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Calibration and evaluation of CCD spectroradiometers for ground-based and airborne measurements of spectral actinic flux densities

机译:CCD光谱辐射仪的校准和评价用于光谱光散助焊剂密度的地面和空气载体测量

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摘要

The properties and performance of charge-coupled device (CCD) array spectroradiometers for the measurement of atmospheric spectral actinic flux densities (280-650 nm) and photolysis frequencies were investigated. These instruments are widely used in atmospheric research and are suitable for aircraft applications because of high time resolutions and high sensitivities in the UV range. The laboratory characterization included instrument-specific properties like the wavelength accuracy, dark signal, dark noise and signal-to-noise ratio (SNR). Spectral sensitivities were derived from measurements with spectral irradiance standards. The calibration procedure is described in detail, and a straightforward method to minimize the influence of stray light on spectral sensitivities is introduced. From instrument dark noise, minimum detection limits approximate to 1 x 10(10) cm(-2) s(-1) nm(-1) were derived for spectral actinic flux densities at wavelengths around 300 nm (1 s integration time). As a prerequisite for the determination of stray light under field conditions, atmospheric cutoff wavelengths were defined using radiative transfer calculations as a function of the solar zenith angle (SZA) and total ozone column (TOC). The recommended analysis of field data relies on these cutoff wavelengths and is also described in detail taking data from a research flight on HALO (High Altitude and Long Range Research Aircraft) as an example. An evaluation of field data was performed by ground-based comparisons with a double-monochromatorbased, highly sensitive reference spectroradiometer. Spectral actinic flux densities were compared as well as photolysis frequencies j(NO2) and j((OD)-D-1), representing UV-A and UV-B ranges, respectively. The spectra expectedly revealed increased daytime levels of stray-light-induced signals and noise below atmospheric cutoff wavelengths. The influence of instrument noise and stray-light-induced noise was found to be insignificant for j(NO2) and rather limited for j((OD)-D-1), resulting in estimated detection limits of 5 x 10(-7) and 1 x 10(-7) s(-1), respectively, derived from night-time measurements on the ground (0.3 s integration time, 10 s averages). For j((OD)-D-1) the detection limit could be further reduced by setting spectral actinic flux densities to zero below atmospheric cutoff wavelengths. The accuracies of photolysis frequencies were determined from linear regressions with data from the double-monochromator reference instrument. The agreement was typically within +/- 5 %. Because optical-receiver aspects are not specific for the CCD spectroradiometers, they were widely excluded in this work and will be treated in a separate paper, in particular with regard to airborne applications.
机译:研究了用于测量大气光谱光化助焊剂密度(280-650nm)和光解频率测量的电荷耦合器件(CCD)阵列分光剂蒸发仪的性能和性能。这些仪器广泛用于大气研究,并且适用于飞机应用,因为UV范围内的高时间分辨率和高敏感性。实验室表征包括像波长精度,暗信号,暗噪声和信噪比(SNR)等仪器特定性质。光谱敏感性来自光谱辐照标准的测量。介绍了校准程序,并引入了最小化杂散光对光谱敏感性的影响的直接方法。从仪器暗噪声,导出近似为1×10(10)厘米(-2)厘米(-1)厘米(-1)的最小检测限度,用于波长为约300nm(1秒的整合时间)的光谱光化磁通密度。作为在现场条件下测定杂散​​光的先决条件,使用辐射转移计算定义大气截止波长,作为太阳天顶角(SZA)和总臭氧柱(TOC)的函数。对现场数据的推荐分析依赖于这些截止波长,并详细描述了从Halo(高海拔和远程研究飞机)上的研究飞行中的数据作为示例。通过基于地基比较来进行对现场数据的评估,与双单色竞争,高敏感的参考光谱放射体计进行。比较光谱光化助熔剂密度,以及光解频率J(NO2)和J((OD)-D-1),分别表示UV-A和UV-B范围。光谱预计揭示了杂散光引起的信号和低于大气截止波长的噪声水平。发现仪器噪声和杂散光诱导的噪声的影响对于J(NO2)具有微不足道,并且对于J((OD)-1)而相当有限,导致估计检测限为5×10(-7)和1×10(-7)S(-1),分别来自地面上的夜间测量(0.3秒的集成时间,10秒)。对于J((OD)-D-1),通过将光谱光化磁通密度设定为零低于大气截止波长,可以进一步降低检测极限。用来自双单色器参考仪器的数据的线性回归测定光解频率的精度。该协议通常在+/- 5%之内。因为光学接收器方面不具体对CCD光谱分散体,因此它们被广泛地排除在该工作中,并且将在单独的纸张中处理,特别是关于空气传播的应用。

著录项

  • 来源
    《Atmospheric Measurement Techniques》 |2017年第9期|共24页
  • 作者

    Bohn Birger; Lohse Insa;

  • 作者单位

    Forschungszentrum Julich Inst Energie &

    Klimaforsch IEK Troposphare 8 D-52428 Julich Germany;

    Forschungszentrum Julich Inst Energie &

    Klimaforsch IEK Troposphare 8 D-52428 Julich Germany;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 计量学;
  • 关键词

  • 入库时间 2022-08-20 01:30:16

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