
An antenna model of the human nerve has been proposed. The model is based on the Pocklington integro-differential equation for the coated straight wire immersed in a finitely conducting medium. The corresponding Pocklington equation is solved via the Galerkin-Bubnov Boundary Element Method (GB-IBEM). Some illustrative computational examples are presented throughout the paper.
integral equations, transmission line models, human nerves, antenna models, human nerves; transmission line models; antenna models; integral equations; boundary element method, boundary element method
integral equations, transmission line models, human nerves, antenna models, human nerves; transmission line models; antenna models; integral equations; boundary element method, boundary element method
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