A Nowcasting Approach for Low-Earth-Orbiting Hyperspectral Infrared Soundings within the Convective Environment

Author:

Kahn Brian H.1,Berndt Emily B.23,Case Jonathan L.4,Kalmus Peter M.1,Richardson Mark T.1

Affiliation:

1. a Jet Propulsion Laboratory, California Institute of Technology, Pasadena, California

2. b Earth Science Branch, NASA Marshall Space Flight Center, Huntsville, Alabama

3. c NASA Short-term Prediction Research and Transition (SPoRT) Center, Huntsville, Alabama

4. d ENSCO, Inc., Huntsville, Alabama

Abstract

Abstract Low-Earth-orbiting (LEO) hyperspectral infrared (IR) sounders have significant yet untapped potential for characterizing thermodynamic environments of convective initiation and ongoing convection. While LEO soundings are of value to weather forecasters, the temporal resolution needed to resolve the rapidly evolving thermodynamics of the convective environment is limited. We have developed a novel nowcasting methodology to extend snapshots of LEO soundings forward in time up to 6 h to create a product available within National Weather Service systems for user assessment. Our methodology is based on parcel forward-trajectory calculations from the satellite-observing time to generate future soundings of temperature (T) and specific humidity (q) at regularly gridded intervals in space and time. The soundings are based on NOAA-Unique Combined Atmospheric Processing System (NUCAPS) retrievals from the Suomi National Polar-Orbiting Partnership (Suomi NPP) and NOAA-20 satellite platforms. The tendencies of derived convective available potential energy (CAPE) and convective inhibition (CIN) are evaluated against gridded, hourly accumulated rainfall obtained from the Multi-Radar Multi-Sensor (MRMS) observations for 24 hand-selected cases over the contiguous United States. Areas with forecast increases in CAPE (reduced CIN) are shown to be associated with areas of precipitation. The increases in CAPE and decreases in CIN are largest for areas that have the heaviest precipitation and are statistically significant compared to areas without precipitation. These results imply that adiabatic parcel advection of LEO satellite sounding snapshots forward in time are capable of identifying convective initiation over an expanded temporal scale compared to soundings used only during the LEO satellite overpass time. Significance Statement Advection of low-Earth-orbiting (LEO) satellite observations of temperature and specific humidity forward in time exhibits skill in determining where and when convection eventually initiates. This approach provides a foundation for a new nowcasting methodology leveraging thermodynamic soundings derived from hyperspectral infrared (IR) sounders on LEO satellite platforms. This method may be useful for creating time-resolved soundings with the constellation of LEO satellites until hyperspectral infrared soundings are widely available from geostationary platforms.

Funder

NOAA Research

Publisher

American Meteorological Society

Subject

Atmospheric Science

Reference52 articles.

1. Adkins, J., and Coauthors, 2021: Geostationary Extended Observations (GeoXO) hyperspectral infrared sounder value assessment report. NOAA/NESDIS Tech. Rep., 103 pp., https://repository.library.noaa.gov/view/noaa/32921.

2. Barnet, C. D., and Coauthors, 2021: NOAA Unique Combined Atmospheric Processing System (NUCAPS). Algorithm Theoretical Basis Doc., version 3.1, 115 pp., https://www.star.nesdis.noaa.gov/jpss/documents/ATBD/ATBD_NUCAPS_v3.1.pdf.

3. Development and application of atmospheric infrared sounder ozone retrieval products for operational meteorology;Berndt, E. B.,2016

4. Gridded satellite sounding retrievals in operational weather forecasting: Product description and emerging applications;Berndt, E. B.,2020

5. Near-real-time surface-based CAPE from merged hyperspectral IR satellite sounder and surface meteorological station data;Bloch, C.,2019

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