JP4845555B2 - Fire detector operation tester - Google Patents

Fire detector operation tester Download PDF

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JP4845555B2
JP4845555B2 JP2006086676A JP2006086676A JP4845555B2 JP 4845555 B2 JP4845555 B2 JP 4845555B2 JP 2006086676 A JP2006086676 A JP 2006086676A JP 2006086676 A JP2006086676 A JP 2006086676A JP 4845555 B2 JP4845555 B2 JP 4845555B2
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light
light receiving
fire
fire detector
apertures
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JP2007264847A (en
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智宏 星野
貴俊 山岸
主久 中野
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Nohmi Bosai Ltd
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Description

本発明は、火災による炎と同じ分光比率の擬似光源を再現可能な炎感知器の作動試験器を提供するものである。   The present invention provides an operation tester for a flame detector capable of reproducing a simulated light source having the same spectral ratio as that of a flame caused by a fire.

従来、火災感知器の作動試験器は、点滅する光源またはチョッピングを施した熱源と、炭酸ガス共鳴放射帯に透過特性を有する赤外線バンドパスフィルターを設けていた。
特開平11−110657号公報(図1)
Conventionally, an operation tester for a fire detector has been provided with a flashing light source or a chopped heat source and an infrared bandpass filter having transmission characteristics in the carbon dioxide resonance radiation band.
JP-A-11-110657 (FIG. 1)

従来の火災感知器の作動試験器は、点滅する光源またはチョッピングを施した熱源と、炭酸ガス共鳴放射帯の赤外線のみを透過する赤外線バンドパスフィルターを設けていた。この場合、4.3μm付近以外の赤外線は遮断するため、例えば、炭酸ガス共鳴放射帯の赤外線のみに感度を有する第1の赤外線検出素子に対しては試験光照射するが、例えば、3.5μm付近の波長を検出する第2の赤外線検出素子に対しては試験光照射しない。従って、第2の赤外線検出素子が正常または故障であるかを判別できない。   Conventional fire detector operation testers are provided with a flashing light source or a chopped heat source and an infrared bandpass filter that transmits only the infrared light of the carbon dioxide resonance radiation band. In this case, since infrared rays other than near 4.3 μm are blocked, for example, the first infrared detecting element having sensitivity only to the infrared rays in the carbon dioxide resonance radiation band is irradiated with test light, for example, 3.5 μm. The test light is not irradiated to the second infrared detecting element that detects a nearby wavelength. Therefore, it cannot be determined whether the second infrared detecting element is normal or malfunctioning.

一方、炎が放出する放射スペクトル形状を複数の赤外線検出素子に対して照射するためには、それぞれに赤外線バンドパスフィルターを設ける必要があり、赤外線検出素子が増えるにつれてコスト高となってしまう。   On the other hand, in order to irradiate a plurality of infrared detection elements with a radiation spectrum shape emitted by a flame, it is necessary to provide an infrared bandpass filter for each, and the cost increases as the number of infrared detection elements increases.

本発明は、上記課題を解決するためになされたもので、多波長式の火災感知器に対して、簡単な構成で火災による炎と同じ分光比率を照射できる火災感知器の作動試験器を提供することを目的とする。   The present invention has been made to solve the above problems, and provides a fire detector operation tester capable of irradiating the same spectral ratio as a fire flame with a simple configuration with respect to a multi-wavelength fire detector. The purpose is to do.

本発明の火災感知器の作動試験器は、異なる波長を検出する複数の受光素子で構成される多波長式の火災感知器の炎検出部に当接される有底筒状のフードと、フードの底面に固定されて点滅する光源と、フード内に光源の光軸が直交するように取付される遮光板と、遮光板に設けられ、光源からの直接光または回折光の通過を制限する複数のアパーチャとを備えた火災感知器の作動試験器であって、遮光板は、複数のアパーチャが同軸上となるように少なくとも2枚以上が所定間隔をおいて平行設置され、複数のアパーチャは、複数の受光素子と互いに同軸上となるように設けられ、複数のアパーチャを通過した試験光が火災による炎の分光比率と同じとなって火災感知器に照射されるように、個々に面積が設定されることを特徴とするものである。 A fire detector operation tester according to the present invention includes a bottomed cylindrical hood that is in contact with a flame detection portion of a multi-wavelength fire detector composed of a plurality of light receiving elements that detect different wavelengths, and a hood. A light source fixed on the bottom surface of the light source and blinking, a light shielding plate mounted in the hood so that the optical axes of the light sources are orthogonal, and a plurality of light sources provided on the light shielding plate to restrict the passage of direct light or diffracted light from the light source And a plurality of apertures are arranged in parallel at a predetermined interval so that the plurality of apertures are coaxial, and the plurality of apertures are: The area is set individually so that the test light that has passed through the multiple apertures is radiated to the fire detector with the same spectral ratio of the flame due to the fire. Characterized by being A.

また、受光素子は、バンドパスフィルタを備えた第1の受光素子と、バンドパスフィルタより短波長側又は長波長側のピーク波長のみ透過させるバンドパスフィルタを備えた第2の受光素子とを少なくとも有し、第1の受光素子に設けられるバンドパスフィルタは、炭酸ガス共鳴放射帯のピーク波長のみを透過させるものである。

The light receiving element includes at least a first light receiving element including a bandpass filter and a second light receiving element including a bandpass filter that transmits only a peak wavelength on a shorter wavelength side or a longer wavelength side than the bandpass filter. The bandpass filter provided in the first light receiving element transmits only the peak wavelength of the carbon dioxide resonance radiation band .

本発明の火災感知器の作動試験器は、点滅光源からの照射光は、各検出素子に設けられたアパーチャの面積により、火災による炎と同じ分光比率となって各検出素子まで届くため、多波長式の炎感知器でも確実に作動させることができる。また、照射光は炭酸ガス共鳴放射帯以外の赤外線を遮断しないため、炭酸ガス共鳴放射帯以外のみ検出する検出素子が故障の場合を判別できる。   The operation tester of the fire detector of the present invention has the same spectral ratio as the flame caused by the fire due to the area of the aperture provided in each detection element, and the irradiation light from the flashing light source reaches each detection element. Even a wavelength flame detector can be operated reliably. In addition, since the irradiation light does not block infrared rays other than the carbon dioxide resonance radiation band, it is possible to determine when the detection element that detects only the carbon dioxide resonance radiation band is faulty.

図1は、本発明の第1の実施形態である火災感知器40の作動試験器30が、火災感知器40を試験する位置関係を示す概略図である。火災感知器40は、炭酸ガス共鳴放射帯のピーク波長(例えば、4.4μm)のみ透過させる第1のバンドパスフィルタを備えた第1の受光素子41Aと、炭酸ガス共鳴放射帯のピーク波長より短波長側(例えば、3.5μm)のみ透過させる第2のバンドパスフィルタを備えた第2の受光素子41Bと、炭酸ガス共鳴放射帯のピーク波長より長波長側(例えば、5.0μm)のみ透過させる第3のバンドパスフィルタを備えた第3の受光素子41Cとで、炎検出部が構成されている。従って、火災感知器40は各受光素子41の出力値を演算することで火災またはノイズを判別している。   FIG. 1 is a schematic diagram showing a positional relationship in which the operation tester 30 of the fire sensor 40 according to the first embodiment of the present invention tests the fire sensor 40. The fire detector 40 includes a first light receiving element 41A having a first bandpass filter that transmits only a peak wavelength (for example, 4.4 μm) of a carbon dioxide resonance radiation band, and a peak wavelength of the carbon dioxide resonance radiation band. A second light receiving element 41B having a second bandpass filter that transmits only the short wavelength side (for example, 3.5 μm), and only the longer wavelength side (for example, 5.0 μm) than the peak wavelength of the carbon dioxide resonance radiation band A flame detection unit is configured by the third light receiving element 41 </ b> C including the third band pass filter to be transmitted. Therefore, the fire detector 40 determines the fire or noise by calculating the output value of each light receiving element 41.

第1の実施形態の火災感知器40の作動試験器30の構成は、連続スペクトルを発光する光源1を点滅照射させる制御回路や操作スイッチ等からなる図示しない回路基板の収納部4と、光源1の照射光が3つのアパーチャ2A、2B、2Cに分かれて通過することにより試験光7を生成する試験光生成部20と、作動試験器30と火災感知器40が常に一定の位置関係で試験照射するための位置決め部12とからなる。   The operation tester 30 of the fire detector 40 according to the first embodiment has a circuit board housing 4 (not shown) composed of a control circuit, operation switches, and the like that blink the light source 1 that emits a continuous spectrum. The test light generator 20 that generates the test light 7 by passing through the three apertures 2A, 2B, and 2C, the operation tester 30 and the fire detector 40 are always irradiated with the test light in a fixed positional relationship. And positioning portion 12 for the purpose.

上記収納部4の電源回路はバッテリ駆動するもので、光源1および制御回路等へ安定電源を供給する。制御回路は、図示しない照射開始スイッチの操作入力信号を受けると、例えば、火災による炎のちらつきと同等となるように周波数1〜10Hzで電球などの光源1を点滅制御する。   The power supply circuit of the storage unit 4 is battery driven and supplies a stable power supply to the light source 1 and the control circuit. When the control circuit receives an operation input signal of an irradiation start switch (not shown), for example, the control circuit controls blinking of the light source 1 such as a light bulb at a frequency of 1 to 10 Hz so as to be equivalent to flickering of a flame due to a fire.

試験光生成部20は、図1に示すように、遮光板3がフード8の端面11に固定されている先端部9の背面に取付されており、光源1の光軸は遮光板3に直交するように、発光部13がフード8の底面部10に設けた孔にはめ込まれている。従って、光源1の照射光は試験光生成部20で直射光5または回折光6となり、3つのアパーチャ2A、2B、2Cを有する遮光板3を通過することで、試験光7が火災による炎の分光比率と同じとなる。このとき、遮光板3の3つのアパーチャ2A、2B、2Cは個々に面積を設定している。また、互いに隣接した受光素子41A、41B、41Cに対して迷光による影響を与えないように、同一のアパーチャ形状を有する遮光板3は少なくとも2枚以上を所定の間隔をおいて平行に設けることで試験光7の直進性を向上させ、迷光の入射を防いでいる。さらに、フード8または底面部10で反射する回折光6がアパーチャ2A、2B、2Cを通過できるように略椀状の反射面14を設けてもよい。なお、遮光板3は先端部9の背面から固定して着脱自在としてもよい。   As shown in FIG. 1, the test light generation unit 20 is attached to the back surface of the tip 9 where the light shielding plate 3 is fixed to the end surface 11 of the hood 8, and the optical axis of the light source 1 is orthogonal to the light shielding plate 3. As shown, the light emitting unit 13 is fitted into a hole provided in the bottom surface 10 of the hood 8. Therefore, the irradiation light of the light source 1 becomes direct light 5 or diffracted light 6 in the test light generation unit 20 and passes through the light shielding plate 3 having the three apertures 2A, 2B, 2C. It becomes the same as the spectral ratio. At this time, the areas of the three apertures 2A, 2B, and 2C of the light shielding plate 3 are individually set. In addition, at least two light shielding plates 3 having the same aperture shape are provided in parallel at a predetermined interval so as not to affect the light receiving elements 41A, 41B, 41C adjacent to each other due to stray light. The straightness of the test light 7 is improved, and stray light is prevented from entering. Furthermore, a substantially bowl-shaped reflecting surface 14 may be provided so that the diffracted light 6 reflected by the hood 8 or the bottom surface portion 10 can pass through the apertures 2A, 2B, 2C. The light shielding plate 3 may be fixed from the back surface of the distal end portion 9 and detachable.

火災感知器40の位置決め部12は、図1に示すように、凸状となっている作動試験器30の先端部9と略円錐状に凹んでいる火災感知器40の視野制限部品42の傾斜面等で当接させて、前後方向の位置決めがされている。また、図示しないガイドとガイド穴を火災感知器40および感度試験器30に設けて、回転方向の位置決めがされている。これにより、作動試験器40の遮光板3の3つのアパーチャ2A、2B、2Cと火災感知器40の受光素子41A、41B、41Cとが互いに同軸上となる。また、作動試験器30の光源1と火災感知器40の受光素子41A、41B、41Cは一定の位置で試験光7を照射できるため、常に安定した試験結果を得ることができる。   As shown in FIG. 1, the positioning part 12 of the fire detector 40 is inclined with respect to the distal end 9 of the operation tester 30 having a convex shape and the visual field limiting component 42 of the fire sensor 40 having a substantially conical shape. Positioning in the front-rear direction is made by contacting with a surface or the like. In addition, a guide and a guide hole (not shown) are provided in the fire detector 40 and the sensitivity tester 30 so as to be positioned in the rotational direction. Accordingly, the three apertures 2A, 2B, and 2C of the light shielding plate 3 of the operation tester 40 and the light receiving elements 41A, 41B, and 41C of the fire detector 40 are coaxial with each other. Further, since the light source 1 of the operation tester 30 and the light receiving elements 41A, 41B, and 41C of the fire detector 40 can irradiate the test light 7 at a fixed position, a stable test result can always be obtained.

上記第1の実施形態における火災感知器40の作動試験器30を使用する場合の火災感知器40の点検作業について説明する。まず、作業者は火災感知器40の所定の位置に作動試験器30を装着する。次に、作動試験器30の照射開始スイッチをオンすることにより、光源1が炎のちらつきと同じ周波数で点滅する。照射開始から火災感知器40が作動するまでの経過時間を測定したら、照射開始スイッチをオフにして、他の火災感知器4
0を試験する場所に移動する。
The inspection work of the fire detector 40 when using the operation tester 30 of the fire detector 40 in the first embodiment will be described. First, the operator attaches the operation tester 30 to a predetermined position of the fire detector 40. Next, by turning on the irradiation start switch of the operation tester 30, the light source 1 blinks at the same frequency as the flickering of the flame. When the elapsed time from the start of irradiation until the fire detector 40 is activated is measured, the irradiation start switch is turned off, and another fire detector 4
Move 0 to the location to test.

図2は、本発明の第2の実施形態における試験時の火災感知器40と作動試験器30の位置関係を示す部分断面図である。第1の実施形態と異なるところは、2枚の遮光板3のそれぞれのアパーチャ2A、2B、2Cが光源1と受光素子41A、41B、41Cとの間を結ぶ光軸上に配置されることによって、光源1の直射光5のみが試験光7となるものである。これにより、光源1からの試験光7は、受光素子41A、41B、41Cが高強度のまま受光できるため、光源1の電源を低消費化できる。また、迷光の入射を防止するため、フード8に図示しない光トラップを設けてもよい。   FIG. 2 is a partial cross-sectional view showing the positional relationship between the fire detector 40 and the operation tester 30 during a test according to the second embodiment of the present invention. The difference from the first embodiment is that the respective apertures 2A, 2B, 2C of the two light shielding plates 3 are arranged on the optical axis connecting the light source 1 and the light receiving elements 41A, 41B, 41C. Only the direct light 5 of the light source 1 becomes the test light 7. As a result, the test light 7 from the light source 1 can be received by the light receiving elements 41A, 41B, 41C with high intensity, so that the power source of the light source 1 can be reduced. In order to prevent stray light from entering, an optical trap (not shown) may be provided in the hood 8.

上記第1の実施形態においては、光源1が炎のちらつきと同じ周波数で点滅し、かつ、複数のアパーチャ2A、2B、2Cの面積により火災による分光比率を再現できるため、赤外線バンドバスフィルターを用いずに多波長式の火災感知器40を確実に作動させることができる。また、遮光板3を先端部9から取り外し、アパーチャ2A、2B、2Cの位置、面積、数量が異なるものに適宜交換することで、各種火災またはノイズ光源を簡単に作り分けできる。   In the first embodiment, the light source 1 blinks at the same frequency as the flickering of the flame, and the spectral ratio due to fire can be reproduced by the area of the plurality of apertures 2A, 2B, 2C. Therefore, the multi-wavelength fire detector 40 can be operated reliably. Moreover, various fire or noise light sources can be easily created by removing the light-shielding plate 3 from the distal end portion 9 and appropriately replacing the apertures 2A, 2B, and 2C with those having different positions, areas, and quantities.

上記第2の実施形態においては、光源1からの試験光7は、受光素子41A、41B、41Cが高強度のまま受光できるため、光源1の電源を低消費化できる。

In the second embodiment, the test light 7 from the light source 1 can be received with the light receiving elements 41A, 41B, and 41C having high intensity, so that the power source of the light source 1 can be reduced.

本発明の第1の実施形態における試験時の火災感知器40と作動試験器30の位置関係を示す部分断面図である。It is a fragmentary sectional view which shows the positional relationship of the fire detector 40 and the operation test device 30 at the time of the test in the 1st Embodiment of this invention. 本発明の第2の実施形態における試験時の火災感知器40と作動試験器30の位置関係を示す部分断面図である。It is a fragmentary sectional view which shows the positional relationship of the fire detector 40 and the operation tester 30 at the time of the test in the 2nd Embodiment of this invention.

符号の説明Explanation of symbols

1 光源
2A 第1のアパーチャ
2B 第2のアパーチャ
2C 第3のアパーチャ
3 遮光板
4 収納部
5 直射光
6 回折光
7 試験光
8 フード
9 先端部
10 底面部
11 端面
12 傾斜面(位置決め部)
13 発光部
14 反射面
20 試験光生成部
30 作動試験器
40 火災感知器
41A 第1の受光素子
41B 第2の受光素子
41C 第3の受光素子
42 視野制限部材
DESCRIPTION OF SYMBOLS 1 Light source 2A 1st aperture 2B 2nd aperture 2C 3rd aperture 3 Light-shielding plate 4 Storage part 5 Direct light 6 Diffracted light 7 Test light 8 Hood 9 Tip part 10 Bottom part 11 End surface 12 Inclined surface (positioning part)
DESCRIPTION OF SYMBOLS 13 Light emission part 14 Reflecting surface 20 Test light production | generation part 30 Operation | movement test device 40 Fire detector 41A 1st light receiving element 41B 2nd light receiving element 41C 3rd light receiving element 42 Field-of-view restriction member

Claims (2)

異なる波長を検出する複数の受光素子で構成される多波長式の火災感知器の炎検出部に当接される有底筒状のフードと、前記フードの底面に固定されて点滅する光源と、前記フード内に前記光源の光軸が直交するように取付される遮光板と、前記遮光板に設けられ、前記光源からの直接光または回折光の通過を制限する複数のアパーチャとを備えた火災感知器の作動試験器であって、
前記遮光板は、前記複数のアパーチャが同軸上となるように少なくとも2枚以上が所定間隔をおいて平行設置され、
前記複数のアパーチャは、前記複数の受光素子と互いに同軸上となるように設けられ、前記複数のアパーチャを通過した試験光が火災による炎の分光比率と同じとなって前記火災感知器に照射されるように、個々に面積が設定されることを特徴とする火災感知器の作動試験器。
A bottomed cylindrical hood that is in contact with the flame detection part of a multi-wavelength fire detector composed of a plurality of light receiving elements that detect different wavelengths, a light source that is fixed to the bottom of the hood and flashes; A fire provided with a light shielding plate mounted in the hood so that the optical axes of the light sources are orthogonal to each other, and a plurality of apertures provided on the light shielding plate for restricting the passage of direct light or diffracted light from the light source A sensor operation tester,
The light-shielding plate is installed in parallel at a predetermined interval so that at least two of the plurality of apertures are coaxial.
The plurality of apertures are provided so as to be coaxial with the plurality of light receiving elements, and the test light that has passed through the plurality of apertures is irradiated to the fire detector with the same spectral ratio of flame due to fire. The fire tester is characterized in that the area is set individually.
前記受光素子は、バンドパスフィルタを備えた第1の受光素子と、前記バンドパスフィルタより短波長側又は長波長側のピーク波長のみ透過させるバンドパスフィルタを備えた第2の受光素子とを少なくとも有し、前記第1の受光素子に設けられるバンドパスフィルタは、炭酸ガス共鳴放射帯のピーク波長のみを透過させることを特徴とする請求項1記載の火災感知器の作動試験器。 The light receiving element includes at least a first light receiving element including a band pass filter and a second light receiving element including a band pass filter that transmits only a peak wavelength on a shorter wavelength side or a longer wavelength side than the band pass filter. 2. The fire detector operation tester according to claim 1 , wherein the band-pass filter provided in the first light receiving element transmits only a peak wavelength of the carbon dioxide resonance radiation band . 3.
JP2006086676A 2006-03-27 2006-03-27 Fire detector operation tester Expired - Fee Related JP4845555B2 (en)

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CN102384788B (en) * 2011-11-11 2013-07-03 山东省科学院自动化研究所 Field detection device of handheld explosion-proof infrared and ultraviolet flame detector
JP6546820B2 (en) * 2015-09-14 2019-07-17 能美防災株式会社 Sensitivity tester and sensitivity test system
JP6920229B2 (en) * 2018-02-02 2021-08-18 能美防災株式会社 Test equipment for flame detectors
JP7388815B2 (en) * 2018-10-31 2023-11-29 浜松ホトニクス株式会社 Spectroscopic unit and spectroscopic module

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JPH1144573A (en) * 1997-05-28 1999-02-16 Nohmi Bosai Ltd Flame detector
JPH11110657A (en) * 1997-10-06 1999-04-23 Nittan Co Ltd Operation tester for fire sensor
JP4691830B2 (en) * 2001-05-30 2011-06-01 旭硝子株式会社 Wavelength selective diffraction element and optical head device
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