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Published byMarlene Gray Modified over 8 years ago
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WP4: Modelling REP losses Objectives: 1.Extend AARDDVARK network to have a better L-shell, MLT coverage. 2.Analyse the characteristics of REP, case by case, and at different L-shells. 3.Develop a model which identifies the size, location, MLT zone, geomagnetic conditions, and flux characteristics of the REP. 4.Refine the REP model to describe on/inside/outside plasmapause precipitation using input from the WP3 Model.
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WP4:Based on the AARDDVARK network
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1.Extend AARDDVARK network to have a better L-shell, MLT coverage.
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Identify 3 sites, and deploy AARDDVARKs
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REP relative to the plasmapause 2.Analyse the characteristics of REP, case by case, and at different L-shells. Churchill: L=3-7
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REP relative to the plasmapause 2.Analyse the characteristics of REP, case by case, and at different L-shells. Churchill: L=3-7 We have examples: need supporting data – satellite, interpretation of activity types, riometers, pulsation mags
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REP Model :1 3.Develop a model which identifies the size, location, MLT zone, geomagnetic conditions, and flux characteristics of the REP. Simple model possible now: L=3-8, MLT=22-04 Longitude : N.Atlantic Spectrum : (K=-2)
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REP Model : 2 4.Refine the REP model to describe on/inside/outside plasmapause precipitation using input from the WP3 Model. Describe precipitation characteristics through identifying precipitation type and L-shell: Inside plasmapause: plasmaspheric hiss Outside plasmapause: chorus waves On plasmapause: EMIC waves Drive model by same input parameters as WP3 model if possible.
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EMIC waves plasmaspheric hiss magnetopause plasmapause Sun REP Model : 2 Chorus and ECH waves 4.Refine the REP model to describe on/inside/outside plasmapause precipitation using input from the WP3 Model. Describe precipitation characteristics through identifying precipitation type and L-shell: Inside plasmapause: plasmaspheric hiss Outside plasmapause: chorus waves On plasmapause: EMIC waves Drive model by same input parameters as WP3 model if possible.
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