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February 14, 2026Atmospheric measurement techniques0 citationsOpen Access

Accurate humidity probe for persistent aviation-contrail conditions

CDChristoph DyroffMMMichael MooreBDBruce C. Daube

Key Points

  • To develop and validate a humidity probe for precise airborne water vapor measurements relevant to aviation contrail formation.
  • Developed a humidity probe using tunable infrared laser direct absorption spectroscopy (TILDAS).
  • Measured water vapor in real time at a frequency of 1 Hz across a specific absorption line of H2O.
  • Tested two prototypes in the laboratory against a humidity standard and each other.
  • Calculated the stability of the probes over a 5-day period without temperature control.
  • Achieved over 98% agreement with humidity standards for H2O levels below 200 ppm.
  • Showed a 99.7% agreement between the two probes measuring the same air sample.
  • Demonstrated linear response of probes across four orders of magnitude in H2O measurement.

Abstract

Abstract. We present a state-of-the-art humidity probe for in situ airborne water vapor measurements tailored to the humidity range relevant for the formation of persistent aviation contrail cirrus clouds. Our probe is based on tunable infrared laser direct absorption spectroscopy (TILDAS). We scan a laser in wavelength across an isolated water (H2O) absorption line at 7205.246 cm−1 (1.39 µm) to obtain the H2O volume mixing ratio in sample air at 1 Hz in real time. Our optical design features a combination of single-mode optical fibers and a short-path absorption cell with integrated focusing optics and detector to avoid any absorption path outside of the sample volume. A parallel fiber path and detector capture the laser power profile during the wavelength scan for spectral-baseline normalization. We have built and tested two prototypes and tested them side-by-side in the laboratory against a humidity standard as well as against each other. Without any calibration, we found agreement against the humidity standard of better than 98 % for the relevant H2O range below 200 ppm. The agreement between both instruments when operated in series measuring the same sample air was 99.7 %. The stability of both instruments was quantified to be ±1 % (1σ) during a 5 d long period where both prototypes operated without any temperature control. We show that our probes can measure H2O with linear response over 4 orders of magnitude.

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Cite This Study

Dyroff et al. (2026) studied this question.

synapsesocial.com/papers/699011522ccff479cfe57d9bhttps://doi.org/10.5194/amt-19-1023-2026
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