The `rms` value of the saw-tooth voltage of peak value `V_(0)` from `t=0` to `t=2T` as shown in figure is `V_(0)/sqrtx`.Find the value of `x`.

Find the aveage for the saw-tooth voltage of peak value V_(0) from t=0 to t=2T as shown in figure.

What is the value of output voltage V_(0) in the circuit shown in the figure ?

The average value of a saw-tooth voltage V=V_(0) ((2t)/(T)-1) Over 0 to (T)/(2) , (T- time period) is given by

The voltage time (V-t) graoh for triangular wave having peak value (V_0) is as shown in fig.The rms value of V in time interval from t=0 to T/4 is:

The voltage time (V-t) graoh for triangular wave having peak value (V_0) is as shown in fig. The rms value V in time interval t = 0 to t = T//4 is

Find the rms and the average values of the saw tooth waveform shown in fig. .

For different values of L , we get different values of T^2 . The graph between L versus T^2 ia as shown in figure. Find the value of 'g' from the given graph.(Take (pi)^2= 10) . .

The average value of an alternating voltage V=V_(0) sin omega t over a full cycle is

The average value of an alternating voltage V=V_(0) sin omega t over a full cycle is