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Advancements, measurement uncertainties, and recent comparisons of the NOAA frost point hygrometer

The NOAA frost point hygrometer (FPH) is a balloon-borne instrument flown monthly at three sites to measure water vapor profiles up to 28 km. The FPH record from Boulder, Colorado, is the longest continuous stratospheric water vapor record. The instrument has an uncertainty in the stratosphere that...

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Autores principales: Hall, Emrys G., Jordan, Allen F., Hurst, Dale F., Oltmans, Samuel J., Vömel, Holger, Kühnreich, Benjamin, Ebert, Volker
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5571835/
https://www.ncbi.nlm.nih.gov/pubmed/28845201
http://dx.doi.org/10.5194/amt-9-4295-2016
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author Hall, Emrys G.
Jordan, Allen F.
Hurst, Dale F.
Oltmans, Samuel J.
Vömel, Holger
Kühnreich, Benjamin
Ebert, Volker
author_facet Hall, Emrys G.
Jordan, Allen F.
Hurst, Dale F.
Oltmans, Samuel J.
Vömel, Holger
Kühnreich, Benjamin
Ebert, Volker
author_sort Hall, Emrys G.
collection PubMed
description The NOAA frost point hygrometer (FPH) is a balloon-borne instrument flown monthly at three sites to measure water vapor profiles up to 28 km. The FPH record from Boulder, Colorado, is the longest continuous stratospheric water vapor record. The instrument has an uncertainty in the stratosphere that is < 6 % and up to 12 % in the troposphere. A digital microcontroller version of the instrument improved upon the older versions in 2008 with sunlight filtering, better frost control, and resistance to radio frequency interference (RFI). A new thermistor calibration technique was implemented in 2014, decreasing the uncertainty in the thermistor calibration fit to less than 0.01 °C over the full range of frost – or dew point temperatures (−93 to +20 °C) measured during a profile. Results from multiple water vapor intercomparisons are presented, including the excellent agreement between the NOAA FPH and the direct tunable diode laser absorption spectrometer (dTDLAS) MC-PicT-1.4 during AquaVIT-2 chamber experiments over 6 days that provides confidence in the accuracy of the FPH measurements. Dual instrument flights with two FPHs or an FPH and a cryogenic frost point hygrometer (CFH) also show good agreement when launched on the same balloon. The results from these comparisons demonstrate the high level of accuracy of the NOAA FPH.
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spelling pubmed-55718352017-08-25 Advancements, measurement uncertainties, and recent comparisons of the NOAA frost point hygrometer Hall, Emrys G. Jordan, Allen F. Hurst, Dale F. Oltmans, Samuel J. Vömel, Holger Kühnreich, Benjamin Ebert, Volker Atmos Meas Tech Article The NOAA frost point hygrometer (FPH) is a balloon-borne instrument flown monthly at three sites to measure water vapor profiles up to 28 km. The FPH record from Boulder, Colorado, is the longest continuous stratospheric water vapor record. The instrument has an uncertainty in the stratosphere that is < 6 % and up to 12 % in the troposphere. A digital microcontroller version of the instrument improved upon the older versions in 2008 with sunlight filtering, better frost control, and resistance to radio frequency interference (RFI). A new thermistor calibration technique was implemented in 2014, decreasing the uncertainty in the thermistor calibration fit to less than 0.01 °C over the full range of frost – or dew point temperatures (−93 to +20 °C) measured during a profile. Results from multiple water vapor intercomparisons are presented, including the excellent agreement between the NOAA FPH and the direct tunable diode laser absorption spectrometer (dTDLAS) MC-PicT-1.4 during AquaVIT-2 chamber experiments over 6 days that provides confidence in the accuracy of the FPH measurements. Dual instrument flights with two FPHs or an FPH and a cryogenic frost point hygrometer (CFH) also show good agreement when launched on the same balloon. The results from these comparisons demonstrate the high level of accuracy of the NOAA FPH. 2016-09-05 2016 /pmc/articles/PMC5571835/ /pubmed/28845201 http://dx.doi.org/10.5194/amt-9-4295-2016 Text en http://creativecommons.org/licenses/by/3.0/ CC Attribution 3.0 License.
spellingShingle Article
Hall, Emrys G.
Jordan, Allen F.
Hurst, Dale F.
Oltmans, Samuel J.
Vömel, Holger
Kühnreich, Benjamin
Ebert, Volker
Advancements, measurement uncertainties, and recent comparisons of the NOAA frost point hygrometer
title Advancements, measurement uncertainties, and recent comparisons of the NOAA frost point hygrometer
title_full Advancements, measurement uncertainties, and recent comparisons of the NOAA frost point hygrometer
title_fullStr Advancements, measurement uncertainties, and recent comparisons of the NOAA frost point hygrometer
title_full_unstemmed Advancements, measurement uncertainties, and recent comparisons of the NOAA frost point hygrometer
title_short Advancements, measurement uncertainties, and recent comparisons of the NOAA frost point hygrometer
title_sort advancements, measurement uncertainties, and recent comparisons of the noaa frost point hygrometer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5571835/
https://www.ncbi.nlm.nih.gov/pubmed/28845201
http://dx.doi.org/10.5194/amt-9-4295-2016
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