Basic Quantities in AC
PHXII07:ALTERNATING CURRENT

356076 Determine the virtual value of \(a c\) current shown in figure.
supporting img

1 \(3\,A\)
2 \(4\,A\)
3 \(5\,A\)
4 \(2\,A\)
PHXII07:ALTERNATING CURRENT

356077 The current vs time graph is shown in the figure. The average and rms currents are. (for one cycle)
supporting img

1 \(0, \dfrac{i_{0}}{2}\)
2 \(0, \dfrac{i_{0}}{\sqrt{2}}\)
3 \(\dfrac{i_{0}}{2} \dfrac{i_{0}}{\sqrt{2}}\)
4 \(i_{0}, \dfrac{i_{0}}{\sqrt{2}}\)
PHXII07:ALTERNATING CURRENT

356078 The \(r.m.s\) voltage of the wave from shown is:
supporting img

1 \(10\;V\)
2 \(7\;V\)
3 \(6.37\;V\)
4 \(11\;V\)
PHXII07:ALTERNATING CURRENT

356079 If the instantaneous current in a circuit is given by \(I=2 \cos (\omega t+\phi)\) ampere, the \(r m s\) value of the current is

1 \(2\;A\)
2 \(\sqrt 2 \,A\)
3 \(2\sqrt 2 \,A\)
4 Zero
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PHXII07:ALTERNATING CURRENT

356076 Determine the virtual value of \(a c\) current shown in figure.
supporting img

1 \(3\,A\)
2 \(4\,A\)
3 \(5\,A\)
4 \(2\,A\)
PHXII07:ALTERNATING CURRENT

356077 The current vs time graph is shown in the figure. The average and rms currents are. (for one cycle)
supporting img

1 \(0, \dfrac{i_{0}}{2}\)
2 \(0, \dfrac{i_{0}}{\sqrt{2}}\)
3 \(\dfrac{i_{0}}{2} \dfrac{i_{0}}{\sqrt{2}}\)
4 \(i_{0}, \dfrac{i_{0}}{\sqrt{2}}\)
PHXII07:ALTERNATING CURRENT

356078 The \(r.m.s\) voltage of the wave from shown is:
supporting img

1 \(10\;V\)
2 \(7\;V\)
3 \(6.37\;V\)
4 \(11\;V\)
PHXII07:ALTERNATING CURRENT

356079 If the instantaneous current in a circuit is given by \(I=2 \cos (\omega t+\phi)\) ampere, the \(r m s\) value of the current is

1 \(2\;A\)
2 \(\sqrt 2 \,A\)
3 \(2\sqrt 2 \,A\)
4 Zero
PHXII07:ALTERNATING CURRENT

356076 Determine the virtual value of \(a c\) current shown in figure.
supporting img

1 \(3\,A\)
2 \(4\,A\)
3 \(5\,A\)
4 \(2\,A\)
PHXII07:ALTERNATING CURRENT

356077 The current vs time graph is shown in the figure. The average and rms currents are. (for one cycle)
supporting img

1 \(0, \dfrac{i_{0}}{2}\)
2 \(0, \dfrac{i_{0}}{\sqrt{2}}\)
3 \(\dfrac{i_{0}}{2} \dfrac{i_{0}}{\sqrt{2}}\)
4 \(i_{0}, \dfrac{i_{0}}{\sqrt{2}}\)
PHXII07:ALTERNATING CURRENT

356078 The \(r.m.s\) voltage of the wave from shown is:
supporting img

1 \(10\;V\)
2 \(7\;V\)
3 \(6.37\;V\)
4 \(11\;V\)
PHXII07:ALTERNATING CURRENT

356079 If the instantaneous current in a circuit is given by \(I=2 \cos (\omega t+\phi)\) ampere, the \(r m s\) value of the current is

1 \(2\;A\)
2 \(\sqrt 2 \,A\)
3 \(2\sqrt 2 \,A\)
4 Zero
PHXII07:ALTERNATING CURRENT

356076 Determine the virtual value of \(a c\) current shown in figure.
supporting img

1 \(3\,A\)
2 \(4\,A\)
3 \(5\,A\)
4 \(2\,A\)
PHXII07:ALTERNATING CURRENT

356077 The current vs time graph is shown in the figure. The average and rms currents are. (for one cycle)
supporting img

1 \(0, \dfrac{i_{0}}{2}\)
2 \(0, \dfrac{i_{0}}{\sqrt{2}}\)
3 \(\dfrac{i_{0}}{2} \dfrac{i_{0}}{\sqrt{2}}\)
4 \(i_{0}, \dfrac{i_{0}}{\sqrt{2}}\)
PHXII07:ALTERNATING CURRENT

356078 The \(r.m.s\) voltage of the wave from shown is:
supporting img

1 \(10\;V\)
2 \(7\;V\)
3 \(6.37\;V\)
4 \(11\;V\)
PHXII07:ALTERNATING CURRENT

356079 If the instantaneous current in a circuit is given by \(I=2 \cos (\omega t+\phi)\) ampere, the \(r m s\) value of the current is

1 \(2\;A\)
2 \(\sqrt 2 \,A\)
3 \(2\sqrt 2 \,A\)
4 Zero