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lrftubes.lyx
284
lrftubes.lyx
@ -124,6 +124,12 @@ LRFTubes documentation - v1.1
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Dr.ir.
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Dr.ir.
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J.A.
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J.A.
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de Jong
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de Jong
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\begin_inset Newline newline
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\end_inset
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Ir.
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C.
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Jansen
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\end_layout
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\end_layout
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\begin_layout Standard
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\begin_layout Standard
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@ -8735,7 +8741,7 @@ where
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\begin_layout Standard
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\begin_layout Standard
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After some algebraic manipulations we find:
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After some algebraic manipulations we find:
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\begin_inset Note Note
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\begin_inset Note Note
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status open
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status collapsed
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\begin_layout Plain Layout
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\begin_layout Plain Layout
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\begin_inset Formula $z_{m}u=\left(p_{l}-p_{r}\right)S+B\ell I$
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\begin_inset Formula $z_{m}u=\left(p_{l}-p_{r}\right)S+B\ell I$
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@ -8832,7 +8838,7 @@ To transfer matrix notation:
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\begin_inset Formula
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\begin_inset Formula
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\begin{align}
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\begin{align}
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\frac{1}{S_{l}}\left(z_{m}+\frac{\left(B\ell\right)^{2}}{Z_{\mathrm{el}}}\right)U_{l} & =p_{l}S_{l}-p_{r}S_{r}+\frac{B\ell}{Z_{\mathrm{el}}}V_{\mathrm{in}},\\
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\frac{1}{S_{l}}\left(z_{m}+\frac{\left(B\ell\right)^{2}}{Z_{\mathrm{el}}}\right)U_{l} & =p_{l}S_{l}-p_{r}S_{r}+\frac{B\ell}{Z_{\mathrm{el}}}V_{\mathrm{in}},\label{eq:U_vs_V}\\
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U_{r}-U_{l} & =0,
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U_{r}-U_{l} & =0,
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\end{align}
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\end{align}
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@ -8869,6 +8875,147 @@ where
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\end_layout
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\end_layout
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\begin_layout Subsection
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Computing the voltage input for given velocity
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\end_layout
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\begin_layout Standard
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Suppose we know the membrane velocity, and we want to know the corresponding
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driving voltage.
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For that we can rearrange Eq.
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\begin_inset space ~
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\end_inset
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\begin_inset CommandInset ref
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LatexCommand ref
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reference "eq:U_vs_V"
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\end_inset
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a bit:
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\begin_inset Note Note
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status open
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\begin_layout Plain Layout
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\begin_inset Formula $\frac{1}{S_{l}}\left(z_{m}+\frac{\left(B\ell\right)^{2}}{Z_{\mathrm{el}}}\right)U_{l}=p_{l}S_{l}-p_{r}S_{r}+\frac{B\ell}{Z_{\mathrm{el}}}V_{\mathrm{in}}$
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\end_inset
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\end_layout
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\begin_layout Plain Layout
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Filling in
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\begin_inset Formula $S_{l}$
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\end_inset
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is
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\begin_inset Formula $S_{r}$
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\end_inset
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=
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\begin_inset Formula $S_{d}$
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\end_inset
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and
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\begin_inset Formula $\frac{p_{r}-p_{l}}{U}=Z_{\mathrm{ac}}$
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\end_inset
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\end_layout
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\begin_layout Plain Layout
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\begin_inset Formula $\left(z_{m}+\frac{\left(B\ell\right)^{2}}{Z_{\mathrm{el}}}+Z_{\mathrm{ac}}S\right)U=\frac{S_{d}B\ell}{Z_{\mathrm{el}}}V_{\mathrm{in}}$
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\end_inset
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\end_layout
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\begin_layout Plain Layout
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Or:
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\end_layout
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\begin_layout Plain Layout
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\begin_inset Formula $\left(\frac{B\ell}{S_{d}}+\frac{Z_{\mathrm{el}}\left(Z_{\mathrm{ac}}+z_{m}/S_{d}\right)}{B\ell}\right)U=V_{\mathrm{in}}$
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\end_inset
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\end_layout
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\end_inset
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\end_layout
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\begin_layout Standard
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\begin_inset Formula
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\begin{equation}
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V_{\mathrm{in}}=\left(\frac{B\ell}{S_{d}}+\frac{Z_{\mathrm{el}}\left(Z_{\mathrm{ac}}+z_{m}/S_{d}\right)}{B\ell}\right)U,
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\end{equation}
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\end_inset
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or equivalently in terms of the mechanical velocity:
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\begin_inset Note Note
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status open
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\begin_layout Plain Layout
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\begin_inset Formula $\frac{B\ell^{2}+Z_{\mathrm{el}}\left(Z_{\mathrm{ac}}S_{d}+z_{m}\right)}{B\ell}u=V_{\mathrm{in}}$
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\end_inset
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\end_layout
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\end_inset
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\begin_inset Formula
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\begin{equation}
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V_{\mathrm{in}}=\frac{B\ell^{2}+Z_{\mathrm{el}}\left(Z_{\mathrm{ac}}S_{d}+z_{m}\right)}{B\ell}u
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\end{equation}
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\end_inset
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For a COMSOL implementation, in terms of the computed acoustic pressure
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and derivatives thereof (to create a linear system of equations):
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\begin_inset Note Note
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status open
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\begin_layout Plain Layout
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\begin_inset Formula $V_{\mathrm{in}}=\frac{B\ell^{2}u+Z_{\mathrm{el}}\left(p+z_{m}u\right)}{B\ell}$
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\end_inset
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\end_layout
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\begin_layout Plain Layout
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\begin_inset Formula $V_{\mathrm{in}}=\left(B\ell+\frac{Z_{\mathrm{el}}z_{m}}{B\ell}\right)u+\frac{Z_{\mathrm{el}}}{B\ell}p$
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\end_inset
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\end_layout
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\end_inset
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\begin_inset Formula
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\begin{equation}
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V_{\mathrm{in}}=\left(B\ell+\frac{Z_{\mathrm{el}}z_{m}}{B\ell}\right)u+\frac{Z_{\mathrm{el}}}{B\ell}F_{\mathrm{spk}},
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\end{equation}
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\end_inset
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where
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\begin_inset Formula $F_{\mathrm{spk}}$
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\end_inset
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is the net force the speaker exerts
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\emph on
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on the fluid
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\emph default
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.
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\end_layout
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\begin_layout Section
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\begin_layout Section
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As antireciprocal segment
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As antireciprocal segment
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\end_layout
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\end_layout
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@ -10918,6 +11065,10 @@ Slit orifice
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Lookup model
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Lookup model
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\end_layout
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\end_layout
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\begin_layout Section
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COMSOL model
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\end_layout
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\begin_layout Standard
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\begin_layout Standard
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\align left
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\align left
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LRFTubes allows importing transfer matrix data from externally computed
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LRFTubes allows importing transfer matrix data from externally computed
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@ -11013,6 +11164,124 @@ LookupModel
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.
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.
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\end_layout
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\end_layout
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\begin_layout Subsection
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SPICE model
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\end_layout
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\begin_layout Standard
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\begin_inset Float figure
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wide false
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sideways false
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status open
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\begin_layout Plain Layout
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\noindent
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\align center
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\begin_inset Graphics
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filename img/two_port_probing.pdf
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width 90text%
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\end_inset
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\end_layout
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\begin_layout Plain Layout
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\begin_inset Caption Standard
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\begin_layout Plain Layout
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Two-port model, probing the transfer matrix by computing the simulation
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output.
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\end_layout
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\end_inset
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\begin_inset CommandInset label
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LatexCommand label
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name "fig:2-port-probing"
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\end_inset
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\end_layout
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\end_inset
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\end_layout
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\begin_layout Standard
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A SPICE model can be created from a COMSOL model, by performing a circuit
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analysis of the system in two cases, one is the situation providing a voltage
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source on one side, and measuring the current going in, and the current
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going out on the other side, while the element is short-circuited.
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The other is similar, only in this case the segment is
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\emph on
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open
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\emph default
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on the other side.
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Fig.
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\begin_inset space ~
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\end_inset
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\begin_inset CommandInset ref
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LatexCommand ref
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reference "fig:2-port-probing"
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\end_inset
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shows the schematic of the two cases that need to be computed.
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If we assume:
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\begin_inset Formula
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\begin{equation}
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\left\{ \begin{array}{c}
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p\\
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U
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\end{array}\right\} _{R}=\left[\begin{array}{cc}
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A & B\\
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C & D
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\end{array}\right]\left\{ \begin{array}{c}
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p\\
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U
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\end{array}\right\} _{L},
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\end{equation}
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\end_inset
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for the components of the transfer matrix, we can set the following equations:
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\begin_inset Formula
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\begin{align}
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U_{R}^{(1)} & =C+DU_{L}^{(1)},\\
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0 & =A+BU_{L}^{(1)},\\
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0 & =C+DU_{L}^{(2)},\\
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p_{R}^{(2)} & =A+BU_{L}^{(2)},
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\end{align}
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\end_inset
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which gives four equations, for the four unknown transfer matrix coefficients.
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We can directly perform this computation using the method
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\family typewriter
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LookupModel.from_pU
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\family default
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in
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\begin_inset ERT
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status open
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\begin_layout Plain Layout
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\backslash
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lrftubes
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\end_layout
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\end_inset
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.
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\end_layout
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\begin_layout Chapter
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\begin_layout Chapter
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Measuring the transmission matrix using the four microphone method
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Measuring the transmission matrix using the four microphone method
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\end_layout
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\end_layout
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@ -12708,6 +12977,17 @@ acpr.delta/acpr.rho_c
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Or we could write this with a custom density and speed of sound <— TODO!
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Or we could write this with a custom density and speed of sound <— TODO!
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\end_layout
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\end_layout
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\begin_layout Standard
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2D Axisymmetric:
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\end_layout
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\begin_layout Standard
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\family typewriter
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(hnu*(test(pr)*pr+pz*test(pz))+test(p)*p*acpr.ik^2*(1-gamma)*hkappa)*acpr.delta/ac
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pr.rho_c
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\end_layout
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\begin_layout Standard
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\begin_layout Standard
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\begin_inset CommandInset bibtex
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\begin_inset CommandInset bibtex
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LatexCommand bibtex
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LatexCommand bibtex
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Reference in New Issue
Block a user