Đáp án:
$\begin{align}
& {{R}_{1}}=60\Omega ;{{R}_{2}}=40\Omega \\
& {{R}_{3}}=16\Omega \\
\end{align}$
Giải thích các bước giải:
$\begin{align}
& U=12V;{{R}_{1}}nt{{R}_{2}};{{P}_{nt}}=1,44W; \\
& {{R}_{1}}//{{R}_{2}};{{P}_{//}}=6W \\
\end{align}$
khi mắc nối tiếp:
$\begin{align}
& {{P}_{nt}}=U.{{I}_{nt}}=\dfrac{{{U}^{2}}}{{{R}_{1}}+{{R}_{2}}} \\
& \Rightarrow {{R}_{1}}+{{R}_{2}}=\dfrac{{{12}^{2}}}{1,44}=100\Omega \\
\end{align}$
khi mắc song song:
$\begin{align}
& {{P}_{//}}=U.{{I}_{//}}=\dfrac{{{U}^{2}}}{\dfrac{{{R}_{1}}.{{R}_{2}}}{{{R}_{1}}+{{R}_{2}}}} \\
& \Rightarrow \dfrac{{{R}_{1}}.{{R}_{2}}}{100}=\dfrac{{{12}^{2}}}{6} \\
& \Rightarrow {{R}_{1}}.{{R}_{2}}=2400(2) \\
\end{align}$
từ (1) và (2):
$\begin{align}
& {{R}_{1}}.(100-{{R}_{1}})=2400 \\
& \Rightarrow {{R}_{2}}=40\Omega ;{{R}_{1}}=60\Omega \\
\end{align}$
b) $\left( {{R}_{1}}//{{R}_{2}} \right)nt{{R}_{3}}$
$\left\{ \begin{align}
& {{I}_{12}}={{I}_{3}} \\
& U={{U}_{12}}+{{U}_{3}} \\
\end{align} \right.$
$\begin{align}
& \dfrac{{{U}_{12}}}{{{R}_{//}}}=\dfrac{{{U}_{3}}}{{{R}_{3}}} \\
& \Leftrightarrow \dfrac{12-{{U}_{3}}}{24}=\dfrac{{{U}_{3}}}{{{R}_{3}}} \\
& \Leftrightarrow {{R}_{3}}=\dfrac{24{{U}_{3}}}{12-{{U}_{3}}}(3) \\
\end{align}$
ta có công suất:
$\begin{align}
& {{P}_{3}}=\dfrac{5}{3}{{P}_{1}} \\
& \Leftrightarrow \dfrac{U_{3}^{2}}{{{R}_{3}}}=\frac{5}{3}.\dfrac{{{U}_{//}}^{2}}{{{R}_{1}}} \\
& \frac{U_{3}^{3}}{\dfrac{24{{U}_{3}}}{12-{{U}_{3}}}}=\frac{5}{3}.\dfrac{{{(12-{{U}_{3}})}^{2}}}{60} \\
& \Leftrightarrow \dfrac{{{U}_{3}}}{24}=\dfrac{5}{3}.\frac{12-{{U}_{3}}}{60} \\
& \Rightarrow {{U}_{3}}=4,8V \\
\end{align}$
Điện trở R3:
${{R}_{3}}=\dfrac{24{{U}_{3}}}{12-{{U}_{3}}}=\dfrac{24.4,8}{12-4,8}=16\Omega $
