Inductor Steady State at Amelia Cunningham blog

Inductor Steady State. The inductors themselves are ideal, and have a resistance. When the circuit reaches a steady state, a current of 4 a 4 a will flow through the resistor (since voltage across the inductors are zero). The circuit then becomes equivalent to a resistor connected across a source of emf. When a circuit is first energized, the current through the inductor will still be zero, which is characteristic of opens. Unsurprisingly, the energy stored in the magnetic field of an inductor is proportional to the inductance. Thus, at steady state, in a capacitor, i = c dv dt = 0, and in an inductor, v = ldi = 0.

Solved A. Assume the inductor is in steady state for a long
from www.chegg.com

When the circuit reaches a steady state, a current of 4 a 4 a will flow through the resistor (since voltage across the inductors are zero). Unsurprisingly, the energy stored in the magnetic field of an inductor is proportional to the inductance. Thus, at steady state, in a capacitor, i = c dv dt = 0, and in an inductor, v = ldi = 0. When a circuit is first energized, the current through the inductor will still be zero, which is characteristic of opens. The inductors themselves are ideal, and have a resistance. The circuit then becomes equivalent to a resistor connected across a source of emf.

Solved A. Assume the inductor is in steady state for a long

Inductor Steady State The circuit then becomes equivalent to a resistor connected across a source of emf. When a circuit is first energized, the current through the inductor will still be zero, which is characteristic of opens. Unsurprisingly, the energy stored in the magnetic field of an inductor is proportional to the inductance. When the circuit reaches a steady state, a current of 4 a 4 a will flow through the resistor (since voltage across the inductors are zero). The circuit then becomes equivalent to a resistor connected across a source of emf. The inductors themselves are ideal, and have a resistance. Thus, at steady state, in a capacitor, i = c dv dt = 0, and in an inductor, v = ldi = 0.

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