Water detection device, water detection system, and water detection method
The water detection device uses object and environmental sensors to analyze temperature and humidity changes, enabling precise identification of water generation causes, addressing the limitations of existing systems.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-06-27
- Publication Date
- 2026-03-30
AI Technical Summary
Existing water detection systems can only determine if water has occurred but cannot identify the cause of water generation, such as condensation or leakage.
A water detection device equipped with object and environmental temperature and humidity sensors, along with a determination unit, analyzes changes in temperature and humidity over time to distinguish between condensation and leakage as the cause of water generation.
Enables accurate detection of water presence and its cause, enhancing the reliability of water detection systems by differentiating between condensation and leakage.
Smart Images

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Abstract
Description
Technical Field
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[0001] The present invention relates to a water detection device, a water detection system, and a water detection method.
Background Art
[0002] Conventionally, by providing a temperature and humidity sensor in a device, it has been performed to determine whether water due to dew condensation occurs based on the temperature and humidity detected by the temperature and humidity sensor (see, for example, Patent Document 1 and Patent Document 2).
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Patent Document 2
Summary of the Invention
Problems to be Solved by the Invention
[0004] In the devices described in Patent Document 1 and Patent Document 2, as the water generation situation, it is possible to detect that water has occurred or has occurred, but it has not been possible to detect the cause of the water generation.
[0005] [[ID=4An ambient temperature and humidity sensor for detecting the temperature and humidity of the surrounding environment, The system includes a determination unit that determines whether water is generated and the cause of water generation based on object temperature and humidity information indicating the change in temperature and humidity over time detected by the object temperature and humidity sensor and environmental temperature and humidity information indicating the change in temperature and humidity over time detected by the environmental temperature and humidity sensor. [Effects of the Invention]
[0007] The water detection device according to the present invention comprises an object temperature and humidity sensor, an environmental temperature and humidity sensor, and a determination unit. The determination unit determines whether water is generated and the cause of water generation based on object temperature and humidity information, which shows the change in temperature and humidity over time as detected by the object temperature and humidity sensor, and environmental temperature and humidity information, which shows the change in temperature and humidity over time as detected by the environmental temperature and humidity sensor. This makes it possible to detect not only whether water is generated but also the cause of water generation.
[0008] Other issues, configurations, and effects will be clarified in the embodiments for carrying out the invention described later. [Brief explanation of the drawing]
[0009] [Figure 1] This is an overall configuration diagram showing an example of a water detection system 1A according to the first embodiment. [Figure 2] This is a schematic diagram showing an example of a water detection device 3A according to the first embodiment. [Figure 3] This is a block diagram showing an example of a water detection device 3A according to the first embodiment. [Figure 4] This is a hardware configuration diagram showing an example of a computer 900 that makes up each device. [Figure 5] This is a flowchart showing an example of the operation of the water detection device 3A according to the first embodiment. [Figure 6] This graph shows an example of the changes over time between the object temperature and humidity sensor 34 and the ambient temperature and humidity sensor 35. [Figure 7] This is an overall configuration diagram showing an example of a water detection system 1B according to the second embodiment. [Figure 8] It is a block diagram showing an example of an object monitoring device 7A and a management device 4B according to a second embodiment. [Figure 9] It is an overall configuration diagram showing an example of a water detection system 1C according to a third embodiment. [Figure 10] It is a schematic configuration diagram showing an example of a water detection device 3B according to a third embodiment. [Figure 11] It is a block diagram showing an example of a water detection device 3B according to a third embodiment. [Figure 12] It is a flowchart showing an example of the operation of a water detection device 3B according to a third embodiment. [Figure 13] It is a flowchart (continuation of FIG. 12) showing an example of the operation of a water detection device 3B according to a third embodiment. [Figure 14] It is a flowchart showing an example of a first water determination process (step S240) by a water detection device 3B according to a third embodiment. [Figure 15] It is a graph showing an example of the change over time of the object temperature and humidity sensor 34 depending on the presence or absence of water. [Figure 16] It is a flowchart showing an example of a second water determination process (step S240) by a water detection device 3B according to a third embodiment. [Figure 17] It is a graph showing an example of the change over time of the object temperature and humidity sensor 34 depending on the presence or absence of water. [Figure 18] It is a graph showing an example of the change over time of the object temperature and humidity sensor 34 and the environmental temperature and humidity sensor 35 when condensation water caused by the object occurs. [Figure 19] It is a graph showing an example of the change over time of the object temperature and humidity sensor 34 and the environmental temperature and humidity sensor 35 when condensation water caused by the surrounding environment occurs. [Figure 20] It is a graph showing an example of the change over time of the object temperature and humidity sensor 34 and the environmental temperature and humidity sensor 35 when leakage water caused by the object occurs. [Figure 21] It is an overall configuration diagram showing an example of a water detection system 1D according to a fourth embodiment. [Figure 22] It is a block diagram showing an example of an object monitoring device 7B and a management device 4D according to the fourth embodiment.
Embodiments for Carrying Out the Invention
[0010] Hereinafter, embodiments for carrying out the present invention will be described with reference to the drawings. Hereinafter, the scope necessary for the description for achieving the object of the present invention will be schematically shown, and the scope necessary for the description of the relevant part of the present invention will be mainly described, and the parts where the description is omitted will be based on known techniques.
[0011] (First Embodiment) FIG. 1 is an overall configuration diagram showing an example of a water detection system 1A according to the first embodiment. FIG. 2 is a schematic configuration diagram showing an example of a water detection device 3A according to the first embodiment.
[0012] The water detection system 1A functions as a system that detects the occurrence status of water existing on the surface of an object installed in the surrounding environment and notifies the detection result to a user (owner, administrator, inspection / repair worker, etc. of the object).
[0013] The object is any device or equipment through which water (tap water, sewage, fresh water, seawater, industrial water, etc.) flows inside, and examples include pump devices, pipes, etc. used in infrastructure facilities (water supply, sewerage, etc.) and plant facilities (oil refining, power generation, manufacturing, chemical processes, etc.). In the present embodiment, the case where the object is a pump device 2 for transferring water will be mainly described.
[0014] The water detection system 1A comprises, as a specific configuration, a pump device 2 as an example of an object, a water detection device 3A attached to the pump device 2, a management device 4A that manages the installation and operating status of the pump device 2, the detection results from the water detection device 3A, etc., and a user terminal device 5 for use by the user. Each device 2 to 5 is, for example, composed of a general-purpose or dedicated computer (see Figure 4 below) and is configured to send and receive various types of data to and from each other via the network 6. The water detection system 1A comprises one or more water detection devices 3A, and one water detection device 3A may be attached to one object, or multiple water detection devices 3A may be attached to different locations on one object. Note that the number of each device 2 to 5 and the configuration of the network 6 are not limited to the example in Figure 1.
[0015] The pump device 2 comprises a pump unit 20, a motor 21 which is the drive source for the pump device 2, and a pump control panel 22 which controls the operation of the pump device 2. The pump unit 20 consists of, for example, an impeller, a rotating shaft, bearings, a mechanical seal, gland packing, a casing, piping, etc. The pump control panel 22 controls the rotational operation of the motor 21 and the communication operation when sending and receiving various information with the management device 4A, for example, based on set values that are set by the user for the operating conditions and detection values from sensors (not shown) provided in each part of the pump unit 20 and the motor 21.
[0016] The water detection device 3A is positioned, for example, below the mechanical seal of the pump unit 20, and detects the amount of water present on the surface of the casing of the pump unit 20. As shown in Figure 2, the water detection device 3A comprises a housing 33, an object temperature and humidity sensor 34 for detecting the temperature and humidity of the object (in this embodiment, the pump device 2), and an ambient temperature and humidity sensor 35 for detecting the temperature and humidity of the surrounding environment in which the object (in this embodiment, the pump device 2) is installed. The surrounding environment may be outdoors or indoors.
[0017] The housing 33 incorporates an object temperature and humidity sensor 34 and an ambient temperature and humidity sensor 35, and has openings 330 and 331 formed for the object temperature and humidity sensor 34 and the ambient temperature and humidity sensor 35, respectively. The housing 33 preferably has a rectangular parallelepiped shape, and the openings 330 and 331 are formed on the surface with the largest area. The shape of the housing 33 and the position and size of the openings 330 and 331 may be changed as appropriate.
[0018] The object temperature and humidity sensor 34 is positioned on the side of the housing 33 facing the object. For example, a water-absorbing material 332 is placed between the pump device 2 and the object temperature and humidity sensor 34. The ambient temperature and humidity sensor 35 is positioned on the side of the housing 33 opposite the object. The object temperature and humidity sensor 34 and the ambient temperature and humidity sensor 35 are sensors capable of detecting temperature and humidity, and any detection method can be used. The object temperature and humidity sensor 34 and the ambient temperature and humidity sensor 35 detect at least one of relative humidity and absolute humidity. If only one of relative humidity and absolute humidity is detected, the other can be calculated based on the temperature and one of the relative humidity and absolute humidity. The material and shape of the water-absorbing material 332 may be changed as appropriate, and the water-absorbing material 332 may be omitted depending on the installation status of the water detection device 3A.
[0019] The management device 4A is composed of, for example, a server-type computer or a cloud-type computer. The management device 4A collects various information from the pump device 2 and the water detection device 3A and registers it in a database. In addition, when the information collected from the pump device 2 and the water detection device 3A meets predetermined notification conditions, the management device 4A sends notification information to the user terminal device 5. When a request for information is received from the user terminal device 5, the information registered in the database is sent to the user terminal device 5 as provided information.
[0020] The user terminal device 5 is composed of, for example, a stationary computer or a portable computer and is used by the user. The user terminal device 5 has programs such as applications and browsers installed, accepts various input operations, and outputs various information (notification information, provided information, etc.) via a display screen and sound.
[0021] Network 6 is configured using wired communication, wireless communication, or a combination of wired and wireless communication, according to any communication standard. Specifically, it can utilize standardized communication networks such as the Internet, communication networks managed within a building such as a local network, or a combination of these networks. Typically, international standards are used as the communication standards for wireless communication. Examples of international standard communication methods include IEEE 802.15.4, IEEE 802.15.1, IEEE 802.15.11a, 11b, 11g, 11n, 11ac, 11ad, ISO / IEC 14513-3-10, and IEEE 802.15.4g. Other methods such as Bluetooth®, Bluetooth Low Energy, Wi-Fi, ZigBee®, Sub-GHz, EnOcean®, and LTE can also be used.
[0022] Figure 3 is a block diagram showing an example of a water detection device 3A according to the first embodiment. In addition to the housing 33, object temperature and humidity sensor 34, and ambient temperature and humidity sensor 35 described above, the water detection device 3A includes a control unit 30, a communication unit 31, and a storage unit 32 as its main components.
[0023] The control unit 30 functions as an object temperature and humidity information acquisition unit 300, an environmental temperature and humidity information acquisition unit 301, a determination unit 302A, and an output processing unit 303 by executing, for example, a water detection program 320A stored in the storage unit 32. The communication unit 31 is connected to the network 6 and functions as a communication interface for sending and receiving various data with, for example, the pump device 2, the management device 4A, or the user terminal device 5. The storage unit 32 stores various programs (such as the water detection program 320A) and data (such as setting information 321) used in the operation of the water detection device 3A. The setting information 321 stores parameters (such as various thresholds and periods) that are referenced by the control unit 30 when the water detection device 3A is operating, and is configured to be configurable, for example, via the management device 4A or the user terminal device 5.
[0024] The object temperature and humidity information acquisition unit 300 acquires object temperature and humidity information that shows the change in temperature and humidity of the pump device 2 over time by receiving the temperature and humidity of the pump device 2 detected by the object temperature and humidity sensor 34 at a predetermined detection period.
[0025] The environmental temperature and humidity information acquisition unit 301 acquires environmental temperature and humidity information that shows the change in the temperature and humidity of the surrounding environment over time by receiving the temperature and humidity of the surrounding environment detected by the environmental temperature and humidity sensor 35 at a predetermined detection period.
[0026] The determination unit 302A determines whether water is generated on the surface of the pump device 2 and the cause of water generation, based on object temperature and humidity information indicating the change in temperature and humidity of the pump device 2 over time detected by the object temperature and humidity sensor 34 and environmental temperature and humidity information indicating the change in temperature and humidity of the surrounding environment over time detected by the environmental temperature and humidity sensor 35.
[0027] Specifically, the determination unit 302A performs a water determination process to determine whether or not water is generated on the surface of the pump device 2 based on the temperature and humidity information of the object, a condensation determination process to determine whether or not condensation water is generated due to the surrounding environment based on the ambient temperature and humidity information, and a determination when the water determination process determines that water is generated on the surface of the pump device 2, and the condensation determination process determines whether or not condensation water is generated. Based on the results, a water generation cause analysis is performed to determine whether the water generation is due to condensation caused by the pump device 2 or condensation caused by the surrounding environment. The specific details of each analysis will be described later.
[0028] The output processing unit 303 outputs a determination result indicating whether or not water is generated and the cause of its generation, as determined by the determination unit 302A. The output destination of the determination result may be the storage unit 32, or it may be output as notification information to the pump device 2, the management device 4A, or the user terminal device 5, thereby notifying the user.
[0029] Figure 4 is a hardware configuration diagram showing an example of a computer 900 that makes up each device.
[0030] Each of the pump device 2, water detection device 3A, management device 4A, and user terminal device 5 is comprised of a general-purpose or dedicated computer 900. As shown in Figure 4, the computer 900 comprises, as its main components, a bus 910, a processor 912, memory 914, an input device 916, an output device 917, a display device 918, a storage device 920, a communication I / F (interface) unit 922, an external device I / F unit 924, an I / O (input / output) device I / F unit 926, and a media input / output unit 928. Note that the above components may be omitted as appropriate depending on the application in which the computer 900 is used.
[0031] The processor 912 consists of one or more arithmetic processing units (CPU (Central Processing Unit), MPU (Micro-processing unit), DSP (digital signal processor), GPU (Graphics Processing Unit), etc.) and operates as a control unit that oversees the entire computer 900. The memory 914 stores various data and programs 930 and consists of volatile memory (DRAM, SRAM, etc.) that functions as main memory, and non-volatile memory (ROM), flash memory, etc.
[0032] The input device 916 consists of, for example, a keyboard, mouse, numeric keypad, or electronic pen, and functions as an input unit. The output device 917 consists of, for example, a sound (voice) output device or a vibration device, and functions as an output unit. The display device 918 consists of, for example, a liquid crystal display, an organic EL display, electronic paper, or a projector, and functions as an output unit. The input device 916 and the display device 918 may be configured as an integrated unit, such as a touch panel display. The storage device 920 consists of, for example, an HDD or SSD, and functions as a storage unit. The storage device 920 stores various data necessary for the execution of the operating system and program 930.
[0033] The communication I / F unit 922 is connected by wire or wireless to a network 940 such as the Internet or an intranet (which may be the same as network 6 in Figure 1) and functions as a communication unit that sends and receives data with other computers according to a predetermined communication standard. The external device I / F unit 924 is connected by wire or wireless to external devices 950 such as cameras, printers, scanners, and reader / writers and functions as a communication unit that sends and receives data with external devices 950 according to a predetermined communication standard. The I / O device I / F unit 926 is connected to I / O devices 960 such as various sensors and actuators and functions as a communication unit that sends and receives various signals and data with the I / O devices 960, such as detection signals from sensors and control signals to actuators. The media input / output unit 928 consists of, for example, a drive device such as a DVD (Digital Versatile Disc) drive or a CD (Compact Disc) drive, a memory card slot, and a USB connector, and reads and writes data to media (non-temporary storage media) 970 such as DVDs, CDs, memory cards, and USB memory.
[0034] In the computer 900 having the above configuration, the processor 912 calls and executes the program 930 stored in the storage device 920 in the memory 914, and controls various parts of the computer 900 via the bus 910. The program 930 may also be stored in the memory 914 instead of the storage device 920. The program 930 may be recorded on the media 970 in an installable or executable file format and provided to the computer 900 via the media input / output unit 928. The program 930 may also be provided to the computer 900 by downloading it via the network 940 through the communication interface unit 922. Furthermore, the computer 900 may implement various functions realized by the processor 912 executing the program 930 using hardware such as an FPGA (field-programmable gate array) or ASIC (application-specific integrated circuit).
[0035] Computer 900 is an electronic device of any form, consisting of, for example, a stationary computer or a portable computer. Computer 900 may be a client computer, a server computer, or a cloud computer.
[0036] (Water detection method) Figure 5 is a flowchart showing an example of the operation of the water detection device 3A according to the first embodiment. Figure 6 is a graph showing an example of the changes over time of the object temperature and humidity sensor 34 and the ambient temperature and humidity sensor 35. The series of processes shown in Figure 5 may be repeatedly executed at a predetermined execution cycle, or they may be executed based on execution commands from the pump device 2, the management device 4A, or the user terminal device 5.
[0037] First, in step S100, the object temperature and humidity information acquisition unit 300 of the water detection device 3A receives the temperature and humidity of the pump device 2 detected by the object temperature and humidity sensor 34 at a predetermined detection cycle, thereby acquiring object temperature and humidity information that shows the change in temperature and humidity of the pump device 2 over time.
[0038] Next, in step S110, the environmental temperature and humidity information acquisition unit 301 acquires environmental temperature and humidity information that shows the change in the temperature and humidity of the surrounding environment over time by receiving the temperature and humidity of the surrounding environment detected by the environmental temperature and humidity sensor 35 at a predetermined detection period.
[0039] Then, in step S120 (specifically steps S130 to S142), the determination unit 302A determines whether or not water is generated on the surface of the pump device 2 and the cause of water generation, based on the object temperature and humidity information acquired in step S100 and the ambient temperature and humidity information acquired in step S110.
[0040] First, in step S130, the determination unit 302A performs a water determination process to determine whether or not water is generated on the surface of the pump device 2 based on the object temperature and humidity information. Specifically, it determines whether the relative humidity of the pump device 2, based on the object temperature and humidity information, is close to 100%, and if it is close to 100%, it determines that water is generated. In this case, if the relative humidity of the pump device 2 exceeds a predetermined threshold (for example, 95%), it may be considered to be close to 100%, and it may be determined that water is generated. Alternatively, if the duration for which the relative humidity of the pump device 2 exceeds a predetermined threshold (for example, 90%) exceeds a predetermined time threshold, it may be considered to be close to 100%, and it may be determined that water is generated.
[0041] Next, if the determination unit 302A determines that water is present based on the water determination process in step S130 ("Yes" in step S130), it performs a condensation determination process in step S140 to determine whether or not condensation water is present due to the surrounding environment, based on the ambient temperature and humidity information. The system determines whether the relative humidity of the surrounding environment, based on ambient temperature and humidity information, is close to 100%, and if it is close to 100%, it determines that condensation has occurred. In this case, the system may determine that condensation has occurred if the relative humidity of the surrounding environment exceeds a predetermined threshold (for example, 95%), or if the duration of the surrounding environment's relative humidity exceeding a predetermined threshold (for example, 90%) exceeds a predetermined time threshold, it may determine that condensation has occurred if it is close to 100%.
[0042] Then, the determination unit 302A performs water generation cause processing based on the determination result of step S140. That is, when the condensation determination processing in step S140 determines that condensation water is generated due to the surrounding environment ("Yes" in step S140), assuming the situation is as shown in Figure 6(a), in step S141 it is determined that the cause of water generation on the surface of the pump device 2 is condensation water caused by the surrounding environment. On the other hand, when the condensation determination processing in step S140 determines that there is no condensation water generated due to the surrounding environment ("No" in step S140), assuming the situation is as shown in Figure 6(b), in step S142 it is determined that the cause of water generation on the surface of the pump device 2 is condensation water caused by the pump device 2.
[0043] Furthermore, if the determination unit 302A determines that no water is generated in the water determination process in step S130 ("No" in step S130), it determines in step S131 that no water is generated.
[0044] Then, in step S150, the output processing unit 303 outputs the determination result from the determination unit 302A in step S120 (specifically, the determination results from steps S131, S141, and S142), and the series of processes ends. Step S100 corresponds to the object temperature and humidity information acquisition process, step S110 to the environmental temperature and humidity information acquisition process, step S120 to the determination process, and step S150 to the output processing process.
[0045] As described above, according to the water detection device 3A of this embodiment, by combining object temperature and humidity information showing the change in temperature and humidity of the pump device 2 over time with environmental temperature and humidity information showing the change in temperature and humidity of the surrounding environment over time, it is possible to determine whether or not water is generated on the surface of the object (pump device 2) and the cause of its generation.
[0046] (Second embodiment) Figure 7 is an overall configuration diagram showing an example of the water detection system 1B according to the second embodiment. Figure 8 is a block diagram showing an example of the object monitoring device 7A and management device 4B according to the second embodiment.
[0047] The water detection system 1B according to this embodiment differs from the first embodiment in that it includes an object monitoring device 7A attached to the pump device 2 instead of the water detection device 3A, and the management device 4B implements the functions of the water detection method performed by the control unit 30 of the water detection device 3A, although the basic configuration and operation are the same. The water detection system 1B includes one or more object monitoring devices 7A, and one object monitoring device 7A may be attached to one object, or multiple object monitoring devices 7A may be attached to different locations on one object. The following will focus on describing the features of this embodiment.
[0048] The object monitoring device 7A is a device that omits the object temperature and humidity information acquisition unit 300, the environmental temperature and humidity information acquisition unit 301, the determination unit 302A, and the output processing unit 303 compared to the water detection device 3A according to the first embodiment. That is, the object monitoring device 7A comprises a control unit 70, a communication unit 71, a storage unit 72, a housing 73, an object temperature and humidity sensor 74, and an environmental temperature and humidity sensor 75. Note that the control unit 70, the communication unit 71, and the storage unit 72 may be omitted as appropriate. In this case, the object temperature and humidity sensor 74 and the ambient temperature and humidity sensor 75 may be connected, for example, to the pump control panel 22 of the pump device 2.
[0049] The object temperature and humidity sensor 74 and the ambient temperature and humidity sensor 75 transmit sensor data to the management device 4B via the control unit 70 and the communication unit 71 at a predetermined transmission cycle. The transmission cycle of the sensor data may be the same as the detection cycle of the object temperature and humidity sensor 74 and the ambient temperature and humidity sensor 75, or it may be longer than the detection cycle of the object temperature and humidity sensor 74 and the ambient temperature and humidity sensor 75. In the latter case, the object temperature and humidity sensor 74 and the ambient temperature and humidity sensor 75 may transmit the sensor data accumulated during the transmission cycle all at once.
[0050] The management device 4B comprises a control unit 40, a communication unit 41, and a storage unit 42 as its main components. The control unit 40 functions as an object temperature and humidity information acquisition unit 400, an environmental temperature and humidity information acquisition unit 401, a determination unit 402A, and an output processing unit 403 by executing, for example, a water detection program 420A stored in the storage unit 42. The object temperature and humidity information acquisition unit 400, the environmental temperature and humidity information acquisition unit 401, the determination unit 402A, and the output processing unit 403 function similarly to the object temperature and humidity information acquisition unit 300, the environmental temperature and humidity information acquisition unit 301, the determination unit 302A, and the output processing unit 303 according to the first embodiment, so a detailed explanation is omitted.
[0051] As described above, according to the management device 4B of this embodiment, by combining object temperature and humidity information showing the change in temperature and humidity of the pump device 2 over time with ambient temperature and humidity information showing the change in temperature and humidity of the surrounding environment over time, it is possible to determine whether or not water is generated on the surface of the object (pump device 2) and the cause of its generation.
[0052] (Third embodiment) Figure 9 is an overall configuration diagram showing an example of a water detection system 1C according to the third embodiment. Figure 10 is a schematic configuration diagram showing an example of a water detection device 3B according to the third implementation configuration.
[0053] The water detection system 1C according to this embodiment differs from the first embodiment in that the water detection device 3B further includes a heater 36 for the object temperature and humidity sensor positioned close to the object temperature and humidity sensor 34, and a heater 37 for the ambient temperature and humidity sensor positioned close to the ambient temperature and humidity sensor 35, although the basic configuration and operation are the same. The following will focus on describing the features of this embodiment.
[0054] The heater 36 for the object temperature and humidity sensor is positioned to heat at least one of the sensing unit 340 of the object temperature and humidity sensor 34 and the surface of the pump device 2, which is the object. The heater 37 for the ambient temperature and humidity sensor is positioned to heat the sensing unit 350 of the ambient temperature and humidity sensor 35.
[0055] In this embodiment, the heater 36 for the object temperature and humidity sensor and the heater 37 for the ambient temperature and humidity sensor are arranged on the back side of the sensing units 340 and 350, respectively, as shown in Figure 10, to heat the sensing units 340 and 350 over a surface area. The heater 36 for the object temperature and humidity sensor and the heater 37 for the ambient temperature and humidity sensor are switched on and off based on heating control by, for example, a timer circuit or a control unit 30. The heater 36 for the object temperature and humidity sensor and the heater 37 for the ambient temperature and humidity sensor are switched on from off to on for a predetermined on period (e.g., 20 seconds), and then switched off from on to off for a predetermined off period (e.g., 380 seconds), and this on-off operation is repeated at predetermined time intervals (e.g., 400-second intervals). The on-off operation of the heater 36 for the object temperature and humidity sensor and the heater 37 for the ambient temperature and humidity sensor may be performed synchronously or asynchronously.
[0056] Figure 11 is a block diagram showing an example of a water detection device 3B according to the third embodiment. In addition to the housing 33, object temperature and humidity sensor 34, ambient temperature and humidity sensor 35, heater for object temperature and humidity sensor 36, and heater for ambient temperature and humidity sensor 37 described above, the water detection device 3B also includes a control unit 30, a communication unit 31, and a storage unit 32, similar to the water detection device 3A according to the first embodiment.
[0057] The control unit 30 functions as the object temperature and humidity information acquisition unit 300, the ambient temperature and humidity information acquisition unit 301, the heater information acquisition unit 304, the determination unit 302B, and the output processing unit 303 by, for example, executing the water detection program 320B stored in the memory unit 32. Note that the object temperature and humidity information acquisition unit 300, the ambient temperature and humidity information acquisition unit 301, and the output processing unit 303 function similarly to the object temperature and humidity information acquisition unit 300, the ambient temperature and humidity information acquisition unit 301, and the output processing unit 303 according to the first embodiment, so a detailed explanation is omitted.
[0058] The heater information acquisition unit 304 acquires heater information that shows the change in the heating state of the object temperature and humidity sensor heater 36 and the ambient temperature and humidity sensor heater 37 over time. The heater information includes the timing when the on / off operation of the object temperature and humidity sensor heater 36 and the ambient temperature and humidity sensor heater 37 is switched, and is acquired, for example, from operation command data from a timer circuit or control unit 30 or from the detected values of current sensors provided on the object temperature and humidity sensor heater 36 and the ambient temperature and humidity sensor heater 37.
[0059] The determination unit 302B determines whether water is generated on the surface of the pump device 2 and the cause of water generation based on object temperature and humidity information showing the change in temperature and humidity of the pump device 2 over time detected by the object temperature and humidity sensor 34, environmental temperature and humidity information showing the change in temperature and humidity of the surrounding environment over time detected by the environmental temperature and humidity sensor 35, and heater information showing the change in the heating state of the object temperature and humidity sensor heater 36 and the environmental temperature and humidity sensor heater 37 over time.
[0060] Specifically, the determination unit 302B performs a water determination process to determine whether or not water is generated on the surface of the pump device 2 based on object temperature and humidity information and heater information; a first condensation determination process to determine whether or not condensation water is generated due to the pump device 2 based on object temperature and humidity information, ambient temperature and humidity information and heater information; a second condensation determination process to determine whether or not condensation water is generated due to the surrounding environment based on object temperature and humidity information, ambient temperature and humidity information and heater information; and, when the water determination process determines that water is generated on the surface of the pump device 2, it performs a water generation cause process to determine whether or not the cause of water generation is leakage caused by the pump device 2, condensation water caused by the pump device 2, or condensation water caused by the surrounding environment, based on the determination result of the first condensation determination process and the determination result of the second condensation determination process. In this process, the determination unit 302B calculates the dew point of the ambient environment from the ambient temperature and humidity information and uses it in the first and second condensation determination processes. The specific details of each process will be described later.
[0061] (Water detection method) Figures 12 and 13 are flowcharts illustrating an example of the operation of the water detection device 3B according to the third embodiment. The series of processes shown in Figures 12 and 13 may be repeatedly executed at a predetermined execution cycle, or they may be executed based on execution commands from the pump device 2, the management device 4C, or the user terminal device 5.
[0062] First, in step S200, the object temperature and humidity information acquisition unit 300 of the water detection device 3B acquires object temperature and humidity information from the object temperature and humidity sensor 34. Then, in step S210, the environmental temperature and humidity information acquisition unit 301 acquires environmental temperature and humidity information from the environmental temperature and humidity sensor 35. Next, in step S220, the heater information acquisition unit 304 acquires heater information for the object temperature and humidity sensor. Heater information is acquired from the heater 36 and the heater 37 for the ambient temperature and humidity sensor.
[0063] Then, in step S230 (specifically, steps S240 to S270), the determination unit 302B determines whether water is generated on the surface of the pump device 2 and the cause of water generation, based on the object temperature and humidity information acquired in step S200, the ambient temperature and humidity information acquired in step S210, and the heater information acquired in step S220.
[0064] First, in step S240, the determination unit 302B performs a water determination process to determine whether or not water is generated on the surface of the pump device 2 based on the object temperature and humidity information and heater information. The first to third water determination processes performed by the determination unit 302B will be described below. Note that the determination unit 302B only needs to perform at least one of the first to third water determination processes, or it may perform all of them.
[0065] Figure 14 is a flowchart showing an example of the first water determination process (step S240) by the water detection device 3B according to the third embodiment. Figure 15 is a graph showing an example of the change over time of the object temperature and humidity sensor 34 depending on the presence or absence of water. In the first water determination process, as shown in Figure 15, mainly, water present on the surface of the pump device 2 moves to the object temperature and humidity sensor 34 side via the water-absorbing material 332, and the presence or absence of water in contact with the sensing unit 340 is determined.
[0066] As the first water detection process, in step S300, the detection unit 302B determines whether the relative humidity of the pump device 2, based on the object temperature and humidity information, is above a predetermined threshold (for example, 80%) during the ON period of the heater 36 for the object temperature and humidity sensor. If, in step S300, it is determined that the relative humidity of the pump device 2 is above the predetermined threshold (Yes in step S300), then in step S310, it determines whether the absolute humidity of the pump device 2, based on the object temperature and humidity information, is increasing during the ON period of the heater 36 for the object temperature and humidity sensor. If, as a result, it is determined in step S310 that the absolute humidity of the pump device 2 is increasing (Yes in step S310), then, assuming the situation is as shown in Figure 15(b), it determines in step S320 that water has been generated. On the other hand, if it is determined in steps S300 and S310 that this is not the case (No in step S300, No in step S310), then it is determined in step S321 that no water is generated, assuming the situation is as shown in Figure 15(a).
[0067] Figure 16 is a flowchart showing an example of the second water determination process (step S240) by the water detection device 3B according to the third embodiment. Figure 17 is a graph showing an example of the change over time of the object temperature and humidity sensor 34 depending on the presence or absence of water. In the second water determination process, as shown in Figure 17, the presence or absence of water present on the surface of the pump unit 20 is mainly determined before the water present on the surface of the pump device 2 moves to the object temperature and humidity sensor 34 side via the water-absorbing material 332, that is, before it comes into contact with the sensing unit 340.
[0068] As a second water determination process, in step S400, the determination unit 302B determines whether the absolute humidity of the pump device 2, based on the object temperature and humidity information, is increasing or staying constant during the ON period of the heater 36 for the object temperature and humidity sensor. If it is determined in step S400 that the absolute humidity of the pump device 2 is increasing or staying constant (Yes in step S400), then, assuming the situation is as shown in Figure 17(b), it is determined in step S410 that water is being generated. On the other hand, if it is determined in step S400 that this is not the case (No in step S400), then, assuming the situation is as shown in Figure 17(a), it is determined in step S411 that there is no water being generated.
[0069] As a third water determination process, the determination unit 302B determines whether the relative humidity of the pump device 2, based on the object temperature and humidity information, is close to 100%, similar to step S130 in Figure 5. If the humidity approaches 100%, it is determined that water is being generated. In this case, if the relative humidity of the pump device 2 exceeds a predetermined threshold (for example, 95%), it may be determined that water is being generated as it approaches 100%, or if the duration of the relative humidity of the pump device 2 exceeding a predetermined threshold (for example, 90%) exceeds a predetermined time threshold, it may be determined that water is being generated as it approaches 100%.
[0070] Next, when the determination unit 302B determines that water is generated in step S240 (Yes in step S240), it performs a first condensation determination process in steps S250 to S252 to determine whether or not condensation water is generated due to the pump device 2, based on the object temperature and humidity information, the ambient temperature and humidity information, and the heater information.
[0071] Figure 18 is a graph showing an example of the changes over time in the object temperature and humidity sensor 34 and the ambient temperature and humidity sensor 35 when condensation water is generated due to the object. In the first condensation determination process, the presence of condensation water caused by the pump device 2 is determined by detecting the situation shown in Figure 18.
[0072] In step S250, the determination unit 302B determines whether the temperature of the pump device 2, based on the object temperature and humidity information, has gradually decreased and reached the dew point of the ambient environment, based on the ambient temperature and humidity information. That is, in step S250, it determines whether the situation is as shown in Figure 18(c). The dew point of the ambient environment may be calculated, for example, from the temperature and relative humidity detected by the ambient temperature and humidity sensor 35, or from the absolute humidity detected by the ambient temperature and humidity sensor 35.
[0073] Next, in step S251, the determination unit 302B determines whether, when the on / off operation of the heater 36 for the object temperature and humidity sensor and the heater 37 for the ambient temperature and humidity sensor is repeatedly performed, the relative humidity of the pump device 2 based on the object temperature and humidity information during the on period of the heater 36 for the object temperature and humidity sensor is below a predetermined lower threshold (e.g., 5%) for a predetermined number of repetitions (e.g., 6 times). Then, in step S251, if it is determined that the relative humidity of the object temperature and humidity sensor 34 is below a predetermined lower threshold (Yes in step S251), then in step S252, the determination unit 302B determines whether, in a comparison of multiple on periods of the heater 36 for the object temperature and humidity sensor, the relative humidity of the pump device 2 based on the object temperature and humidity information is showing an increasing trend for a predetermined number of repetitions (e.g., 6 times). In other words, steps S251 and S252 determine whether the situation is as shown in Figure 18(e).
[0074] When the heater 36 for the object temperature and humidity sensor and the heater 37 for the ambient temperature and humidity sensor are turned on while the amount of condensation water caused by the pump device 2 is small (condensation water is being generated but not in contact with the sensing part 340 of the object temperature and humidity sensor 34), the relative humidity of both the object temperature and humidity sensor 34 and the ambient temperature and humidity sensor 35 decreases to below the lower threshold (e.g., 5%), and there is no difference in the change. Subsequently, when the heater 36 for the object temperature and humidity sensor and the heater 37 for the ambient temperature and humidity sensor are turned on while the condensation water has accumulated and come into contact with the sensing part 340 of the object temperature and humidity sensor 34 via the water-absorbing material 332, the relative humidity of the ambient temperature and humidity sensor 35 decreases to the lower threshold, but the relative humidity of the object temperature and humidity sensor 34 does not decrease to the lower threshold but maintains a high relative humidity of about the upper threshold (e.g., 80%), resulting in an increasing trend when comparing multiple on periods. Steps S251 and S252 are for detecting such behavior, and other determination methods may be used.
[0075] Then, the determination unit 302B performs water generation cause processing based on the determination results of steps S250 to S252. That is, when the first condensation determination processing in steps S250 to S252 determines that condensation water has been generated due to the pump device 2 (steps S250 to S252) If all of the above are answered "Yes", in step S253 it is determined that the cause of water generation on the surface of the pump device 2 is condensation caused by the pump device 2.
[0076] On the other hand, if the determination unit 302B determines in the first condensation determination process in steps S250 to S252 that there is no condensation water generated due to the pump device 2 (if it is "No" in any of steps S250 to S252), it performs a second condensation determination process in steps S260 and S261 to determine whether or not condensation water is generated due to the surrounding environment, based on the object temperature and humidity information, the ambient temperature and humidity information, and the heater information.
[0077] Figure 19 is a graph showing an example of the changes over time in the object temperature and humidity sensor 34 and the ambient temperature and humidity sensor 35 when condensation water occurs due to the surrounding environment. In the second condensation determination process, the presence of condensation water due to the surrounding environment is determined by detecting the situation shown in Figure 19.
[0078] In step S260, the determination unit 302B determines whether the temperature of the pump device 2 based on the object temperature and humidity information and the ambient temperature based on the ambient temperature and humidity information have gradually decreased and reached the dew point of the ambient environment based on the ambient temperature and humidity information. That is, in step S260, it determines whether the situation is as shown in Figure 19(c). The dew point of the ambient environment may be calculated, for example, from the temperature and relative humidity detected by the ambient temperature and humidity sensor 35, or from the absolute humidity detected by the ambient temperature and humidity sensor 35.
[0079] Next, in step S261, the determination unit 302B determines whether, when the heater 36 for the object temperature and humidity sensor and the heater 37 for the ambient temperature and humidity sensor are repeatedly turned on and off, the relative humidity of the ambient environment based on the ambient temperature and humidity information is above a predetermined upper limit threshold (for example, 95%) during the off period of the heater 36 for the object temperature and humidity sensor. In other words, in step S261, it determines whether the situation is as shown in Figure 19(e).
[0080] When condensation water is generated due to the surrounding environment, and the heater 36 for the object temperature and humidity sensor and the heater 37 for the ambient temperature and humidity sensor are turned on, the relative humidity of both the object temperature and humidity sensor 34 and the ambient temperature and humidity sensor 35 decreases to below the lower threshold (e.g., 80%), and there is no difference in the change. Subsequently, when the heater 36 for the object temperature and humidity sensor and the heater 37 for the ambient temperature and humidity sensor are turned off, the relative humidity of the object temperature and humidity sensor 34 and the ambient temperature and humidity sensor 35 increases to about the upper threshold (e.g., 95%) due to the presence of condensation water. Step S261 detects this behavior, and other determination methods may be used.
[0081] Then, the determination unit 302B performs water generation cause processing based on the determination results of steps S260 and S261. That is, when the second condensation determination processing in steps S260 and S261 determines that condensation water is generated due to the surrounding environment ("Yes" in both steps S260 and S261), in step S262, it is determined that the cause of water generation on the surface of the pump device 2 is condensation water caused by the surrounding environment.
[0082] On the other hand, if the determination unit 302B determines in the second condensation determination process in steps S260 and S261 that there is no condensation water generated due to the surrounding environment (either step S260 or S261 is marked "No"), then in step S270, it determines that the cause of water generation on the surface of the pump device 2 is water leakage caused by the pump device 2.
[0083] Figure 20 is a graph showing an example of the changes over time in the object temperature and humidity sensor 34 and the ambient temperature and humidity sensor 35 when water leakage occurs due to the object. In this embodiment, the determination unit 302B determines that water is present in the water determination process ("Yes" in step S240), and determines in the first and second condensation determination processes that the cause of water generation is not condensation water (step S2 Although it has been explained that if the result is "No" in any of steps 50 to S252, and "No" in either step S260 or S261, the cause of water generation is determined to be a leak caused by the pump device 2, a leak detection process may be further performed to determine whether or not a leak caused by the object has occurred, based on the object temperature and humidity information, the ambient temperature and humidity information, and the heater information.
[0084] As part of the water leakage detection process, the detection unit 302B determines, for example, when the heater 36 for the object temperature and humidity sensor and the heater 37 for the ambient temperature and humidity sensor are repeatedly turned on and off, whether the relative humidity of the pump device 2 based on the object temperature and humidity information is above a predetermined first threshold (e.g., 80%) during the period when the heater 36 for the object temperature and humidity sensor is on, and whether the relative humidity of the ambient environment based on the ambient temperature and humidity information is below a second threshold (e.g., 5%) set lower than the first threshold during the period when the heater 37 for the ambient temperature and humidity sensor is on. If the relative humidity of the pump device 2 is above the first threshold (e.g., 80%) and the relative humidity of the ambient environment is below the second threshold (e.g., 5%), the detection unit 302B determines that water leakage caused by the object has occurred. Note that the water leakage detection process detects behavior as shown in Figure 20, and other detection methods may be used.
[0085] Returning to Figure 12, if the determination unit 302B determines that no water is generated in step S240 ("No" in step S240), it determines in step S241 that no water is generated.
[0086] Then, in step S280, the output processing unit 303 outputs the determination result from the determination unit 302B in step S230 (specifically, the determination results from steps S241, S253, S262, and S270), and the series of processes ends. Step S200 corresponds to the object temperature and humidity information acquisition step, step S210 to the ambient temperature and humidity information acquisition step, step S220 to the heater information acquisition step, step S230 to the determination step, and step S280 to the output processing step.
[0087] As described above, according to the water detection device 3B of this embodiment, by combining object temperature and humidity information showing the change in temperature and humidity of the pump device 2 over time, ambient temperature and humidity information showing the change in temperature and humidity of the surrounding environment over time, and heater information showing the change in the heating state of the object temperature and humidity sensor heater 36 and the ambient temperature and humidity sensor heater 37 over time, it is possible to determine whether or not water is generated on the surface of the object (pump device 2) and the cause of its generation.
[0088] Furthermore, when the determination unit 302B determines that water is present on the surface of the object, it can also determine whether the cause of the water is condensation or water leakage. Therefore, it is possible to appropriately detect mechanical leaks due to damage or aging of the object, for example, without using expensive water leakage sensors such as electrode type or infrared type sensors.
[0089] (Fourth embodiment) Figure 21 is an overall configuration diagram showing an example of a water detection system 1D according to the fourth embodiment. Figure 22 is a block diagram showing an example of an object monitoring device 7B and a management device 4D according to the fourth embodiment.
[0090] The water detection system 1D according to this embodiment differs from the third embodiment in that it includes an object monitoring device 7B attached to the pump device 2 instead of the water detection device 3B, and the management device 4D implements the functions of the water detection method performed by the control unit 30 of the water detection device 3B. However, the basic configuration and operation are the same. The following will focus on describing the features of this embodiment.
[0091] The object monitoring device 7B, compared to the water detection device 3B according to the third embodiment, includes an object temperature and humidity information acquisition unit 300, an environmental temperature and humidity information acquisition unit 301, a heater information acquisition unit 304, and a determination unit 302. This is a device in which the B and the output processing unit 303 are omitted. That is, the object monitoring device 7B comprises a control unit 70, a communication unit 71, a storage unit 72, a housing 73, an object temperature and humidity sensor 74, an ambient temperature and humidity sensor 75, an object temperature and humidity sensor heater 76, and an ambient temperature and humidity sensor heater 77. The control unit 70, the communication unit 71, and the storage unit 72 may be omitted as appropriate. In that case, the object temperature and humidity sensor 74, the ambient temperature and humidity sensor 75, the object temperature and humidity sensor heater 76, and the ambient temperature and humidity sensor heater 77 may be connected, for example, to the pump control panel 22 of the pump device 2.
[0092] The heater 76 for the object temperature and humidity sensor and the heater 77 for the ambient temperature and humidity sensor perform on / off operations of the heating state based on operation command data received from the management device 4D via the control unit 70 and the communication unit 71, for example. The transmission period of the sensor data may be the same as the detection period of the object temperature and humidity sensor 74 and the ambient temperature and humidity sensor 75, or it may be longer than the detection period of the object temperature and humidity sensor 74 and the ambient temperature and humidity sensor 75. In the latter case, the communication unit 71 may transmit the sensor data accumulated during the transmission period all at once.
[0093] The control device 4D comprises a control unit 40, a communication unit 41, and a storage unit 42 as its main components. The control unit 40 functions as an object temperature and humidity information acquisition unit 400, an environmental temperature and humidity information acquisition unit 401, a heater information acquisition unit 404, a determination unit 402B, and an output processing unit 403 by executing, for example, a water detection program 420B stored in the storage unit 42. The object temperature and humidity information acquisition unit 400, the environmental temperature and humidity information acquisition unit 401, the heater information acquisition unit 404, the determination unit 402B, and the output processing unit 403 perform the same functions as the object temperature and humidity information acquisition unit 300, the environmental temperature and humidity information acquisition unit 301, the heater information acquisition unit 304, the determination unit 302B, and the output processing unit 303 according to the third embodiment, so a detailed explanation is omitted.
[0094] As described above, according to the management device 4D of this embodiment, by combining object temperature and humidity information showing the change in temperature and humidity of the pump device 2 over time, ambient temperature and humidity information showing the change in temperature and humidity of the surrounding environment over time, and heater information showing the change in the heating state of the object temperature and humidity sensor heater 76 and the ambient temperature and humidity sensor heater 77 over time, it is possible to determine whether or not water is generated on the surface of the object (pump device 2) and the cause of its generation.
[0095] Furthermore, when the determination unit 402B determines that water is present on the surface of the object, it can also determine whether the cause of the water is condensation or water leakage. Therefore, it is possible to appropriately detect mechanical leaks due to damage or aging of the object, for example, without using expensive water leakage sensors such as electrode type or infrared type sensors.
[0096] (Other embodiments) The present invention is not limited to the embodiments described above, and can be implemented with various modifications without departing from the spirit of the invention. All such modifications are included in the technical concept of the present invention.
[0097] In the above embodiment, the case in which the water detection devices 3A and 3B are implemented as devices comprising a control unit 30, a communication unit 31, and a storage unit 32 has been described. However, some or all of the functions of the water detection devices 3A and 3B (especially the functions of the control unit 30) may be implemented in the pump control panel 22 of the pump device 2 or the user terminal device 5, or in a remote device such as a server type, cloud type, or central monitoring center type. In that case, the object temperature and humidity sensor 34 and the ambient temperature and humidity sensor 35 should be connected to the pump control panel 22, the user terminal device 5, or the remote device by wire or wireless connection to send and receive various data. Furthermore, in the above embodiment, the case in which the object monitoring devices 7A and 7B are implemented as devices comprising a control unit 70, a communication unit 71, and a storage unit 72 has been described. However, some or all of the functions of the object monitoring devices 7A and 7B (especially the functions of the control unit 70) may be implemented in the pump control panel 22 of the pump device 2 or the user terminal device 5. It may be displayed on the surface, or it may be implemented using remote devices such as server-type, cloud-type, or central monitoring center-type devices. In that case, the target object temperature and humidity sensor 34 and the ambient temperature and humidity sensor 35 should be connected to the pump control panel 22, user terminal device 5, or remote device by wire or wireless connection, and various types of data should be sent and received.
[0098] In the above embodiments, the case in which the water detection system 1A to 1D includes a user terminal device 5 as one of its components has been described. However, a remote device such as a server type, cloud type, or central monitoring center type may be included instead of or in addition to the user terminal device 5. In that case, the remote device may operate in the same manner as the user terminal device 5 in the above embodiment, or it may also send and receive various types of data with a client type device that can connect to the remote device.
[0099] In the above embodiment, the case in which the water detection devices 3A and 3B and the management devices 4B and 4D operate according to the flowcharts shown in Figures 5, 12, 13, 14, and 16 has been described. However, the execution order of each step may be changed as appropriate, or some steps may be omitted.
[0100] The water detection device 3A and management device 4B according to the above embodiment were described as performing a water detection method that determines the presence or absence of water and the cause of water generation based on object temperature and humidity information and environmental temperature and humidity information. However, the water detection method may also be performed using a machine learning model. Similarly, the water detection device 3B and management device 4D according to the above embodiment were described as performing a water detection method that determines the presence or absence of water generation and the cause of water generation based on object temperature and humidity information, environmental temperature and humidity information, and heater information. However, the water detection method may also be performed using a machine learning model. In this case, the learning model can be obtained, for example, by taking object temperature and humidity information and environmental temperature and humidity information, or object temperature and humidity information, environmental temperature and humidity information and heater information as input data, and the presence or absence of water generation and the cause of water generation as output data, and learning the correlation between the input data and the output data using machine learning. The machine learning here is called supervised learning, and any machine learning method such as neural networks (including deep learning), decision trees, ensemble learning, clustering, multivariate analysis, and support vector machines may be adopted. [Explanation of Symbols]
[0101] 1A-1D...Water detection system, 2...Pump device (target object), 3A, 3B...Water detection device, 4A-4D... Management devices, 5... User terminal devices, 6... Network, 7A, 7B... Object monitoring device, 20...Pump unit, 21...Motor, 22...Pump control panel, 30...Control unit, 31...Communication unit, 32...Storage unit, 33...Housing, 34...Object temperature and humidity sensor, 35...Environmental temperature and humidity sensor, 36... Heater for object temperature and humidity sensor, 37... Heater for ambient temperature and humidity sensor, 40...Control unit, 41...Communication unit, 42...Storage unit, 70...Control unit, 71...Communication unit, 72...Storage unit, 73...Housing, 74...Object temperature and humidity sensor, 75...Environmental temperature and humidity sensor, 76... Heater for object temperature and humidity sensor, 77... Heater for ambient temperature and humidity sensor, 300...Target object temperature and humidity information acquisition unit, 301...Environmental temperature and humidity information acquisition unit, 302A, 302B... Determination unit, 303... Output processing unit, 304... Heater information acquisition unit, 320A, 320B... Water detection program, 400...Target object temperature and humidity information acquisition unit, 401...Environmental temperature and humidity information acquisition unit, 402A, 402B... Determination unit, 403... Output processing unit, 404... Heater information acquisition unit, 420A, 420B…Water detection program
Claims
1. A water detection device that detects the amount of water present on the surface of an object installed in the surrounding environment, which has water flowing inside it, A temperature and humidity sensor for detecting the temperature and humidity of the object, An ambient temperature and humidity sensor for detecting the temperature and humidity of the surrounding environment, The system includes a determination unit that determines whether water is generated and the cause of water generation based on object temperature and humidity information showing the change in temperature and humidity over time detected by the object temperature and humidity sensor and environmental temperature and humidity information showing the change in temperature and humidity over time detected by the environmental temperature and humidity sensor. Water detection device.
2. The enclosure further comprises the aforementioned ambient temperature and humidity sensor and the aforementioned object temperature and humidity sensor, The aforementioned object temperature and humidity sensor is The housing is positioned on the side facing the object, The aforementioned ambient temperature and humidity sensor is The housing is positioned on the opposite side from the object, The water detection device according to claim 1.
3. The determination unit, A water determination process that determines whether or not water is generated based on the temperature and humidity information of the object, A condensation determination process that determines whether or not condensation water is generated due to the surrounding environment based on the aforementioned ambient temperature and humidity information, When the water determination process determines that water is present, a water generation cause process is performed to determine, based on the determination result of the condensation determination process determining whether or not condensation water is present, whether the cause of the water generation is condensation water caused by the object or condensation water caused by the surrounding environment. The water detection device according to claim 1.
4. The object temperature and humidity sensor includes a sensing unit and an object temperature and humidity sensor heater arranged to heat at least one of the surfaces of the object, The ambient temperature and humidity sensor further comprises an ambient temperature and humidity sensor heater arranged to heat the sensing part of the ambient temperature and humidity sensor, The determination unit, Based on the object temperature and humidity information, the ambient temperature and humidity information, and heater information indicating the change over time in the heating state of the object temperature and humidity sensor heater and the ambient temperature and humidity sensor heater, the presence or absence of water generation and the cause of water generation are determined. A water detection device according to any one of claims 1 to 3.
5. The determination unit, A water determination process that determines whether or not water is generated based on the temperature and humidity information of the object and the heater information, A first condensation determination process that determines whether or not condensation water is generated due to the object based on the object temperature and humidity information, the ambient temperature and humidity information, and the heater information, A second condensation determination process that determines whether or not condensation water is generated due to the surrounding environment based on the aforementioned object temperature and humidity information, the aforementioned environmental temperature and humidity information, and the aforementioned heater information, When the water determination process determines that water is present, a water generation cause process is performed to determine whether the cause of the water is leakage caused by the object, condensation caused by the object, or condensation caused by the surrounding environment, based on the determination result of the first condensation determination process and the determination result of the second condensation determination process. The water detection device according to claim 4.
6. The determination unit, As the aforementioned water determination process, When the heater for the object temperature and humidity sensor and the heater for the ambient temperature and humidity sensor are repeatedly turned on and off, and during the on period of the object temperature and humidity sensor heater based on the heater information, the relative humidity of the object based on the object temperature and humidity information is above a predetermined level, and the absolute humidity of the object based on the object temperature and humidity information is on an increasing trend, then it is determined that water generation has occurred, or During the aforementioned ON period, if the absolute humidity of the object, based on the object's temperature and humidity information, is increasing or maintaining its current state, it is determined that water generation has occurred. The water detection device according to claim 5.
7. The determination unit, As the first condensation determination process, When only the temperature of the object based on the object temperature and humidity information reaches the dew point of the surrounding environment indicated by the ambient temperature and humidity information, and when the on / off operation of the heater for the object temperature and humidity sensor and the heater for the ambient temperature and humidity sensor is repeatedly performed, and during the on period of the heater for the object temperature and humidity sensor based on the heater information, the relative humidity of the object based on the object temperature and humidity information is below a predetermined lower threshold, and in a comparison of multiple on periods, the relative humidity of the object based on the object temperature and humidity information shows an increasing trend, it is determined that condensation water has been generated due to the object. As the second condensation determination process, When the temperature of the object based on the object temperature and humidity information and the temperature of the surrounding environment based on the environmental temperature and humidity information reach the dew point of the surrounding environment indicated by the environmental temperature and humidity information, and when the on / off operation of the heater for the object temperature and humidity sensor and the heater for the environmental temperature and humidity sensor is repeatedly performed, and the relative humidity of the surrounding environment based on the environmental temperature and humidity information is above a predetermined upper limit threshold during the off period of the heater for the environmental temperature and humidity sensor based on the heater information, it is determined that condensation water has been generated due to the surrounding environment. The water detection device according to claim 5.
8. The determination unit, When the on / off operation of the heater for the object temperature and humidity sensor and the heater for the ambient temperature and humidity sensor is repeatedly performed, if, during the on period of the heater for the object temperature and humidity sensor based on the heater information, the relative humidity of the object based on the object temperature and humidity information is above a predetermined first threshold, and during the on period of the heater for the ambient temperature and humidity sensor based on the heater information, the relative humidity of the ambient environment based on the ambient temperature and humidity information is below a second threshold set lower than the first threshold, then a leak detection process is further performed to determine that a leak caused by the ambient environment has occurred. As the water generation cause processing, when the water determination process determines that water is generated, the process determines whether the water generation cause is water leakage caused by the object, water condensation caused by the object, or water condensation caused by the surrounding environment, based on the determination result of the first condensation determination process determining whether or not condensation water is generated, the determination result of the second condensation determination process determining whether or not condensation water is generated, and the determination result of the water leakage determination process determining whether or not water leakage is occurring. The water detection device according to claim 5.
9. A water detection system for detecting the amount of water present on the surface of an object installed in the surrounding environment, which has water flowing inside it, One or more object monitoring devices comprising an object temperature and humidity sensor for detecting the temperature and humidity of the object, and an ambient temperature and humidity sensor for detecting the temperature and humidity of the surrounding environment, The system includes a management device that can communicate with the aforementioned object monitoring device, The aforementioned control device is The system includes a determination unit that determines whether water is generated and the cause of water generation based on object temperature and humidity information showing the change in temperature and humidity over time detected by the object temperature and humidity sensor and environmental temperature and humidity information showing the change in temperature and humidity over time detected by the environmental temperature and humidity sensor. Water detection system.
10. The aforementioned object monitoring device is The object temperature and humidity sensor includes a sensing unit and an object temperature and humidity sensor heater arranged to heat at least one of the surfaces of the object, The ambient temperature and humidity sensor further comprises an ambient temperature and humidity sensor heater arranged to heat the sensing part of the ambient temperature and humidity sensor, The determination unit, Based on the object temperature and humidity information, the ambient temperature and humidity information, and heater information indicating the change over time in the heating state of the object temperature and humidity sensor heater and the ambient temperature and humidity sensor heater, the presence or absence of water and the cause of water generation are determined. The water detection system according to claim 9.
11. A water detection method for detecting the water generation status on the surface of an object installed in the surrounding environment, which has water flowing inside it, A step to acquire object temperature and humidity information, which acquires object temperature and humidity information showing the change in the temperature and humidity of the object over time as detected by an object temperature and humidity sensor, An environmental temperature and humidity information acquisition step is to acquire environmental temperature and humidity information showing the change in temperature and humidity of the surrounding environment over time, detected by an environmental temperature and humidity sensor. The process includes a determination step of determining whether water is generated and the cause of water generation based on the temperature and humidity information of the target object and the temperature and humidity information of the environment. Water detection method.
12. The process further includes a heater information acquisition step for acquiring heater information indicating the change over time in the heating state of a heater for an object temperature and humidity sensor, which is arranged to heat at least one of the sensing unit of the object temperature and humidity sensor and the surface of the object, and a heater for an environmental temperature and humidity sensor, which is arranged to heat the sensing unit of the environmental temperature and humidity sensor. The aforementioned determination step is, Based on the object temperature and humidity information, the ambient temperature and humidity information, and the heater information, the presence or absence of water and the cause of water generation are determined. The water detection method according to claim 11.
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