Résumé
The influence of line-mixing on the shape of infrared Q branches of minor isotopomers of CO2 is studied for the first time. Laboratory spectra of isotopically enriched CO2-N2 mixtures have been measured in the 15 μm region at the temperatures of 200 and 300 K for total pressures between 1 and 10 atm. Comparisons with measurements for the v2 and (v1-v2)1 Q branches of the six isotopomers ((16, 17, or 18))O-12C-O((16, 17, or 18)) demonstrate the quality of the theoretical approach presented in the preceding paper (Part I). The model is used to generate a set of numerical data (available by ftp) for the prediction of absorption by 16O12C18O, 16O12C17O, 16O13C18O, 16O13C17O, and 17O12C18O infrared Q branches under atmospheric conditions; this database completes that proposed in the preceding paper and now includes 271 bands considering the eight most abundant CO2 isotopomers. Its quality is tested by comparisons with atmospheric limb emission measured by a balloon-borne high resolution Fourier transform instrument. The v2 Q branches of 16O12C16O, 16O13C16O, 16O12C17O, and 16O12C18O recorded above Alaska have been used. This shows that line mixing has significant effects, even for minor isotopomers, and is correctly accounted for by the model and data proposed.
| langue originale | Anglais |
|---|---|
| Pages (de - à) | 31-48 |
| Nombre de pages | 18 |
| journal | Journal of Quantitative Spectroscopy and Radiative Transfer |
| Volume | 63 |
| Numéro de publication | 1 |
| Les DOIs | |
| état | Publié - 1 sept. 1999 |
| Modification externe | Oui |
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