Advances in Atmospheric Sounding Technology

Atmospheric sounding technology mainly studies the basic knowledge and skills of meteorological detection, meteorological equipment security, meteorological warning and forecasting, comprehensive meteorological detection, weather forecasting, meteorological services, etc. For example: the determination of temperature, humidity, air pressure, wind direction, wind, etc. at all heights of the atmosphere, balloon detection, radio sounding, etc., weather radar, meteorological satellites, aircraft weather detection equipment, meteorological observation equipment and other equipment use, repair, maintenance, etc.

Sample Chapter(s)
preface (44 KB)
Components of the Book:
  • Chapter 1
    In Situ Sounding Of Radiative Flux Profiles Through The Arctic Lower Troposphere
  • Chapter 2
    Retrieval Of Temperature Profiles Using Radio Acoustic Sounding System (Rass) With The Equatorial Atmosphere Radar (Ear) In West Sumatra, Indonesia
  • Chapter 3
    Ionospheric Signatures Of The April 25, 2015 Nepal Earthquake And The Relative Role Of Compression And Advection For Doppler Sounding Of Infrasound In The Ionosphere
  • Chapter 4
    The State Of The Stratosphere Throughout The Seasons: How Well Can Atmospheric Models Explain Infrasound Observations At Regional Distances?
  • Chapter 5
    Diurnal Cycle Over A Coastal Area Of The Maritime Continent As Derived By Special Networked Soundings Over Jakarta During Harimau2010
  • Chapter 6
    Emerging Technologies And Synergies For Airborne And Space-Based Measurements Of Water Vapor Profiles
  • Chapter 7
    Towards The Profiling Of The Atmospheric Boundary Layer At European Scale—Introducing The Cost Action Probe
  • Chapter 8
    Kinematic And Thermodynamic Conditions Related To Convective Systems With A Bow Echo In Poland
  • Chapter 9
    Characterizing Mesoscale Variability In Low‑Level Jet Simulations For Cblast‑Low 2001 Campaign
  • Chapter 10
    Synergy Between Radionuclide And Infrasound Observations And Atmospheric Transport Modelling Simulations: Case Of Bogoslof
  • Chapter 11
    Atmospheric Opacity Estimation Based On Iwv Derived From Gnss Observations For Vlbi Applications
  • Chapter 12
    Evolution Of Individual Equatorial Atmospheric Kelvin Waves In The Stratosphere From Formosat‑7/Cosmic‑2 Temperatures
  • Chapter 13
    Sunshine Duration And Its Variability In The Main Ridge Of The Karkonosze Mountains In Relation To With Atmospheric Circulation
  • Chapter 14
    Fifty Years Of Atmospheric Boundary-Layer Research At Cabauw Servingweather, Air Quality And Climate
  • Chapter 15
    Role Of Wind Shear, Temperature Lapse Rate, And Aerosol In Assessment Of Atmospheric Condition
Readership: Students, academics, teachers and other people attending or interested in Atmospheric Sounding Technology
Ralf Becker
Deutscher Wetterdienst, Meteorologisches Observatorium Lindenberg, Am Observatorium 12, 15848 Tauche, Germany

Marion Maturilli
Helmholtz-Centre for Polar and Marine Research, Alfred Wegener Institute, Telegrafenberg A45, 14473 Potsdam, Germany

Rolf Philipona
Federal Office of Meteorology and Climatology MeteoSuisse, Chemin de l’Aerologie, 1530 Payerne, Switzerland

Hiraku Tabata
Research Institute for Sustainable Humanosphere (RISH), Kyoto University, Kyoto, Japan

Masaki Katsumata
Japan Agency for Marine-Earth Science and Technology (JAMSTEC), Natsushima-cho 2-15, Yokosuka 237-0061, Japan

and more...
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