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Titlebook: Generalized Lorenz-Mie Theories; Gérard Gouesbet,Gérard Gréhan Book 20111st edition Springer Berlin Heidelberg 2011 Experimental Fluid Mec

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,Background in Maxwell’s Electromagnetism and Maxwell’s Equations,An usual attitude in textbooks dealing with scattering theory is to straightaway introduce special Maxwell’s equations which are sufficient to develop the theory when only local, linear, homogeneous, isotropic and stationary media are considered. The reader wanting to adhere to such a point of view
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,Resolution of Special Maxwell’s Equations,, one of our recurrent choice will be to introduce special cases as late as possible in the chain of the resolution of Maxwell’s equations. Thus, the explicit time harmonic dependence of the waves only appears in section II.3 and the introduction of spherical coordinate systems (the one suitable for
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Generalized Lorenz-Mie Theory in the Strict Sense, and Other GLMTs, been exposed in [2] and [89]. Ref [2] discusses the case of arbitrary location of the scatterer in a Gaussian beam. It mentions that the generalization from Gaussian beams to arbitrary shaped beams should be rather trivial. Indeed it is. The only thing to do was to separate the expressions valid in
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Finite Series, be developed in so far as they quite naturally arise in the development of the GLMT. Because they are flexible, i.e. only kernels in the quadratures have to be modified when the incident beam is changed, they are well adapted to some specific problems, such as the study of shaped beam scattering by
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Markus Dickerhof,Daniel Kimmig,Raphael Adamietz,Tobias Iseringhausen,Joel Segal,Nikola Vladov,Wilhelm Pfleging,Maika Torgen be subjected to extended separation strategies prior to DDA. These strategies are of special relevance for biological samples containing a few very high-abundant proteins, such as CSF, as they enlarge the identification of low-abundant proteins. In instances of CSF separation, suitable methods inc
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