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a. \(R=U:I=220:2=110\Omega\)
b. \(R=p\dfrac{l}{S}\Rightarrow S=\dfrac{p.l}{R}=\dfrac{0,4.10^{-6}.5,5}{110}=2.10^{-8}\left(m^2\right)\)
a) Điện trở đây: \(R=\dfrac{U}{I}=\dfrac{220}{2}=110\Omega\)
b) Tiết diện dây:
\(R=\rho\cdot\dfrac{l}{S}\Rightarrow S=\rho\cdot\dfrac{l}{R}=0,4\cdot10^{-6}\cdot\dfrac{5,5}{110}=2\cdot10^{-8}\left(m^2\right)=0,02\left(mm^2\right)\)
\(R=\dfrac{U}{I}=\dfrac{220}{2}=110\left(\Omega\right)\)
\(R=\rho\dfrac{l}{S}\Rightarrow l=\dfrac{R.S}{\rho}=\dfrac{110.0,5.10^{-6}}{0,4.10^{-6}}=137,5\left(m\right)\)
\(R=\dfrac{U}{I}=\dfrac{220}{2}=110\left(\Omega\right)\)
\(R=\rho\dfrac{l}{S}\Rightarrow S=\dfrac{\rho.l}{R}=\dfrac{0,4.10^{-6}.5,5}{110}=2.10^{-8}\left(m^2\right)\)
\(=>\dfrac{76,5}{3}=\dfrac{pL}{S}=\dfrac{0,4.10^{-6}.l}{R^2.3,14}\)
\(=>25,5=\dfrac{0,4.10^{-6}.l}{\left(0,0004\right)^2.3,14}=>l=32m\)
\(\Rightarrow R=\dfrac{pl}{S}\Rightarrow\dfrac{U}{I}=\dfrac{60}{2}=30=\dfrac{0,4.10^{-6}.L}{0,5.10^{-6}}\Rightarrow L=37,5m\)
a. \(R=U:I=220:2=110\Omega\)
b. \(R=p\dfrac{l}{S}\Rightarrow S=\dfrac{pl}{R}=\dfrac{1,10\cdot10^{-6}\cdot5,5}{110}=5,5\cdot10^{-8}m^2\)
a) \(R=\dfrac{U}{I}=\dfrac{220}{2}=110\left(\Omega\right)\)
b) \(R=\rho\dfrac{l}{S}\Rightarrow S=\dfrac{\rho.l}{R}=\dfrac{0,4.10^{-6}.5,5}{110}=2.10^{-8}\left(m^2\right)\)
+) Điện trở của dây:
\(R=\rho.\dfrac{l}{S}=0,4.10^{-6}.\dfrac{50}{2,5.10^{-7}}=80\left(ÔM\right)\) ( đổi \(0,25mm^2=2,5.10^{-7}m^2\))
+) \(l_1=l.\dfrac{1}{2}=50.\dfrac{1}{2}=25\left(m\right)\)
\(S_1=S.2=2,5.10^{-7}.2=5.10^{-7}\left(m^2\right)\)
\(R_1=\rho.\dfrac{l_1}{S_1}=0,4.10^{-6}\dfrac{25}{5.10^{-7}}=20\left(ÔM\right)\)
\(P=\dfrac{U^2}{R}=\dfrac{220^2}{50}=968\left(W\right)\)
\(P_1=\dfrac{U^2}{R_1}=\dfrac{220^2}{20}=2420\left(W\right)\)
\(\Rightarrow P_1=2,5P\)
a)Điện trở của dây: \(R=\dfrac{U}{I}=\dfrac{220}{2}=110\Omega\)
b)Tiết diện dây:
\(R=\rho\cdot\dfrac{l}{S}=0,4\cdot10^{-6}\cdot\dfrac{0,5}{S}=110\)
\(\Rightarrow S=1,82\cdot10^{-9}m^2=0,182mm^2\)