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Giant dust particles at Nevado Illimani: a proxy of summertime deep convection over the Bolivian Altiplano

A deeper understanding of past atmospheric circulation variability in the Central Andes is a high-priority topic in paleoclimatology mainly because of the necessity to validate climate models used to predict future precipitation trends and to develop mitigation and/or adaptation strategies for futur...

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Published in:The cryosphere 2021-03, Vol.15 (3), p.1383-1397
Main Authors: Lindau, Filipe G. L, Simões, Jefferson C, Delmonte, Barbara, Ginot, Patrick, Baccolo, Giovanni, Paleari, Chiara I, Di Stefano, Elena, Korotkikh, Elena, Introne, Douglas S, Maggi, Valter, Garzanti, Eduardo, Andò, Sergio
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cited_by cdi_FETCH-LOGICAL-c512t-385acc785c911dee7c1ad56be25357eee1229e57837a27c5fe3947a6555c81b33
cites cdi_FETCH-LOGICAL-c512t-385acc785c911dee7c1ad56be25357eee1229e57837a27c5fe3947a6555c81b33
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container_title The cryosphere
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creator Lindau, Filipe G. L
Simões, Jefferson C
Delmonte, Barbara
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Korotkikh, Elena
Introne, Douglas S
Maggi, Valter
Garzanti, Eduardo
Andò, Sergio
description A deeper understanding of past atmospheric circulation variability in the Central Andes is a high-priority topic in paleoclimatology mainly because of the necessity to validate climate models used to predict future precipitation trends and to develop mitigation and/or adaptation strategies for future climate change scenarios in this region. Within this context, we here investigate an 18-year firn core drilled at Nevado Illimani in order to interpret its mineral dust record in relation to seasonal processes, in particular atmospheric circulation and deep convection. The core was dated by annual layer counting based on seasonal oscillations of dust, calcium, and stable isotopes. Geochemical and mineralogical data show that dust is regionally sourced in winter and summer. During austral summer (wet season), an increase in the relative proportion of giant dust particles (∅>20 µm) is observed, in association with oscillations of stable isotope records (δD, δ18O). It seems that at Nevado Illimani both the deposition of dust and the isotopic signature of precipitation are influenced by atmospheric deep convection, which is also related to the total amount of precipitation in the area. This hypothesis is corroborated by regional meteorological data. The interpretation of giant particle and stable isotope records suggests that downdrafts due to convective activity promote turbulent conditions capable of suspending giant particles in the vicinity of Nevado Illimani. Giant particles and stable isotopes, when considered together, can be therefore used as a new proxy for obtaining information about deep convective activity in the past.
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identifier ISSN: 1994-0424
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subjects Aerosols
Archives & records
Atmospheric circulation
Atmospheric models
Atmospheric particulates
Calcium
Calcium signalling
Climate change
Climate change scenarios
Climate models
Climate prediction
Convection
Convective activity
Core drilling
Coring
Downdraft
Drilling
Dust
Dust particles
El Nino
Firn
Future climates
Future precipitation
Global temperature changes
Ice
Investigations
Isotopes
Meteorological data
Mitigation
Oscillations
Paleoclimatology
Precipitation
Precipitation (Meteorology)
Precipitation trends
Proxy
Rainy season
Records
Sciences of the Universe
Seasonal variations
Stable isotopes
Summer
Weather forecasting
Wet season
title Giant dust particles at Nevado Illimani: a proxy of summertime deep convection over the Bolivian Altiplano
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