JP2009264777A - Measuring instrument of mechanical characteristics under high-pressure hydrogen gas atmosphere, and measuring method of mechanical characteristics under high-pressure hydrogen gas atmosphere using it - Google Patents

Measuring instrument of mechanical characteristics under high-pressure hydrogen gas atmosphere, and measuring method of mechanical characteristics under high-pressure hydrogen gas atmosphere using it Download PDF

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JP2009264777A
JP2009264777A JP2008111344A JP2008111344A JP2009264777A JP 2009264777 A JP2009264777 A JP 2009264777A JP 2008111344 A JP2008111344 A JP 2008111344A JP 2008111344 A JP2008111344 A JP 2008111344A JP 2009264777 A JP2009264777 A JP 2009264777A
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hydrogen gas
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nitrogen gas
pressure vessel
gas atmosphere
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JP5142802B2 (en
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Yasuo Manabe
康夫 真鍋
Takao Fujikawa
隆男 藤川
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Kobe Steel Ltd
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Abstract

<P>PROBLEM TO BE SOLVED: To certainly detect the leak of a hydrogen gas in the case where mechanical characteristics are measured under a high-pressure hydrogen gas atmosphere. <P>SOLUTION: The measuring instrument of the mechanical characteristics under a high-pressure hydrogen gas atmosphere is constituted of a thermostatic tank 1 and a high-pressure container 2, and the high-pressure container 2 is filled with a high-pressure hydrogen gas of about 90 MPa. The high-pressure container 2, a stirring fan 3, a medium circulating heater 4, a nitrogen gas introducing pipe 5 and a nitrogen gas discharge pipeline 6 are provided in the thermostatic tank 1 and a hydrogen gas detecting sensor 7 is provided to the nitrogen gas discharge pipeline 6. The measuring instrument of the mechanical characteristics is equipped with an alarm transmission mechanism 28 for giving an alarm when the amount of a hydrogen gas detected by the hydrogen gas detecting sensor 7 becomes a predetermined value or above or a safety mechanism for discharging the hydrogen gas in the high-pressure container 2 to the outside when the amount of a hydrogen gas detected by the hydrogen gas detecting sensor 7 becomes a predetermined value or above. <P>COPYRIGHT: (C)2010,JPO&INPIT

Description

本発明は、高圧水素ガス雰囲気下における金属材料等の機械的な特性を測定・評価するために引張試験、疲労試験等を行なう試験装置に関するものであって、特には、この試験装置の安全確保に関する。   The present invention relates to a test apparatus for performing a tensile test, a fatigue test, etc. in order to measure and evaluate mechanical properties of a metal material, etc. in a high-pressure hydrogen gas atmosphere, and in particular, to ensure safety of this test apparatus. About.

周知の如く、水素ガスは還元性が強く、金属中に容易に拡散したり水素化合物を形成したりする。このため、金属材料の種々の用途への利用が検討されるときには、水素ガス環境下における材料特性、特に、水素が金属の結合に影響を与えて金属材料を脆化(水素脆化)させたり、水素が金属材料の強度特性を変化させたりすることに留意しなければならない。そのため、水素脆化等が懸念される材料に対しては、水素ガス等の雰囲気ガスを導入して高温又は高圧の環境下で、金属材料の引張強度、圧縮強度、曲げ強度、引張り疲労強度などの機械的特性を測定する必要がある。   As is well known, hydrogen gas is highly reducible and easily diffuses into the metal or forms a hydrogen compound. For this reason, when the use of metal materials for various applications is considered, the material properties in a hydrogen gas environment, particularly hydrogen affects the metal bonding and causes the metal materials to become brittle (hydrogen embrittlement). It should be noted that hydrogen changes the strength properties of metal materials. Therefore, for materials that are concerned about hydrogen embrittlement, etc., an atmosphere gas such as hydrogen gas is introduced and the tensile strength, compressive strength, bending strength, tensile fatigue strength, etc. of the metal material in a high temperature or high pressure environment It is necessary to measure the mechanical properties.

また、水素ガスは可燃性で空気と混合されると容易に発火若しくは爆発することから、その利用に際しては安全上の配慮が必要とされている。ゆえに、特に高圧の水素ガス雰囲気を形成するような試験装置については、種々の安全上の対策が講じられるのが通例である。
ところで、近年、地球温暖化が問題となり、その原因とされる二酸化炭素の排出を極力減らす技術についての研究開発が進められている。たとえば、自動車の駆動にも従来のガソリン又は軽油等の炭化水素系の燃料ではなく、水素を燃焼させる水素エンジンを搭載した水素自動車及び水素をエネルギ源とする燃料電池を用いた電気自動車が実用化されようとしている。このような水素自動車又は電気自動車の場合、1回の充電により走行できる距離が実用上十分に長いことが必要とされている。このため、自動車に搭載される水素源として最も実用化に近い方法として、圧縮水素ボンベを積載する方法に期待が寄せられている。
Further, since hydrogen gas is flammable and easily ignites or explodes when mixed with air, safety considerations are required for its use. Therefore, various safety measures are usually taken for a test apparatus that forms a high-pressure hydrogen gas atmosphere.
By the way, in recent years, global warming has become a problem, and research and development on a technique for reducing the emission of carbon dioxide, which is the cause, has been promoted. For example, hydrogen vehicles equipped with a hydrogen engine that burns hydrogen and electric vehicles that use hydrogen as an energy source are put to practical use instead of conventional hydrocarbon fuels such as gasoline or light oil. It is going to be done. In the case of such a hydrogen vehicle or an electric vehicle, the distance that can be traveled by one charge is required to be sufficiently long in practice. For this reason, there is an expectation for a method of loading a compressed hydrogen cylinder as a method that is closest to practical use as a hydrogen source mounted on an automobile.

数年前までは、この圧縮水素ボンベの圧力は35MPa程度であり1回の燃料充填での走行距離が300km以下であった。この走行距離を実用的な500kmに改善することが検討されて、圧縮水素ボンベの圧力が70MPa程度になるまでに至っている。
このような高圧の水素ガス雰囲気下で用いられる機器類の材料については、上述した水素脆化等の問題が危惧されるものの、これまでにこのような高圧水素ガス雰囲気での種々の材料の機械的な特性について十分なデータがなく、材料規格すら制定されていない状況にある。機械的特性を評価するにも、当然ながらそのような高圧水素ガス雰囲気を形成しうる試験装置が必要であるが、安全の観点から十分なものは入手が困難なのが実情である。
Until several years ago, the pressure of this compressed hydrogen cylinder was about 35 MPa, and the travel distance in one fuel charge was 300 km or less. It has been studied to improve the travel distance to a practical 500 km, and the pressure of the compressed hydrogen cylinder has reached about 70 MPa.
Regarding the materials of equipment used in such a high-pressure hydrogen gas atmosphere, although there are concerns about the above-mentioned problems such as hydrogen embrittlement, the mechanical properties of various materials in such a high-pressure hydrogen gas atmosphere have so far been concerned. There is not enough data on these properties, and even material standards have not been established. In order to evaluate the mechanical characteristics, naturally, a test apparatus capable of forming such a high-pressure hydrogen gas atmosphere is necessary. However, it is actually difficult to obtain a sufficient test apparatus from the viewpoint of safety.

一方で、高圧(上述の70MPa程度)のアルゴンや窒素を圧力媒体に使用する熱間静水圧プレス装置(HIP装置)が工業的に知られている。高圧ガスを安全に閉じ込める装置の構造としての実績も多いことから、このHIP装置の高圧容器を、高圧水素ガス雰囲気下での試験装置に流用することもが可能である。
しかしながら、HIP装置の高圧容器に水素ガスを封入した場合、アルゴン又は窒素の封入と異なり、高圧容器の蓋と胴部との間のシーリング部を介した水素ガス漏れは非常に危険であり、爆発又は火災等の事故に繋がる虞が大である。
On the other hand, a hot isostatic pressing apparatus (HIP apparatus) that uses high-pressure (about 70 MPa) argon or nitrogen as a pressure medium is industrially known. Since there are many achievements as a structure of an apparatus for safely confining high-pressure gas, it is possible to divert the high-pressure vessel of this HIP apparatus to a test apparatus under a high-pressure hydrogen gas atmosphere.
However, when hydrogen gas is sealed in the high pressure container of the HIP device, unlike argon or nitrogen sealing, hydrogen gas leakage through the sealing part between the lid of the high pressure container and the body is extremely dangerous and explodes. Or there is a great risk of an accident such as a fire.

このことから、HIP装置等に用いられる高圧容器からの水素ガスの漏れに対する安全上の配慮が必要となるが、従来からその対策は採られていない。採られていたとしても、高圧容器が設置された部屋の内部に水素ガス漏れセンサを配置して、水素ガスの漏れを検出するという方法が採用されていたに過ぎない。しかしながら、高圧容器から漏れた水素ガスが部屋に充満する前に、漏れを検出することが好ましいにも関わらず、良い方法は提案されていない。
なお、水素ガス等の爆発性の高い又は反応性の高い雰囲気ガスを導入して高温で材料の引張り試験その他の試験を行なうことができる技術としては、以下のものが公知である。
For this reason, safety considerations are necessary for leakage of hydrogen gas from a high-pressure vessel used in an HIP device or the like, but no countermeasure has been taken. Even if it is adopted, a method of detecting a hydrogen gas leak by merely arranging a hydrogen gas leak sensor inside the room where the high-pressure vessel is installed has been adopted. However, no good method has been proposed, although it is preferable to detect the leak before the hydrogen gas leaking from the high pressure vessel fills the room.
In addition, the following are well-known as a technique which can introduce | transduce highly explosive or highly reactive atmospheric gas, such as hydrogen gas, and can perform a tensile test of a material and other tests at high temperature.

特許文献1は、高圧ガスを導入した高圧容器内に試験部材を配置して、試験部材に荷重を付加して試験部材の変形量を測定する機械特性試験装置を開示する。この試験装置は、少なくとも一端に開口部を有する筒状の本体部と、開口部を開閉自在に閉塞する蓋部とにより構成される。高圧容器内に高圧ガスを導入した際に蓋部にかかる軸力は、高圧容器に外方から係脱自在とされたプレスフレームにより担持される。蓋部に固定された試験部材に対して蓋部を貫通するロッドを通じて荷重を付加するアクチュエータ部により、試験部材の変形量が測定される。さらに、プレスフレームを離脱させて蓋部を開放することにより、試験部材を装着自在及び取出自在としている。   Patent Document 1 discloses a mechanical property test apparatus that arranges a test member in a high-pressure vessel into which high-pressure gas is introduced, applies a load to the test member, and measures the deformation amount of the test member. This test apparatus includes a cylindrical main body having an opening at at least one end, and a lid that closes the opening so as to be freely opened and closed. The axial force applied to the lid when high-pressure gas is introduced into the high-pressure vessel is carried by the press frame that can be engaged and disengaged from the outside in the high-pressure vessel. The amount of deformation of the test member is measured by an actuator unit that applies a load to the test member fixed to the lid through a rod that penetrates the lid. Further, the test frame can be mounted and removed by releasing the press frame and opening the lid.

特許文献2は、ガス導入口とガス排出口を有するチャンバの内部に、表面が電気絶縁されたヒータが配設された材料試験機用加熱炉を開示する。この加熱炉は、チャンバの壁に材料試験機の軸を挿入する軸挿入口を形成するとともに、軸を気密的にシールする伸縮可能な軸シール部材が軸挿入口に取付けられている。
特開2004−340920号公報 特開2005−3517号公報
Patent Document 2 discloses a heating furnace for a material testing machine in which a heater having an electrically insulated surface is disposed inside a chamber having a gas inlet and a gas outlet. In this heating furnace, a shaft insertion port for inserting the shaft of the material testing machine is formed on the wall of the chamber, and an extendable shaft seal member for hermetically sealing the shaft is attached to the shaft insertion port.
JP 2004-340920 A JP 2005-3517 A

しかしながら、上述した特許文献1には、水素ガスを含む高圧ガス雰囲気での機械特性試験装置の容器構造について記載されているが、高圧容器からの水素ガス漏れに対する対策が開示されてはいない。
特許文献2に開示された技術は、ベローズにて試験機とのシールを行なっているが、雰囲気ガス圧が高い場合には、ベローズの耐圧が低いため適用できず、雰囲気ガスの漏れの可能性を排除できない。加えて、高圧容器からの水素ガス漏れに対する対策が開示されてはいない。
However, Patent Document 1 described above describes a container structure of a mechanical property test apparatus in a high-pressure gas atmosphere containing hydrogen gas, but does not disclose measures against hydrogen gas leakage from the high-pressure container.
The technique disclosed in Patent Document 2 uses a bellows to seal with a tester. However, when the atmospheric gas pressure is high, the bellows has a low pressure resistance and cannot be applied. Cannot be excluded. In addition, measures against hydrogen gas leakage from the high-pressure vessel are not disclosed.

そこで、本発明は、上記問題点を鑑み、試験部材が水素ガスを充填した高圧容器の内部に載置されて、窒素ガスを導入した恒温槽にその高圧容器を配置して行なわれる機械特性試験装置において、高圧容器からの水素ガス漏れに対する対策、すなわち、水素ガス漏れを検知して知らせる装置を備えたものを提供することを目的とする。   Therefore, in view of the above problems, the present invention is a mechanical property test that is performed by placing a test member in a high-pressure vessel filled with hydrogen gas and placing the high-pressure vessel in a thermostatic chamber into which nitrogen gas has been introduced. An object of the present invention is to provide a device having a measure against hydrogen gas leakage from a high-pressure vessel, that is, a device that detects and notifies hydrogen gas leakage.

上述の目的を達成するため、本発明においては以下の技術的手段を講じた。
すなわち、本発明に係る高圧水素ガス雰囲気下での機械特性測定装置は、高圧水素ガス雰囲気下において機械的特性が測定される試験部材が内部に配置された高圧容器と、内部に窒素ガスが充満されると共に前記高圧容器が配置され、且つ前記窒素ガスの温度制御が可能となっている恒温槽と、前記窒素ガスを前記恒温槽に供給する供給機構と、前記窒素ガスを前記恒温槽から排出する排出機構と、前記排出機構に設けられた水素ガス検出器と、を有することを特徴とする。
In order to achieve the above-described object, the present invention takes the following technical means.
That is, the apparatus for measuring mechanical properties in a high-pressure hydrogen gas atmosphere according to the present invention includes a high-pressure vessel in which a test member whose mechanical properties are measured in a high-pressure hydrogen gas atmosphere is disposed, and nitrogen gas is filled inside. And a thermostatic chamber in which the high-pressure vessel is arranged and the temperature of the nitrogen gas can be controlled, a supply mechanism for supplying the nitrogen gas to the thermostatic chamber, and the nitrogen gas is discharged from the thermostatic chamber. And a hydrogen gas detector provided in the discharge mechanism.

また、本発明に係る高圧水素ガス雰囲気下での機械特性測定装置は、高圧水素ガス雰囲気下において機械的特性が測定される試験部材が内部に配置された高圧容器と、内部に窒素ガスが充満されると共に前記高圧容器が配置され、且つ前記窒素ガスの温度制御が可能となっている恒温槽と、前記恒温槽の内外で窒素ガスを循環させる循環機構と、前記循環機構に設けられた水素ガス検出器と、を有することを特徴とする。
上述の機械特性測定装置によると、万が一にも水素ガスが高圧容器から漏れたとしても、窒素ガス中への漏れであるので、安全性優れている。
The apparatus for measuring mechanical properties in a high-pressure hydrogen gas atmosphere according to the present invention includes a high-pressure vessel in which a test member for measuring mechanical properties in a high-pressure hydrogen gas atmosphere is disposed, and a nitrogen gas filled in the inside. A thermostatic chamber in which the high-pressure vessel is arranged and the temperature of the nitrogen gas can be controlled, a circulation mechanism for circulating nitrogen gas inside and outside the thermostatic chamber, and hydrogen provided in the circulation mechanism And a gas detector.
According to the above-described mechanical property measuring apparatus, even if hydrogen gas leaks from the high pressure vessel, it is excellent in safety because it leaks into nitrogen gas.

さらに、窒素ガスを循環させる場合には水素ガス検出器を循環機構に設け、窒素ガスを循環させないで排出する場合には水素ガス検出器を排出機構に設けている。このため、水素が窒素ガスに漏れると直ちに検出することができ、対策を講じることができる。
なお、前記水素ガス検出器は、前記高圧容器よりも前記窒素ガスの流れの下流側に設けられているとよい。
さらに、前記水素ガス検出器により検出された水素ガス量が予め定められた値以上であると、警報を発する警報発信機構を有するとよい。
Further, when the nitrogen gas is circulated, a hydrogen gas detector is provided in the circulation mechanism, and when the nitrogen gas is discharged without being circulated, the hydrogen gas detector is provided in the discharge mechanism. For this reason, when hydrogen leaks into nitrogen gas, it can be detected immediately, and measures can be taken.
The hydrogen gas detector may be provided on the downstream side of the nitrogen gas flow with respect to the high-pressure vessel.
Furthermore, it is good to have a warning transmission mechanism which issues a warning when the amount of hydrogen gas detected by the hydrogen gas detector is not less than a predetermined value.

さらに、前記水素ガス検出器により検出された水素ガス量が予め定められた値以上であると、前記高圧容器内部の水素ガスを屋外に放出する安全機構を有するとよい。
また、本発明に係る高圧水素ガス雰囲気下での機械特性測定方法は、高圧水素ガス雰囲気下において機械的特性が測定される試験部材が内部に配置された高圧容器と、内部に窒素ガスが充満されると共に前記高圧容器が配置され、且つ前記窒素ガスの温度制御が可能となっている恒温槽とを備えた機械特性測定装置を用いて、試験部材の機械特性を測定するに際し、前記恒温槽内の窒素ガスにおける水素ガス濃度が予め定められた値以上であることを検出する検出工程と、前記検出工程の結果を基に、その検出結果を報知する及び/又は前記試験部材の機械特性の測定を中止する異常対応工程と、を有することを特徴とする。
Furthermore, when the hydrogen gas amount detected by the hydrogen gas detector is equal to or greater than a predetermined value, a safety mechanism for releasing the hydrogen gas inside the high-pressure vessel to the outdoors may be provided.
The method for measuring mechanical properties under a high-pressure hydrogen gas atmosphere according to the present invention includes a high-pressure container in which a test member whose mechanical properties are measured in a high-pressure hydrogen gas atmosphere is disposed, and a nitrogen gas filled inside. The thermostatic chamber is used for measuring the mechanical properties of the test member using a mechanical property measuring device provided with the thermostatic chamber in which the high-pressure vessel is arranged and the temperature of the nitrogen gas can be controlled. A detection step for detecting that the hydrogen gas concentration in the nitrogen gas in the gas is greater than or equal to a predetermined value, and based on the result of the detection step, the detection result is reported and / or the mechanical properties of the test member An abnormality handling step for stopping the measurement.

本発明に係る高圧水素ガス雰囲気下での機械特性測定装置、又は機械特性測定方法によれば、高圧の水素ガス環境下における金属材料等の機械特性を安全に測定することができる。   According to the mechanical property measuring apparatus or the mechanical property measuring method in a high-pressure hydrogen gas atmosphere according to the present invention, it is possible to safely measure the mechanical properties of a metal material or the like in a high-pressure hydrogen gas environment.

以下、本発明の実施形態を、図を基に説明する。
なお、以下の説明では、同一の部品には同一の符号を付してある。それらの名称および機能も同じである。したがってそれらについての詳細な説明は繰返さない。
[第1実施形態]
図1及び図2に示すように、本実施形態に係る高圧水素ガス雰囲気下での機械特性測定装置100は、恒温槽1とこの恒温槽内に配備される高圧容器2とを備えて構成される。
高圧容器2は、内部に高圧の水素ガスを収容可能な試験室40を備える円筒体(胴部)41を備えている。この円筒体41は下方に開放状となっている開口42を有していて、コップを伏せた形状となっている。円筒体の開口42には、下蓋43が嵌り込むようになっており、下蓋43の上面には、高圧水素ガス雰囲気下において、引張試験や圧縮試験などの材料力学的な試験を行うための試験治具8が設けられている。試験治具8の下部には、試験部材44に引張力や圧縮力を加えるプルロッド11が設けられ、このプルロッド11は、油圧ユニット26から油圧管路27を通して供給される油圧により駆動される。
Hereinafter, embodiments of the present invention will be described with reference to the drawings.
In the following description, the same parts are denoted by the same reference numerals. Their names and functions are also the same. Therefore, detailed description thereof will not be repeated.
[First Embodiment]
As shown in FIGS. 1 and 2, a mechanical property measuring apparatus 100 under a high-pressure hydrogen gas atmosphere according to the present embodiment includes a thermostatic chamber 1 and a high-pressure vessel 2 arranged in the thermostatic chamber. The
The high-pressure vessel 2 includes a cylindrical body (body portion) 41 including a test chamber 40 that can accommodate high-pressure hydrogen gas. The cylindrical body 41 has an opening 42 that is open downward, and has a shape in which the cup is turned down. A lower lid 43 is fitted into the opening 42 of the cylindrical body, and a material mechanical test such as a tensile test and a compression test is performed on the upper surface of the lower lid 43 in a high-pressure hydrogen gas atmosphere. The test jig 8 is provided. A pull rod 11 that applies a tensile force or a compressive force to the test member 44 is provided below the test jig 8, and the pull rod 11 is driven by the hydraulic pressure supplied from the hydraulic unit 26 through the hydraulic line 27.

高圧容器2の周囲には熱媒体ジャケット9が設けられている。この熱媒体ジャケット9により、円筒体41の外周にジャケット管路29が形成される。このジャケット管路29は、ジャケット媒体供給管路24及びジャケット媒体戻り管路25により、熱交換器等の温度調整ユニット23に接続されている。
恒温槽1の内部には、高圧容器2、攪拌ファン3、媒体循環ヒータ4、窒素ガス導入管路5(供給機構)が設けられている。
恒温槽1の上方には窒素ガス排出管路6(排出機構)が設けられ、窒素ガス排出管路6には水素ガス検出センサ7が設けられている。
A heat medium jacket 9 is provided around the high-pressure vessel 2. Due to the heat medium jacket 9, a jacket pipe line 29 is formed on the outer periphery of the cylindrical body 41. The jacket line 29 is connected to a temperature adjustment unit 23 such as a heat exchanger by a jacket medium supply line 24 and a jacket medium return line 25.
Inside the thermostatic chamber 1, a high-pressure vessel 2, a stirring fan 3, a medium circulation heater 4, and a nitrogen gas introduction pipe 5 (supply mechanism) are provided.
A nitrogen gas discharge pipe 6 (discharge mechanism) is provided above the thermostat 1, and a hydrogen gas detection sensor 7 is provided in the nitrogen gas discharge pipe 6.

高圧容器2の下方には、水素ガス導入管路10が設けられている。高圧容器2の下方には、試験治具8に変位を与えるプルロッド11が取り付けられており、このプルロッド11は、恒温槽1の外側に貫通している。
高圧容器2の下方に接続された水素ガス導入管路10は、外部に設置された水素ボンベ14に接続されている。この水素ガス導入管路10には、水素ボンベ14側から、コンプレッサ15、開閉バルブ17が設けられている。また、高圧容器2の上方には、屋外(大気中)まで伸びた水素ガス排出管路18が設けられている。この水素ガス排出管路18には、開閉バルブ19が設けられている。
A hydrogen gas introduction line 10 is provided below the high-pressure vessel 2. A pull rod 11 that displaces the test jig 8 is attached below the high-pressure vessel 2, and the pull rod 11 penetrates outside the thermostatic chamber 1.
A hydrogen gas introduction pipe line 10 connected to the lower side of the high-pressure vessel 2 is connected to a hydrogen cylinder 14 installed outside. The hydrogen gas introduction pipe line 10 is provided with a compressor 15 and an opening / closing valve 17 from the hydrogen cylinder 14 side. Further, a hydrogen gas discharge pipe 18 extending to the outdoors (in the atmosphere) is provided above the high-pressure vessel 2. The hydrogen gas discharge pipe 18 is provided with an open / close valve 19.

コンプレッサ15は、モータ16により駆動される。開閉バルブ17が開いている状態かつ開閉バルブ19が閉じている状態で、コンプレッサ15がモータ16により駆動されると、水素ボンベ14からコンプレッサ15に供給された水素ガスが圧縮されて(加圧されて)、水素ガス導入管路10を通って高圧容器2の内部に導入される。
開閉バルブ17が閉じている状態で開閉バルブ19が開くと、高圧容器2内の水素ガスが、水素ガス排出管路18を通って屋外(大気中)に排出される。
窒素ガス導入管路5は、開閉バルブ13を介して窒素ボンベ12に接続されている。なお、この窒素ボンベ12内の窒素は、液体であっても気体であっても構わない。開閉バルブ13を開くと、窒素ボンベ中の窒素が窒素ガス導入管路5を通って恒温槽1の内部に導入され、攪拌ファン3により攪拌されて、恒温槽1内に窒素が充填される。
The compressor 15 is driven by a motor 16. When the compressor 15 is driven by the motor 16 with the open / close valve 17 open and the open / close valve 19 closed, the hydrogen gas supplied from the hydrogen cylinder 14 to the compressor 15 is compressed (pressurized). The gas is introduced into the high-pressure vessel 2 through the hydrogen gas introduction line 10.
When the opening / closing valve 19 is opened while the opening / closing valve 17 is closed, the hydrogen gas in the high-pressure vessel 2 is discharged to the outside (in the atmosphere) through the hydrogen gas discharge pipe 18.
The nitrogen gas introduction pipe line 5 is connected to the nitrogen cylinder 12 via the opening / closing valve 13. The nitrogen in the nitrogen cylinder 12 may be liquid or gas. When the opening / closing valve 13 is opened, nitrogen in the nitrogen cylinder is introduced into the thermostatic chamber 1 through the nitrogen gas introduction pipe 5 and stirred by the agitating fan 3 so that the thermostatic chamber 1 is filled with nitrogen.

本実施形態においては、恒温槽1に充填される窒素ガスは循環されるのではなく、窒素ガス排出管路6を通って屋外に排出される。この窒素ガス排出管路6に水素ガスを検出する水素ガス検出センサ7が設けられている。
高圧容器2から水素ガスが漏れた場合、恒温槽1内部に充填された窒素ガス中への漏れであり安全性に優れている。窒素ガス導入管路5から窒素ガスを常に供給しているため、窒素ガス排出管路6から一定量の窒素ガスが排出されている。この窒素ガス排出管路6に水素ガス検出センサ7(水素ガス検出器)が取り付けられており、この水素ガス検出センサ7により、水素ガスの漏れを検出する。この水素ガス検出センサ7からの信号を受信して警報を発生させる警報器28(警報発信機構)が設けられている。
In the present embodiment, the nitrogen gas filled in the thermostatic chamber 1 is not circulated but discharged to the outside through the nitrogen gas discharge line 6. The nitrogen gas discharge pipe 6 is provided with a hydrogen gas detection sensor 7 for detecting hydrogen gas.
When hydrogen gas leaks from the high-pressure vessel 2, it leaks into the nitrogen gas filled in the thermostatic chamber 1 and is excellent in safety. Since nitrogen gas is always supplied from the nitrogen gas introduction line 5, a certain amount of nitrogen gas is discharged from the nitrogen gas discharge line 6. A hydrogen gas detection sensor 7 (hydrogen gas detector) is attached to the nitrogen gas discharge pipe 6, and the hydrogen gas detection sensor 7 detects leakage of hydrogen gas. An alarm 28 (alarm transmission mechanism) that receives a signal from the hydrogen gas detection sensor 7 and generates an alarm is provided.

さらには、水素ガス検出センサ7により検出された水素ガス量が予め定められた値以上であると、開閉バルブ19を強制的に開放して高圧容器2内部の水素ガスを屋外(大気中)に放出したり、機械特性測定装置100の運転を停止したりする安全機構(図示せず)が設けられている。
空気中の水素の可燃範囲は4%〜75%であることに基づいて、水素ガス漏れ警報値として2つの値が予め設定される。安全率を考慮して、たとえば、警報発生及び運転停止用の設定値として400ppm(0.04%)が設定される。さらに、開閉バルブ19を開いて水素ガス排出管路18を通して高圧容器2内の水素ガスを屋外に排出する設定値として1000ppm(0.1%)が設定される。なお、これらの設定値は一例であって本発明がこれらの設定値に限定されるものではない。
Furthermore, when the amount of hydrogen gas detected by the hydrogen gas detection sensor 7 is equal to or greater than a predetermined value, the open / close valve 19 is forcibly opened to allow the hydrogen gas inside the high-pressure vessel 2 to be outdoors (in the atmosphere). A safety mechanism (not shown) for discharging or stopping the operation of the mechanical property measuring apparatus 100 is provided.
Based on the fact that the flammable range of hydrogen in the air is 4% to 75%, two values are preset as the hydrogen gas leak alarm value. In consideration of the safety factor, for example, 400 ppm (0.04%) is set as a setting value for alarm generation and operation stop. Further, 1000 ppm (0.1%) is set as a set value for opening the on-off valve 19 and discharging the hydrogen gas in the high-pressure vessel 2 to the outside through the hydrogen gas discharge pipe 18. Note that these set values are examples, and the present invention is not limited to these set values.

媒体循環ヒータ4は、媒体供給管路21及び媒体戻り管路22により、熱交換器等の温度調整ユニット20に接続されている。
恒温槽1内を加熱する場合には、媒体循環ヒータ4と熱交換器等の温度調整ユニット20との間で加熱した媒体を循環させるとともに、窒素ガス導入管路5から窒素ガスを供給し、攪拌ファン3により恒温槽1内の窒素ガスを攪拌する。なお、媒体供給管路21及び媒体戻り管路22は逆でも構わない。
恒温槽1内を冷却する場合には、媒体循環ヒータ4と温度調整ユニット20との間で冷却した媒体を循環させる。これに代えて又はこれに加えて、窒素ガス導入管路5から液体窒素を供給するとともに攪拌ファン3にて攪拌するようにしても構わない。
The medium circulation heater 4 is connected to a temperature adjustment unit 20 such as a heat exchanger by a medium supply line 21 and a medium return line 22.
When heating the thermostat 1, the heated medium is circulated between the medium circulation heater 4 and the temperature adjustment unit 20 such as a heat exchanger, and nitrogen gas is supplied from the nitrogen gas introduction line 5. Nitrogen gas in the thermostat 1 is stirred by the stirring fan 3. The medium supply line 21 and the medium return line 22 may be reversed.
When cooling the thermostat 1, the cooled medium is circulated between the medium circulation heater 4 and the temperature adjustment unit 20. Instead of this, or in addition to this, liquid nitrogen may be supplied from the nitrogen gas introduction line 5 and stirred by the stirring fan 3.

一方、高圧容器2内の温度を上昇させる加熱時間を短縮するためには、高圧容器2の外周の熱媒体ジャケット9と温度調整ユニット23との間で熱媒体を循環させるとよい。なお、温度調整ユニット23を温度調整ユニット20と兼用しても構わない。高圧容器2内の温度を降下させる冷却時間を短縮するために、熱媒体ジャケット9と温度調整ユニット23との間で冷却媒体を循環させることも可能である。
以上のような構造を備えた高圧水素ガス雰囲気下での機械特性測定装置100の使用態様について説明する。なお、高圧容器2内の試験治具11への試験部材44にセッティングは終了しているものとする。
On the other hand, in order to shorten the heating time for raising the temperature in the high pressure vessel 2, it is preferable to circulate the heat medium between the heat medium jacket 9 on the outer periphery of the high pressure vessel 2 and the temperature adjustment unit 23. The temperature adjustment unit 23 may also be used as the temperature adjustment unit 20. In order to shorten the cooling time for lowering the temperature in the high-pressure vessel 2, it is also possible to circulate the cooling medium between the heat medium jacket 9 and the temperature adjustment unit 23.
A usage mode of the mechanical property measuring apparatus 100 in a high-pressure hydrogen gas atmosphere having the above-described structure will be described. It is assumed that the setting of the test member 44 to the test jig 11 in the high-pressure vessel 2 has been completed.

開閉バルブ17を開いて開閉バルブ19を閉じて、モータ16によりコンプレッサ15を駆動させて、水素ボンベ14から高圧容器2の内部に水素ガスを供給する。このとき、高圧容器2内の圧力が90MPa程度になるように、水素ガス導入管路10を通して水素ガスが水素ボンベ14から高圧容器2に供給される。
高圧容器2内の水素ガスの圧力が所定の圧力になると(所定の圧力に到達する前であっても構わない)、開閉バルブ13を開いて、窒素ガス導入管路5を通して窒素ガスを恒温槽1内に導入する。このとき、媒体循環ヒータ4と温度調整ユニット20との間で熱媒体又は冷却媒体を循環させ、かつ、攪拌ファン3を作動させて、恒温槽1内の温度を調整する。さらに、熱媒体ジャケット9のジャケット管路29と温度調整ユニット23との間で熱媒体又は冷却媒体を循環させて、高圧容器2内の温度を調整する。
The on-off valve 17 is opened, the on-off valve 19 is closed, and the compressor 15 is driven by the motor 16 to supply hydrogen gas from the hydrogen cylinder 14 into the high-pressure vessel 2. At this time, hydrogen gas is supplied from the hydrogen cylinder 14 to the high-pressure vessel 2 through the hydrogen gas introduction conduit 10 so that the pressure in the high-pressure vessel 2 becomes about 90 MPa.
When the pressure of the hydrogen gas in the high-pressure vessel 2 reaches a predetermined pressure (may be before the predetermined pressure is reached), the open / close valve 13 is opened and nitrogen gas is supplied to the thermostatic chamber through the nitrogen gas introduction pipe 5. 1 is introduced. At this time, the heat medium or the cooling medium is circulated between the medium circulation heater 4 and the temperature adjustment unit 20 and the stirring fan 3 is operated to adjust the temperature in the thermostatic chamber 1. Further, the heat medium or the cooling medium is circulated between the jacket conduit 29 of the heat medium jacket 9 and the temperature adjusting unit 23 to adjust the temperature in the high-pressure vessel 2.

高圧容器2内の圧力及び温度がそれぞれ定められた値になると、油圧ユニット26を操作して油圧管路27を通して供給された油圧によりプルロッド11を作動させて、試験部材44に与えられた引張り荷重に対する試験部材44の変位を測定する。
高圧水素ガス雰囲気下での機械特性測定装置100の使用時における異常態様について説明する。なお、高圧容器2内への水素ガスの供給が開始されているものとする。
水素ガスが高圧容器2から漏れると、恒温槽1内の窒素ガス中の水素濃度が上昇する。恒温槽1には窒素ガス導入管路5から窒素ガスを常に供給しているため、窒素ガス排出管路6から水素ガスを含む窒素ガスが排出されることになる。
When the pressure and temperature in the high-pressure vessel 2 reach predetermined values, the pull rod 11 is operated by the hydraulic pressure supplied through the hydraulic line 27 by operating the hydraulic unit 26, and the tensile load applied to the test member 44. The displacement of the test member 44 relative to is measured.
An abnormal mode at the time of use of the mechanical property measuring apparatus 100 in a high-pressure hydrogen gas atmosphere will be described. It is assumed that supply of hydrogen gas into the high-pressure vessel 2 has started.
When hydrogen gas leaks from the high-pressure vessel 2, the hydrogen concentration in the nitrogen gas in the thermostat 1 increases. Since the nitrogen gas is always supplied from the nitrogen gas introduction line 5 to the thermostat 1, the nitrogen gas containing hydrogen gas is discharged from the nitrogen gas discharge line 6.

この場合、水素ガス検出センサ7が400ppmの水素ガス濃度を検出するまでは、試験部材44の引張試験が継続される。水素ガス検出センサ7が400ppmの水素濃度を検出する(検出工程)と、警報器28により警報が発生される(異常対応工程)。
加えて、安全機構により、開閉バルブ19を強制的に開放して高圧容器2内部の水素ガスを屋外(大気中)に放出したり、開閉バルブ17を閉じたりコンプレッサ15を停止されたりして、この機械特性測定装置100の運転が停止される。詳しくは、水素ガス検出センサ7が1000ppmの水素濃度を検出すると、開閉バルブ19が開かれて水素ガス排出管路18を通して高圧容器2内の水素ガスが屋外に排出される(異常対応工程)。
In this case, the tensile test of the test member 44 is continued until the hydrogen gas detection sensor 7 detects a hydrogen gas concentration of 400 ppm. When the hydrogen gas detection sensor 7 detects a hydrogen concentration of 400 ppm (detection process), an alarm is generated by the alarm device 28 (abnormality response process).
In addition, the on-off valve 19 is forcibly opened by the safety mechanism to release the hydrogen gas inside the high-pressure vessel 2 to the outside (in the atmosphere), the on-off valve 17 is closed, or the compressor 15 is stopped. The operation of the mechanical property measuring apparatus 100 is stopped. Specifically, when the hydrogen gas detection sensor 7 detects a hydrogen concentration of 1000 ppm, the open / close valve 19 is opened and the hydrogen gas in the high-pressure vessel 2 is discharged to the outside through the hydrogen gas discharge pipe 18 (abnormality handling step).

なお、このような水素ガス漏れが発生した場合であっても、恒温槽1内部に充填された窒素ガス中への水素ガスの漏れであり空気中への漏れではないため、爆発等の危険性が少なく安全性に優れている。
以上のようにして、本実施形態に係る高圧水素ガス雰囲気下での機械特性測定装置100によると、高圧の水素ガス環境下における金属材料等の機械特性を安全に測定することができる。
[第2実施形態]
図3を参照して、本発明の第2実施形態に係る高圧水素ガス雰囲気下での機械特性測定装置100について説明する。図3は、第1実施形態を示す図2に対応する図である。
Even when such a hydrogen gas leak occurs, the hydrogen gas leaks into the nitrogen gas filled in the thermostatic chamber 1 and not into the air. There are few and it is excellent in safety.
As described above, according to the mechanical property measuring apparatus 100 under a high-pressure hydrogen gas atmosphere according to the present embodiment, it is possible to safely measure the mechanical properties of a metal material or the like under a high-pressure hydrogen gas environment.
[Second Embodiment]
With reference to FIG. 3, a mechanical property measuring apparatus 100 under a high-pressure hydrogen gas atmosphere according to a second embodiment of the present invention will be described. FIG. 3 is a diagram corresponding to FIG. 2 illustrating the first embodiment.

図3に示すように、本実施形態に係る高圧水素ガス雰囲気下での機械特性測定装置100は、水素ガス検出センサ7、水素ガス検出センサ7と同等の機能を備えた水素ガス検出センサ30及び水素ガス検出センサ31の少なくとも1つを備える。
本実施形態に係る高圧水素ガス雰囲気下での機械特性測定装置100においては、窒素ガスが循環系ではなく排出系で構成され、かつ、水素ガス検出センサ7,30,31が高圧容器2よりも窒素ガスの下流側に設けられている。加えて、窒素ボンベ12から窒素ガス導入管路5を通して窒素ガスを恒温槽1に常に供給しているため、窒素ガス排出管路6から一定量の窒素ガスが排出され、恒温槽1では、上流から下流へ(図3で左から右へ)向かう窒素ガスの流れが存在する。
As shown in FIG. 3, the mechanical property measuring apparatus 100 under a high-pressure hydrogen gas atmosphere according to this embodiment includes a hydrogen gas detection sensor 7, a hydrogen gas detection sensor 30 having a function equivalent to the hydrogen gas detection sensor 7, and At least one of the hydrogen gas detection sensors 31 is provided.
In the mechanical property measuring apparatus 100 under a high-pressure hydrogen gas atmosphere according to the present embodiment, the nitrogen gas is constituted by a discharge system instead of a circulation system, and the hydrogen gas detection sensors 7, 30, 31 are more than the high-pressure vessel 2. It is provided downstream of the nitrogen gas. In addition, since nitrogen gas is always supplied from the nitrogen cylinder 12 through the nitrogen gas introduction pipe 5 to the thermostat 1, a certain amount of nitrogen gas is discharged from the nitrogen gas discharge pipe 6. There is a flow of nitrogen gas going downstream from the left (from left to right in FIG. 3).

そのため、高圧容器2から水素ガスが恒温層1内に漏れたとしても、窒素ガスの高圧容器2よりも下流部において水素ガスの漏れを確実に検出できる。すなわち、高圧容器2よりも上流側においては、高圧容器2から漏れた水素ガスを検出できないか、検出することが困難である。
以上のようにして、本実施形態に係る高圧水素ガス雰囲気下での機械特性測定装置100によると、確実に水素ガスの漏れを検出でき、高圧の水素環境下における金属材料等の機械特性を安全に測定することができる。
[第3実施形態]
図4を参照して、本発明の第3実施形態に係る高圧水素ガス雰囲気下での機械特性測定装置100について説明する。図4は、第1実施形態や第2実施形態を示す図2,図3に対応する図である。
Therefore, even if hydrogen gas leaks from the high-pressure vessel 2 into the constant temperature layer 1, leakage of hydrogen gas can be reliably detected in the downstream portion of the high-pressure vessel 2 for nitrogen gas. That is, on the upstream side of the high-pressure vessel 2, hydrogen gas leaked from the high-pressure vessel 2 cannot be detected or is difficult to detect.
As described above, according to the mechanical property measuring apparatus 100 under a high-pressure hydrogen gas atmosphere according to the present embodiment, the leakage of hydrogen gas can be reliably detected, and the mechanical properties of a metal material or the like in a high-pressure hydrogen environment are safe. Can be measured.
[Third Embodiment]
With reference to FIG. 4, a mechanical property measuring apparatus 100 under a high-pressure hydrogen gas atmosphere according to a third embodiment of the present invention will be described. FIG. 4 is a diagram corresponding to FIGS. 2 and 3 showing the first embodiment and the second embodiment.

図4に示すように、本実施形態に係る高圧水素ガス雰囲気下での機械特性測定装置100は、上述した第1実施形態及び第2実施形態の恒温槽とは異なる構造を備えた恒温槽1を備える。
この恒温槽1は、窒素ガスを循環させる窒素ガス循環管路32を備える。なお、この窒素ガス循環管路32には、図示しない循環機構(たとえばファン、モータ、窒素タンク)を備える。
さらに、恒温槽1には、水素ガス検出センサ7、水素ガス検出センサ30、水素ガス検出センサ31、これらの水素ガス検出センサと同等の機能を備えた水素ガス検出センサ33、水素ガス検出センサ34の少なくとも1つを備えるものとなっている。
As shown in FIG. 4, the mechanical property measuring apparatus 100 under a high-pressure hydrogen gas atmosphere according to the present embodiment is a thermostat 1 having a structure different from the thermostats of the first and second embodiments described above. Is provided.
The thermostat 1 includes a nitrogen gas circulation line 32 that circulates nitrogen gas. The nitrogen gas circulation line 32 includes a circulation mechanism (not shown) (for example, a fan, a motor, a nitrogen tank).
Further, the thermostatic chamber 1 includes a hydrogen gas detection sensor 7, a hydrogen gas detection sensor 30, a hydrogen gas detection sensor 31, a hydrogen gas detection sensor 33 having a function equivalent to these hydrogen gas detection sensors, and a hydrogen gas detection sensor 34. It has at least one of.

本実施形態に係る高圧水素ガス雰囲気下での機械特性測定装置100においては、窒素ガスが排出系ではなく循環系で構成されている。ゆえに、水素ガス検出センサは高圧容器2との相対的な位置に関係なく恒温槽1内の任意の位置に設けられている。言い替えるならば、高圧容器2の窒素ガス流れの下流側に限定されない。
窒素ガス循環管路32を通して窒素ガスを恒温槽1に循環させているため、窒素ガス循環管路32には一定量の窒素ガスが循環されている。このような状態で高圧容器2から水素ガスが恒温層1内に漏れると、恒温槽1の内部及び窒素ガス循環管路32のいずれの位置においても水素ガスの漏れを検出できる。すなわち、窒素ガスが流れている任意の位置において、高圧容器2から漏れた水素ガスを検出できる。
In the mechanical property measuring apparatus 100 under a high-pressure hydrogen gas atmosphere according to the present embodiment, the nitrogen gas is constituted not by a discharge system but by a circulation system. Therefore, the hydrogen gas detection sensor is provided at an arbitrary position in the thermostat 1 regardless of the relative position to the high-pressure vessel 2. In other words, it is not limited to the downstream side of the nitrogen gas flow in the high-pressure vessel 2.
Since nitrogen gas is circulated to the thermostat 1 through the nitrogen gas circulation line 32, a certain amount of nitrogen gas is circulated through the nitrogen gas circulation line 32. When hydrogen gas leaks from the high-pressure vessel 2 into the constant temperature layer 1 in such a state, leakage of the hydrogen gas can be detected at any position inside the constant temperature bath 1 and the nitrogen gas circulation line 32. That is, hydrogen gas leaking from the high-pressure vessel 2 can be detected at any position where nitrogen gas is flowing.

以上のようにして、本実施形態に係る高圧水素ガス雰囲気下での機械特性測定装置100によると、水素ガス検出センサの取付位置が限定されることなく確実に水素ガスの漏れを検出でき、高圧の水素環境下における金属材料等の機械特性を安全に測定することができる。
今回開示された実施形態はすべての点で例示であって制限的なものではないと考えられるべきである。本発明の範囲は上記した説明ではなくて特許請求の範囲によって示され、特許請求の範囲と均等の意味および範囲内でのすべての変更が含まれることが意図される。
As described above, according to the mechanical property measuring apparatus 100 under the high-pressure hydrogen gas atmosphere according to the present embodiment, the hydrogen gas leakage can be reliably detected without limiting the mounting position of the hydrogen gas detection sensor, It is possible to safely measure the mechanical properties of metal materials and the like in a hydrogen environment.
It should be thought that embodiment disclosed this time is an illustration and restrictive at no points. The scope of the present invention is defined by the terms of the claims, rather than the description above, and is intended to include any modifications within the scope and meaning equivalent to the terms of the claims.

本発明の第1実施形態に係る高圧水素ガス雰囲気下での機械特性測定装置の全体構成図である。1 is an overall configuration diagram of an apparatus for measuring mechanical properties in a high-pressure hydrogen gas atmosphere according to a first embodiment of the present invention. 図1の恒温槽近傍の図である。It is a figure of the thermostat vicinity of FIG. 本発明の第2実施形態に係る高圧水素ガス雰囲気下での機械特性測定装置の恒温槽近傍の図である。It is a figure of the thermostat vicinity of the mechanical characteristic measuring apparatus in the high pressure hydrogen gas atmosphere which concerns on 2nd Embodiment of this invention. 本発明の第3実施形態に係る高圧水素ガス雰囲気下での機械特性測定装置の恒温槽近傍の図である。It is a figure of the thermostat vicinity of the mechanical characteristic measuring apparatus in the high pressure hydrogen gas atmosphere which concerns on 3rd Embodiment of this invention.

符号の説明Explanation of symbols

1 恒温槽
2 高圧容器
3 攪拌ファン
4 媒体循環ヒータ
5 窒素ガス導入管路
6 窒素ガス排出管路
7 水素ガス検出センサ
8 試験治具
9 熱媒体ジャケット
10 水素ガス導入管路
11 プルロッド
DESCRIPTION OF SYMBOLS 1 Constant temperature bath 2 High pressure vessel 3 Stirring fan 4 Medium circulation heater 5 Nitrogen gas introduction line 6 Nitrogen gas discharge line 7 Hydrogen gas detection sensor 8 Test jig 9 Heat medium jacket 10 Hydrogen gas introduction line 11 Pull rod

Claims (6)

高圧水素ガス雰囲気下において機械的特性が測定される試験部材が内部に配置された高圧容器と、
内部に窒素ガスが充満されると共に前記高圧容器が配置され、且つ前記窒素ガスの温度制御が可能となっている恒温槽と、
前記窒素ガスを前記恒温槽に供給する供給機構と、
前記窒素ガスを前記恒温槽から排出する排出機構と、
前記排出機構に設けられた水素ガス検出器と、を有することを特徴とする高圧水素ガス雰囲気下での機械特性測定装置。
A high-pressure vessel in which a test member whose mechanical properties are measured in a high-pressure hydrogen gas atmosphere is disposed;
A constant temperature bath in which nitrogen gas is filled and the high-pressure vessel is arranged, and temperature control of the nitrogen gas is possible,
A supply mechanism for supplying the nitrogen gas to the thermostat;
A discharge mechanism for discharging the nitrogen gas from the thermostat;
And a hydrogen gas detector provided in the discharge mechanism. A mechanical property measurement apparatus under a high-pressure hydrogen gas atmosphere.
高圧水素ガス雰囲気下において機械的特性が測定される試験部材が内部に配置された高圧容器と、
内部に窒素ガスが充満されると共に前記高圧容器が配置され、且つ前記窒素ガスの温度制御が可能となっている恒温槽と、
前記恒温槽の内外で窒素ガスを循環させる循環機構と、
前記循環機構に設けられた水素ガス検出器と、を有することを特徴とする高圧水素ガス雰囲気下での機械特性測定装置。
A high-pressure vessel in which a test member whose mechanical properties are measured in a high-pressure hydrogen gas atmosphere is disposed;
A constant temperature bath in which nitrogen gas is filled and the high-pressure vessel is arranged, and temperature control of the nitrogen gas is possible,
A circulation mechanism for circulating nitrogen gas inside and outside the thermostat;
And a hydrogen gas detector provided in the circulation mechanism. 7. A mechanical property measurement apparatus under a high-pressure hydrogen gas atmosphere.
前記水素ガス検出器は、前記高圧容器よりも前記窒素ガスの流れの下流側に設けられていることを特徴とする請求項1に記載の高圧水素ガス雰囲気下での機械特性測定装置。   2. The apparatus for measuring mechanical characteristics under high-pressure hydrogen gas atmosphere according to claim 1, wherein the hydrogen gas detector is provided on the downstream side of the flow of the nitrogen gas with respect to the high-pressure vessel. 前記水素ガス検出器により検出された水素ガス量が予め定められた値以上であると、警報を発する警報発信機構を有することを特徴とする請求項1〜請求項3のいずれかに記載の高圧水素ガス雰囲気下での機械特性測定装置。   The high pressure according to any one of claims 1 to 3, further comprising an alarm transmission mechanism that issues an alarm when the amount of hydrogen gas detected by the hydrogen gas detector is equal to or greater than a predetermined value. Equipment for measuring mechanical properties in a hydrogen gas atmosphere. 前記水素ガス検出器により検出された水素ガス量が予め定められた値以上であると、前記高圧容器内部の水素ガスを屋外に放出する安全機構を有することを特徴とする請求項1〜請求項4のいずれかに記載の高圧水素ガス雰囲気下での機械特性測定装置。   2. A safety mechanism for releasing hydrogen gas inside the high-pressure vessel to the outside when the amount of hydrogen gas detected by the hydrogen gas detector is equal to or greater than a predetermined value. 4. The apparatus for measuring mechanical properties in a high-pressure hydrogen gas atmosphere according to any one of 4 above. 高圧水素ガス雰囲気下において機械的特性が測定される試験部材が内部に配置された高圧容器と、内部に窒素ガスが充満されると共に前記高圧容器が配置され、且つ前記窒素ガスの温度制御が可能となっている恒温槽とを備えた機械特性測定装置を用いて、試験部材の機械特性を測定するに際し、
前記恒温槽内の窒素ガスにおける水素ガス濃度が予め定められた値以上であることを検出する検出工程と、
前記検出工程の結果を基に、その検出結果を報知する及び/又は前記試験部材の機械特性の測定を中止する異常対応工程と、
を有することを特徴とする高圧水素ガス雰囲気下での機械特性測定方法。
A high-pressure vessel in which a test member whose mechanical properties are measured in a high-pressure hydrogen gas atmosphere is disposed, and the high-pressure vessel is disposed while being filled with nitrogen gas, and the temperature of the nitrogen gas can be controlled. When measuring the mechanical properties of the test member using a mechanical property measuring device equipped with a constant temperature bath,
A detection step of detecting that the hydrogen gas concentration in the nitrogen gas in the thermostat is equal to or higher than a predetermined value;
Based on the result of the detection step, anomaly handling step of notifying the detection result and / or stopping the measurement of the mechanical properties of the test member,
A method for measuring mechanical properties in a high-pressure hydrogen gas atmosphere.
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