THE OLYMPIC MOUNTAINS EXPERIMENT (OLYMPEX).

OLYMPEX is a comprehensive field campaign to study how precipitation in Pacific storms is modified by passage over coastal mountains.

[1]  Patrick C. Kennedy,et al.  S-Band Dual-Polarization Radar Observations of Winter Storms , 2011 .

[2]  D. Durran,et al.  Mesoscale Controls on the Mountainside Snow Line , 2011 .

[3]  D. Durran,et al.  The Climatology of Small-scale Orographic Precipitation over the Olympic Mountains: Patterns and Processes , 2022 .

[4]  D. Durran,et al.  Interaction of low-level flow with the Western Ghat mountains and offshore convection in the summer monsoon , 1984 .

[5]  R. Houze,et al.  Vertical Structures of Precipitation in Cyclones Crossing the Oregon Cascades , 2007 .

[6]  C. Kummerow,et al.  The Tropical Rainfall Measuring Mission (TRMM) Sensor Package , 1998 .

[7]  S. Serebreny,et al.  Radar Precipitation Echo and Satellite Cloud Observations of a Maritime Cyclone1 , 1962 .

[8]  Michael Lehning,et al.  High-Resolution Vertical Profiles of X-Band Polarimetric Radar Observables during Snowfall in the Swiss Alps , 2013 .

[9]  R. Reynolds,et al.  The NCEP/NCAR 40-Year Reanalysis Project , 1996, Renewable Energy.

[10]  P. Hobbs,et al.  Microphysics and dynamics of clouds associated with mesoscale rainbands in extratropical cyclones , 1980 .

[11]  K. Browning,et al.  Radar observations of wind‐shear splitting within evolving atmospheric kelvin‐helmholtz billows , 1997 .

[12]  Radar observations of precipitation and airflow on the Mediterranean side of the Alps: Autumn 1998 and 1999 , 2001 .

[13]  R. Houze,et al.  The variable nature of convection in the tropics and subtropics: A legacy of 16 years of the Tropical Rainfall Measuring Mission satellite , 2015, Reviews of geophysics.

[14]  A. Hou,et al.  The Global Precipitation Measurement Mission , 2014 .

[15]  F. Martin Ralph,et al.  Meteorological Characteristics and Overland Precipitation Impacts of Atmospheric Rivers Affecting the West Coast of North America Based on Eight Years of SSM/I Satellite Observations , 2008 .

[16]  P. Neiman,et al.  Synoptic and Topographic Variability of Northern California Precipitation Characteristics in Landfalling Winter Storms Observed during CALJET , 2005 .

[17]  Robert F. Adler,et al.  On the Tropical Rainfall Measuring Mission (TRMM) , 1996 .

[18]  P. Hobbs,et al.  Mesoscale Rainbands in Extratropical Cyclones , 1976 .

[19]  R. Houze,et al.  Kelvin–Helmholtz waves in extratropical cyclones passing over mountain ranges , 2016 .

[20]  R. Houze Orographic effects on precipitating clouds , 2012 .

[21]  Y. Hong,et al.  The TRMM Multisatellite Precipitation Analysis (TMPA): Quasi-Global, Multiyear, Combined-Sensor Precipitation Estimates at Fine Scales , 2007 .

[22]  P. Hobbs,et al.  Organization and Structure of Precipitating Cloud Systems , 1982 .

[23]  Thomas H. Painter,et al.  The Airborne Snow Observatory: Fusion of scanning lidar, imaging spectrometer, and physically-based modeling for mapping snow water equivalent and snow albedo , 2016 .

[24]  David P. Yorty,et al.  WHERE ARE THE MOST INTENSE THUNDERSTORMS ON EARTH , 2006 .

[25]  J. Marwitz Deep Orographic Storms over the Sierra Nevada. Part I: Thermodynamic and Kinematic Structure , 1987 .

[26]  J. Lundquist,et al.  Independent Evaluation of Frozen Precipitation from WRF and PRISM in the Olympic Mountains , 2017 .