Is the Isotopic Composition of Precipitation a Robust Indicator for Reconstructions of Past Tropical Cyclones Frequency? A Case Study on Réunion Island From Rain and Water Vapor Isotopic Observations

Author:

Vimeux Françoise12ORCID,Risi Camille3ORCID,Barthe Christelle4,François Sören2,Cauquoin Alexandre5ORCID,Jossoud Olivier2ORCID,Metzger Jean‐Marc6,Cattani Olivier2,Minster Bénédicte2,Werner Martin7ORCID

Affiliation:

1. HydroSciences Montpellier (HSM) UMR 5151 (Université Montpellier, CNRS, IMT, IRD) Montpellier France

2. Institut Pierre Simon Laplace (IPSL) Laboratoire des Sciences du Climat et de l'Environnement (LSCE) UMR 8212 (CEA, CNRS, UVSQ) Gif‐sur‐Yvette France

3. Institut Pierre Simon Laplace (IPSL) Laboratoire de Météorologie Dynamique (LMD) UMR 8539 (CNRS, ENS, X, UPMC) Paris France

4. Laboratoire d'Aérologie (LAERO) UMR 5560 (CNRS, UT3 Paul Sabatier, IRD) Toulouse France

5. Institute of Industrial Science (IIS) The University of Tokyo Kashiwa Japan

6. Observatoire des Sciences de l'Univers de la Réunion UAR 3365 OSU‐R (CNRS, Université de la Réunion) Saint‐Denis de La Réunion France

7. Alfred Wegener Institute (AWI) Helmholtz Centre for Polar and Marine Research Bremerhaven Germany

Abstract

AbstractBased on a 6‐year long record (2014–2020) of the isotopic composition of rain (δ18Op) at Réunion Island (55°E, 22°S), in the South‐West Indian Ocean, this study shows that the annual isotopic composition of precipitation in this region is strongly controlled by the number of cyclones, the number of best‐track days, and the proportion of cyclonic rain during the year. Our results support the use of δ18Op in annual‐resolved tropical climate archives as a reliable proxy of past cyclone frequency. The influence of the proportion of cyclonic rain on the annual isotopic composition arises from the systematically more depleted precipitation and water vapor during cyclonic events than during less organized convective systems. The analysis of the daily to hourly isotopic composition of water vapor (δ18Ov) during low‐pressure systems and the reproduction of daily δ18Ov observations by AGCMs with a global medium to coarse resolution (LMDZ‐iso and ECHAM6‐wiso) suggest that during cyclonic periods the stronger depletion mainly arises from both enhanced large‐scale precipitation and water vapor‐rain interactions under humid conditions.

Funder

Institut de Recherche pour le Développement

Publisher

American Geophysical Union (AGU)

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