JP2013167552A - Leakage water component determination method using cell reaction due to water leakage of underground facility - Google Patents

Leakage water component determination method using cell reaction due to water leakage of underground facility Download PDF

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JP2013167552A
JP2013167552A JP2012031343A JP2012031343A JP2013167552A JP 2013167552 A JP2013167552 A JP 2013167552A JP 2012031343 A JP2012031343 A JP 2012031343A JP 2012031343 A JP2012031343 A JP 2012031343A JP 2013167552 A JP2013167552 A JP 2013167552A
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leakage
water
component determination
water leakage
determination method
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JP5766629B2 (en
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Takashi Nakayama
貴司 仲山
Kiwamu Tsuno
究 津野
Takashi Ushida
貴士 牛田
Hideya Gamachi
秀矢 蒲地
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Railway Technical Research Institute
JR Souken Information Systems Co Ltd
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JR Souken Information Systems Co Ltd
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Abstract

PROBLEM TO BE SOLVED: To provide a leakage water component determination method using a cell reaction due to a water leakage of an underground facility and being activated by detection of a water leakage to be detected.SOLUTION: A leakage water component determination method using a cell reaction due to a water leakage of an underground facility performs leakage water component determination compared with reference data 16 for various kinds of water leakages that is pre-stored, on the basis of output information on a water leakage 3 from a self power-generating type water leakage detector 11.

Description

本発明は、地下施設の漏水による電池反応を利用した漏水成分判定方法に関するものである。   The present invention relates to a leakage component determination method using a battery reaction caused by leakage in an underground facility.

電池は通常、二つの電極と、これらの電極に接する電解質から構成され、電極は電子伝導性を、電解質はイオン伝導性をもつ必要がある。液体の電解質は水などの極性溶媒に塩を溶解した溶液(電解液)とする場合が多い(下記非特許文献1参照)。
ところで、供用中の鉄道駅や地下歩道などの地下施設で漏水が発生すると、利用者への滴水が問題となる。また、漏水は地下施設のトンネルなどの鉄筋コンクリート構造物で、鉄筋腐食などの変状を誘発する危険があり、長期間、対策を怠ると耐力低下につながる可能性がある。
A battery is usually composed of two electrodes and an electrolyte in contact with these electrodes. The electrode needs to have electronic conductivity, and the electrolyte needs to have ionic conductivity. In many cases, the liquid electrolyte is a solution (electrolytic solution) in which a salt is dissolved in a polar solvent such as water (see Non-Patent Document 1 below).
By the way, when water leaks in underground facilities such as railway stations and underground sidewalks in service, dripping water to users becomes a problem. Leakage is a reinforced concrete structure such as a tunnel in an underground facility, and there is a risk of inducing deformation such as corrosion of the reinforcing bar, and neglecting measures for a long period of time may lead to a decrease in yield strength.

そこで、電気的な手法を用いて漏水を検知するシステム(例えば、下記特許文献1参照)が構築されているが、これは常時、電気を必要とする手段である。そのため、メンテナンス周期が電源交換周期の影響を受けてしまう。また、測定データをトンネル外部に伝達する手段を含んでいないため、その集約までを行うシステムとなっていない。
なお、後述する本発明とは異なるが、ボルタ電池と同様の化学反応を利用したセンサがあり、この反応を利用した水電池(例えば、下記特許文献2参照)に関する技術は多く存在している。しかし、これらは、電池としての技術であり、その性能向上を図るために、構造や材料を規定するものであり、漏水検知センサを有する漏水検知装置として使用する本発明とは異なるものである。
In view of this, a system for detecting water leakage using an electrical technique (see, for example, Patent Document 1 below) has been constructed, but this is a means that always requires electricity. Therefore, the maintenance cycle is affected by the power supply replacement cycle. In addition, since it does not include means for transmitting measurement data to the outside of the tunnel, it is not a system that performs the aggregation.
Although different from the present invention described later, there is a sensor using a chemical reaction similar to that of a voltaic battery, and there are many techniques related to a water battery (for example, see Patent Document 2 below) using this reaction. However, these are technologies as a battery, and in order to improve the performance, the structure and material are defined, and are different from the present invention used as a water leakage detection device having a water leakage detection sensor.

また、小型化を可能にするとともに、大気汚染のないクリーンな状態で、太陽光の届かない室内にも設置し得る発電装置(下記特許文献3参照)や、海水淡水化設備で生成される濃縮海水をエネルギー的に有効利用する海水淡水化設備における濃縮海水を利用した発電方法及び装置(下記特許文献4参照)も提案されている。   In addition, it is possible to reduce the size, and in a clean state free of air pollution, a power generation device that can be installed in a room where sunlight does not reach (see Patent Document 3 below) and a concentration generated by a seawater desalination facility A power generation method and apparatus using concentrated seawater in a seawater desalination facility that effectively uses seawater in energy (see Patent Document 4 below) has also been proposed.

特開平10−9905号公報Japanese Patent Laid-Open No. 10-9905 特開2011−222236号公報JP 2011-222236 A 特開2004−103294号公報JP 2004-103294 A 特開2004−335312号公報Japanese Patent Laid-Open No. 2004-335312

渡辺正,片山靖 共著、「電池がわかる電気化学入門」,株式会社 オーム社、平成23年7月25日、 pp.6−9Tadashi Watanabe and Satoshi Katayama, “Introduction to Electrochemistry to Know Batteries”, Ohm Co., Ltd., July 25, 2011, pp. 6-9

上記したように、鉄道駅や地下歩道での漏水は、利用者への影響が早い時期に顕在化するため、早期にその発生を検知する必要がある。また、トンネル区間、特に、鉄道トンネルでは、維持管理作業の時間的制約からメンテナンス周期の長さが重要となるが、既存の手法は、搭載した電源の交換期間がその周期の制約となる場合が多い。
本発明は、上記状況に鑑みて、検知対象である漏水を検知することで起動する、地下施設の漏水による電池反応を利用した漏水成分判定方法を提供することを目的とする。
As described above, water leakage at a railway station or underground sidewalk becomes apparent at an early stage of the impact on users, so it is necessary to detect the occurrence at an early stage. Also, in tunnel sections, especially railway tunnels, the length of the maintenance cycle is important due to the time constraints of maintenance work, but the existing method may limit the cycle of the installed power supply period. Many.
In view of the above situation, an object of the present invention is to provide a leakage component determination method using a battery reaction caused by leakage in an underground facility, which is activated by detecting leakage that is a detection target.

本発明は、上記目的を達成するために、
〔1〕地下施設の漏水による電池反応を利用した漏水成分判定方法であって、漏水による自己発電型漏水検知装置による出力に基づいて、予め記憶された各種の漏水の基準データと比較して漏水成分判定を行うことを特徴とする。
〔2〕上記〔1〕記載の地下施設の漏水による電池反応を利用した漏水成分判定方法であって、前記漏水成分判定は、前記自己発電型漏水検知装置に接続された直流電圧計の値に基づいて行うことを特徴とする。
In order to achieve the above object, the present invention provides
[1] A leakage component determination method using a battery reaction caused by leakage in an underground facility, based on the output from a self-powered leakage detection device due to leakage, compared with various stored leakage reference data stored in advance. Component determination is performed.
[2] A leakage component determination method using a battery reaction caused by leakage in an underground facility as described in [1] above, wherein the leakage component determination is based on a value of a DC voltmeter connected to the self-powered leakage detector. It is characterized by performing.

〔3〕上記〔1〕記載の地下施設の漏水による電池反応を利用した漏水成分判定方法であって、前記漏水成分判定は、前記自己発電型漏水検知装置に接続された表示装置の照度に基づいて行うことを特徴とする。
〔4〕上記〔3〕記載の地下施設の漏水による電池反応を利用した漏水成分判定方法であって、前記表示装置によって、トンネル内の漏水の有無を視覚により点検可能にすることを特徴とする。
[3] The water leakage component determination method using a battery reaction caused by water leakage in the underground facility according to [1], wherein the water leakage component determination is based on illuminance of a display device connected to the self-power generation type water leakage detection device. It is characterized by performing.
[4] A leakage component determination method using a battery reaction caused by leakage in an underground facility according to [3], wherein the display device allows visual inspection of leakage in a tunnel. .

本発明によれば、検知対象である漏水を検知することで起動する、地下施設の漏水による電池反応を利用した漏水成分判定方法を提供する。   ADVANTAGE OF THE INVENTION According to this invention, the water leak component determination method using the battery reaction by the water leak of an underground facility started by detecting the water leak which is a detection target is provided.

本発明に係る地下施設の自己発電型漏水検知装置と漏水成分判定装置の模式図である。It is a schematic diagram of the self-power generation type water leakage detection device and the water leakage component determination device of the underground facility according to the present invention. 本発明の実施例を示す漏水成分判定装置のブロック図である。It is a block diagram of the water leakage component determination apparatus which shows the Example of this invention. 本発明の実施例を示す漏水成分判定装置における入力データと各種の基準データメモリの模式図である。It is a schematic diagram of the input data and various reference | standard data memory in the water leakage component determination apparatus which shows the Example of this invention. 本発明の他の実施例を示す漏水成分判定のシステムのブロック図である。It is a block diagram of the system of water leakage component determination which shows the other Example of this invention.

本発明の地下施設の漏水による電池反応を利用した漏水成分判定方法は、漏水による自己発電型漏水検知装置による出力に基づいて、予め記憶された各種の基準データと比較して漏水成分判定を行う。   The leakage component determination method using a battery reaction caused by leakage in an underground facility according to the present invention performs leakage component determination in comparison with various reference data stored in advance based on the output from a self-powered leakage detector due to leakage. .

以下、本発明の実施の形態について詳細に説明する。
図1は本発明に係る地下施設の自己発電型漏水検知装置と漏水成分判定装置の模式図である。なお、ここでは、地下施設としてのトンネルを例に説明する。
この図において、1はトンネル、2はトンネル1のひび割れ、3はひび割れ2より洩れる漏水、11は自己発電型漏水検知センサ、12は漏水3を溜める容器、13,14は容器12の内部に配置されて漏水3を検知するイオン化傾向の異なる電極、13A,14Aは電極13,14のリード線、15は自己発電型漏水検知センサ11の出力装置、16は設置環境に関するデータ入力装置、20は漏水成分判定装置である。ここでは、自己発電型漏水検知センサ11の出力装置15としては、直流電圧計を用いている。
Hereinafter, embodiments of the present invention will be described in detail.
FIG. 1 is a schematic diagram of a self-power generation type water leakage detection device and a water leakage component determination device of an underground facility according to the present invention. Here, a tunnel as an underground facility will be described as an example.
In this figure, 1 is a tunnel, 2 is a crack in the tunnel 1, 3 is a leak from the crack 2, 11 is a self-powered leak sensor, 12 is a container for storing the leak 3, and 13 and 14 are arranged inside the container 12. The electrodes 13A and 14A are the lead wires of the electrodes 13 and 14, 15 is the output device of the self-power generation type water leakage detection sensor 11, 16 is the data input device relating to the installation environment, and 20 is the water leakage. It is a component determination apparatus. Here, a DC voltmeter is used as the output device 15 of the self-power generation type water leakage detection sensor 11.

この自己発電型漏水検知装置は、漏水3を受ける容器12を備え、この容器12の内部には、イオン化傾向の異なる電極13と14が対向して配置されている。そこで、容器12が漏水3を受けると、その漏水3が電解液として振る舞い、電極13と14とのイオン化傾向の差によって電池としての機能を得る。本発明の自己発電型漏水検知センサ11は、イオン化傾向の異なる電極13と14が漏水に接して発電することで本発明の自己発電型漏水検知センサ11が起動して漏水を検知し、自己発電型漏水検知センサ11の出力装置15によりデータが得られ、このデータが漏水成分判定装置20に入力される。すると、このデータに基づいて、自己発電型漏水検知センサシステム、自己発電型漏水検知センサ11の出力装置15と設置環境に関するデータ入力装置を用いて漏水成分判定装置20により漏水成分が判定される。   This self-power generation type water leakage detection device includes a container 12 that receives the water leakage 3, and electrodes 13 and 14 having different ionization tendencies are arranged inside the container 12 to face each other. Therefore, when the container 12 receives the water leak 3, the water leak 3 behaves as an electrolytic solution, and a battery function is obtained by the difference in ionization tendency between the electrodes 13 and 14. The self-power generation type water leakage detection sensor 11 of the present invention activates the self-power generation type water leakage detection sensor 11 of the present invention when the electrodes 13 and 14 having different ionization tendency come into contact with the water leakage, thereby detecting the water leakage. Data is obtained by the output device 15 of the mold water leakage detection sensor 11, and this data is input to the water leakage component determination device 20. Then, based on this data, the water leakage component is determined by the water leakage component determination device 20 using the self power generation type water leakage detection sensor system, the output device 15 of the self power generation type water leakage detection sensor 11 and the data input device regarding the installation environment.

図2は本発明の実施例を示す漏水成分判定装置のブロック図、図3はその漏水成分判定装置における入力データと各種の基準データメモリの模式図である。
これらの図において、漏水成分判定装置20は、中央処理装置(CPU)21、データ入力装置16からのデータを受けるI/F(インタフェース)22、このI/F22からのデータを記憶する各種の基準データメモリ23、自己発電型漏水検知センサ11の出力装置15からの出力信号を受けるI/F(インタフェース)24、計時装置26に接続されるI/F(インタフェース)25、報知装置28に接続されるI/F(インタフェース)27、無線送信装置30に接続されるI/F(インタフェース)29からなる。
FIG. 2 is a block diagram of a water leakage component determination apparatus showing an embodiment of the present invention, and FIG. 3 is a schematic diagram of input data and various reference data memories in the water leakage component determination apparatus.
In these figures, the water leakage component determination device 20 includes a central processing unit (CPU) 21, an I / F (interface) 22 that receives data from the data input device 16, and various standards for storing data from the I / F 22. Connected to a data memory 23, an I / F (interface) 24 that receives an output signal from the output device 15 of the self-power generation type water leakage detection sensor 11, an I / F (interface) 25 that is connected to the timing device 26, and a notification device 28. I / F (interface) 27 and I / F (interface) 29 connected to the wireless transmission device 30.

そして、データ入力装置16としては、図3(a)に示されるような淡水データ16Aや、図3(b)に示されるような塩水(海水)データ16Bや、図3(c)に示されるような酸性水データ16CなどをI/F22を介して各種の基準データメモリ23に予め記憶しておく。そこで、自己発電型漏水検知センサ11の出力装置15からの出力データがI/F24を介して漏水成分判定装置20に入力されると、このその自己発電型漏水検知センサ11の出力装置15からの出力データが各種の基準データメモリ23内の基準データと比較されて漏水成分が判定されて、必要に応じてその判定結果が報知装置28から報知される。   And as data input device 16, fresh water data 16A as shown in Drawing 3 (a), salt water (seawater) data 16B as shown in Drawing 3 (b), and Drawing 3 (c) are shown. Such acidic water data 16C and the like are stored in advance in various reference data memories 23 via the I / F 22. Therefore, when output data from the output device 15 of the self-power generation type water leakage detection sensor 11 is input to the water leakage component determination device 20 through the I / F 24, the output data from the output device 15 of the self power generation type water leakage detection sensor 11 is output. The output data is compared with reference data in various reference data memories 23 to determine a water leakage component, and the determination result is notified from the notification device 28 as necessary.

また、水中のイオンと導電率とは相関関係がある。NaClやKCなど多くの塩類の場合は、見ずに溶けた電解質はほとんどイオンになり、濃度と導電率との関係が直線的であるのに対して、弱電解質である酢酸などの有機酸などの場合は、濃度が非常に低い領域では導電率と直線関係ですが、濃度が高くなるにつれてイオン化する割合が減少する。このような電解質に特有な特徴を予めメモリに記憶させておき、漏水成分判定装置によって判定するようにすることができる。   Moreover, there is a correlation between ions in water and conductivity. In the case of many salts such as NaCl and KC, the dissolved electrolyte almost becomes an ion, and the relationship between the concentration and the conductivity is linear, whereas the weak electrolyte is an organic acid such as acetic acid. In the case of (1), in the region where the concentration is very low, the relationship is linearly related to the conductivity. However, as the concentration increases, the ionization rate decreases. Such characteristics peculiar to the electrolyte can be stored in the memory in advance, and can be determined by the water leakage component determination device.

図4は本発明の他の実施例を示す漏水成分判定のシステムのブロック図であり、31,41は自己発電型漏水検知センサ、32,42は容器、33,43は漏水、34,35,44,45はイオン化傾向の異なる電極、34A,35A,44A,45Aは電極のリード線である。
図4(a)は淡水の場合、図4(b)は塩水(海水)の場合の漏水成分判定を示す模式図であり、図4(a)では、淡水の自己発電型漏水検知センサの出力を表示装置36で表示し、その照度データを漏水成分判定装置38で判定する。なお、この漏水成分判定装置38には、各種の照度データ入力装置37からのデータが記憶されており、淡水の自己発電型漏水検知センサの出力と比較されて漏水の成分の判定が行われる。図4(b)では、塩水(海水)の自己発電型漏水検知センサの出力を表示装置46で表示し、その照度データを漏水成分判定装置48で判定する。なお、この漏水成分判定装置48には、各種の照度データ入力装置47からのデータが記憶されており、塩水(海水)の自己発電型漏水検知センサの出力と比較されて漏水の成分の判定が行われる。
FIG. 4 is a block diagram of a water leakage component determination system according to another embodiment of the present invention, 31 and 41 are self-power generation type water leakage detection sensors, 32 and 42 are containers, 33 and 43 are water leakages, 34 and 35, 44 and 45 are electrodes having different ionization tendency, and 34A, 35A, 44A and 45A are lead wires of the electrodes.
4A is a schematic diagram showing leakage component determination in the case of fresh water and FIG. 4B is in the case of salt water (seawater). In FIG. 4A, the output of the self-powered leakage detection sensor for fresh water is shown. Is displayed on the display device 36, and the illuminance data is determined by the water leakage component determination device 38. The water leakage component determination device 38 stores data from various illuminance data input devices 37 and compares the output of freshwater self-power generation type water leakage detection sensor with the water leakage component determination. In FIG. 4B, the output of the self-powered leakage detection sensor for salt water (seawater) is displayed on the display device 46, and the illuminance data is determined by the leakage component determination device 48. The water leakage component determination device 48 stores data from various illuminance data input devices 47, and compares the output of the self-powered leakage detection sensor for salt water (seawater) to determine the component of the water leakage. Done.

また、この実施例では、表示装置36,46の点灯の有無によって、トンネル内での漏水の有無を視覚により点検することができるので、実用的効果が高い。
このように、本発明によれば、検査の対象となる漏水が溜まると、その漏水はボルタ電池(2個の異種金属の電極を、それらの一方又は両方に化学的に作用する溶液に浸した構成の電圧発生用の一次電池)として自己発電を行うようにした。特に、漏水が海岸地方の塩分を含んだ海水の場合は、トンネルの鉄筋コンクリートの鉄筋の腐食が問題となり、山岳地方の酸性の温泉水であるような場合には、トンネルのコンクリートの腐食などの変状を誘発する危険があるので、その漏水の早期発見と成分判定に寄与することができる。
Further, in this embodiment, since the presence or absence of water leakage in the tunnel can be visually inspected depending on whether or not the display devices 36 and 46 are turned on, the practical effect is high.
Thus, according to the present invention, when water leaked becomes a target for inspection, the water leakage is immersed in a voltaic cell (two dissimilar metal electrodes immersed in a solution that chemically acts on one or both of them). Self-power generation is performed as a primary battery for voltage generation in the configuration. In particular, in the case of seawater containing salt in the coastal area, the corrosion of the reinforced concrete in the tunnel is a problem. Since there is a risk of inducing the condition, it can contribute to early detection of water leakage and component determination.

例えば、海岸付近や感潮河川直下のトンネルでは、漏水が塩化物イオンを多く含むため、塩害が発生してトンネルの鉄筋腐食を誘発する。そのため、合理的な維持管理のためには、この種の塩化物イオンを多く含む漏水は早期に発見して対策することが望ましい。本発明によれば、このような漏水成分を漏水の検知とあわせて判定することができる。
また、酸性水の漏水は、トンネルのコンクリートを浸食するため、トンネルの劣化の原因となる。例えば、温泉地付近に位置するトンネルではこのような事象が生じるので、このような酸性の漏水も同時に発見して対策することが望ましい。本発明によれば、このような漏水成分を漏水の検知とあわせて判定することができる。
For example, in a tunnel near the coast or directly under a tidal river, the leakage of water contains a large amount of chloride ions, causing salt damage and inducing tunnel reinforcement corrosion. Therefore, for reasonable maintenance, it is desirable to detect and take measures against water leaks that contain a large amount of this kind of chloride ions. According to the present invention, such a water leakage component can be determined together with the detection of water leakage.
In addition, the leakage of acidic water erodes the concrete of the tunnel and causes deterioration of the tunnel. For example, such a phenomenon occurs in a tunnel located in the vicinity of a hot spring resort, so it is desirable to simultaneously detect and take measures against such acidic water leakage. According to the present invention, such a water leakage component can be determined together with the detection of water leakage.

本発明は、不純物が含まれる漏水も電解液として振る舞うことができるので、電解液中に含まれる電解質の種類や量に応じて生じる電池性能の差異を利用して、主に都市トンネルで塩害の原因となる海水や、山岳トンネルでごく稀に発生する酸性の漏水も判定することができる。また、同様に駅等の排水に含まれる環境汚染物質も判定することができる。
なお、本発明は上記実施例に限定されるものではなく、本発明の趣旨に基づき種々の変形が可能であり、これらを本発明の範囲から排除するものではない。
In the present invention, water leakage including impurities can also behave as an electrolyte solution. Therefore, utilizing the difference in battery performance depending on the type and amount of electrolyte contained in the electrolyte solution, salt damage is mainly caused in urban tunnels. It can also determine the causal seawater and the acid leaks that occur very rarely in mountain tunnels. Similarly, it is also possible to determine environmental pollutants contained in drainage at stations and the like.
In addition, this invention is not limited to the said Example, Based on the meaning of this invention, a various deformation | transformation is possible and these are not excluded from the scope of the present invention.

本発明の地下施設の漏水による電池反応を利用した漏水成分判定方法は、検知対象である漏水を検知する、地下施設の漏水による電池反応を利用した漏水成分判定方法として利用可能である。   The leakage component determination method using a battery reaction due to leakage in the underground facility of the present invention can be used as a leakage component determination method using a battery reaction due to leakage in the underground facility, which detects the leakage that is the detection target.

1 トンネル
2 トンネルのひび割れ
3,33,43 漏水
11,31,41 自己発電型漏水検知センサ
12,32,42 容器
13,14,34,35,44,45 イオン化傾向の異なる電極
13A,14A,34A,35A,44A,45A 電極のリード線
15 自己発電型漏水検知センサの出力装置
16 設置環境に関するデータ入力装置
16A 淡水データ
16B 塩水(海水)データ
16C 酸性水データ
20,38,48 漏水成分判定装置
21 中央処理装置(CPU)
22,24,25,27,29 I/F(インタフェース)
23 各種の基準データメモリ
26 計時装置
28 報知装置
30 無線送信装置
36,46 表示装置
37,47 照度データ入力装置
DESCRIPTION OF SYMBOLS 1 Tunnel 2 Tunnel crack 3,33,43 Water leak 11,31,41 Self-power generation type water leak detection sensor 12,32,42 Container 13,14,34,35,44,45 Electrode with different ionization tendency 13A, 14A, 34A , 35A, 44A, 45A Electrode lead wire 15 Self-power generation type water leakage detection sensor output device 16 Data input device related to installation environment 16A Fresh water data 16B Salt water (seawater) data 16C Acidic water data 20, 38, 48 Water leakage component determination device 21 Central processing unit (CPU)
22, 24, 25, 27, 29 I / F (interface)
23 Various reference data memories 26 Timing device 28 Notification device 30 Wireless transmission device 36, 46 Display device 37, 47 Illuminance data input device

Claims (4)

漏水による自己発電型漏水検知装置による出力に基づいて、予め記憶された各種の漏水の基準データと比較して漏水成分判定を行うことを特徴とする地下施設の漏水による電池反応を利用した漏水成分判定方法。   Leakage component using battery reaction due to water leakage in underground facilities, based on output from self-powered water leakage detection device due to water leakage, performing leakage component determination by comparing with reference data of various types of leakage stored in advance Judgment method. 請求項1記載の地下施設の漏水による電池反応を利用した漏水成分判定方法であって、前記漏水成分判定は、前記自己発電型漏水検知装置に接続された直流電圧計の値に基づいて行うことを特徴とする地下施設の漏水による電池反応を利用した漏水成分判定方法。   The water leakage component determination method using a battery reaction caused by water leakage in an underground facility according to claim 1, wherein the water leakage component determination is performed based on a value of a DC voltmeter connected to the self-power generation leakage detector. Leakage component determination method using battery reaction caused by leakage of underground facilities. 請求項1記載の地下施設の漏水による電池反応を利用した漏水成分判定方法であって、前記漏水成分判定は、前記自己発電型漏水検知装置に接続された表示装置の照度に基づいて行うことを特徴とする地下施設の漏水による電池反応を利用した漏水成分判定方法。   The water leakage component determination method using a battery reaction caused by water leakage in an underground facility according to claim 1, wherein the water leakage component determination is performed based on illuminance of a display device connected to the self-power generation type water leakage detection device. Leakage component determination method using battery reaction caused by leakage of underground facilities. 請求項3記載の地下施設の漏水による電池反応を利用した漏水成分判定方法であって、前記表示装置によって、トンネル内の漏水の有無を視覚により点検可能にすることを特徴とする地下施設の漏水による電池反応を利用した漏水成分判定方法。   4. A leakage component determination method using a battery reaction caused by leakage of water in an underground facility according to claim 3, wherein the display device allows visual inspection of the presence or absence of leakage in the tunnel. Leakage component determination method using battery reaction by.
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