Research Data supporting "A new interpretative framework for below-cloud effects on stable water isotopes in vapour and rain"
Open access
Date
2018Type
- Dataset
ETH Bibliography
yes
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Abstract
Abstract. Raindrops interact with water vapour in ambient air while sedimenting from the cloud base to the ground. They constantly exchange water molecules with the environment and, in sub-saturated air, they evaporate partially or entirely. The latter of these below-cloud processes is important for predicting the resulting surface rainfall amount and it influences the boundary layer profiles of temperature and moisture through to evaporative latent cooling and humidity changes. However, despite its importance, it is very difficult to quantify this process from observations. Stable water isotopes provide such information, as they are influenced by both rain evaporation and equilibration. This study elucidates this option by introducing a novel interpretation framework for stable water isotope measurements performed simultaneously at high temporal resolution in both near-surface vapour and rain. We refer to this viewing device as the ∆δ∆d-diagram, which shows the isotopic composition (δ2H, d-excess) of equilibrium vapour from precipitation samples relative to the ambient vapour. It is shown that this diagram facilitates the diagnosis of below-cloud processes and their effects on the isotopic composition of vapour and rain since equilibration and evaporation lead to different pathways in the two-dimensional phase space of the ∆δ∆d-diagram. For a specific cold front in Central Europe, the analysis shows that below-cloud processes lead to distinct and temporally variable imprints on the isotope signal in surface rain. The influence of evaporation on this signal is particularly strong during periods with a weak precipitation rate. After the frontal passage, the near-surface atmospheric layer is characterised by higher relative humidity and a lower melting layer, leading to weaker below-cloud evaporation and equilibration. Measurements from four cold frontal events reveal a surprisingly similar slope of ∆d/∆δ = −0.30 in the phase space, indicating a potentially characteristic signature of below-cloud processes for this type of rain events. Show more
Permanent link
https://doi.org/10.3929/ethz-b-000271617Contributors
Contact person: Graf, Pascal
Contact person: Sodemann, Harald
Data collector: Graf, Pascal
Data collector: Bertolini, Patrick
Producer: Graf, Pascal
Project leader: Wernli, Heini
Project manager: Graf, Pascal
Project member: Wernli, Heini
Project member: Sodemann, Harald
Researcher: Graf, Pascal
Research group: Wernli, Heini
Publisher
ETH ZurichGeographic location
Place nameCHN, ZürichPoint coordinatesLatitude: 47.3795Longitude: 8.5485
Date collected
2015-10-09/2015-11-27Date created
2017-11-13Subject
Stable water isotopes; below-cloud processes; precipitation evaporation; atmospheric dynamics; Water cycle; Precipitations (Meteorology); Cold fronts (Meteorology)Organisational unit
03854 - Wernli, Johann Heinrich / Wernli, Johann Heinrich
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Is supplement to: https://doi.org/10.5194/acp-2018-482
Is supplement to: https://doi.org/10.3929/ethz-b-000322296
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ETH Bibliography
yes
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