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1

Bai︠a︡nov, I. M. Cloud formation. New York: Nova Science Publishers, 2011.

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2

Pollack, Gerald H. The fourth phase of water: Beyond solid, liquid, and vapor. Seattle, WA: Ebner & Sons, 2013.

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3

Keefer, Dennis. High temperature measurement of water vapor absorption. Washington, DC: National Aeronautics and Space Administration, 1987.

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4

Vigneau, Jean-Pierre. L' eau atmosphérique et continentale. Paris: SEDES, 1996.

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5

Oltmans, Samuel J. Water vapor profiles for Washington, DC; Boulder, CO; Palestine, TX; Laramie, WY; and Fairbanks, AK; during the period 1974 to 1985. Silver Spring, Md: U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, Environmental Research Laboratories, Air Resources Laboratory, 1986.

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6

Oltmans, Samuel J. Water vapor profiles for Washington, DC; Boulder, CO; Palestine, TX; Laramie, WY; and Fairbanks, AK; during the period 1974 to 1985. Silver Spring, Md: U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, Environmental Research Laboratories, Air Resources Laboratory, 1986.

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7

Oltmans, Samuel J. Water vapor profiles for Washington, DC; Boulder, CO; Palestine, TX; Laramie, WY; and Fairbanks, AK; during the period 1974 to 1985. Silver Spring, Md: U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, Environmental Research Laboratories, Air Resources Laboratory, 1986.

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8

Peixoto, José Pinto. Dinâmica do ciclo hidrológico: As fontes do vapor de água da atmosfera = Dynamics of the hidrological cycle : the sources of water vapor for the atmospheres. Lisboa: Universidade de Lisboa, Instituto Geofísico do Infante D. Luís, 1994.

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9

Dvorak, Vernon F. Tropical cyclone motion forecasting using satellite water vapor imagery. Washington, D.C: U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, National Environmental Satellite, Data, and Information Service, 1994.

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10

Weldon, Roger. Water vapor imagery: Interpretation and applications to weather analysis and forecasting. Washington, DC: U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, 1991.

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11

Weldon, Roger. Water vapor imagery: Interpretation and applications to weather analysis and forecasting. Washington, D.C: U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, National Environmental Satellite, Data, and Information Service, 1991.

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12

Zhang, Xuewen, and Shaoxiang Zhou. Kong zhong shui wen xue chu tan. Beijing: Qi xiang chu ban she, 2010.

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13

Grant, William B. A critical review of measurements of water vapor absorption in the 840 to 1100 cm-1 spectral region. [Washington, DC: National Aeronautics and Space Administration, 1988.

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14

Hill, Ronald H. The CSIRO dual-frequency microwave radiometer. [Melbourne]: CSIRO Australia, 1995.

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15

Smirnov, N. P. Vodnyĭ balans atmosfery kak gidrologicheskai͡a︡ zadacha. Leningrad: Izd-vo Leningradskogo universiteta, 1988.

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16

Frost, Helen. Water as a gas. Mankato, Minn: Pebble Books, 2000.

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17

Weldon, Roger. Suijōki gazō: Tenki no kaiseki to yohō no tame no kaishaku to ōyō. Tōkyō: Kishō Eisei Sentā, 1993.

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18

Relative humidity: Sensors, management, and environmental effects. Hauppauge, N.Y: Nova Science Publishers, 2010.

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19

International Workshop on GPS Meteorology (2003 Tsukuba, Japan). Application of GPS remote sensing to meteorology and related fields: A collection of papers presented at the International Workshop on GPS Meteorology : GPS meteorology: ground-based and space-borne applications : 14-17 Jan. 2003, Tsukuba, Japan. Tokyo, Japan: Meteorological Society of Japan, 2004.

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20

Perler, Donat. Water vapor tomography using global navigation satellite systems. Zürich: Schweizerische Geodätische Kommission, 2012.

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21

Kruse, Lars Peter. Spatial and temporal distribution of atmospheric water vapor using space geodetic techniques. Zürich: Schweizerische Geodätische Kommission, 2001.

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22

Bauer, Peter. Wasserdampf, Gesamtwasser und Niederschlagsrate aus Daten passiver Mikrowellenradiometer über dem Ozean. Köln: Deutsche Forschungsanstalt für Luft- und Raumfahrt, 1992.

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23

Kakko, Rhea. Vapour cloud modelling in the risk assessment of major toxic hazards: Effect of relative humidity. Espoo, Finland: Valtion teknillinen tutkimuskeskus, 1990.

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24

Voss, Edgar. Polychromator für ein Raman-Lidar zur simultanen Fernmessung von atmosphärischem Kohlendioxid und Wasserdampf. Geesthacht: GKSS-Forschungszentrum, 1987.

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25

Brooks, Christopher K. Multispectral analysis of maritime clouds at night in the presence of atmospheric water vapor. Monterey, Calif: Naval Postgraduate School, 1992.

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26

Miao, Jungang. Retrieval of atmospheric water vapor content in polar regions using spaceborne microwave radiometry: Bestimmung des atmosphärischen Wasserdampfgehaltes in Polargebieten mit Hilfe der passiven Mikrowellenrediometrie. Bremerhaven: Alfred-Wegener-Institut für Polar- und Meeresforschung, 1998.

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27

Thompson, Aylmer H. Application of satellite data to tropic/subtropic moisture coupling. Washington, DC: National Aeronautics and Space Administration, Scientific and Technical Information Office, 1987.

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28

Xinjiang jiang shui yu shui qi de shi kong fen bu ji bian hua yan jiu. Beijing Shi: Qi xiang chu ban she, 2014.

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29

G, Georgiev Christo, ed. Weather analysis and forecasting: Applying satellite water vapor imagery and potential vorticity analysis. Amsterdam: Elsevier, 2005.

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30

Pörtge, Karl-Heinz. Tagesperiodische Schwankungen des Abflusses in kleinen Einzugsgebieten als Ausdruck komplexer Wasser- und Stoffflüse. Göttingen: E. Goltze, 1996.

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31

Frost, Helen. El agua como un gas. Mankato, MN: Capstone Press, 2004.

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32

Münch, Stefan Walter. Atmospheric water vapour sensing by means of differential absorption spectrometry using solar and lunar radiation. Zürich: Schweizerische Geodätische Kommission, 2014.

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33

Fog, mist, or haze? New York, New York: Bearport Publishing, 2016.

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34

John, Viju Oommen. Analysis of upper tropospheric humidity measurements by microwave sounders and radiosondes. Berlin: Logos Verlag Berlin, 2005.

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35

John, Viju Oommen. Analysis of upper tropospheric humidity measurements by microwave sounders and radiosondes. Berlin: Logos Verlag Berlin, 2005.

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36

Cartlidge, Cherese. Wate r from air: Water harvesting machines. Chicago, IL: Norwood House Press, 2008.

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37

Cartlidge, Cherese. Wate r from air: Water harvesting machines. Chicago, IL: Norwood House Press, 2008.

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38

S, Makushkin I͡U︡, Ulenikov O. N, and Kabanov Mikhail Vsevolodovich, eds. Kolebatelʹno-vrashchatelʹnai͡a︡ spektroskopii͡a︡ vodi͡a︡nogo para. Novosibirsk: "Nauka," Sibirskoe otd-nie, 1989.

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39

United States. National Aeronautics and Space Administration., ed. "Analysis of satellite-derived ozone and water vapor measurements": Final report for grant NAG 5-1060. [Washington, DC: National Aeronautics and Space Administration, 1993.

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40

"Analysis of satellite-derived ozone and water vapor measurements": Final report for grant NAG 5-1060. [Washington, DC: National Aeronautics and Space Administration, 1993.

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41

1952-, Clifford Stephen Mark, Haberele Robert M, and Lunar and Planetary Institute, eds. MECA Workshop on Atmospheric H₂O Observations of Earth and Mars: Physical processes, measurements, and interpretations. Houston, Tex: The Institute ; [Springfield, Va., 1988.

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42

Bouchet, Freddy, Tapio Schneider, Antoine Venaille, and Christophe Salomon, eds. Fundamental Aspects of Turbulent Flows in Climate Dynamics. Oxford University Press, 2020. http://dx.doi.org/10.1093/oso/9780198855217.001.0001.

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This book collects the text of the lectures given at the Les Houches Summer School on “Fundamental aspects of turbulent flows in climate dynamics”, held in August 2017. Leading scientists in the fields of climate dynamics, atmosphere and ocean dynamics, geophysical fluid dynamics, physics and non-linear sciences present their views on this fast growing and interdisciplinary field of research, by venturing upon fundamental problems of atmospheric convection, clouds, large-scale circulation, and predictability. Climate is controlled by turbulent flows. Turbulent motions are responsible for the bulk of the transport of energy, momentum, and water vapor in the atmosphere, which determine the distribution of temperature, winds, and precipitation on Earth. Clouds, weather systems, and boundary layers in the oceans and atmosphere are manifestations of turbulence in the climate system. Because turbulence remains as the great unsolved problem of classical physics, we do not have a complete physical theory of climate. The aim of this summer school was to survey what is known about how turbulent flows control climate, what role they may play in climate change, and to outline where progress in this important area can be expected, given today’s computational and observational capabilities. This book reviews the state-of-the-art developments in this field and provides an essential background to future studies. All chapters are written from a pedagogical perspective, making the book accessible to masters and PhD students and all researchers wishing to enter this field. It is complemented by online video of several lectures and seminars recorded during the summer school.
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43

United States. National Aeronautics and Space Administration., ed. Microwave radiometer studies of atmospheric water over the oceans. [Washington, D.C: National Aeronautics and Space Administration, 1992.

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44

Advanced atmospheric water vapor DIAL detection system. Hampton, Va: National Aeronautics and Space Administrations, Langley Research Center, 2000.

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45

Forecast Systems Laboratory (U.S.), ed. The LAPS specific humidity analysis. Boulder, Colo: U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, Environmental Research Laboratories, Forecast Systems Laboratory, 1992.

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46

Forecast Systems Laboratory (U.S.), ed. The LAPS specific humidity analysis. Boulder, Colo: U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, Environmental Research Laboratories, Forecast Systems Laboratory, 1992.

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47

Forecast Systems Laboratory (U.S.), ed. The LAPS specific humidity analysis. Boulder, Colo: U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, Environmental Research Laboratories, Forecast Systems Laboratory, 1992.

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48

Air Resources Laboratory (U.S.), ed. Observed annual and interannual variations in tropospheric water vapor. Silver Spring, Md: U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, Environmental Research Laboratories, Air Resources Laboratory, 1992.

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49

Air Resources Laboratory (U.S.), ed. Observed annual and interannual variations in tropospheric water vapor. Silver Spring, Md: U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, Environmental Research Laboratories, Air Resources Laboratory, 1992.

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50

Air Resources Laboratory (U.S.), ed. Observed annual and interannual variations in tropospheric water vapor. Silver Spring, Md: U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, Environmental Research Laboratories, Air Resources Laboratory, 1992.

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