Question 24.6: Determine the average value for the periodic pulse waveform ...

By the method in Section 13.7,

G=\frac{\text { area under curve }}{T}.

T=(12-2) \mu s =10 \mu s.

G=\frac{(8 mV )(4 \mu s )+(2 mV )(6 \mu s )}{10 \mu s }=\frac{32 \times 10^{-9}+22 \times 10^{-9}}{10 \times 10^{-6}}.

=\frac{44 \times 10^{-9}}{10 \times 10^{-6}}=4.4 mV.

By Eq. (24.5),

V_{ av }=(\text { duty cycle })(\text { peak value })+(1-\text { duty cycle })\left(V_{b}\right)           (24.5).

V_{b}=+2 mV.

\text { Duty cycle }=\frac{t_{p}}{T}=\frac{(6-2) \mu s }{10 \mu s }=\frac{4}{10}=0.4 \text { (decimal form) }.

\text { Peak value (from } 0 V \text { reference })=8 mV.

V_{\text {av }}=(\text { duty cycle })(\text { peak value })+(1-\text { duty cycle })\left(V_{b}\right).

=(0.4)(8 mV )+(1-0.4)(2 mV ).

=3.2 mV +1.2 mV = 4 . 4  m V.

as obtained above.