Question 18.3: Equivalent Resistance Goal Solve a problem involving both se...

(a) Find the equivalent resistance of the circuit.

The 8.0- \Omega and 4.0-\Omega resistors are in series, so use the sum rule to find the equivalent resistance between a and b :

R_{\text {eq }}=R_{1}+R_{2}=8.0  \Omega+4.0  \Omega=12  \Omega

The 6.0- \Omega and 3.0-\Omega resistors are in parallel, so use the reciprocal-sum rule to find the equivalent resistance between b and c (don’t forget to invert!):

\begin{aligned} \frac{1}{R_{\mathrm{eq}}} & =\frac{1}{R_{1}}+\frac{1}{R_{2}}=\frac{1}{6.0  \Omega}+\frac{1}{3.0  \Omega}=\frac{1}{2.0  \Omega} \\ R_{\mathrm{eq}} & =2.0  \Omega \end{aligned}

In the new diagram, 18.11b, there are now two resistors in series. Combine them with the sum rule to find the equivalent resistance of the circuit:

R_{\mathrm{eq}}=R_{1}+R_{2}=12  \Omega+2.0  \Omega=14  \Omega

(b) Find the current in each resistor if a 42-\mathrm{V} battery is connected between points a and c.

Find the current in the equivalent resistor in Figure 8.11 \mathrm{c}, which is the total current. Resistors in series all carry the same current, so this is the current in the 12-\Omega resistor in Figure 8.11 \mathrm{~b}, and also in the 8.0-\Omega and 4.0-\Omega resistors in Figure 8.11a.

I=\frac{\Delta V_{a c}}{R_{\mathrm{eq}}}=\frac{42 \mathrm{~V}}{14  \Omega}=3.0 \mathrm{~A}

Apply the junction rule to point b :

\text { (1) } I=I_{1}+I_{2}

The 6.0-\Omega and 3.0-\Omega resistors are in parallel, so the voltage drops across them are the same:

Substitute this result into Equation (1), with I=3.0 \mathrm{~A} :

\begin{aligned} 3.0 \mathrm{~A} & =I_{1}+2 I_{1}=3 I_{1} \rightarrow I_{1}=1.0 \mathrm{~A} \\ I_{2} & =2.0 \mathrm{~A} \end{aligned}

Remarks As a final check, note that \Delta V_{b c}=(6.0  \Omega) I_{1}=(3.0  \Omega) I_{2}=6.0 \mathrm{~V} and \Delta V_{a b}=(12  \Omega) I_{1}=36 \mathrm{~V}; therefore, \Delta V_{a c}=\Delta V_{a b}+\Delta V_{b c}=42 \mathrm{~V}, as expected.