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RF MODULE

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Model Library path: <strong>RF</strong>_Module/<strong>RF</strong>_and_Microwave_Engineering/circulator<br />

Modeling Using the Graphical User Interface<br />

MODEL NAVIGATOR<br />

1 From the Space dimension list, select 2D.<br />

2 From the Application Modes folder, select<br />

<strong>RF</strong> Module>In-Plane Waves>TE Waves>Harmonic propagation.<br />

3 Click OK.<br />

OPTIONS AND SETTINGS<br />

1 Define the following constants in the Constants dialog box. The description field is<br />

optional and can be omitted. When done, click OK.<br />

NAME EXPRESSION DESCRIPTION<br />

freq 300[MHz]/0.03 Frequency<br />

eps_r 1 Relative permittivity in matching layer<br />

2 Define the following scalar variables in the Scalar Expressions dialog box; when done,<br />

click OK.<br />

NAME EXPRESSION DESCRIPTION<br />

gamma 1.759e11[C/kg] Gyromagnetic ratio<br />

H0 omega_rfwe/(gamma*<br />

mu0_rfwe+1e4[m/C])<br />

Applied magnetic bias field<br />

w0 mu0_rfwe*gamma*H0 Larmor frequency<br />

Ms 0.3[Wb/m^2]/mu0_rfwe Saturation magnetization<br />

wm mu0_rfwe*gamma*Ms Larmor frequency at saturation limit<br />

mur 1+w0*wm/(w0^2omega_rfwe^2)<br />

Relative permeability tensor element<br />

kr omega_rfwe*wm/<br />

(w0^2-omega_rfwe^2)<br />

Relative permeability tensor element<br />

GEOMETRY MODELING<br />

The geometry modeling of this model is rather extensive, so it is possible to import the<br />

circulator geometry from a binary file. Select the section that you prefer.<br />

56 | CHAPTER 3: <strong>RF</strong> AND MICROWAVE MODELS

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