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The Aeolus-Earth DWTS Heliophysics MissionThe Aeolus-Earth Mission (DWTS-Helio) is a recently selected NASA Heliophysics investigation that will apply the innovative Doppler Wind Temperature Sounder (DWTS) technique to the Space Atmosphere Interaction Region (SAIR) at ~105-180 km. The technique, invented by Gordley & Marshall (2011), applies the Doppler Scanning with Gas Filter (DSGF) technique using a cryo-cooled MWIR radiometer to view the limb of the atmosphere from LEO (orbital velocity creates the Doppler shifts required by the technique). For this implementation of DWTS, a Nitric Oxide (NO) low pressure gas cell is used. The limb of the atmosphere is observed from a spacecraft at orbital velocity, and as an observed air volume passes through the field of view, this velocity creates a set of Doppler-shifted images. These images are used to create Doppler Integrated Pass (DIP) signals, from which atmospheric temperature and wind profiles are extracted (it may be considered a converse of the successful in-flight calibration of gas cells used for the HALOE instrument). The technique is relative, removing the need for absolute radiances, and the signal-to-noise ratio for this technique is high, resulting in good measurement precision. Different gas cells can be used to create different altitude coverage and may be combined to measure a more continuous altitude range. For example, using a NO cell captures the lower atmosphere from 30-50km as well as the SAIR, while using the 13 isotopologue of CO2 would capture 50-120km. Due to the desired data volume as well as power and thermal considerations, this initial Aeolus-Earth flight will be more suited for a ‘hosted’ payload on an Orbital Maneuvering Vehicle platform instead of the ‘free-flyer’ option originally investigated. Lastly, the technique is sufficiently powerful that a two-channel system could produce full Mars atmosphere data not currently possible.
Document ID
20260005563
Acquisition Source
Ames Research Center
Document Type
Abstract
Authors
M Murbach
(Ames Research Center Mountain View, United States)
L Gordley
(G & A Technical Software (United States) Newport News, United States)
B T Marshall
(G & A Technical Software (United States) Newport News, United States)
J Gubeli
(G & A Technical Software (United States) Newport News, United States)
Greg Paxton
(G & A Technical Software (United States) Newport News, United States)
S Bailey
(Virginia Tech Blacksburg, United States)
D Fritts
(G & A Technical Software (United States) Newport News, United States)
A Dave
(Ames Research Center Mountain View, United States)
A Salas
(Astrion (United States) Washington, United States)
M Mooney-Rivkin
(Metis Technology Solutions, Inc. Albuquerque, NM)
K Boateng
(Astrion (United States) Washington, United States)
H Smith
(KISS Inst. for Practical Robotics Norman, OK, United States)
Date Acquired
June 17, 2026
Subject Category
Spacecraft Instrumentation and Astrionics
Meeting Information
Meeting: NASA Heliophysics Technology Symposium
Location: Laurel, MD
Country: US
Start Date: August 31, 2026
End Date: September 4, 2026
Sponsors: John Hopkins Applied Physics Laboratory
Funding Number(s)
CONTRACT_GRANT: 80GSFC17C0015
CONTRACT_GRANT: SPEC5732
CONTRACT_GRANT: 80ARC021D0001
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Keywords
DWTS
Doppler Wind and Temperature Sounder
TechEdSat
Heliophysics
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