Answer:
(a) Inductance will be 0.1756 Henry
(b) Flux through each turn will be [tex]3.16\times 10^{-4}Wb[/tex]
Explanation:
We have given the rate of change of current [tex]\frac{di}{dt}=0.0740A/sec[/tex]
Magnitude of self induced emf e = 0.0130 volt
(a) We know that in inductor self induced emf is given by
[tex]e=L\frac{di}{dt}[/tex]
So [tex]0.0130=L\times 0.0740[/tex]
L = 0.1756 Henry
Number of turns N = 400
Now magnetic flux through each turns is given by [tex]\Phi =\frac{Li}{N}=\frac{0.1756\times 0.720}{400}=3.16\times 10^{-4}Wb[/tex]
