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    المصدر: Journal of Geophysical Research: Atmospheres, 130 (1), e2024JD042222 ; ISSN: 2169-897X, 2169-8996

    Relation: info:eu-repo/semantics/altIdentifier/wos/001387796400001; info:eu-repo/semantics/altIdentifier/issn/2169-897X; info:eu-repo/semantics/altIdentifier/issn/2169-8996; https://publikationen.bibliothek.kit.edu/1000177949

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    المساهمون: Institut des Géosciences de l’Environnement (IGE), Institut de Recherche pour le Développement (IRD)-Institut national des sciences de l'Univers (INSU - CNRS)-Centre National de la Recherche Scientifique (CNRS)-Observatoire des Sciences de l'Univers de Grenoble (Fédération OSUG)-Université Grenoble Alpes (UGA)-Institut polytechnique de Grenoble - Grenoble Institute of Technology (Grenoble INP), Université Grenoble Alpes (UGA), ANR-16-CE01-0011,EAIIST,Projet International d'exploration de la calotte polaire de l'Antarctique de l'Est(2016), ANR-20-CE01-0013,ARCA,Climatologie des rivières atmosphériques en Antarctique(2020)

    المصدر: ISSN: 2169-897X ; EISSN: 2169-8996.

    Relation: BIBCODE: 2022JGRD.12736155C

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    وصف الملف: application/pdf

    Relation: O’Brien, T. A.; Wehner, M. F.; Payne, A. E.; Shields, C. A.; Rutz, J. J.; Leung, L.-R.; Ralph, F. M.; Collow, A.; Gorodetskaya, I.; Guan, B.; Lora, J. M.; McClenny, E.; Nardi, K. M.; Ramos, A. M.; Tomé, R.; Sarangi, C.; Shearer, E. J.; Ullrich, P. A.; Zarzycki, C.; Loring, B.; Huang, H.; Inda-Díaz, H. A.; Rhoades, A. M.; Zhou, Y. (2022). "Increases in Future AR Count and Size: Overview of the ARTMIP Tier 2 CMIP5/6 Experiment." Journal of Geophysical Research: Atmospheres 127(6): n/a-n/a.; https://hdl.handle.net/2027.42/171990; Journal of Geophysical Research: Atmospheres; Ramos, A. M., Tomé, R., Trigo, R. M., Liberato, M. L., & Pinto, J. G. ( 2016 ). Projected changes in atmospheric rivers affecting Europe in CMIP5 models. Geophysical Research Letters, 43 ( 17 ), 9315 - 9323. https://doi.org/10.1002/2016GL070634; Polade, S. D., Gershunov, A., Cayan, D. R., Dettinger, M. D., & Pierce, D. W. ( 2017 ). Precipitation in a warming world: Assessing projected hydro- climate changes in California and other Mediterranean climate regions. Scientific Reports, 7 ( 1 ), 10783. https://doi.org/10.1038/s41598-017-11285-y; Prabhat, P., Kashinath, K., Mudigonda, M., Kim, S., Kapp- Schwoerer, L., Graubner, A., & Collins, W. ( 2021 ). ClimateNet: An expert- labelled open dataset and Deep Learning architecture for enabling high- precision analyses of extreme weather. Geoscientific Model Development, 14 ( 1 ), 107 - 124. http://doi.org/10.5194/gmd- 14- 107- 2021; Ralph, F. M., Coleman, T., Neiman, P. J., Zamora, R. J., & Dettinger, M. D. ( 2013 ). Observed impacts of duration and seasonality of atmospheric- river landfalls on soil moisture and runoff in coastal northern California. Journal of Hydrometeorology, 14 ( 2 ), 443 - 459. https://doi.org/10.1175/JHM-D-12-076.1; Ralph, F. M., Dettinger, M., Lavers, D., Gorodetskaya, I. V., Martin, A., Viale, M., & Cordeira, J. ( 2017 ). Atmospheric rivers emerge as a global science and applications focus. Bulletin of the American Meteorological Society, 98 ( 9 ), 1969 - 1973. https://doi.org/10.1175/BAMS-D-16-0262.1; Ralph, F. M., Dettinger, M. D., Cairns, M. M., Galarneau, T. J., & Eylander, J. ( 2018 ). Defining - atmospheric river- : How the glossary of meteorology helped resolve a debate. Bulletin of the American Meteorological Society, 99 ( 4 ), 837 - 839. https://doi.org/10.1175/BAMS-D-17-0157.1; Ralph, F. M., Neiman, P. J., & Rotunno, R. ( 2005 ). Dropsonde observations in low- level jets over the northeastern Pacific Ocean from CALJET- 1998 and PACJET- 2001: Mean vertical- profile and atmospheric- river characteristics. Monthly Weather Review, 133 ( 4 ), 889 - 910. https://doi.org/10.1175/MWR2896.1; Ralph, F. M., Neiman, P. J., & Wick, G. A. ( 2004 ). Satellite and CALJET aircraft observations of atmospheric rivers over the Eastern North Pacific Ocean during the winter of 1997/98. Monthly Weather Review, 132 ( 7 ), 1721 - 1745. https://doi.org/10.1175/1520-0493(2004)1322.0.CO;2; Ralph, F. M., Rutz, J. J., Cordeira, J. M., Dettinger, M., Anderson, M., Reynolds, D., & Smallcomb, C. ( 2019 ). A scale to characterize the strength and impacts of atmospheric rivers. Bulletin of the American Meteorological Society, 100 ( 2 ), 269 - 289. https://doi.org/10.1175/BAMS-D-18-0023.1; Ralph, F. M., Wilson, A. M., Shulgina, T., Kawzenuk, B., Sellars, S., Rutz, J. J., & Wick, G. A. ( 2019 ). ARTMIP- early start comparison of atmospheric river detection tools: How many atmospheric rivers hit northern California’s Russian River watershed? Climate Dynamics, 52 ( 7- 8 ), 4973 - 4994. https://doi.org/10.1007/s00382-018-4427-5; Ramos, A. M., Blamey, R. C., Algarra, I., Nieto, R., Gimeno, L., Tomé, R., & Trigo, R. M. ( 2019 ). From Amazonia to southern Africa: Atmospheric moisture transport through low- level jets and atmospheric rivers. Annals of the New York Academy of Sciences, 1436 ( 1 ), 217 - 230. https://doi.org/10.1111/nyas.13960; Ramos, A. M., Trigo, R. M., Liberato, M. L. R., & Tomé, R. ( 2015 ). Daily precipitation extreme events in the Iberian Peninsula and its association with atmospheric rivers. Journal of Hydrometeorology, 16 ( 2 ), 579 - 597. https://doi.org/10.1175/JHM-D-14-0103.1; Rasmusson, E. M., & Arkin, P. A. ( 1993 ). A global view of large- scale precipitation variability. Journal of Climate, 6 ( 8 ), 1495 - 1522. https://doi.org/10.1175/1520-0442(1993)0062.0.CO;2; Reid, K. J., King, A. D., Lane, T. P., & Short, E. ( 2020 ). The sensitivity of atmospheric river identification to integrated water vapor transport threshold, resolution, and regridding method. Journal of Geophysical Research: Atmospheres, 125 ( 20 ), 1 - 15. https://doi.org/10.1029/2020JD032897; Rhoades, A. M., Jones, A. D., O- Brien, T. A., O- Brien, J. P., Ullrich, P. A., & Zarzycki, C. M. ( 2020 ). Influences of North Pacific Ocean domain extent on the western U.S. Winter hydroclimatology in variable- resolution CESM. Journal of Geophysical Research: Atmospheres, 125 ( 14 ), e2019JD031977. https://doi.org/10.1029/2019JD031977; Rhoades, A. M., Jones, A. D., Srivastava, A., Huang, H., O- Brien, T. A., Patricola, C. M., & Zhou, Y. ( 2020 ). The shifting scales of western U.S. landfalling atmospheric rivers under climate change. Geophysical Research Letters, 47 ( 17 ), e2020GL089096. https://doi.org/10.1029/2020GL089096; Rhoades, A. M., Risser, M. D., Stone, D. A., Wehner, M. F., & Jones, A. D. ( 2021 ). Implications of warming on western United States landfalling atmospheric rivers and their flood damages. Weather and Climate Extremes, 32, 100326. https://doi.org/10.1016/j.wace.2021.100326; Rutz, J. J., James Steenburgh, W., & Martin Ralph, F. ( 2014 ). Climatological characteristics of atmospheric rivers and their inland penetration over the western United States. Monthly Weather Review, 142 ( 2 ), 905 - 921. https://doi.org/10.1175/MWR-D-13-00168.1; Rutz, J. J., Shields, C. A., Lora, J. M., Payne, A. E., Guan, B., Ullrich, P., & Viale, M. ( 2019 ). The Atmospheric River Tracking Method Intercomparison Project (ARTMIP): Quantifying uncertainties in atmospheric river climatology. Journal of Geophysical Research: Atmospheres, 124 ( 24 ), 13777 - 13802. https://doi.org/10.1029/2019JD030936; Shearer, E. J., Nguyen, P., Sellars, S. L., Analui, B., Kawzenuk, B., Hsu, K.- l., & Sorooshian, S. ( 2020 ). Examination of global midlatitude atmospheric river lifecycles using an object- oriented methodology. Journal of Geophysical Research: Atmospheres, 125 ( 22 ), e2020JD033425. https://doi.org/10.1029/2020JD033425; Shields, C. A., & Kiehl, J. T. ( 2016b ). Simulating the pineapple express in the half degree community climate System Model, CCSM4. Geophysical Research Letters, 43 ( 14 ), 7767 - 7773. https://doi.org/10.1002/2016GL069476; Shields, C. A., & Kiehl, J. T. ( 2016a ). Atmospheric river landfall- latitude changes in future climate simulations. Geophysical Research Letters, 43 ( 16 ), 8775 - 8782. https://doi.org/10.1002/2016GL070470; Shields, C. A., Rosenbloom, N., Bates, S., Hannay, C., Hu, A., Payne, A. E., & Truesdale, J. ( 2019 ). Meridional heat transport during atmospheric rivers in high- resolution CESM climate projections. Geophysical Research Letters, 46 ( 24 ), 14702 - 14712. https://doi.org/10.1029/2019GL085565; Shields, C. A., Rutz, J. J., Leung, L. R., Ralph, F. M., Wehner, M., O- Brien, T., & Pierce, R. ( 2019 ). Defining uncertainties through comparison of atmospheric river tracking methods. Bulletin of the American Meteorological Society, 100 ( 2 ), ES93 - ES96. https://doi.org/10.1175/BAMS-D-18-0200.1; Shields, C. A., Rutz, J. J., Leung, L.- Y., Ralph, F. M., Wehner, M., Kawzenuk, B., & Nguyen, P. ( 2018 ). Atmospheric river tracking Method Intercomparison Project (ARTMIP): Project goals and experimental design. Geoscientific Model Development, 11 ( 6 ), 2455 - 2474. https://doi.org/10.5194/gmd-11-2455-2018; Skinner, C. B., Lora, J. M., Payne, A. E., & Poulsen, C. J. ( 2020 ). Atmospheric river changes shaped mid- latitude hydroclimate since the mid- holocene. Earth and Planetary Science Letters, 541, 116293. https://doi.org/10.1016/j.epsl.2020.116293; Sousa, P. M., Ramos, A. M., Raible, C. C., Messmer, M., Tomé, R., Pinto, J. G., & Trigo, R. M. ( 2020 ). North Atlantic integrated water vapor transport- From 850 to 2100 CE: Impacts on western European Rainfall. Journal of Climate, 33 ( 1 ), 263 - 279. https://doi.org/10.1175/JCLI-D-19-0348.1; Stohl, A., Forster, C., & Sodemann, H. ( 2008 ). Remote sources of water vapor forming precipitation on the Norwegian west coast at 60°N- A tale of hurricanes and an atmospheric river. 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Changes in winter atmospheric rivers along the North American West Coast in CMIP5 climate models. Journal of Hydrometeorology, 16 ( 1 ), 118 - 128. https://doi.org/10.1175/JHM-D-14-0080.1; Warner, M. D., Mass, C. F., & Salatheé, E. P. ( 2012 ). Wintertime extreme precipitation events along the Pacific Northwest Coast: Climatology and synoptic evolution. Monthly Weather Review, 140 ( 7 ), 2021 - 2043. https://doi.org/10.1175/MWR-D-11-00197.1; Wille, J. D., Favier, V., Dufour, A., Gorodetskaya, I. V., Turner, J., Agosta, C., & Codron, F. ( 2019 ). West Antarctic surface melt triggered by atmospheric rivers. Nature Geoscience, 12 ( 11 ), 911 - 916. https://doi.org/10.1038/s41561-019-0460-1; Wille, J. D., Favier, V., Gorodetskaya, I. V., Agosta, C., Kittel, C., Beeman, J. C., & Codron, F. ( 2021 ). Antarctic atmospheric river climatology and precipitation impacts. Journal of Geophysical Research: Atmospheres, 126 ( 8 ), e2020JD033788. https://doi.org/10.1029/2020JD033788; Xin, X., Wu, T., Shi, X., Zhang, F., Li, J., Chu, M., et al. ( 2019 ). BCC BCC- CSM2MR model output prepared for CMIP6 ScenarioMIP ssp585 (Version 20181130) [Data set]. Earth System Grid Federation. https://doi.org/10.22033/ESGF/CMIP6.3050; Yukimoto, S., Koshiro, T., Kawai, H., Oshima, N., Yoshida, K., Urakawa, S., et al. ( 2019 ). MRI MRI- ESM2.0 model output prepared for CMIP6 ScenarioMIP ssp585 (Version 20190625) [Data set]. Earth System Grid Federation. https://doi.org/10.22033/ESGF/CMIP6.6929; Zhang, Z., Ralph, F. M., & Zheng, M. ( 2019 ). The relationship between extratropical cyclone strength and atmospheric river intensity and position. Geophysical Research Letters, 46 ( 3 ), 1814 - 1823. https://doi.org/10.1029/2018GL079071; Zhou, Y., O- Brien, T. A., Ullrich, P. A., Collins, W. D., Patricola, C. M., & Rhoades, A. M. ( 2021 ). Uncertainties in atmospheric river lifecycles by detection algorithms: Climatology and variability. Journal of Geophysical Research: Atmospheres, 126 ( 8 ), 1 - 22. https://doi.org/10.1029/2020JD033711; Zhu, Y., & Newell, R. E. ( 1998 ). A proposed algorithm for moisture fluxes from atmospheric rivers. Monthly Weather Review, 126 ( 3 ), 725 - 735. https://doi.org/10.1175/1520-0493(1998)1262.0.CO;2; Eyring, V., Bony, S., Meehl, G. A., Senior, C. A., Stevens, B., Stouffer, R. J., & Taylor, K. E. ( 2016 ). Overview of the Coupled Model Intercomparison Project Phase 6 (CMIP6) experimental design and organization. Geoscientific Model Development, 9 ( 5 ), 1937 - 1958. https://doi.org/10.5194/gmd-9-1937-2016; Fyfe, J. C. ( 2003 ). Extratropical Southern Hemisphere cyclones: Harbingers of climate change? Journal of Climate, 16 ( 17 ), 2802 - 2805. https://doi.org/10.1175/1520-0442(2003)0162.0.CO;2; Gao, Y., Lu, J., & Leung, L. R. ( 2016 ). Uncertainties in projecting future changes in atmospheric rivers and their impacts on heavy precipitation over Europe. Journal of Climate, 29 ( 18 ), 6711 - 6726. https://doi.org/10.1175/JCLI-D-16-0088.1; Bao, J. W., Michelson, S. A., Neiman, P. J., Ralph, F. M., & Wilczak, J. M. ( 2006 ). Interpretation of enhanced integrated water vapor bands associated with extratropical cyclones: Their formation and connection to tropical moisture. Monthly Weather Review, 134 ( 4 ), 1063 - 1080. https://doi.org/10.1175/MWR3123.1; Blamey, R. C., Ramos, A. M., Trigo, R. M., Tomé, R., & Reason, C. J. ( 2018 ). The influence of atmospheric rivers over the South Atlantic on winter rainfall in South Africa. Journal of Hydrometeorology, 19 ( 1 ), 127 - 142. https://doi.org/10.1175/JHM-D-17-0111.1; Boucher, O., Denvil, S., Levavasseur, G., Cozic, A., Caubel, A., Foujols, M.- A., et al. (2019). IPSL IPSL- CM6A- LR model output prepared for CMIP6 ScenarioMIP ssp585 (Version 20180803) [Data set]. 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Precipitation regime change in Western North America: The role of atmospheric rivers. Scientific Reports, 9 ( 1 ), 9944. https://doi.org/10.1038/s41598-019-46169-w; Gershunov, A., Shulgina, T., Ralph, F. M., Lavers, D. A., & Rutz, J. J. ( 2017 ). Assessing the climate- scale variability of atmospheric rivers affecting western North America. Geophysical Research Letters, 44 ( 15 ), 7900 - 7908. https://doi.org/10.1002/2017GL074175; Gimeno, L., Algarra, I., Eiras- Barca, J., Ramos, A. M., & Nieto, R. ( 2021 ). Atmospheric river, a term encompassing different meteorological patterns. WIREs Water, 8 ( 6 ), e1558. https://doi.org/10.1002/wat2.1558; Gimeno, L., Dominguez, F., Nieto, R., Trigo, R., Drumond, A., Reason, C. J., & Marengo, J. ( 2016 ). Major mechanisms of atmospheric moisture transport and their role in extreme precipitation events. Annual Review of Environment and Resources, 41 ( 1 ), 117 - 141. https://doi.org/10.1146/annurev-environ-110615-085558; Gorodetskaya, I. 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D., & Collins, W. D. ( 2021 ). Sources of subseasonal- to- seasonal predictability of atmospheric rivers and precipitation in the western United States. Journal of Geophysical Research: Atmospheres, 126, e2020JD034053. https://doi.org/10.1029/2020JD034053; Huning, L. S., Margulis, S. A., Guan, B., Waliser, D. E., & Neiman, P. J. ( 2017 ). Implications of detection methods on characterizing atmospheric river contribution to seasonal snowfall across Sierra Nevada, USA. Geophysical Research Letters, 44 ( 20 ), 10445 - 10453. https://doi.org/10.1002/2017GL075201; Iskenderian, H. ( 1995 ). A 10- year climatology of Northern Hemisphere tropical cloud plumes and their composite flow patterns. Journal of Climate, 8 ( 6 ), 1630 - 1637. https://doi.org/10.1175/1520-0442(1995)0082.0.CO;2; Kiehl, J. T., Shields, C. A., Snyder, M. A., Zachos, J. C., & Rothstein, M. ( 2018 ). Greenhouse- and orbital- forced climate extremes during the early Eocene. 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