Title :
Modal expansion basis for statistical estimation of maximum expected field strength in enclosures
Author :
Bremner, Paul G.
Author_Institution :
Robust Phys., Del Mar, CA, USA
Abstract :
Estimating the electromagnetic field strength in avionics boxes at high frequencies and in electrically large enclosures such as launch vehicle payload fairings is often impractical using a “full wave” numerical model. The ratio of wavelength to characteristic dimensions is such that both temporal and spatial field response is highly sensitive to small geometric details which are typically not known or not practical to model. However, the statistical distribution of such a chaotic wavefield collapses uniformly to a convenient two parameter probability distribution. This paper reduces a deterministic modal expansion of electric field in an enclosure, to show the basis for a simple statistical model which can predict both the spatio-temporal mean response and the maximum expected response, for any required statistical confidence level. The paper compares preliminary predictions of the statistical model with experimental data from reverberation chamber tests at NASA LaRC.
Keywords :
aerospace testing; avionics; electromagnetic interference; electronics packaging; estimation theory; immunity testing; statistical analysis; NASA; avionics box; electric field deterministic modal expansion; electrically large enclosures; electromagnetic field strength; full wave numerical model; launch vehicle payload fairing; maximum expected field strength; modal expansion basis; reverberation chamber tests; statistical estimation; Cavity resonators; Electric fields; Frequency measurement; NIST; Reactive power; Resonant frequency; Shape; Maximum expected field strength; Reverberant field; Statistical electromagnetics; Stochastic model;
Conference_Titel :
Electromagnetic Compatibility and Signal Integrity, 2015 IEEE Symposium on
Conference_Location :
Santa Clara, CA
Print_ISBN :
978-1-4799-1992-5
DOI :
10.1109/EMCSI.2015.7107657