\(R1=p1\dfrac{l1}{S1}\Rightarrow p1=\dfrac{R1\cdot S1}{l1}=\dfrac{12\cdot1\cdot10^{-6}}{200}=6\cdot10^{-8}\Omega m\)

Vì hai dây dẫn này cùng chất nên p1 = p2.

\(R2=p2\dfrac{l2}{S2}\Rightarrow l2=\dfrac{R2\cdot S2}{p2}=\dfrac{24\cdot2\cdot10^{-6}}{6\cdot10^{-8}}=800m\)

Chọn D

Lập tỉ lệ ta dc

\(\dfrac{R_1}{R_2}=\dfrac{\rho\dfrac{l_1}{S_1}}{\rho\dfrac{l_2}{S_2}}\Rightarrow\dfrac{12}{24}=\dfrac{\dfrac{200}{1\cdot10^{-6}}}{\dfrac{l_2}{2\cdot10^{-6}}}\Rightarrow l_2=800\left(m\right)\)

chọn D

a) \(R=\rho\cdot\dfrac{l}{S}=1,7\cdot10^{-8}\cdot\dfrac{l}{3\cdot10^{-6}}=9,4\)

     \(\Rightarrow l=1658,82m\)

b) \(R=\rho\cdot\dfrac{l}{S}=2,82\cdot10^{-8}\cdot\dfrac{1,2}{1\cdot10^{-6}}=0,03384\Omega\)

Ta có: ⎧⎪ ⎪ ⎪⎨⎪ ⎪ ⎪⎩R1=ρ1l1S1R2=ρ2l2S2⇒⎧⎪⎨⎪⎩l1=l2S1=S2R1=2R2{R1=ρ1l1S1R2=ρ2l2S2⇒{l1=l2S1=S2R1=2R2

⇒2R2R2=ρ1ρ2⇒2R2R2=ρ1ρ2

⇒ρ2=ρ12=0,6.10−82=3.10−9=0,3.10−8(Ωm)

Câu 42.

Ta có:

\(\dfrac{R_1}{R_2}=\dfrac{\rho_1}{\rho_2}=2\)\(\Rightarrow\rho_2=\dfrac{\rho_1}{2}=\dfrac{2,8\cdot10^{-8}}{2}=1,4\cdot10^{-8}\left(\Omega.m\right)\)

Câu 43.

\(R_{tđ}=R_1+R_2=30+10=40\Omega\)

\(U_{max}\Leftrightarrow I_{min}\Rightarrow I=1A\)

\(\Rightarrow U_{max}=1\cdot40=40V\)

\(l_1=2l_2\\ R_1=3R_2\\ \rho_1=\rho_2\\ \Leftrightarrow\dfrac{R_1S_1}{l_1}=\dfrac{R_2S_2}{l_2}\\ \Leftrightarrow\dfrac{3R_2S_1}{2l_2}=\dfrac{R_2S_2}{l_2}\\ \Leftrightarrow3R_2S_1l_2=2l_2R_2S_2\\ \Leftrightarrow3S_1=2S_2\\ \Leftrightarrow S_1=\dfrac{2}{3}S_2\)

\(\dfrac{S1}{S2}=\dfrac{R2}{R1}\Rightarrow R2=\dfrac{S1\cdot R1}{S2}=\dfrac{2\cdot9}{4}=4,5\Omega\)

Câu 28 : 

Có : \(\dfrac{R_1}{R_2}=\dfrac{S_2}{S_1}\Rightarrow R_2=\dfrac{R_1.S_1}{S_2}=\dfrac{9.2}{4}=4,5\left(\Omega\right)\)

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