Focusing of a relativistic electron flow.
Focusing of relativistic cylindrical electron beam in static axial electric and magnetic fields, using least action principle to derive trajectory differential equation
Engineering topics
Publications and source records attributed to Hsieh, H. C..
Focusing of relativistic cylindrical electron beam in static axial electric and magnetic fields, using least action principle to derive trajectory differential equation
Dispersion relation for circularly polarized electromagnetic waves in warm two component plasma
Whistler mode propagation in presence of longitudinal static electric field in region of ionosphere where particle collisions influence ion motion
Dispersion equation for whistler mode propagation in warm plasma in parallel static fields, using Vlasov-Maxwell equation
Dispersion relation for wave propagation in electro-magneto-ionic medium under electric and magnetic fields obtained using Maxwell- Boltzmann-Vlasov equations, discussing cut-off frequency
Electrostatic field effect on propagation of electromagnetic waves in finite temperature magnetoactive plasma
Equations for dispersion relations of magnetoactive finite temperature plasma
Nonlinear electromagnetic wave propagation in magnetoactive finite temperature plasma
Ionosphere as anisotropic dissipative medium where charged particles random thermal motion acts as thermal radiation source, noting relation between driven AC conduction current density and applied AC electric field intensity
Ionospheric thermal radiation, discussing noise power per unit volume, spectral distribution, frequency, etc
Amplification of electromagnetic wave interacting with drifting electron beam
Ionospheric phenomena as thermal radiation noise, propagation of naturally occurring radio noise through ionosphere, and generation of very low frequency emissions
Ionosphere as dissipative medium in which random thermal motions of charged particles act as thermal radiation source