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Добірка наукової літератури з теми "Calotte Antarctique"
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Статті в журналах з теми "Calotte Antarctique"
Favier, Vincent, Jonathan Wille, Cécile Agosta, Charles Amory, Léonard Barthélémy, Francis Codron, Élise Fourré, Irina Gorodetskaya, Gerhard Krinner, and Benjamin Pohl. "Les rivières atmosphériques de l'Antarctique." La Météorologie, no. 117 (2022): 019. http://dx.doi.org/10.37053/lameteorologie-2022-0032.
Повний текст джерелаДисертації з теми "Calotte Antarctique"
Partouty, S. "Interprétation des séries temporelles altimétriques sur la calotte polaire Antarctique." Phd thesis, Université Paul Sabatier - Toulouse III, 2009. http://tel.archives-ouvertes.fr/tel-01018319.
Повний текст джерелаGential, Luc. "Modélisation du bilan de masse en surface de la calotte glaciaire antarctique." Phd thesis, Grenoble 1, 2007. http://www.theses.fr/2007GRE10092.
Повний текст джерелаThe Antarctic ice sheet surface mass balance (SMB, snow accumulation minus ablation) is sensitive to climate parameters and directly contributes to global mean sea level variations. Therefore, in the perspective of climate change, it is useful to develop tools that can simulate the physical processes involved in the Antarctic surface mass balance. The approach developed in this thesis consists in using a cascade of atmospheric models from large scale to local scale. Thus, a regional climate model (Modèle atmosphérique régional, hereinafter referred to as MAR), forced by European Centre for Medium-Range Weather Forecasts (ECMWF) reanalysis, provides a diagnostic physical-based rain- and snowfall disaggregation model with meteorological fields at the regional scale (typically 40-km resolution). In a first part, it is shown that the SMB calculated by MAR is in good agreement with observations in most regions. Nonetheless, runoff appears to be overestimated; the problem vanishes when introducing a dependency of albedo with solar zenithal distance. In a second part, it is shown that although the parameterizations invoked in the disaggregation model are fairly simple, the knowledge of small-scale topography (5-km resolution) is efficiently used to improve the spatial variability of precipitation - and therefore SMB - over coastal regions of Antarctica. Model validation is carried out with the help of snow height measurements provided by automatic weather stations. Over the coastal place of Law Dome, the net accumulation gradient is mostly due to orographic forcing of precipitation (rather than blowing snow). The disaggregation model dramatically underestimates precipitation over the Antarctic Plateau, where polar stratospheric clouds associated with radiative cooling could play a role in the formation of precipitation during the polar night
Gential, Luc. "Modélisation du bilan de masse en surface de la calotte glaciaire antarctique." Phd thesis, Grenoble 1, 2007. http://tel.archives-ouvertes.fr/tel-00189139.
Повний текст джерелаBrisset, Laurence. "La calotte est Antarctique observée par l'altimètre ERS-1 : aspects stationnaire et dynamique." Paris 7, 1996. http://www.theses.fr/1996PA077178.
Повний текст джерелаMichel, Aurélie. "Valorisation des données altimétriques de SARAL/AltiKa pour l'étude de la calotte Antarctique." Thesis, Toulouse 3, 2016. http://www.theses.fr/2016TOU30091/document.
Повний текст джерелаAntarctica still remains a fascinating place to be explored. With ice corings, the past Earth climate can be retraced. Studying its surface, its climate variability and its dynamic are better known : ice velocity, iceberg calvings. . . Through the height variations monitoring, ice gains and losses are estimated, leading to the contribution to the sea-level rise, from which is deduced the impact over coastal areas or the oceans. To explore this continent, we use the sensor called altimeter : a radar or laser wave is sent from the satellite to the surface and the reflected signal is recorded. From this signal we extract relevant parameters and the height. The satellites have observed this area, notably since the altimetric mission ERS-1 launching, until 82æ S in 1991, following the still famous explorations from the beginning of the twentieth century. SARAL, launched in February 2013, innovates because of the major change in the frequency used, the Ka-band (36.75 Ghz) instead of the Ku-band (13.6Ghz) and the S-band (3.2 Ghz) implying a different interaction between the radar wave and the snowpack that needs to be investigated. Using almost three years of observations, we focus on the altimetric signal processing and its validation. The geographic and the technical aspects are introduced and we show the limitations in the altimetric data processing. Using the crossover method (explained in greater detail later), we compare two simultaneous missions, ENVISAT and ICESat in order to better constrain the penetration effect of the radar-wave into the snowpack and correct it. The method that is used will be of great interest to compare SARAL with the future mission ICESat- 2. A new calibration and validation tool has been implemented, allowing a long-term survey of the Antarctic area, providing statistics, diagnostics and temporal series. The slope effect is the major limitation in the precision assessment of the mission. Thanks to a new way of selecting the data and the oceanic tide correction, we quantify with metrics computed at crossover points the accuracy of altimetric data over the Antarctic ice sheet. We describe in the last part the SARAL observations to give a preliminary analysis in agreement with the former mission ENVISAT. Other ways of improvement are presented, like future altimetric missions, modifications in the so-called retracking algorithm that extracts the relevant parameters or even the use of models. SARAL raises perspectives to estimate with a growing precision the evolution of the Antarctic continent, and this thesis is a state of the art about the different possible processings needed to do so
Parouty, Soazig. "Interprétation des séries temporelles altimétriques sur la calotte polaire Antartique." Toulouse 3, 2009. http://thesesups.ups-tlse.fr/900/.
Повний текст джерелаThis work aims at improving our understanding of the altimetric time series acquired over the Antarctic Ice Sheet. Dual frequency data (S Band - 3. 2GHz and Ku Band - 13. 6GHz) from thealtimeter onboard the ENVISAT satellite are used, during a five year time period from january2003 until december 2007. These data cover around 80% of the surface of the Antarctic continent,up to 82°S. Having data in two different frequencies is valuable when it comes to better estimatethe altimeter sensitivity regarding snow surface property changes. Over the Antarctic ice sheet, snow surface changes with respect to space and time, beingaffected by meteorological conditions close to the surface, and especially winds. The altimetricwave penetrates more or less deeply beneath the surface, depending on snow surface and subsurfaceproperties. As a result, when the wave comes back to the satellite, the recorded signal, namedwaveform, is more or less distorted. The accuracy of the ice sheet topographic changes computedthanks to satellite altimetric techniques depends on our knowledge of the processes inducing thisdistortion. The purpose of the present work is to better understand the effect of changing windconditions on altimetric data. Winds in Antarctica are indeed famous for their strength and theirimpact on the snow surface state. First, spatial and temporal variability of the altimetric data on the one hand, and of wind speedreanalysis fields (from ERA-Interim, NCEP/NCAR and NCEP/DOE projects) on the other handare studied. We estimate spatial and temporal typical length scales for all datasets. As a result, weare able to smooth the data, so that all datasets have the same spatial and temporal caractericticlength scales. Furthermore, we note that our time series are well described by an annual signal. This annual cycle shows that whereas wind speed would always be maximum in austral winter,altimetric seasonal cycles have very different behaviors depending on the location. .
Flament, Thomas. "Variations de hauteur de la calotte antarctique par altimétrie radar par satellite : amincissement dynamique, vidanges de lacs sous-glaciaires et autres curiosités." Toulouse 3, 2013. http://thesesups.ups-tlse.fr/2592/.
Повний текст джерелаThe Antarctic Ice Sheet is a vast and remote hostile land. It is nonetheless an important part of the planetary climate system. Space-borne instruments are among the best tools to study the evolution of the ice sheet. In this work, we use data from one of these space sensors: the Envisat radar altimeter. This instrument provided us repeated measurements of the ice sheet surface elevation every 35 days during 8 years. From this dataset, we investigated volume change of the ice sheet between 2002 and 2010. This period is relatively short compared to the typical duration of ice sheet response (thousands of years after an ice age) but the data show some evolution, either extreme precipitation events or accelerated flow and associated thinning. The high space and time resolution also allowed us to observe rapid and local events such as subglacial lake drainages. These were only recently discovered in Antarctica and altimetry is one of the best suited tools to study them. The reflection and backscatter of the radar wave by the snowpack is still a complex problem that has to be further investigated. The own behavior of the snowpack must be better understood. We present the state of the art of the understanding of the radar/snowpack interaction. We conclude with an outlook on future techniques that will enhance our understanding of the ice sheet process and ice sheet evolution: new altimeters, longer time series, multi-sensor studies and additional in situ calibration
Lacroix, Pascal. "Apport de l'altimétrie radar spatiale à l'étude de la neige de la calotte polaire Antarctique." Phd thesis, Université Paul Sabatier - Toulouse III, 2007. http://tel.archives-ouvertes.fr/tel-00216105.
Повний текст джерелаDepuis 2002 et le lancement de ENVISAT, on dispose d'un altimètre radar qui couvre 80 \% de la calotte polaire Antarctique, dont la particularité est d'acquérir des signaux à deux fréquences différentes (bande S à 3.2 GHz et bande Ku à 13.6 GHz). Ces deux ondes pénètrent dans le manteau neigeux sur plusieurs mètres et ont des sensibilités aux propriétés de la neige différentes. Ainsi, l'idée de cette thèse est d'utiliser cette double information pour retrouver les propriétés du manteau neigeux.
On se propose de résoudre cette problématique par une analyse et une modélisation des signaux altimétriques bi-fréquences sur la calotte polaire, puis par leur inversion. On se penche tout d'abord sur quelques études de cas pour estimer la sensibilité des signaux aux différentes propriétés de la neige: i/ On montre tout d'abord que le signal altimétrique est sensible à la rugosité de la surface à différentes échelles, puis ii/ que le signal altimétrique est sujet à des variations saisonnières causées par la densification de la neige en surface, et enfin iii/ que les ondes radars sont réfléchies par des strates en profondeur.
Un modèle de l'interaction de l'onde avec le manteau neigeux est réalisé simultanément aux deux fréquences, afin de permettre une comparaison de ces signaux entre eux. Les résultats du modèle sont utilisés pour expliquer les variations saisonnières précédemment observées. Finalement, les paramètres du manteau neigeux sont estimés à l'échelle de la calotte polaire antarctique. Les tailles de grains retrouvées présentent un grossissement vers l'intérieur du continent. La densité montre des variations saisonnières de plusieurs g.cm3 notamment sur les côtes antarctiques. Certaines régions présentent un état de surface de la neige particulièrement lisse (Dronning Maud Land, par exemple).
La donnée in situ de l'état de surface de la neige étant quasi inexistante sur les calottes polaires, on développe finalement un protocole de mesure de la rugosité de la neige, qui est testé sur un glacier du Spitzberg.
Adodo, Fifi Ibrahime. "Altimétrie et radiométrie en Antarctique." Thesis, Toulouse 3, 2018. http://www.theses.fr/2018TOU30135/document.
Повний текст джерелаIn the context of global climate changes, the Antarctic ice sheet contribution to sea-level rise is one of the main uncertainty sources. The extent and extreme meteorological conditions of this continent render remote sensing a useful tool for long term monitoring. Altimetry and radiometry observations in the microwave range reveal variations of the volume of the ice sheet and surface properties of the snowpack. Radar altimeters, provide repeated observations of the surface topography elevation, which allow the quantification of volume variations of the ice sheet. However, the penetration of radar waves in dry and cold snowpack adversely affects the estimated surface elevation. Approaches to minimize the penetration error are all based on a relationship with the backscattering coefficient. Understanding the annual and interannual variations of the backscattering coefficient is thus a key issue in order to improve the estimation accuracy of the surface elevation and to refine the ice-sheet volume trend. This thesis aims at studying the backscattering coefficients acquired by radar altimeters, which until now have received little attention. Radar altimeters on board ENVISAT (S and Ku bands) and SARAL/AltiKa (Ka band) have different sensitivities to the snowpack properties. The annual and interannual variations of the backscattering coefficient at the three bands is investigated. Sensitivity tests are carried out with an electromagnetic model to determine the prevailing snowpack properties that drive the signal. The seasonal signal is sensitive to surface density and roughness at S band, to snow temperature at Ka band and to either snow surface density and roughness or temperature depending on the location on the continent at Ku band. The seasonal signal of the backscattering coefficient is then compared with that of the brightness temperature measured by radiometers on SARAL and SSM/I. The results show a significant influence of surface roughness on brightness temperatures at Ka band, which has often been neglected in brightness temperature modeling studies. This thesis provides a better understanding of the seasonal dynamics of the near surface properties of the Antarctic ice sheet. It also provides new clues to build a more robust corrections of the penetration errors in the future. It highlights the importance of multi-frequency altimetry missions and the potential of the S band to study the seasonal variability in surface roughness. In summary, surface roughness is an important property which should be taken into account for a better modeling of backscattering coefficient and brightness temperature
Philippon, Gwenaëlle. "Rôle des calottes glaciaires dans le système climatique : Analyse des interactions entre un modèle de calotte de glace Antarctique et un modèle de climat." Phd thesis, Université Pierre et Marie Curie - Paris VI, 2007. http://tel.archives-ouvertes.fr/tel-00328184.
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