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--- dummy [2026/05/18 02:58] – mexleadmin
+++ dummy [2026/05/26 13:48] (current) – removed mexleadmin
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-===== Exercises =====
-#@TaskTitle_HTML@##@Lvl_HTML@#~~#@ee2_taskctr#~~  Quick check: ideal transformer voltage and current ratio
-#@TaskText_HTML@#
-A transformer has $N_1=1200$ turns and $N_2=300$ turns.
-The primary RMS voltage is $U_1=230~{\rm V}$.
-The secondary side supplies a load current $I_2=2.0~{\rm A}$.
-. Calculate the turns ratio $n$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2001~@#
-<WRAP leftalign>
-The turns ratio of an ideal transformer is defined as:
-\begin{align*}
-n=\frac{N_1}{N_2}
-\end{align*}
-Insert the given values:
-\begin{align*}
-n
-&=
-\frac{1200}{300}
-\\
-&=
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2001~@#
-\begin{align*}
-n=4
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Calculate the ideal secondary voltage $U_2$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2002~@#
-<WRAP leftalign>
-For an ideal transformer, the voltage ratio follows the turns ratio:
-\begin{align*}
-n=\frac{U_1}{U_2}
-\end{align*}
-Therefore:
-\begin{align*}
-U_2
-&=
-\frac{U_1}{n}
-\\
-&=
-\frac{230~{\rm V}}{4}
-\\
-&=
-.5~{\rm V}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2002~@#
-\begin{align*}
-U_2=57.5~{\rm V}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Calculate the magnitude of the ideal primary current $I_1$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2003~@#
-<WRAP leftalign>
-For the ideal transformer, the current ratio is inverse to the voltage ratio:
-\begin{align*}
-I_1=\frac{I_2}{n}
-\end{align*}
-Insert the values:
-\begin{align*}
-I_1
-&=
-\frac{2.0~{\rm A}}{4}
-\\
-&=
-.50~{\rm A}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2003~@#
-\begin{align*}
-I_1=0.50~{\rm A}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. State whether this is a step-up or step-down transformer.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2004~@#
-<WRAP leftalign>
-Compare the primary and secondary voltages:
-\begin{align*}
-U_1 &= 230~{\rm V}
-\\
-U_2 &= 57.5~{\rm V}
-\end{align*}
-Since
-\begin{align*}
-U_2<U_1
-\end{align*}
-the transformer reduces the voltage.
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2004~@#
-The transformer is a step-down transformer.
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-#@TaskEnd_HTML@#
-#@TaskTitle_HTML@##@Lvl_HTML@#~~#@ee2_taskctr#~~  Quick check: mutual inductance from reluctance
-#@TaskText_HTML@#
-Two coils are wound on the same ideal magnetic core.
-The main magnetic reluctance is
-\begin{align*}
-R_{\rm mH}=2.0\cdot 10^6~\frac{1}{\rm H}.
-\end{align*}
-The number of turns is $N_1=500$ and $N_2=100$.
-. Calculate $L_{1{\rm H}}$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2005~@#
-<WRAP leftalign>
-The main-flux inductance of coil 1 is:
-\begin{align*}
-L_{1{\rm H}}
-=
-\frac{N_1^2}{R_{\rm mH}}
-\end{align*}
-Insert the values:
-\begin{align*}
-L_{1{\rm H}}
-&=
-\frac{500^2}{2.0\cdot 10^6~1/{\rm H}}
-\\
-&=
-.125~{\rm H}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2005~@#
-\begin{align*}
-L_{1{\rm H}}=0.125~{\rm H}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Calculate $L_{2{\rm H}}$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2006~@#
-<WRAP leftalign>
-The main-flux inductance of coil 2 is:
-\begin{align*}
-L_{2{\rm H}}
-=
-\frac{N_2^2}{R_{\rm mH}}
-\end{align*}
-Insert the values:
-\begin{align*}
-L_{2{\rm H}}
-&=
-\frac{100^2}{2.0\cdot 10^6~1/{\rm H}}
-\\
-&=
-.0050~{\rm H}
-\\
-&=
-.0~{\rm mH}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2006~@#
-\begin{align*}
-L_{2{\rm H}}
-=
-.0050~{\rm H}
-=
-.0~{\rm mH}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Calculate $M$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2007~@#
-<WRAP leftalign>
-The mutual inductance is:
-\begin{align*}
-M
-=
-\frac{N_1N_2}{R_{\rm mH}}
-\end{align*}
-Insert the values:
-\begin{align*}
-M
-&=
-\frac{500\cdot 100}{2.0\cdot 10^6~1/{\rm H}}
-\\
-&=
-.025~{\rm H}
-\\
-&=
-~{\rm mH}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2007~@#
-\begin{align*}
-M
-=
-.025~{\rm H}
-=
-~{\rm mH}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Check whether the units are correct.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2008~@#
-<WRAP leftalign>
-The reluctance is given in:
-\begin{align*}
-[R_{\rm mH}]=\frac{1}{\rm H}
-\end{align*}
-The number of turns is dimensionless. Therefore:
-\begin{align*}
-\left[
-\frac{N^2}{R_{\rm mH}}
-\right]
-=
-\frac{1}{1/{\rm H}}
-=
-{\rm H}
-\end{align*}
-The same argument applies to the mutual inductance:
-\begin{align*}
-\left[
-\frac{N_1N_2}{R_{\rm mH}}
-\right]
-=
-{\rm H}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2008~@#
-The unit is correct because
-\begin{align*}
-\frac{1}{1/{\rm H}}={\rm H}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-#@TaskEnd_HTML@#
-#@TaskTitle_HTML@##@Lvl_HTML@#~~#@ee2_taskctr#~~  Mutual inductance and leakage from a magnetic path
-#@TaskText_HTML@#
-Two coils are wound on the same magnetic core. The shared main magnetic path has the reluctance
-\begin{align*}
-R_{\rm mH}=1.6\cdot 10^6~\frac{1}{\rm H}.
-\end{align*}
-The numbers of turns are
-\begin{align*}
-N_1=400,
-\qquad
-N_2=100.
-\end{align*}
-The leakage inductances are
-\begin{align*}
-L_{1\sigma}=4.0~{\rm mH},
-\qquad
-L_{2\sigma}=0.30~{\rm mH}.
-\end{align*}
-Calculate:
-  * $L_{1{\rm H}}$
-  * $L_{2{\rm H}}$
-  * $M$
-  * the total self-inductances $L_1$ and $L_2$
-  * the coupling coefficient $k=\frac{M}{\sqrt{L_1L_2}}$
-. Calculate $L_{1{\rm H}}$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2009~@#
-<WRAP leftalign>
-The main-flux self-inductance of coil 1 is:
-\begin{align*}
-L_{1{\rm H}}
-=
-\frac{N_1^2}{R_{\rm mH}}
-\end{align*}
-Insert the values:
-\begin{align*}
-L_{1{\rm H}}
-&=
-\frac{400^2}{1.6\cdot 10^6~1/{\rm H}}
-\\
-&=
-.100~{\rm H}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2009~@#
-\begin{align*}
-L_{1{\rm H}}=0.100~{\rm H}=100~{\rm mH}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Calculate $L_{2{\rm H}}$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2010~@#
-<WRAP leftalign>
-The main-flux self-inductance of coil 2 is:
-\begin{align*}
-L_{2{\rm H}}
-=
-\frac{N_2^2}{R_{\rm mH}}
-\end{align*}
-Insert the values:
-\begin{align*}
-L_{2{\rm H}}
-&=
-\frac{100^2}{1.6\cdot 10^6~1/{\rm H}}
-\\
-&=
-.00625~{\rm H}
-\\
-&=
-.25~{\rm mH}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2010~@#
-\begin{align*}
-L_{2{\rm H}}
-=
-.00625~{\rm H}
-=
-.25~{\rm mH}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Calculate $M$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2011~@#
-<WRAP leftalign>
-The mutual inductance is:
-\begin{align*}
-M
-=
-\frac{N_1N_2}{R_{\rm mH}}
-\end{align*}
-Insert the values:
-\begin{align*}
-M
-&=
-\frac{400\cdot 100}{1.6\cdot 10^6~1/{\rm H}}
-\\
-&=
-.025~{\rm H}
-\\
-&=
-~{\rm mH}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2011~@#
-\begin{align*}
-M
-=
-.025~{\rm H}
-=
-~{\rm mH}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Calculate the total self-inductances $L_1$ and $L_2$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2012~@#
-<WRAP leftalign>
-The total self-inductance is the sum of main-flux inductance and leakage inductance.
-For coil 1:
-\begin{align*}
-L_1
-&=
-L_{1{\rm H}}+L_{1\sigma}
-\\
-&=
-~{\rm mH}+4.0~{\rm mH}
-\\
-&=
-~{\rm mH}
-\end{align*}
-For coil 2:
-\begin{align*}
-L_2
-&=
-L_{2{\rm H}}+L_{2\sigma}
-\\
-&=
-.25~{\rm mH}+0.30~{\rm mH}
-\\
-&=
-.55~{\rm mH}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2012~@#
-\begin{align*}
-L_1 &= 104~{\rm mH}
-\\
-L_2 &= 6.55~{\rm mH}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Calculate the coupling coefficient $k=\frac{M}{\sqrt{L_1L_2}}$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2013~@#
-<WRAP leftalign>
-The coupling coefficient is:
-\begin{align*}
-k
-=
-\frac{M}{\sqrt{L_1L_2}}
-\end{align*}
-Insert the values in henry:
-\begin{align*}
-k
-&=
-\frac{0.025~{\rm H}}{\sqrt{0.104~{\rm H}\cdot 0.00655~{\rm H}}}
-\\
-&\approx
-.96
-\end{align*}
-The coupling is strong, but not ideal, because leakage inductances are present.
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2013~@#
-\begin{align*}
-k\approx 0.96
-\end{align*}
-The coupling is strong, but not ideal.
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-#@TaskEnd_HTML@#
-#@TaskTitle_HTML@##@Lvl_HTML@#~~#@ee2_taskctr#~~  Quick check: referring secondary quantities to the primary side
-#@TaskText_HTML@#
-A transformer has $n=5$.
-The secondary winding resistance is $R_2=0.20~\Omega$ and the secondary leakage reactance is $X_{2\sigma}=0.35~\Omega$.
-Calculate the values $R'_2$ and $X'_{2\sigma}$ referred to the primary side.
-. Calculate $R'_2$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2014~@#
-<WRAP leftalign>
-When a resistance is referred from the secondary side to the primary side, it is multiplied by $n^2$:
-\begin{align*}
-R'_2
-=
-n^2R_2
-\end{align*}
-Insert the values:
-\begin{align*}
-R'_2
-&=
-^2\cdot 0.20~\Omega
-\\
-&=
-\cdot 0.20~\Omega
-\\
-&=
-.0~\Omega
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2014~@#
-\begin{align*}
-R'_2=5.0~\Omega
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Calculate $X'_{2\sigma}$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2015~@#
-<WRAP leftalign>
-The secondary leakage reactance is also referred to the primary side by multiplying with $n^2$:
-\begin{align*}
-X'_{2\sigma}
-=
-n^2X_{2\sigma}
-\end{align*}
-Insert the values:
-\begin{align*}
-X'_{2\sigma}
-&=
-^2\cdot 0.35~\Omega
-\\
-&=
-\cdot 0.35~\Omega
-\\
-&=
-.75~\Omega
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2015~@#
-\begin{align*}
-X'_{2\sigma}=8.75~\Omega
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Check the unit.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2016~@#
-<WRAP leftalign>
-The turns ratio $n$ is dimensionless:
-\begin{align*}
-[n]=1
-\end{align*}
-Therefore, multiplying by $n^2$ does not change the unit:
-\begin{align*}
-[R'_2] &= \Omega
-\\
-[X'_{2\sigma}] &= \Omega
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2016~@#
-The unit remains $\Omega$, because $n$ is dimensionless.
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-#@TaskEnd_HTML@#
-#@TaskTitle_HTML@##@Lvl_HTML@#~~#@ee2_taskctr#~~  Quick check: short-circuit voltage and fault current
-#@TaskText_HTML@#
-A transformer has a rated primary current $I_{1{\rm N}}=10~{\rm A}$ and a short-circuit voltage $u_{\rm k}=5~\%$.
-. Calculate the continuous short-circuit current $I_{1{\rm k}}$ when rated primary voltage is applied.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2017~@#
-<WRAP leftalign>
-The short-circuit current can be estimated from the rated current and the relative short-circuit voltage:
-\begin{align*}
-I_{1{\rm k}}
-=
-I_{1{\rm N}}\cdot \frac{100~\%}{u_{\rm k}}
-\end{align*}
-Insert the values:
-\begin{align*}
-I_{1{\rm k}}
-&=
-~{\rm A}\cdot \frac{100~\%}{5~\%}
-\\
-&=
-~{\rm A}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2017~@#
-\begin{align*}
-I_{1{\rm k}}=200~{\rm A}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Estimate the initial peak short-circuit current $i_{\rm p}$ using $i_{\rm p}\approx 2.54 I_{1{\rm k}}$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2018~@#
-<WRAP leftalign>
-The initial peak current is estimated by:
-\begin{align*}
-i_{\rm p}
-\approx
-.54\cdot I_{1{\rm k}}
-\end{align*}
-Insert the continuous short-circuit current:
-\begin{align*}
-i_{\rm p}
-&\approx
-.54\cdot 200~{\rm A}
-\\
-&=
-~{\rm A}
-\end{align*}
-The short-circuit current is much larger than the rated current. Protection devices must be selected accordingly.
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2018~@#
-\begin{align*}
-i_{\rm p}\approx 508~{\rm A}
-\end{align*}
-Protection devices must be selected accordingly.
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-#@TaskEnd_HTML@#
-#@TaskTitle_HTML@##@Lvl_HTML@#~~#@ee2_taskctr#~~  Longer exercise: transformer equivalent circuit for an actuator supply
-#@TaskText_HTML@#
-A single-phase transformer supplies an actuator driver.
-Rated data and equivalent circuit data are:
-\begin{align*}
-U_{1{\rm N}}&=230~{\rm V},
-&
-U_{2{\rm N}}&=23~{\rm V},
-&
-I_{2{\rm N}}&=5.0~{\rm A},
-\\
-R_1&=1.2~\Omega,
-&
-X_{1\sigma}&=1.8~\Omega,
-\\
-R_2&=0.012~\Omega,
-&
-X_{2\sigma}&=0.018~\Omega.
-\end{align*}
-Assume $n=\frac{U_{1{\rm N}}}{U_{2{\rm N}}}$. The magnetizing branch is neglected for the loaded operating point.
-. Calculate $n$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2019~@#
-<WRAP leftalign>
-The turns ratio is estimated from the rated voltages:
-\begin{align*}
-n
-=
-\frac{U_{1{\rm N}}}{U_{2{\rm N}}}
-\end{align*}
-Insert the values:
-\begin{align*}
-n
-&=
-\frac{230~{\rm V}}{23~{\rm V}}
-\\
-&=
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2019~@#
-\begin{align*}
-n=10
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Refer $R_2$ and $X_{2\sigma}$ to the primary side.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2020~@#
-<WRAP leftalign>
-Secondary quantities are referred to the primary side by multiplying them with $n^2$:
-\begin{align*}
-R'_2 &= n^2R_2
-\\
-X'_{2\sigma} &= n^2X_{2\sigma}
-\end{align*}
-With $n=10$:
-\begin{align*}
-R'_2
-&=
-^2\cdot 0.012~\Omega
-\\
-&=
-.2~\Omega
-\\[4pt]
-X'_{2\sigma}
-&=
-^2\cdot 0.018~\Omega
-\\
-&=
-.8~\Omega
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2020~@#
-\begin{align*}
-R'_2 &= 1.2~\Omega
-\\
-X'_{2\sigma} &= 1.8~\Omega
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Calculate $R_{\rm k}$ and $X_{\rm k}$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2021~@#
-<WRAP leftalign>
-The short-circuit equivalent values are the sums of the primary quantities and the referred secondary quantities:
-\begin{align*}
-R_{\rm k}
-&=
-R_1+R'_2
-\\
-X_{\rm k}
-&=
-X_{1\sigma}+X'_{2\sigma}
-\end{align*}
-Insert the values:
-\begin{align*}
-R_{\rm k}
-&=
-.2~\Omega+1.2~\Omega
-\\
-&=
-.4~\Omega
-\\[4pt]
-X_{\rm k}
-&=
-.8~\Omega+1.8~\Omega
-\\
-&=
-.6~\Omega
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2021~@#
-\begin{align*}
-R_{\rm k} &= 2.4~\Omega
-\\
-X_{\rm k} &= 3.6~\Omega
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Calculate the primary rated current magnitude $I_{1{\rm N}}$ using the ideal current ratio.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2022~@#
-<WRAP leftalign>
-For an ideal transformer, the primary current magnitude is:
-\begin{align*}
-I_{1{\rm N}}
-=
-\frac{I_{2{\rm N}}}{n}
-\end{align*}
-Insert the values:
-\begin{align*}
-I_{1{\rm N}}
-&=
-\frac{5.0~{\rm A}}{10}
-\\
-&=
-.50~{\rm A}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2022~@#
-\begin{align*}
-I_{1{\rm N}}=0.50~{\rm A}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Estimate the magnitude of the internal voltage drop $U_{\rm k}\approx |\underline{Z}_{\rm k}|I_{1{\rm N}}$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2023~@#
-<WRAP leftalign>
-First calculate the magnitude of the short-circuit impedance:
-\begin{align*}
-|\underline{Z}_{\rm k}|
-=
-\sqrt{R_{\rm k}^2+X_{\rm k}^2}
-\end{align*}
-Insert the values:
-\begin{align*}
-|\underline{Z}_{\rm k}|
-&=
-\sqrt{(2.4~\Omega)^2+(3.6~\Omega)^2}
-\\
-&=
-.33~\Omega
-\end{align*}
-Now calculate the internal voltage drop:
-\begin{align*}
-U_{\rm k}
-&\approx
-|\underline{Z}_{\rm k}|I_{1{\rm N}}
-\\
-&=
-.33~\Omega\cdot 0.50~{\rm A}
-\\
-&=
-.17~{\rm V}
-\end{align*}
-This is a primary-side voltage drop. On the secondary side:
-\begin{align*}
-\frac{2.17~{\rm V}}{10}
-=
-.217~{\rm V}
-\end{align*}
-For a $23~{\rm V}$ actuator supply this is small but not zero.
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2023~@#
-\begin{align*}
-|\underline{Z}_{\rm k}| &= 4.33~\Omega
-\\
-U_{\rm k} &\approx 2.17~{\rm V}
-\end{align*}
-Secondary-side equivalent:
-\begin{align*}
-U_{\rm k,2}\approx 0.217~{\rm V}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-#@TaskEnd_HTML@#
-#@TaskTitle_HTML@##@Lvl_HTML@#~~#@ee2_taskctr#~~  Short-circuit voltage from the transformer impedance
-#@TaskText_HTML@#
-A transformer has the rated primary data
-\begin{align*}
-U_{1{\rm N}}=230~{\rm V},
-\qquad
-I_{1{\rm N}}=2.0~{\rm A}.
-\end{align*}
-The short-circuit equivalent impedance referred to the primary side is
-\begin{align*}
-R_{\rm k}=1.5~\Omega,
-\qquad
-X_{\rm k}=4.0~\Omega.
-\end{align*}
-Calculate:
-  * $|\underline{Z}_{\rm k}|$
-  * the rated short-circuit voltage $U_{1{\rm k}}$
-  * the relative short-circuit voltage $u_{\rm k}$
-  * the prospective continuous short-circuit current $I_{1{\rm k}}$ for rated primary voltage
-  * the approximate first peak current $i_{\rm peak}\approx 2.54 I_{1{\rm k}}$
-. Calculate $|\underline{Z}_{\rm k}|$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2024~@#
-<WRAP leftalign>
-The short-circuit impedance magnitude is:
-\begin{align*}
-|\underline{Z}_{\rm k}|
-=
-\sqrt{R_{\rm k}^2+X_{\rm k}^2}
-\end{align*}
-Insert the values:
-\begin{align*}
-|\underline{Z}_{\rm k}|
-&=
-\sqrt{(1.5~\Omega)^2+(4.0~\Omega)^2}
-\\
-&=
-.27~\Omega
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2024~@#
-\begin{align*}
-|\underline{Z}_{\rm k}|=4.27~\Omega
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Calculate the rated short-circuit voltage $U_{1{\rm k}}$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2025~@#
-<WRAP leftalign>
-The primary voltage required to drive rated current through the short-circuited transformer is:
-\begin{align*}
-U_{1{\rm k}}
-=
-|\underline{Z}_{\rm k}|I_{1{\rm N}}
-\end{align*}
-Insert the values:
-\begin{align*}
-U_{1{\rm k}}
-&=
-.27~\Omega\cdot 2.0~{\rm A}
-\\
-&=
-.54~{\rm V}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2025~@#
-\begin{align*}
-U_{1{\rm k}}=8.54~{\rm V}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Calculate the relative short-circuit voltage $u_{\rm k}$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2026~@#
-<WRAP leftalign>
-The relative short-circuit voltage is:
-\begin{align*}
-u_{\rm k}
-=
-\frac{U_{1{\rm k}}}{U_{1{\rm N}}}\cdot 100~\%
-\end{align*}
-Insert the values:
-\begin{align*}
-u_{\rm k}
-&=
-\frac{8.54~{\rm V}}{230~{\rm V}}\cdot 100~\%
-\\
-&=
-.71~\%
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2026~@#
-\begin{align*}
-u_{\rm k}=3.71~\%
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Calculate the prospective continuous short-circuit current $I_{1{\rm k}}$ for rated primary voltage.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2027~@#
-<WRAP leftalign>
-The prospective continuous short-circuit current is:
-\begin{align*}
-I_{1{\rm k}}
-=
-I_{1{\rm N}}\cdot \frac{100~\%}{u_{\rm k}}
-\end{align*}
-Insert the values:
-\begin{align*}
-I_{1{\rm k}}
-&=
-.0~{\rm A}\cdot \frac{100}{3.71}
-\\
-&=
-.9~{\rm A}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2027~@#
-\begin{align*}
-I_{1{\rm k}}=53.9~{\rm A}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Calculate the approximate first peak current $i_{\rm peak}\approx 2.54 I_{1{\rm k}}$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2028~@#
-<WRAP leftalign>
-The approximate first peak current is:
-\begin{align*}
-i_{\rm peak}
-\approx
-.54 I_{1{\rm k}}
-\end{align*}
-Insert the short-circuit current:
-\begin{align*}
-i_{\rm peak}
-&\approx
-.54\cdot 53.9~{\rm A}
-\\
-&=
-~{\rm A}
-\end{align*}
-Even though the rated current is only $2.0~{\rm A}$, a short-circuit fault could lead to a much larger current until protection reacts.
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2028~@#
-\begin{align*}
-i_{\rm peak}\approx 137~{\rm A}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-#@TaskEnd_HTML@#
-#@TaskTitle_HTML@##@Lvl_HTML@#~~#@ee2_taskctr#~~  Voltage drop under load using the Kapp approximation
-#@TaskText_HTML@#
-A transformer has the turns ratio
-\begin{align*}
-n=10.
-\end{align*}
-The short-circuit equivalent parameters referred to the primary side are
-\begin{align*}
-R_{\rm k}=2.4~\Omega,
-\qquad
-X_{\rm k}=3.6~\Omega.
-\end{align*}
-The secondary load current is
-\begin{align*}
-I_2=4.0~{\rm A}.
-\end{align*}
-The load has the power factor
-\begin{align*}
-\cos\varphi=0.8
-\end{align*}
-and is inductive.
-Estimate the voltage drop on the secondary side using
-\begin{align*}
-\Delta U_1
-\approx
-I_1\left(R_{\rm k}\cos\varphi+X_{\rm k}\sin\varphi\right)
-\end{align*}
-and
-\begin{align*}
-\Delta U_2\approx \frac{\Delta U_1}{n}.
-\end{align*}
-. Calculate the primary current magnitude $I_1$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2029~@#
-<WRAP leftalign>
-The primary current magnitude is approximately:
-\begin{align*}
-I_1
-=
-\frac{I_2}{n}
-\end{align*}
-Insert the values:
-\begin{align*}
-I_1
-&=
-\frac{4.0~{\rm A}}{10}
-\\
-&=
-.40~{\rm A}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2029~@#
-\begin{align*}
-I_1=0.40~{\rm A}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Determine $\sin\varphi$ for the inductive load.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2030~@#
-<WRAP leftalign>
-For an inductive load with $\cos\varphi=0.8$:
-\begin{align*}
-\sin\varphi
-=
-\sqrt{1-\cos^2\varphi}
-\end{align*}
-Insert the value:
-\begin{align*}
-\sin\varphi
-&=
-\sqrt{1-0.8^2}
-\\
-&=
-.6
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2030~@#
-\begin{align*}
-\sin\varphi=0.6
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Estimate the primary-side voltage drop $\Delta U_1$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2031~@#
-<WRAP leftalign>
-Use the Kapp approximation:
-\begin{align*}
-\Delta U_1
-&\approx
-I_1\left(R_{\rm k}\cos\varphi+X_{\rm k}\sin\varphi\right)
-\end{align*}
-Insert the values:
-\begin{align*}
-\Delta U_1
-&\approx
-.40~{\rm A}
-\left(
-.4~\Omega\cdot 0.8
-+
-.6~\Omega\cdot 0.6
-\right)
-\\
-&=
-.40~{\rm A}
-\left(
-.92~\Omega+2.16~\Omega
-\right)
-\\
-&=
-.63~{\rm V}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2031~@#
-\begin{align*}
-\Delta U_1\approx 1.63~{\rm V}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Estimate the secondary-side voltage drop $\Delta U_2$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2032~@#
-<WRAP leftalign>
-The secondary-side voltage drop is:
-\begin{align*}
-\Delta U_2
-\approx
-\frac{\Delta U_1}{n}
-\end{align*}
-Insert the values:
-\begin{align*}
-\Delta U_2
-&\approx
-\frac{1.63~{\rm V}}{10}
-\\
-&=
-.163~{\rm V}
-\end{align*}
-The secondary voltage decreases by approximately $0.16~{\rm V}$ for this operating point.
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2032~@#
-\begin{align*}
-\Delta U_2\approx 0.163~{\rm V}
-\end{align*}
-The secondary voltage decreases by approximately $0.16~{\rm V}$.
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-#@TaskEnd_HTML@#
-#@TaskTitle_HTML@##@Lvl_HTML@#~~#@ee2_taskctr#~~  Why the magnetizing branch can be neglected in the short-circuit test
-#@TaskText_HTML@#
-A transformer has the rated primary voltage $U_{1{\rm N}}=230~{\rm V}$.
-Its rated primary current is $I_{1{\rm N}}=3.0~{\rm A}$.
-At rated voltage and no-load operation, the magnetizing current is approximately $I_{\rm m,N}=0.12~{\rm A}$.
-The short-circuit voltage is $u_{\rm k}=6.0~\%$.
-Assume that the magnetizing current is approximately proportional to the applied voltage.
-\\ \\ \\
-. Calculate the short-circuit test voltage $U_{1{\rm k}}$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2033~@#
-<WRAP leftalign>
-The short-circuit test voltage is:
-\begin{align*}
-U_{1{\rm k}}
-=
-\frac{u_{\rm k}}{100~\%}\cdot U_{1{\rm N}}
-\end{align*}
-Insert the values:
-\begin{align*}
-U_{1{\rm k}}
-&=
-.06\cdot 230~{\rm V}
-\\
-&=
-.8~{\rm V}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2033~@#
-\begin{align*}
-U_{1{\rm k}}=13.8~{\rm V}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Estimate the magnetizing current $I_{\rm m,k}$ during the short-circuit test.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2034~@#
-<WRAP leftalign>
-The magnetizing current is assumed to be proportional to the voltage:
-\begin{align*}
-I_{\rm m,k}
-=
-I_{\rm m,N}\cdot \frac{U_{1{\rm k}}}{U_{1{\rm N}}}
-\end{align*}
-Insert the values:
-\begin{align*}
-I_{\rm m,k}
-&=
-.12~{\rm A}\cdot \frac{13.8~{\rm V}}{230~{\rm V}}
-\\
-&=
-.0072~{\rm A}
-\\
-&=
-.2~{\rm mA}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2034~@#
-\begin{align*}
-I_{\rm m,k}
-=
-.0072~{\rm A}
-=
-.2~{\rm mA}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Compare $I_{\rm m,k}$ with $I_{1{\rm N}}$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2035~@#
-<WRAP leftalign>
-Compare the short-circuit magnetizing current with the rated current:
-\begin{align*}
-\frac{I_{\rm m,k}}{I_{1{\rm N}}}
-=
-\frac{0.0072~{\rm A}}{3.0~{\rm A}}
-\end{align*}
-Calculate the ratio:
-\begin{align*}
-\frac{I_{\rm m,k}}{I_{1{\rm N}}}
-&=
-.0024
-\\
-&=
-.24~\%
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2035~@#
-\begin{align*}
-\frac{I_{\rm m,k}}{I_{1{\rm N}}}
-=
-.24~\%
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Explain why the magnetizing branch can be neglected.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2036~@#
-<WRAP leftalign>
-During the short-circuit test, the applied voltage is much smaller than the rated voltage:
-\begin{align*}
-U_{1{\rm k}} \ll U_{1{\rm N}}
-\end{align*}
-Since the magnetizing current is assumed to be approximately proportional to the applied voltage, the magnetizing current is also very small:
-\begin{align*}
-I_{\rm m,k}=7.2~{\rm mA}
-\end{align*}
-Compared with the rated current:
-\begin{align*}
-I_{1{\rm N}}=3.0~{\rm A}
-\end{align*}
-the magnetizing current is only $0.24~\%$.
-So during the short-circuit test, almost all current flows through the short-circuit path consisting of $R_{\rm k}$ and $X_{\rm k}$.
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2036~@#
-The magnetizing branch $R_{\rm Fe}\parallel jX_{1{\rm H}}$ can usually be neglected in the short-circuit test.
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-#@TaskEnd_HTML@#
-#@TaskTitle_HTML@##@Lvl_HTML@#~~#@ee2_taskctr#~~  Why the short-circuit equivalent circuit is often sufficient under load
-#@TaskText_HTML@#
-A transformer has the turns ratio $n=10$. The short-circuit equivalent parameters referred to the primary side are $R_{\rm k}=2.0~\Omega$, $X_{\rm k}=4.0~\Omega$.
-The secondary load current is $I_2=5.0~{\rm A}$. The load is ohmic-inductive with $\cos\varphi=0.8$.
-The no-load current on the primary side is approximately $I_{10}=0.03~{\rm A}$.
-\\ \\ \\
-. Calculate the load-related primary current $I'_2$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2037~@#
-<WRAP leftalign>
-The load-related primary current is:
-\begin{align*}
-I'_2
-=
-\frac{I_2}{n}
-\end{align*}
-Insert the values:
-\begin{align*}
-I'_2
-&=
-\frac{5.0~{\rm A}}{10}
-\\
-&=
-.50~{\rm A}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2037~@#
-\begin{align*}
-I'_2=0.50~{\rm A}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Estimate the primary-side voltage drop.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2038~@#
-<WRAP leftalign>
-The voltage drop is estimated with:
-\begin{align*}
-\Delta U_1
-\approx
-I'_2
-\left(
-R_{\rm k}\cos\varphi
-+
-X_{\rm k}\sin\varphi
-\right)
-\end{align*}
-For $\cos\varphi=0.8$:
-\begin{align*}
-\sin\varphi
-&=
-\sqrt{1-\cos^2\varphi}
-\\
-&=
-\sqrt{1-0.8^2}
-\\
-&=
-.6
-\end{align*}
-Insert the values:
-\begin{align*}
-\Delta U_1
-&\approx
-.50~{\rm A}
-\left(
-.0~\Omega\cdot 0.8
-+
-.0~\Omega\cdot 0.6
-\right)
-\\
-&=
-.50~{\rm A}
-\left(
-.6~\Omega+2.4~\Omega
-\right)
-\\
-&=
-.0~{\rm V}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2038~@#
-\begin{align*}
-\Delta U_1\approx 2.0~{\rm V}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Calculate the secondary-side voltage drop $\Delta U_2\approx \frac{\Delta U_1}{n}$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2039~@#
-<WRAP leftalign>
-The secondary-side voltage drop is:
-\begin{align*}
-\Delta U_2
-\approx
-\frac{\Delta U_1}{n}
-\end{align*}
-Insert the values:
-\begin{align*}
-\Delta U_2
-&\approx
-\frac{2.0~{\rm V}}{10}
-\\
-&=
-.20~{\rm V}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2039~@#
-\begin{align*}
-\Delta U_2\approx 0.20~{\rm V}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Estimate an upper bound for the neglected voltage drop caused by $I_{10}$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2040~@#
-<WRAP leftalign>
-First calculate the magnitude of the short-circuit impedance:
-\begin{align*}
-|\underline{Z}_{\rm k}|
-=
-\sqrt{R_{\rm k}^2+X_{\rm k}^2}
-\end{align*}
-Insert the values:
-\begin{align*}
-|\underline{Z}_{\rm k}|
-&=
-\sqrt{(2.0~\Omega)^2+(4.0~\Omega)^2}
-\\
-&=
-.47~\Omega
-\end{align*}
-The upper bound for the voltage drop caused by the no-load current is:
-\begin{align*}
-\Delta U_{1,10}
-&\leq
-|\underline{Z}_{\rm k}|I_{10}
-\\
-&=
-.47~\Omega\cdot 0.03~{\rm A}
-\\
-&=
-.134~{\rm V}
-\end{align*}
-On the secondary side:
-\begin{align*}
-\Delta U_{2,10}
-&\leq
-\frac{0.134~{\rm V}}{10}
-\\
-&=
-.0134~{\rm V}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2040~@#
-\begin{align*}
-|\underline{Z}_{\rm k}| &= 4.47~\Omega
-\\
-\Delta U_{1,10} &\leq 0.134~{\rm V}
-\\
-\Delta U_{2,10} &\leq 0.0134~{\rm V}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Decide whether the short-circuit equivalent circuit is sufficient for this load estimate.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2041~@#
-<WRAP leftalign>
-The load-related secondary-side voltage drop is:
-\begin{align*}
-\Delta U_2\approx 0.20~{\rm V}
-\end{align*}
-The estimated neglected secondary-side voltage drop caused by the no-load current is at most:
-\begin{align*}
-\Delta U_{2,10}\leq 0.0134~{\rm V}
-\end{align*}
-This is small compared with the load-related drop of $0.20~{\rm V}$.
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2041~@#
-For this engineering estimate, the short-circuit equivalent circuit is sufficient.
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-#@TaskEnd_HTML@#
-#@TaskTitle_HTML@##@Lvl_HTML@#~~#@ee2_taskctr#~~  Ideal transformer versus real transformer
-#@TaskText_HTML@#
-A transformer has the rated primary voltage of $U_1=230~{\rm V}$ and and the turns ratio $n=10$. A resistive load draws $I_2=4.0~{\rm A}$. \\
-For the real transformer, the short-circuit equivalent parameters referred to the primary side are $R_{\rm k}=2.4~\Omega$, $X_{\rm k}=3.2~\Omega$. \\
-The iron loss is approximately $P_{\rm Fe}=1.5~{\rm W}$. \\
-Assume a resistive load with $\cos\varphi=1$.
-\\ \\
-. Calculate the ideal secondary voltage $U_{2,\rm ideal}$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2042~@#
-<WRAP leftalign>
-For the ideal transformer:
-\begin{align*}
-U_{2,\rm ideal}
-=
-\frac{U_1}{n}
-\end{align*}
-Insert the values:
-\begin{align*}
-U_{2,\rm ideal}
-&=
-\frac{230~{\rm V}}{10}
-\\
-&=
-.0~{\rm V}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2042~@#
-\begin{align*}
-U_{2,\rm ideal}=23.0~{\rm V}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Calculate the load-related primary current $I'_2$.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2043~@#
-<WRAP leftalign>
-The load-related primary current is:
-\begin{align*}
-I'_2
-=
-\frac{I_2}{n}
-\end{align*}
-Insert the values:
-\begin{align*}
-I'_2
-&=
-\frac{4.0~{\rm A}}{10}
-\\
-&=
-.40~{\rm A}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2043~@#
-\begin{align*}
-I'_2=0.40~{\rm A}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Estimate the real secondary voltage.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2044~@#
-<WRAP leftalign>
-For a resistive load, the approximate primary-side voltage drop is:
-\begin{align*}
-\Delta U_1
-\approx
-I'_2R_{\rm k}
-\end{align*}
-Insert the values:
-\begin{align*}
-\Delta U_1
-&\approx
-.40~{\rm A}\cdot 2.4~\Omega
-\\
-&=
-.96~{\rm V}
-\end{align*}
-The corresponding secondary-side voltage drop is:
-\begin{align*}
-\Delta U_2
-&\approx
-\frac{\Delta U_1}{n}
-\\
-&=
-\frac{0.96~{\rm V}}{10}
-\\
-&=
-.096~{\rm V}
-\end{align*}
-Thus the real secondary voltage is approximately:
-\begin{align*}
-U_{2,\rm real}
-&\approx
-.0~{\rm V}-0.096~{\rm V}
-\\
-&=
-.90~{\rm V}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2044~@#
-\begin{align*}
-\Delta U_1 &\approx 0.96~{\rm V}
-\\
-\Delta U_2 &\approx 0.096~{\rm V}
-\\
-U_{2,\rm real} &\approx 22.90~{\rm V}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Estimate the copper losses.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2045~@#
-<WRAP leftalign>
-The copper losses are:
-\begin{align*}
-P_{\rm Cu}
-\approx
-R_{\rm k}(I'_2)^2
-\end{align*}
-Insert the values:
-\begin{align*}
-P_{\rm Cu}
-&\approx
-.4~\Omega\cdot (0.40~{\rm A})^2
-\\
-&=
-.384~{\rm W}
-\end{align*}
-The real transformer also has iron losses:
-\begin{align*}
-P_{\rm Fe}=1.5~{\rm W}
-\end{align*}
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2045~@#
-\begin{align*}
-P_{\rm Cu}\approx 0.384~{\rm W}
-\end{align*}
-Additionally:
-\begin{align*}
-P_{\rm Fe}=1.5~{\rm W}
-\end{align*}
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-. Compare ideal and real transformer behavior.
-<WRAP group>
-<WRAP half column rightalign>
-#@PathBegin_HTML~2046~@#
-<WRAP leftalign>
-For the ideal transformer:
-\begin{align*}
-U_{2,\rm ideal}=23.0~{\rm V}
-\end{align*}
-For the real transformer:
-\begin{align*}
-U_{2,\rm real}\approx 22.90~{\rm V}
-\end{align*}
-The real transformer has copper losses and iron losses:
-\begin{align*}
-P_{\rm Cu}&\approx 0.384~{\rm W}
-\\
-P_{\rm Fe}&=1.5~{\rm W}
-\end{align*}
-So the main differences are:
-  * the ideal transformer has exactly $U_2=23.0~{\rm V}$, the real transformer has a slightly lower voltage,
-  * the ideal transformer has no losses, the real transformer has copper and iron losses,
-  * the ideal transformer has no leakage voltage drop, the real transformer has a load-dependent voltage drop.
-For this operating point the transformer is close to ideal, but not exactly ideal.
-</WRAP>
-#@PathEnd_HTML@#
-</WRAP>
-<WRAP half column>
-#@ResultBegin_HTML~2046~@#
-The real transformer differs from the ideal transformer by:
-  * a slightly lower secondary voltage,
-  * copper and iron losses,
-  * a load-dependent voltage drop.
-For this operating point it is close to ideal, but not exactly ideal.
-#@ResultEnd_HTML@#
-</WRAP>
-</WRAP>
-#@TaskEnd_HTML@#