Question 18.41: A system needs to be powered with 9 V d.c. source of maximum...

The secondary output of step-down transformer is \sqrt{2} times the output d.c. voltage required. Therefore, the step-down transformer is wound to have 230 V:13 V.
Given data: The d.c. output voltage = 9 V and Load current = 100 mA
The current rating is 1.5 times the maximum load current, i.e. 150 mA.
A bridge rectifier or full wave rectifier is used to get the pulsating d.c. output.

R_{L} =\frac{V_{d.c.}}{I_{L}}=\frac{9}{100 × 10^{– 3}} = 90 Ω

A capacitor filter is used to remove the ripple and get a smooth output.

Ripple factor Γ = \frac{1}{4 \sqrt{3} f CR_{L}}

Assume the ripple factor to be 0.03.

C = \frac{1}{4 \sqrt{3} × 50 × 0.03 × 90} = 1069 μ F ≈ 1000 μ F

The short circuit resistance R_{sc} connected with the series pass transistor is

Rsc = \frac{V_{BE}}{I_{limit}}=\frac{0.7}{150 × 10^{– 3}} ≈ 4.7 Ω

Assume 7.6 V Zener diode in series with 1.5 kΩ.
The designed circuit is shown in Fig. 18.35.