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Different operating modes are simulated.
The confinement factors and near field profiles for various optical modes are simulated.
Then the flow field distributions of these flow modes are simulated by using the computational fluid dynamics software.
The variations of the total specific energy consumption and the discharge brine concentration for various hybrid modes are simulated to verify the conceptual designs.
In this study, two electrolyte flow modes, i.e. the flow-by and flow-through modes, are simulated by using a three-dimensional H2/Br2 RFB model.
The design and the control scheme performances in all modes are simulated in MATLAB and validated through real time hardware in loop (HIL) system.
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Multiple deformation modes were simulated, including strip biaxial, planar biaxial with two attachment methods, and membrane inflation.
Three commonly-used operation modes were simulated: continuous, non-continuous intermittent and dynamic, and each mode was applied at four different pressure levels.
The model field, dispersion, birefringence and confinement loss of the fiber fundamental mode are simulated by full-vector finite element method.
According to the computer simulation technique, the tracing time interval and the corresponding mode curve, which is based on the aim-interval control mode, are simulated and calculated with proper models and algorithms which are put forward by this paper.
The optical properties, such as effective refractive index, electric field intensity, effective mode area, nonlinear coefficient and chromatic dispersion of the fundamental mode are simulated by using full-vectorial finite element method (FVFEM).
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