Using Norton's equivalent

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The same problem is then worked out with Norton's equivalent, as shown in figures 5.29, 5.30, 5.31, 5.32. Finally, $i=\frac{10}{9}\;Amp$

**Figure 5.29:**
$\includegraphics[width=3.0in]{lec4figs/29.eps}$

**Figure 5.30:**
$\includegraphics[width=3.0in]{lec4figs/30.eps}$

**Figure 5.31:**
$\includegraphics[width=3.0in]{lec4figs/31.eps}$

**Figure 5.32:**
$\includegraphics[width=3.0in]{lec4figs/32.eps}$

ynsingh 2007-07-25