Title :
Dipole models for the far-field representation of EMP simulators with application to estimates of human RF exposure
Author :
Williams, Jenny Weisenberg
Author_Institution :
Science Applications Int. Corp., Albuquerque, NM
fDate :
12/1/1992 12:00:00 AM
Abstract :
The authors present dipole modeling techniques which are useful for calculations of far fields from vertically or horizontally polarized electromagnetic pulse (EMP) simulators. Vertically polarized simulators are modeled with a single dipole above a finitely conducting half-space. Three dipoles were used in the case of a horizontally polarized simulator. Effects of soil models with both frequency-dependent and frequency-independent values for soil conductivity and dielectric constant are included in the study. Calculations with dipole models compare reasonably well with measurements conducted at the AESOP facility and finite-difference calculations of free fields near the VEMPS II simulator. Integrals of the Poynting vector are used to obtain an upper limit for whole body specific absorption in a prolate spheroidal human model. The results suggest that EMP simulator thermal effects at the cellular level are small in comparison to random thermal agitation
Keywords :
biological effects of fields; electromagnetic pulse; EMP simulators; Poynting vector; dipole modeling techniques; far-field representation; finitely conducting half-space; horizontally polarized; human RF exposure; prolate spheroidal human model; random thermal agitation; soil models; vertically polarized; whole body specific absorption; Biological system modeling; Conductivity; Dielectric constant; Dielectric measurements; EMP radiation effects; Electromagnetic modeling; Electromagnetic wave polarization; Finite difference methods; Frequency; Soil measurements;
Journal_Title :
Nuclear Science, IEEE Transactions on