(1)由圖(b)可知,當溫度為$20^{\circ}C$時�����,熱敏電阻$R_t = 4k\Omega=4000\Omega�����。$此時電路電流$I = 2mA=0.002A���,$電源電壓$U = 9V��。$根據(jù)串聯(lián)電路總電阻$R_{總}=R_t + R_g�����,$由$I=\frac{U}{R_{總}}$可得$R_{總}=\frac{U}{I}=\frac{9V}{0.002A} = 4500\Omega�,$則$R_g=R_{總}-R_t=4500\Omega - 4000\Omega=500\Omega。$
(2)當電流$I'=6mA = 0.006A$時�,總電阻$R_{總}'=\frac{U}{I'}=\frac{9V}{0.006A}=1500\Omega,$熱敏電阻$R_t'=R_{總}'-R_g=1500\Omega - 500\Omega=1000\Omega����。$由圖(b)可知,$R_t = 1k\Omega$時對應(yīng)的溫度為$120^{\circ}C����。$
(1)$500\Omega;$(2)$1000\Omega��,$$120^{\circ}C$
