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A methodology for obtaining on-orbit SI-traceable spectral radiance measurements in the thermal infrared

机译:在热红外中获得在轨SI可追踪的光谱辐射度测量的方法

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摘要

A methodology to achieve spectral thermal radiance measurements from space with demonstrable on-orbit traceability to the International System of Units (SI) is described. This technique results in measurements of infrared spectral radiance R((v) over tilde), with spectral index (v) over tilde in cm(-1), with a relative combined uncertainty u(c)[R((v) over tilde)] of 0.0015 (k = 1) for the average mid-infrared radiance emitted by the Earth. This combined uncertainty, expressed in brightness temperature units, is equivalent to +/-0.1 K at 250 K at 750 cm(-1). This measurement goal is achieved by utilizing a new method for infrared scale realization combined with an instrument design optimized to minimize component uncertainties and admit tests of radiometric performance. The SI traceability of the instrument scale is established by evaluation against source-based and detector-based infrared scales in defined laboratory protocols before launch. A novel strategy is executed to ensure fidelity of on-orbit calibration to the pre-launch scale. This strategy for on-orbit validation relies on the overdetermination of instrument calibration. The pre-launch calibration against scales derived from physically independent paths to the base SI units provides the foundation for a critical analysis of the overdetermined on-orbit calibration to establish an SI-traceable estimate of the combined measurement uncertainty. Redundant calibration sources and built-in diagnostic tests to assess component measurement uncertainties verify the SI traceability of the instrument calibration over the mission lifetime. This measurement strategy can be realized by a practical instrument, a prototype Fourier-transform spectrometer under development for deployment on a small satellite. The measurement record resulting from the methodology described here meets the observational requirements for climate monitoring and climate model testing and improvement.
机译:描述了一种从空间实现光谱热辐射测量的方法,并具有在轨的可追溯性到国际单位制(SI)。这项技术可以测量红外光谱辐射度R((v)在波浪线上),光谱指数(v)在cm(-1)内,相对组合不确定度u(c)[R((v)在波浪线上)]为0.0015(k = 1),表示地球发出的平均中红外辐射率。以亮度温度单位表示的这种组合不确定性等于750 cm(-1)时250 K时的+/- 0.1K。通过利用一种新的实现红外标尺的方法以及一种经过优化的仪器设计来实现此测量目标,该仪器设计经过了优化,可最大程度地减少组件不确定性并接受辐射性能测试。仪器秤的SI溯源性是通过在发射前根据定义的实验室规程对基于源和基于探测器的红外秤进行评估来建立的。执行一种新颖的策略以确保对发射前规模的在轨校准的保真度。这种在轨验证的策略依赖于仪器校准的过高确定。针对从到基础SI单位的物理独立路径得出的比例进行的发射前校准,为对超定轨道校准的关键分析提供了基础,以建立组合测量不确定度的SI可追踪估计。冗余的校准源和内置的诊断测试,以评估组件测量的不确定性,从而验证了仪器在整个使用期内的SI溯源性。这种测量策略可以通过一种实用的仪器来实现,该仪器正在开发中,可以在小型卫星上部署,并且原型傅里叶变换光谱仪也正在开发中。通过此处描述的方法得出的测量记录符合气候监控以及气候模型测试和改进的观测要求。

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