(1)閉合S����,斷開$S_{1}$����、$S_{2}$時,$R_{1}$與$R_{2}$串聯(lián)���,$U=I(R_{1}+R_{2})=0.2\ \text{A}\times(5\ \Omega+15\ \Omega)=4\ \text{V}��;$
(2)閉合S����、$S_{1}$、$S_{2}$時�,$R_{2}$被短路,$R_{1}$與$R_{3}$并聯(lián)�,$I_{1}=\frac{U}{R_{1}}=\frac{4\ \text{V}}{5\ \Omega}=0.8\ \text{A},$$I_{3}=0.9\ \text{A}-0.8\ \text{A}=0.1\ \text{A}����,$$R_{3}=\frac{U}{I_{3}}=\frac{4\ \text{V}}{0.1\ \text{A}}=40\ \Omega。$
