Climate and Dynamics
Stratospheric water vapor and climate: Sensitivity to the representation in radiation codes
Article first published online: 3 JUL 2012
DOI: 10.1029/2012JD017484
©2012. American Geophysical Union. All Rights Reserved.
Additional Information
How to Cite
, and (2012), Stratospheric water vapor and climate: Sensitivity to the representation in radiation codes, J. Geophys. Res., 117, D13102, doi:10.1029/2012JD017484.
Publication History
- Issue published online: 3 JUL 2012
- Article first published online: 3 JUL 2012
- Manuscript Accepted: 4 MAY 2012
- Manuscript Revised: 3 MAY 2012
- Manuscript Received: 13 JAN 2012
Keywords:
- fixed dynamical heating;
- line-by-line codes;
- radiation codes;
- radiative transfer;
- stratospheric composition
[1] There has been considerable interest in the climate impact of trends in stratospheric water vapor (SWV). However, the representation of the radiative properties of water vapor under stratospheric conditions remains poorly constrained across different radiation codes. This study examines the sensitivity of a detailed line-by-line (LBL) code, a Malkmus narrow-band model and two broadband GCM radiation codes to a uniform perturbation in SWV in the longwave spectral region. The choice of sampling rate in wave number space (Δν) in the LBL code is shown to be important for calculations of the instantaneous change in heating rate (ΔQ) and the instantaneous longwave radiative forcing (ΔFtrop). ΔQ varies by up to 50% for values of Δν spanning 5 orders of magnitude, and ΔFtrop varies by up to 10%. In the three less detailed codes, ΔQdiffers by up to 45% at 100 hPa and 50% at 1 hPa compared to a LBL calculation. This causes differences of up to 70% in the equilibrium fixed dynamical heating temperature change due to the SWV perturbation. The stratosphere-adjusted radiative forcing differs by up to 96% across the less detailed codes. The results highlight an important source of uncertainty in quantifying and modeling the links between SWV trends and climate.

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