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Photoacoustic spectroscopy for remote detection of liquid contamination

机译:光声光谱法用于液体污染物的远程检测

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摘要

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:液体化学污染物的远程检测和识别是一个难题,尚未找到令人满意的解决方案。我们已经研究了一种新技术,脉冲间接光声光谱法(PIPAS),并对其在10m量级隔离范围内的操作潜力进行了评估。该方法包括使用在9-11μm范围内操作的脉冲激光对液体表面进行光学激发。脉冲长度约为3μs,能量约为300μJ,重复频率约为200Hz。激光脉冲对液体的快速加热会在表面产生声发射,并由灵敏的定向麦克风检测到,从而增加了信噪比并减少了背景杂波。声脉冲强度与在激光波长下液体的吸收系数有关。调整允许进行光谱研究和化学鉴定的手段。已经检查了最大覆盖率,并且进一步的实验检查了该技术的特异性,从而可以对误报率和信号丢失率进行初步评估。已经评估了在野外环境中应用该技术的实际情况。

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