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Photoacoustic spectroscopy for remote detection of liquid contamination

机译:用于远程检测液体污染的光声光谱

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The remote detection and identification of liquid chemical contamination is a difficult problem for which no satisfactory solution has yet been found. We have investigated a new technique, pulsed indirect photoacoustic spectroscopy (PIPAS), and made an assessment of its potential for operation at stand-off ranges of order 10m. The method involves optical excitation of the liquid surface with a pulsed laser operating in the 9-11 μm region. Pulse lengths are of order 3 μs, with energy ~300 μJ and repetition rates ~200Hz. Rapid heating of the liquid by the laser pulse produces acoustic emission at the surface, and this is detected by a sensitive directional microphone to increase the signal-to-noise ratio and reduce background clutter. The acoustic pulse strength is related to the liquid's absorption coefficient at the laser wavelength; tuning allows spectroscopic investigation and a means of chemical identification. Maximum coverage rates have been examined, and further experiments have examined the specificity of the technique, allowing a preliminary assessment of false-alarm and missed-signal rates. The practical aspects of applying the technique in a field environment have been assessed.
机译:液体化学品污染的远程检测和鉴定为其中没有满意的解决方案至今尚未发现一个难题。我们研究了一种新的技术,脉冲间接光声光谱(琵琶),并在对峙为了10μm的范围作出了操作可能性进行评估。该方法包括用脉冲激光在9-11微米区域中操作的液体表面的光激发。脉冲长度为3阶微秒的,具有能量〜300μJ和重复率〜200Hz范围内。由激光脉冲的液体的快速加热产生的声发射在表面上,这是由一个敏感的定向麦克风检测,以增加信噪比和减少背景杂波。声脉冲强度与在激光波长处的液体的吸收系数;调整使得光谱研究及化学鉴定手段。最大覆盖率已审查,进一步的实验研究了该技术的特殊性,允许假警报和错过的信号速率进行初步评估。在现场环境中应用这一技术的实际问题进行了评估。

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