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Homogeneous quantum electrodynamic turbulenceThe electromagnetic field equations and Dirac equations for oppositely charged wave functions are numerically time-integrated using a spatial Fourier method. The numerical approach used, a spectral transform technique, is based on a continuum representation of physical space. The coupled classical field equations contain a dimensionless parameter which sets the strength of the nonlinear interaction (as the parameter increases, interaction volume decreases). For a parameter value of unity, highly nonlinear behavior in the time-evolution of an individual wave function, analogous to ideal fluid turbulence, is observed. In the truncated Fourier representation which is numerically implemented here, the quantum turbulence is homogeneous but anisotropic and manifests itself in the nonlinear evolution of equilibrium modal spatial spectra for the probability density of each particle and also for the electromagnetic energy density. The results show that nonlinearly interacting fermionic wave functions quickly approach a multi-mode, dynamic equilibrium state, and that this state can be determined by numerical means.
Document ID
19930006293
Acquisition Source
Legacy CDMS
Document Type
Technical Memorandum (TM)
Authors
Shebalin, John V.
(Institute for Computer Applications in Science and Engineering Hampton, VA, United States)
Date Acquired
September 6, 2013
Publication Date
October 1, 1992
Subject Category
Nuclear And High-Energy Physics
Report/Patent Number
NASA-TM-107686
ICASE-92-50
NAS 1.15:107686
AD-A258427
Report Number: NASA-TM-107686
Report Number: ICASE-92-50
Report Number: NAS 1.15:107686
Report Number: AD-A258427
Accession Number
93N15482
Funding Number(s)
PROJECT: RTOP 505-90-52-01
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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