A tunable filter comparator for the spectral calibration of near-ambient temperature blackbodies

被引:0
|
作者
Khromchenko, V. B. [1 ,2 ]
Mekhontsev, S. N. [3 ]
Hanssen, L. M. [3 ]
机构
[1] Space Dynam Lab, N Logan, UT 84341 USA
[2] NIST, Joint NIST USU Program Opt Sensor Calibrat, Gaithersburg, MD 20899 USA
[3] NIST, Gaithersburg, MD 20899 USA
来源
INFRARED SPACEBORNE REMOTE SENSING AND INSTRUMENTATION XV | 2007年 / 6678卷
关键词
spectral radiance; radiation temperature; infrared radiometry; tunable filter; effective emissivity; extended area blackbody;
D O I
10.1117/12.735890
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The calibration of infrared (IR) radiometers, thermal imagers and electro-optical systems relies on use of extended area blackbodies (BB) operating in the ambient environment. "Flat plate" designs, typically using a thermoelectric heat pump backed with an air- or liquid-cooled radiator, allow one to adequately meet the requirements of geometrical size and temperature span. The tradeoff comes in the form of limited temperature uniformity and lower emissivity that such an approach can provide given the limitations in achievable thermal conductivity of the plate and reflectance of the black paint, respectively. The availability of spectrally resolved radiance temperature data for infrared calibrators has become especially vital in the last few years with the widespread use of multi- and hyper-spectral electro-optical systems that enable better detection and identification of targets. In an effort to increase the measurement accuracy of IR spectral radiance of near-ambient BB calibrators, NIST has recently built a dedicated capability which is a part of its new AIRI (Advanced Infrared Radiometry and Imaging) facility. The Tunable Filter Comparator (TFC) is a key new element in this setup, allowing us to perform a precise comparison of the unit under test (UUT) with two reference blackbodies of known temperatures and emissivity. The report describes the major design features of the TFC comparator, the algorithm used for signal processing, and results of a performance evaluation of the TFC. The TFC development has enabled us to achieve BB radiance temperature comparisons with a standard deviation of 5 to 15 mK at temperatures of 15-150 C across the 3 to 5 mu m and 8 to 12 mu m atmospheric band ranges with a relative spectral resolution of 2 to 3 %.
引用
收藏
页数:10
相关论文
共 50 条
  • [31] Interaction of molecular nitrogen with vanadium oxide in the absence and presence of water vapor at room temperature: Near-ambient pressure XPS
    Balogun, K.
    Chukwunenye, P.
    Anwar, F.
    Ganesan, A.
    Adesope, Q.
    Willadsen, D.
    Nemsak, S.
    Cundari, T. R.
    Bagus, P. S.
    D'Souza, F.
    Kelber, J. A.
    JOURNAL OF CHEMICAL PHYSICS, 2022, 157 (10):
  • [32] Absence of Anomalous Electron-Phonon Coupling in the Near-Ambient Gap Temperature Renormalization of CsPbBr3 Nanocrystals
    Fasahat, Shima
    Schafer, Benedikt
    Xu, Kai
    Fiuza-Maneiro, Nadesh
    Gomez-Grana, Sergio
    Alonso, M. Isabel
    Polavarapu, Lakshminarayana
    Goni, Alejandro R.
    JOURNAL OF PHYSICAL CHEMISTRY C, 2024, 129 (01): : 453 - 463
  • [33] Near-Ambient Temperature Halogen-Lithium Exchange of p-Bromoanisole and Related Substrates: Flow/Batch Studies
    Slocum, D. W.
    Reinscheld, Thomas K.
    Austin, Nick D.
    Kusmic, Damir
    Whitley, Paul E.
    SYNTHESIS-STUTTGART, 2012, 44 (16): : 2531 - 2536
  • [34] Research on differences of AOTF imaging spectrometer spectral calibration results caused by ambient temperature
    Lei, Hao
    Zhang, Ya-zhou
    Wang, Guang-ping
    Wu, Jing-li
    HYPERSPECTRAL REMOTE SENSING APPLICATIONS AND ENVIRONMENTAL MONITORING AND SAFETY TESTING TECHNOLOGY, 2016, 10156
  • [35] Auto-ignition of near-ambient temperature H2/air mixtures during flame-vortex interaction
    Steinberg, Adam M.
    Teav, Ketana
    Kheirkhah, Sina
    Bariki, Chaimae
    Thiesset, Fabien
    Chauveau, Christian
    Halter, Fabien
    PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2019, 37 (02) : 2425 - 2432
  • [36] TEMPERATURE-COMPENSATING CALIBRATION TRANSFER FOR NEAR-INFRARED FILTER INSTRUMENTS
    WANG, YD
    KOWALSKI, BR
    ANALYTICAL CHEMISTRY, 1993, 65 (09) : 1301 - 1303
  • [37] Wavelength-dependent spatial correction and spectral calibration of a liquid crystal tunable filter imaging system
    Berns, Roy S.
    Cox, Brittany D.
    Abed, Farhad Moghareh
    APPLIED OPTICS, 2015, 54 (12) : 3687 - 3693
  • [38] Suppression of Sidelobe for Acousto-Optic Tunable Filter in Near-Infrared Spectral Monitoring
    Fan Guo-fang
    光学学报, 2003, (S1) : 827 - 828
  • [39] Room Temperature Carbonylation of Iron-Phthalocyanines Adsorbed on a Single Crystal Metal Surface: An in Situ SFG Investigation at Near-Ambient Pressure
    Corva, M.
    Vesselli, E.
    JOURNAL OF PHYSICAL CHEMISTRY C, 2016, 120 (39): : 22298 - 22303
  • [40] Low-temperature gas sensing mechanism in β-Ga2O3 nanostructures revealed by near-ambient pressure XPS
    Yatskiv, R.
    Vorochta, M.
    Basinova, N.
    Dinhova, T. N.
    Maixner, J.
    Grym, J.
    APPLIED SURFACE SCIENCE, 2024, 663