Ground and Space-Based Measurement of Rocket Engine Burns in the Ionosphere
Наземные и космические измерения работы ракетных двигателей в ионосфере
2012-03-19
SCID: 54.1/w66kggpf
Discuss with AI
Charged Aerosol Release ExperimentHF radar scatteringionospheric rocket burnsplasma instabilitiesrocket exhaust plumes
Figures from the paper
Abstract (AI)
On-orbit firings of both liquid and solid rocket motors provide localized disturbances to the plasma in the upper atmosphere. Large amounts of energy are deposited to ionosphere in the form of expanding exhaust vapors which change the composition and flow velocity. Charge exchange between the neutral exhaust molecules and the background ions (mainly O+) yields energetic ion beams. The rapidly moving pickup ions excite plasma instabilities and yield optical emissions after dissociative recombination with ambient electrons. Line-of-sight techniques for remote measurements rocket burn effects include direct observation of plume optical emissions with ground and satellite cameras, and plume scatter with UHF and higher frequency radars. Long range detection with HF radars is possible if the burns occur in the dense part of the ionosphere. The exhaust vapors initiate plasma turbulence in the ionosphere that can scatter HF radar waves launched from ground transmitters. Solid rocket motors provide particulates that become charged in the ionosphere and may excite dusty plasma instabilities. Hypersonic exhaust flow impacting the ionospheric plasma launches a low-frequency, electromagnetic pulse that is detectable using satellites with electric field booms. If the exhaust cloud itself passes over a satellite, in situ detectors measure increased ion-acoustic wave turbulence, enhanced neutral and plasma densities, elevated ion temperatures, and magnetic field perturbations. All of these techniques can be used for long range observations of plumes in the ionosphere. To demonstrate such long range measurements, several experiments were conducted by the Naval Research Laboratory including the Charged Aerosol Release Experiment, the Shuttle Ionospheric Modification with Pulsed Localized Exhaust experiments, and the Shuttle Exhaust Ionospheric Turbulence Experiments.
Key Findings
1
Charge exchange between exhaust neutrals and ambient O+ ions generates energetic ion beams, whose instabilities produce optical emissions through dissociative recombination.
2
In situ satellite measurements can identify exhaust clouds through enhanced ion-acoustic turbulence, neutral and plasma densities, ion temperatures, and magnetic-field perturbations; these methods were demonstrated in several Naval Research Laboratory experiments.
3
Liquid and solid rocket-motor firings create localized ionospheric disturbances by depositing energetic exhaust vapors that alter plasma composition and flow velocity.
4
Rocket exhaust can be detected remotely through plume optical emissions, radar scattering, HF-radar backscatter from induced turbulence, and low-frequency electromagnetic pulses.
5
Solid rocket exhaust introduces charged particulates that may drive dusty-plasma instabilities in the ionosphere.
Research Object
Rocket-engine exhaust plumes from on-orbit liquid and solid motor firings interacting with the ionosphere
Research Subject
Ionospheric disturbances and observable plasma, optical, electromagnetic, and neutral-density responses produced by rocket-engine burns
Publication Details
Publication Date
2012-03-19
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest