Predicting Statistical Wave Physics in Complex Enclosures: A Stochastic Dyadic Green's Function Approach

IEEE Transactions on Electromagnetic Compatibility(2023)

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摘要
This article presents a physics-oriented, mathematically tractable, statistical wave model for analyzing the wave physics of high-frequency reverberation in complex cavity environments. The key ingredient is a vector dyadic stochastic Green's function (SGF) method that is derived from the Wigner's random matrix theory and Berry's random wave hypothesis. The SGF statistically replicates multipath, ray-chaotic communication between vector sources and vectorial electromagnetic fields at displaced observation points using generic, macroscopic parameters of the cavity environment. The work establishes a physics-based modeling and simulation capability that predicts the probabilistic behavior of backdoor coupling to complex electronic enclosures. Experimental results are supplied to validate the proposed work.
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关键词
Eigenvalues and eigenfunctions,Random variables,Q-factor,Green products,Trajectory,Radio frequency,Physics,Chaos,electromagnetic coupling,Green function,intentional electromagnetic interference,statistical analysis
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