Explanation:
The quantity of charge Q in coulombs (C) that has passed through a point in a wire up to time t (measured in seconds) is given by :
[tex]Q=t^3-2t^2+4t+4[/tex]
We need to find the current flowing. We know that the rate of change of electric charge is called electric current. It is given by :
[tex]I=\dfrac{dQ}{dt}\\\\I=\dfrac{d(t^3-2t^2+4t+4)}{dt}\\\\I=3t^2-4t+4[/tex]
At t = 1 s,
Current,
[tex]I=3(1)^2-4(1)+4\\\\I=3\ A[/tex]
So, the current at t = 1 s is 3 A.
For lowest current,
[tex]\dfrac{dI}{dt}=0\\\\\dfrac{d(3t^2-4t+4)}{dt}=0\\\\6t-4=0\\\\t=0.67\ s[/tex]
Hence, this is the required solution.
