Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling...

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scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov, Xi Shao, Dennis Papadopoulos University of Maryland, College Park Yuhou Wang, Walter Gekelman, Patrick Pribyl University of California Los Angeles
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Transcript of Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling...

Page 1: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

Nonresonant pitch angle scattering of electrons and breakdown of

adiabatic invariance: Modeling

Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov, Xi Shao, Dennis PapadopoulosUniversity of Maryland, College Park

Yuhou Wang, Walter Gekelman, Patrick PribylUniversity of California Los Angeles

Page 2: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

LAPD Expt: Mirror trapped electrons3 m mirror (~1.5), high power microwave produces energetic electrons

Alfven waves produced by rotating magnetic field antenna scatters energetic electrons

Page 3: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

Numerical Simulations

Page 4: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

Simulation parameters

Page 5: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

Alfven wave generation by RMF

Mirror configuration

Magnetic field

Electric field

Page 6: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

Energization of electrons Test particles 22,500 electrons uniformly distributed in the

mirror regionInitial pitch angles : 80 – 90 degInitial energies: 1 keVIntegrate:

d

dt

m0v

γ

⎝ ⎜

⎠ ⎟=− e E+v× B( ),

Page 7: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

Evolution of Pitch Angles

Page 8: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

Electron scatteringResonance condition:

k||v|| −ω =Ωce

γ,

For the low freq. and keV energy:

k||v|| ≈ω

VAv|| <

ω

VAv << Ωce.

Non-resonant scattering

Page 9: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

Spatial distribution of electronsAt 25 wave periods

Single loop antenna

RMF - Left hand polarization

RMF - Right hand polarization

Page 10: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

Evolution of Pitch Angles

Page 11: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

Surface of Section PlotsA surface of section (SoS) plots Vperp vs. Vpar as an electron crosses the plane x = 0 from right to left.

Escaped electron

Page 12: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

SoS: Trapped electron

• Here is a similar plot for another particle that did not escape.

Page 13: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

SoS: Escaping electron

• This surface of section depicts a particle that did escape from the simulation.

Page 14: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

SoS : 5 wave cycles

Page 15: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

SoS: 10 wave cycles

Page 16: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

SoS: 25 wave cycles

Page 17: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

Surfaces of Section

5 wave cycles

10 wave cycles 25 wave cycles

Page 18: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

Pitch angle distribution functions

Single loop antenna Rotating Field: Left and Right handed

Page 19: Nonresonant pitch angle scattering of electrons and breakdown of adiabatic invariance: Modeling Surja Sharma, Alexey Karavaev, Erin Lynch, Nail Gumerov,

Summary

Interaction of energetic electrons with RMF generated Alfven waves

Electron scattering by Alfven waves computed from numerical model

Nonresonant scattering leads to pitch angle scattering

Surface of section plots to analyze electron velocity evolution

Trapped electrons escape at ~ 10 wave periods

Combined effects of the pitch angle scattering and breakdown of adiabatic invariance