Synoptic structure of severe Zonda downslope windstorms in Argentina
Federico Otero
A
Abstract
The Zonda wind is a characteristic Argentinian downslope windstorm that occurs on the eastern slopes of the Andes Mountains, creating extremely windy, warm and dry conditions with substantial socioeconomic impacts. This study aims to characterise and understand the synoptic-scale atmospheric dynamics, as well as the vertical structure of the atmosphere on both sides of the Andes, associated with severe and long-duration Zonda events compared with non-severe events. Severe events are most frequent between August and October, comprising 64.8% of occurrences. These events exhibit earlier onset and later cessation, resulting in more late-night and morning Zonda hours compared with non-severe events. The synoptic structure for severe and long Zonda events is associated with a more baroclinic structure, featuring a deep trough at both low and mid-levels and shifted west with altitude. Lower levels present higher anomalies and move faster than mid-level anomalies when the wind crosses the Andes. This is accompanied by a deep trough east of the Andes with a tilted axis and a slower eastward movement. The associated upper-level dynamic shows a stronger convergence and divergence pattern on the windward and lee sides of the Andes respectively, along with a stronger, elongated and persistent jet streak. The precipitation pattern is in agreement with the more intense winds impinging on the Andes, resulting in more intense rising motions and more precipitation on the windward slopes. Analysis of the vertical structure in severe events shows a more humid windward profile, especially at low and mid-levels, with stronger winds. The leeward side presents a more unstable temperature profile, warmer at low levels and colder at upper levels, and extreme dryness between low and mid-levels, indicating the presence of the Zonda at this altitude before the event starts. Given the limited studies on Zonda downslope windstorms in South America, this research represents a major step in our understanding of these severe events and provides valuable insights for weather forecasters.
Keywords: Andes, Argentina, atmospheric dynamics, pressure systems, severe foehn, standarised anomalies, synoptic circulation, Zonda wind.
References
Beusch L, Raveh-Rubin S, Sprenger M, Papritz L (2018) Dynamics of a Puelche foehn event in the Andes. Meteorologische Zeitschrift 27(1), 67-80.
| Crossref | Google Scholar |
Bougeault P, Binder P, Buzzi A, Dirks R, Houze R, Kuettner J, et al. (2001) The MAP special observing period. Bulletin of the American Meteorological Society 82(3), 433-462.
| Crossref | Google Scholar |
Burroughs LD (1987) Development of forecast guidance for Santa Ana conditions. National Weather Digest 12(2), 4-11.
| Google Scholar |
Drechsel S, Mayr GJ (2008) Objective forecasting of foehn winds for a subgrid-scale Alpine valley. Weather and Forecasting 23(2), 205-218.
| Crossref | Google Scholar |
Elvidge AD, Renfrew IA (2016) The causes of foehn warming in the lee of mountains. Bulletin of the American Meteorological Society 97(3), 455-466.
| Crossref | Google Scholar |
Elvidge AD, Renfrew IA, King JC, Orr A, Lachlan‐Cope TA (2016) Foehn warming distributions in non-linear and linear flow regimes: a focus on the Antarctic Peninsula. Quarterly Journal of the Royal Meteorological Society 142(695), 618-631.
| Crossref | Google Scholar |
Garreaud RD (2009) The Andes climate and weather. Advances in Geosciences 22, 3-11.
| Crossref | Google Scholar |
Glennf CL (1961) The Chinook. Weatherwise 14(5), 175-182.
| Crossref | Google Scholar |
Gohm A, Zängl G, Mayr GJ (2004) South foehn in the Wipp Valley on 24 October 1999 (MAP IOP 10): verification of high-resolution numerical simulations with observations. Monthly Weather Review 132(1), 78-102.
| Crossref | Google Scholar |
Graham RA, Grumm RH (2010a) Assessing the potential for rare precipitation events with standardized anomalies and ensemble guidance at the Hydrometeorological Prediction Center. Bulletin of the American Meteorological Society 90(4), 445-453.
| Crossref | Google Scholar |
Graham RA, Grumm RH (2010b) Utilizing normalized anomalies to assess synoptic-scale weather events in the western United States. Weather and Forecasting 25(2), 428-445.
| Crossref | Google Scholar |
Hann J (1866) Zur frage ueber den ursprung des foehn. Zeitschrift der österreichischen Gesellschaftfür Meteorologie 1(1), 257-263 [In German].
| Google Scholar |
Hart RE, Grumm RH (2001) Using normalized climatological anomalies to rank synoptic-scale events objectively. Monthly Weather Review 129(9), 2426-2442.
| Crossref | Google Scholar |
Hersbach H, Bell B, Berrisford P, Hirahara S, Horányi A, Muñoz‐Sabater J, et al. (2020) The ERA5 global reanalysis. Quarterly Journal of the Royal Meteorological Society 146(730), 1999-2049.
| Crossref | Google Scholar |
Hoinka KP (1985) What is a foehn clearance? Bulletin of the American Meteorological Society 66(9), 1123-1132.
| Crossref | Google Scholar |
Jansing L, Papritz L, Dürr B, Gerstgrasser D, Sprenger M (2022) Classification of Alpine south foehn based on 5 years of kilometre-scale analysis data. Weather and Climate Dynamics 3(3), 1113-1138.
| Crossref | Google Scholar |
Junker NW, Grumm RH, Hart R, Bosart LF, Bell KM, Pereira FJ (2008) Use of normalized anomaly fields to anticipate extreme rainfall in the mountains of northern California. Weather and Forecasting 23(3), 336-356.
| Crossref | Google Scholar |
Koyanagi T, Kusaka H (2020) A climatological study of the strongest local winds of Japan ‘Inami‐kaze’. International Journal of Climatology 40(2), 1007-1021.
| Crossref | Google Scholar |
Lentink HS (2012) Extreme foehn in Switzerland: a climatology and the relation to large scale flow. MSc (ClimPhys) thesis, Institute for Marine and Atmospheric research Utrecht (IMAU), Department of Physics and Astronomy, Faculty of Science, Utrecht University (UU), Utrecht, Netherlands. Available at https://studenttheses.uu.nl/handle/20.500.12932/15889
Lilly DK, Klemp JB (1979) The effect of terrain shape on non-linear hydrostatic mountain waves. Journal of Fluid Mechanics 95, 241-261.
| Crossref | Google Scholar |
Mayr G, Plavcan D, Armi L, et al. (2018) The community foehn classification experiment. Bulletin of the American Meteorological Society 99, 2229-2235.
| Crossref | Google Scholar |
McGowan HA, Sturman AP (1996) Regional and local scale characteristics of foehn wind events over the South Island of New Zealand. Meteorology and Atmospheric Physics 58(1), 151-164.
| Crossref | Google Scholar |
McGowan HA, Sturman AP, Kossmann M, Zawar-Reza P (2002) Observations of foehn onset in the Southern Alps, New Zealand. Meteorology and Atmospheric Physics 79, 215-230.
| Crossref | Google Scholar |
Miltenberger AK, Reynolds S, Sprenger M (2016) Revisiting the latent heating contribution to foehn warming: Lagrangian analysis of two foehn events over the Swiss Alps. Quarterly Journal of the Royal Meteorological Society 142(698), 2194-2204.
| Crossref | Google Scholar |
Montecinos A, Muñoz RC, Oviedo S, Martínez A, Villagrán V (2017) Climatological characterization of Puelche winds down the western slope of the extratropical Andes Mountains using the NCEP Climate Forecast System Reanalysis. Journal of Applied Meteorology and Climatology 56(3), 677-696.
| Crossref | Google Scholar |
Mony C, Jansing L, Sprenger M (2021) Evaluating foehn occurrence in a changing climate based on reanalysis and climate model data using machine learning. Weather and Forecasting 36(6), 2039-2055.
| Crossref | Google Scholar |
Muñoz RC, Armi L, Rutllant JA, Falvey M, Whiteman CD, Garreaud R, et al. (2020) Raco wind at the exit of the Maipo Canyon in Central Chile: climatology, special observations, and possible mechanisms. Journal of Applied Meteorology and Climatology 59(4), 725-749.
| Crossref | Google Scholar |
Nkemdirim LC (1986) Chinooks in southern Alberta: some distinguishing nocturnal features. Journal of Climatology 6(6), 593-603.
| Crossref | Google Scholar |
Norte FA (2015) Understanding and forecasting zonda wind (Andean Foehn) in Argentina: a review. Atmospheric and Climate Sciences 5(3), 163-169.
| Crossref | Google Scholar |
Norte FA, Ulke AG, Simonelli SC, Viale M (2008) The severe Zonda wind event of 11 July 2006 east of the Andes Cordillera (Argentine): a case study using the BRAMS model. Meteorology and Atmospheric Physics 102(1), 1-14.
| Crossref | Google Scholar |
Oard MJ (1993) A method for predicting Chinook winds east of the Montana Rockies. Weather and Forecasting 8(2), 166-180.
| Crossref | Google Scholar |
Otero F, Araneo D (2021) Zonda wind classification using machine learning algorithms. International Journal of Climatology 41, E342-E353.
| Crossref | Google Scholar |
Otero F, Araneo DC (2022) Forecasting Zonda wind occurrence with vertical sounding data. Advances in Atmospheric Sciences 39, 161-177.
| Crossref | Google Scholar |
Otero F, Araneo DC (2023) Synoptic fingerprints of Zonda wind from a statistical prediction model. International Journal of Climatology 43(15), 6946-6962.
| Crossref | Google Scholar |
Raphael MN (2003) The Santa Ana winds of california. Earth Interactions 7(8), 1-13.
| Crossref | Google Scholar |
Richner H, Hächler P (2013) Understanding and forecasting Alpine foehn. In ‘Mountain Weather Research and Forecasting: Recent Progress and Current Challenges’. (Eds F Chow, S De Wekker, B Snyder) pp. 219–260. (Springer Netherlands) 10.1007/978-94-007-4098-3_4
Seibert P (1990) South foehn studies since the ALPEX experiment. Meteorology and Atmospheric Physics 43(1), 91-103.
| Crossref | Google Scholar |
Seluchi ME, Norte FA, Satyamurty P, Chou SC (2003a) Analysis of three situations of the foehn effect over the Andes (Zonda wind) using the ETA–CPTEC regional model. Weather and Forecasting 18(3), 481-501.
| Crossref | Google Scholar |
Seluchi ME, Saulo AC, Nicolini M, Satyamurty P (2003b) The northwestern Argentinean low: a study of two typical events. Monthly Weather Review 131(10), 2361-2378.
| Crossref | Google Scholar |
Sharples JJ, Mills GA, McRae RH, Weber RO (2010) Foehn-like winds and elevated fire danger conditions in southeastern Australia. Journal of Applied Meteorology and Climatology 49(6), 1067-1095.
| Crossref | Google Scholar |
Stuart NA, Grumm RH (2006) Using wind anomalies to forecast East Coast winter storms. Weather and Forecasting 21(6), 952-968.
| Crossref | Google Scholar |
Viale M, Norte FA (2009) Strong cross-barrier flow under stable conditions producing intense winter orographic precipitation: a case study over the subtropical central Andes. Weather and Forecasting 24(4), 1009-1031.
| Crossref | Google Scholar |
Viale M, Nuñez MN (2011) Climatology of winter orographic precipitation over the subtropical central Andes and associated synoptic and regional characteristics. Journal of Hydrometeorology 12(3), 481-507.
| Crossref | Google Scholar |
Widmer R (1966) Statistische Untersuchungen über den Föhn im Reusstal und Versuch einer objektiven Föhnprognose für die Station Altdorf. Vierteljahrsschrift der Naturforschenden Gesellschaft in Zürich 111, 331-375 [In German].
| Google Scholar |
Würsch M, Sprenger M (2015) Swiss and Austrian foehn revisited: a Lagrangian-based analysis. Meteorologische Zeitschrift 24(3), 225-242.
| Crossref | Google Scholar |