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Infrared sensing technologies assisting environmental monitoring

机译:协助环境监测的红外传感技术

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A diversified infrared technology base has been developed over the recent decades for various civilian and military sensing needs. The technology has been optimized to balance performance and affordability constraints for a variety of end-use goals. Simplistically, these goals might involve the detection and measurement of nearby, bright sources that fill even the largest angular fields-of-view of pixels in simple, low-magnification systems for which abundant signal makes possible infrared detection and measurement with less-sensitive, uncooled sensor arrays. At another extreme are ultra-cryogenically-cooled systems operating below thermoelectric cooler capabilities and which enable the detection and measurement of much fainter sources that underfill even the tiny angular pixel fields of view set by the diffraction limit of large, high magnification optical systems. Our emphasis is closer to the latter for the applications described here. As one example of the environmental monitoring capabilities made possible in the infrared, gas leak detection in transmission pipelines is vitally important for safe operation and for protecting the environment by accounting for and assessing the impact of leaks that adversely affect climate change. Gas leak detection in the infrared spectrum is facilitated by the distinctive spectral fingerprints of fundamental molecular vibrational modes which can be exploited for the detection of the gas. Sensitivity becomes paramount for many applications requiring faint signal detection, and large sensor array formats facilitate surveillance coverage. Many climate change assessments are expected to involve wide-area coverage of Earth scenes with revisit times sufficiently short to capture important transitory events. Shorter term monitoring of containment compliance requires detecting sufficiently small gas leak flows over broad expanses of the Earth's surface with high detection sensitivities. In this paper we described supporting technologies in the areas of sensor arrays and optical sub-systems, with an emphasis on dispersive spectrometers. There are a plethora of applications involving the stewardship of a range of biological assets, both in the ocean and on land environments, as well as large-scale sensing of atmospheric properties, including concentrations of greenhouse gases.
机译:对于近几十年来进行多元化的红外技术基地,为各种民用和军事传感需求开发。该技术已被优化,以平衡各种最终使用目标的性能和可负担性限制。简单地,这些目标可能涉及附近的检测和测量,甚至是简单的低放大系统中的最大角度视野的附近的,甚至是具有丰富的低倍率系统的最大角度视野,其使得具有不太敏感的红外检测和测量,加工传感器阵列。在另一个极端是超低温冷却系统,在热电冷却器能力下方工作,并且能够检测和测量甚至通过大,高放大镜系统的衍射极限设置的微小角度像素场填充的微小源。我们的重点更接近这里描述的应用程序的后者。作为在红外线的环境监测能力的一个例子中,传输管道中的气体泄漏检测对于安全操作至关重要,并且通过核算和评估对气候变化产生不利影响的泄漏的影响和保护环境。通过基本分子振动模式的独特光谱指纹促进了红外光谱中的气体泄漏检测,这可以利用用于检测气体的基本分子振动模式。对于需要微弱信号检测的许多应用,灵敏度变得至关重要,并且大的传感器阵列格式有助于监视覆盖范围。预计许多气候变化评估将涉及地球场景的广域覆盖范围,Revisit Times充分短暂以捕获重要的季节事件。较短的遏制合规性监测需要检测足够小的气体泄漏在具有高检测灵敏度的地球表面的宽阔扩散中流动。在本文中,我们描述了传感器阵列和光学子系统区域的支持技术,重点在分散体上。有一种涉及海洋和陆地环境中一系列生物资产的管理的多种申请,以及大气性质的大规模感知,包括温室气体的浓度。

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