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First, a variational formulation for fluid shell coupling is presented.
A numerical formulation to solve the MHD problem with thermal coupling is presented in full detail.
In this review a systematic approach to CFS CE coupling is presented and discussed.
The basic methodology and initial validation of the fluid-structure coupling is presented.
A dynamic analysis of a "deep" hyperbolic composite coupling is presented.
The frequency stabilization system is described and an astigmatic imaging system, developed for improved beam coupling, is presented.
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Measurements of the anode impedance, bandwidth and cross-talk due to inter-strip coupling are presented.
The obtained results for quality factor, frequency shift and sensitivity change due to thermo-elastic coupling are presented graphically.
Numerical investigations into magneto-electro-elastic moduli responsible for the magneto-electric coupling are presented as functions of the volume fraction and characteristics of the coated inclusions.
Numerical investigations into electroelastic moduli responsible for the electromechanical coupling are presented as functions of the volume fraction and characteristics of the coated inclusions.
More complete models of the fluid coupling must include the three-dimensional fluid effects that occur close to the BM, and the original formulation for 3D fluid coupling was presented in the wavenumber domain [ 23].
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com