current exists in a current detection circuit; wherein the current detection circuit is located on the lower surface of the floor between the upstairs space and the downstairs space, and the current detection circuit includes a humidity resistor and a power supply, wherein the humidity resistor and the power supply form a closed loop;

[0125] If so, it is determined that there is a risk of water seepage from the upstairs space to the downstairs space;

[0126] If not, it is determined that there is no risk of water seepage from the upstairs space to the downstairs space.

[0127] In one embodiment, the apparatus further comprises:

[0128] A downstairs parameter acquisition module, used to obtain downstairs environmental parameters of the downstairs space;

[0129] The processor is configured to determine whether there is a water seepage risk from the upstairs space to the downstairs space based on an environmental parameter difference between the upstairs environmental parameter and the downstairs environmental parameter.

[0130] In one embodiment, when the upstairs environmental parameter is the upstairs ground humidity of the upper surface of the floor between the upstairs space and the downstairs space, the downstairs environmental parameter is the downstairs roof humidity of the lower surface of the floor between the upstairs space and the downstairs space;

[0131] The risk judgment module 620 includes:

[0132] A humidity judgment unit, configured to judge whether a floor humidity difference between the upstairs ground humidity and the downstairs roof humidity is greater than a preset humidity difference;

[0133] If so, it is determined that there is a risk of water seepage from the upstairs space to the downstairs space;

[0134] If not, it is determined that there is no water seepage risk from the upstairs space to the downstairs space.

[0135] In one embodiment, when the upstairs environmental parameter is the upstairs pipe water pressure at the water outlet of the tap water pipe in the upstairs space, the downstairs environmental parameter is the downstairs pipe water pressure at the water outlet of the tap water pipe in the downstairs space;

[0136] The risk judgment module 620 includes:

[0137] a pressure judgment unit, configured to judge whether a pipeline water pressure difference between the upstairs pipeline water pressure and the downstairs pipeline water pressure is greater than a preset water pressure difference when the upstairs pipeline water pressure is less than the downstairs pipeline water pressure;

[0138] If so, it is determined that there is a risk of water seepage from the upstairs space to the downstairs space;

[0139] If not, it is determined that there is no water seepage risk from the upstairs space to the downstairs space.

[0140] The specific definition of the water seepage early warning management device can be found in the definition of the water seepage early warning management method above and will not be repeated here. Each module in the water seepage early warning management device can be implemented in whole or in part through software, hardware, or a combination thereof. Each of the modules can be embedded in or independent of a processor in a computer device in hardware form, or stored in a memory in the computer device in software form, so that the processor can call and execute the corresponding operations of each module.

[0141] In one embodiment, a computer device is provided. The computer device may be a terminal, and its internal structure diagram may be as follows: Figure 7 As shown. The computer device includes a processor, a memory, a communication interface, a display screen and an input device connected via a system bus. The processor of the computer device is used to provide computing and control capabilities. The memory of the computer device includes a non-volatile storage medium and an internal memory. The non-volatile storage medium stores an operating system and a computer program. The internal memory provides an environment for the operation of the operating system and the computer program in the non-volatile storage medium. The communication interface of the computer device is used to communicate with an external terminal in a wired or wireless manner, and the wireless manner can be achieved through WIFI, an operator network, NFC (near field communication) or other technologies. When the computer program is executed by the processor, a water seepage early warning management method is implemented. The display screen of the computer device can be a liquid crystal display screen or an electronic ink display screen, and the input device of the computer device can be a touch layer covering the display screen, or a button, trackball or touchpad provided on the computer device housing, or an external keyboard, touchpad or mouse.

[0142] Those skilled in the art will understand that Figure 7The structure shown in the figure is only a block diagram of a part of the structure related to the solution of the present application, and does not constitute a limitation on the computer device to which the solution of the present application is applied. The specific computer device may include more or fewer components than shown in the figure, or combine certain components, or have a different component arrangement.

[0143] In one embodiment, a computer device is provided, including a memory and a processor, wherein a computer program is stored in the memory, and when the processor executes the computer program, the following steps are implemented:

[0144] Get upstairs environment parameters of upstairs space;

[0145] Determine whether there is a risk of water seepage from the upstairs space to the downstairs space based on the upstairs environmental parameters;

[0146] When there is a risk of water seepage, a corresponding water seepage early warning plan is generated.

[0147] In one embodiment, when the processor executes the computer program, the processor further implements the following steps:

[0148] Determining whether current exists in a current detection circuit; wherein the current detection circuit is located on the lower surface of the floor between the upstairs space and the downstairs space, the current detection circuit includes a humidity resistor and a power supply, and the humidity resistor and the power supply form a closed loop;

[0149] If so, it is determined that there is a risk of water seepage from the upstairs space to the downstairs space;

[0150] If not, it is determined that there is no risk of water seepage from the upstairs space to the downstairs space.

[0151] In one embodiment, when the processor executes the computer program, the processor further implements the following steps:

[0152] Obtaining downstairs environmental parameters of the downstairs space;

[0153] Determine whether there is a water seepage risk from the upstairs space to the downstairs space based on an environmental parameter difference between the upstairs environmental parameter and the downstairs environmental parameter.

[0154] In one embodiment, when the processor executes the computer program, the processor further implements the following steps:

[0155] When the upstairs environmental parameter is the upstairs ground humidity of the upper surface of the floor between the upstairs space and the downstairs space, the downstairs environmental parameter is the downstairs roof humidity of the lower surface of the floor between the upstairs space and the downstairs space;

[0156] Determining whether a floor humidity difference between the upstairs ground humidity and the downstairs roof humidity is greater than a preset humidity difference;

[0157] If so, it is determined that there is a risk of water seepage from the upstairs space to the downstairs space;

[0158] If not, it is determined that there is no water seepage risk from the upstairs space to the downstairs space.

[0159] In one embodiment, when the processor executes the computer program, the processor further implements the following steps:

[0160] When the upstairs environmental parameter is the water pressure of the upstairs pipe at the water outlet of the tap water pipe in the upstairs space, the downstairs environmental parameter is the water pressure of the downstairs pipe at the water outlet of the tap water pipe in the downstairs space;

[0161] When the water pressure in the upstairs pipeline is lower than the water pressure in the downstairs pipeline, determining whether the pipeline water pressure difference between the upstairs pipeline water pressure and the downstairs pipeline water pressure is greater than a preset water pressure difference;

[0162] If so, it is determined that there is a risk of water seepage from the upstairs space to the downstairs space;

[0163] If not, it is determined that there is no water seepage risk from the upstairs space to the downstairs space.

[0164] In one embodiment, a computer-readable storage medium is provided, on which a computer program is stored. When the computer program is executed by a processor, the following steps are implemented:

[0165] Get upstairs environment parameters of upstairs space;

[0166] Determine whether there is a risk of water seepage from the upstairs space to the downstairs space based on the upstairs environmental parameters;

[0167] When there is a risk of water seepage, a corresponding water seepage early warning plan is generated.

[0168] In one embodiment, when the computer program is executed by a processor, the following steps are further implemented:

[0169] Determining whether current exists in a current detection circuit; wherein the current detection circuit is located on the lower surface of the floor between the upstairs space and the downstairs space, the current detection circuit includes a humidity resistor and a power supply, and the humidity resistor and the power supply form a closed loop;

[0170] If so, it is determined that there is a risk of water seepage from the upstairs space to the downstairs space;

[0171] If not, it is determined that there is no risk of water seepage from the upstairs space to the downstairs space.

[0172] In one embodiment, when the computer program is executed by a processor, the following steps are further implemented:

[0173] Obtaining downstairs environmental parameters of the downstairs space;

[0174] Determine whether there is a water seepage risk from the upstairs space to the downstairs space based on an environmental parameter difference between the upstairs environmental parameter and the downstairs environmental parameter.

[0175] In one embodiment, when the computer program is executed by a processor, the following steps are further implemented:

[0176] When the upstairs environmental parameter is the upstairs ground humidity of the upper surface of the floor between the upstairs space and the downstairs space, the downstairs environmental parameter is the downstairs roof humidity of the lower surface of the floor between the upstairs space and the downstairs space;

[0177] Determining whether a floor humidity difference between the upstairs ground humidity and the downstairs roof humidity is greater than a preset humidity difference;

[0178] If so, it is determined that there is a risk of water seepage from the upstairs space to the downstairs space;

[0179] If not, it is determined that there is no water seepage risk from the upstairs space to the downstairs space.

[0180] In one embodiment, when the computer program is executed by a processor, the following steps are further implemented:

[0181] When the upstairs environmental parameter is the water pressure of the upstairs pipe at the water outlet of the tap water pipe in the upstairs space, the downstairs environmental parameter is the water pressure of the downstairs pipe at the water outlet of the tap water pipe in the downstairs space;

[0182] When the water pressure in the upstairs pipeline is lower than the water pressure in the downstairs pipeline, determining whether the pipeline water pressure difference between the upstairs pipeline water pressure and the downstairs pipeline water pressure is greater than a preset water pressure difference;

[0183] If so, it is determined that there is a risk of water seepage from the upstairs space to the downstairs space;

[0184] If not, it is determined that there is no water seepage risk from the upstairs space to the downstairs space.

[0185] Those skilled in the art will appreciate that all or part of the processes in the above-mentioned embodiment methods can be implemented by instructing the relevant hardware through a computer program, and the computer program can be stored in a non-volatile computer-readable storage medium. When the computer program is executed, it can include the processes of the embodiments of the above-mentioned methods. Among them, any reference to memory, storage, database or other media used in the embodiments provided in this application may include at least one of non-volatile and volatile memory. Non-volatile memory may include read-only memory (ROM), magnetic tape, floppy disk, flash memory or optical memory, etc. Volatile memory may include random access memory (RAM) or external cache memory. As an illustration and not limitation, RAM can be in various forms, such as static random access memory (SRAM) or dynamic random access memory (DRAM).

[0186] The technical features of the above embodiments can be combined arbitrarily. To make the description concise, not all possible combinations of the technical features in the above embodiments are 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.

[0187] The above-described embodiments merely represent several implementation methods of the present application. While the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the present invention. It should be noted that a person skilled in the art could make various modifications and improvements without departing from the spirit of the present application, all of which fall within the scope of protection of the present application. Therefore, the scope of protection of the present patent application shall be determined by the appended claims.

Claims

1. A water seepage early warning management device, characterized in that: The device comprises: An upstairs environmental sensor is located on a wall of the upstairs space at a certain height from the ground, and is used to collect upstairs environmental parameters of the upstairs space; A downstairs environmental sensor is located on the lower surface of the floor between the upstairs space and the downstairs space, and is used to collect downstairs environmental parameters of the downstairs space; A processor is provided in the downstairs space, and the processor is respectively communicated with the upstairs environmental sensor and the downstairs environmental sensor, and is used to determine whether there is a water seepage risk from the upstairs space to the downstairs space based on the environmental parameter difference between the upstairs environmental parameters and the downstairs environmental parameters, and generate a corresponding water seepage warning scheme when there is a water seepage risk, the water seepage warning scheme including: issuing a leakage alarm prompt, and adding a diversion layer to the lower surface of the floor between the upstairs space and the downstairs space where water accumulates.

2. The device according to claim 1, characterized in that The upstairs environmental sensor and the downstairs environmental sensor are humidity sensors. The upstairs environmental sensor is used to collect the upstairs floor humidity of the upstairs space; the downstairs environmental sensor is used to collect the downstairs roof humidity of the downstairs space.

3. The device according to claim 2, characterized in that The determining, based on the environmental parameter difference between the upstairs environmental parameter and the downstairs environmental parameter, whether there is a water seepage risk from the upstairs space to the downstairs space includes: Determining whether a floor humidity difference between the upstairs ground humidity and the downstairs roof humidity is greater than a preset humidity difference; If so, it is determined that there is a risk of water seepage from the upstairs space to the downstairs space; If not, it is determined that there is no water seepage risk from the upstairs space to the downstairs space.

4. The device according to claim 1, characterized in that The upstairs environmental sensor and the downstairs environmental sensor are air pressure sensors. The upstairs environmental sensor is used to collect the upstairs air pressure of the upstairs space; the downstairs environmental sensor is used to collect the downstairs air pressure of the downstairs space.

5. The device according to claim 4, characterized in that The determining, based on the environmental parameter difference between the upstairs environmental parameter and the downstairs environmental parameter, whether there is a water seepage risk from the upstairs space to the downstairs space includes: determining whether the pressure difference between the upper floor air pressure and the lower floor air pressure is greater than a preset pressure difference; If the air pressure difference is greater than the preset air pressure difference, it is determined that there is a risk of water leakage from the upstairs space to the downstairs space; If the air pressure difference is less than or equal to the preset air pressure difference, it is determined that there is no water leakage risk from the upstairs space to the downstairs space.

6. A water seepage early warning management method, characterized in that: For use in the water seepage early warning management device according to any one of claims 1 to 5, the method comprises: Get upstairs environment parameters of upstairs space; Get the downstairs environment parameters of the downstairs space; determining whether there is a water seepage risk from the upstairs space to the downstairs space based on an environmental parameter difference between the upstairs environmental parameter and the downstairs environmental parameter; When there is a risk of water seepage, a corresponding water seepage warning plan is generated, which includes: issuing a leakage alarm prompt and adding a diversion layer on the lower surface of the floor between the upstairs space and the downstairs space where water accumulates.

7. The method according to claim 6, characterized in that When the upstairs environmental parameter is the upstairs ground humidity of the upper surface of the floor between the upstairs space and the downstairs space, the downstairs environmental parameter is the downstairs roof humidity of the lower surface of the floor between the upstairs space and the downstairs space; The determining whether there is a water seepage risk from the upstairs space to the downstairs space based on the environmental parameter difference between the upstairs environmental parameter and the downstairs environmental parameter includes: Determining whether a floor humidity difference between the upstairs ground humidity and the downstairs roof humidity is greater than a preset humidity difference; If so, it is determined that there is a risk of water seepage from the upstairs space to the downstairs space; If not, it is determined that there is no water seepage risk from the upstairs space to the downstairs space.

8. The method according to claim 6, characterized in that When the upstairs environmental parameter is the upstairs air pressure of the upstairs space, the downstairs environmental parameter is the downstairs air pressure of the downstairs space; The determining whether there is a water seepage risk from the upstairs space to the downstairs space based on the environmental parameter difference between the upstairs environmental parameter and the downstairs environmental parameter includes: determining whether the pressure difference between the upper floor air pressure and the lower floor air pressure is greater than a preset pressure difference; If the air pressure difference is greater than the preset air pressure difference, it is determined that there is a risk of water leakage from the upstairs space to the downstairs space; If the air pressure difference is less than or equal to the preset air pressure difference, it is determined that there is no water leakage risk from the upstairs space to the downstairs space.

9. The method according to claim 6, characterized in that The corresponding diversion scheme of the diversion layer includes: adding a diversion layer on the lower surface of the floor between the upstairs space and the downstairs space, arranging the diversion layer at an angle, and connecting the inclined lower end of the diversion layer to other drainage pipes, drainage outlets or water tanks.

10. A water seepage early warning management device, characterized in that: The water seepage early warning management device according to any one of claims 1 to 5, comprising: An upstairs parameter acquisition module is used to obtain upstairs environmental parameters of the upstairs space; A downstairs parameter acquisition module is used to obtain downstairs environmental parameters of the downstairs space; a risk judgment module, configured to determine whether there is a water seepage risk from the upstairs space to the downstairs space based on an environmental parameter difference between the upstairs environmental parameter and the downstairs environmental parameter; The solution generation module is used to generate a corresponding water seepage warning solution when there is a water seepage risk.

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