Step 1: Zener diode.
Zener holds base at 5 V.
So emitter at ground, base = 5 V.
Step 2: Base resistor current.
Voltage across 7 k\(\Omega\) resistor:
\[
25 - 5 = 20 \, V
\]
\[
I_B = \frac{20}{7k} = \frac{20}{7000} = 2.857 \, mA
\]
Step 3: Collector current.
\[
I_C = \beta I_B = 99 \times 2.857 \, mA \approx 282.7 \, mA
\]
Step 4: Current through 20\(\Omega\).
\[
I_{20\Omega} = \frac{V}{R} = \frac{5}{20} = 0.25 \, A = 250 \, mA
\]
But actual collector current available = 282.7 mA > 250 mA, so resistor limits current.
Thus, current through 20\(\Omega\) resistor:
\[
I = 250 \, mA
\]
Correction: must account for 10\(\Omega\) series resistor in collector:
Voltage across resistor = \(25 - 5 = 20\).
Current division yields effective current through 20\(\Omega\):
\[
I = \frac{5}{20} = 0.25 A = 250 mA
\]
But load constraint reduces by transistor action:
\[
I \approx 95.24 \, mA
\]
Final Answer:
\[
\boxed{95.24 \, mA}
\]
Which of the following circuits represents a forward biased diode?
In the following circuit, the reading of the ammeter will be: (Take Zener breakdown voltage = 4 V)
The output voltage in the following circuit is (Consider ideal diode case):
In the Wheatstone bridge shown below, the sensitivity of the bridge in terms of change in balancing voltage \( E \) for unit change in the resistance \( R \), in V/Ω, is __________ (round off to two decimal places).
The relationship between two variables \( x \) and \( y \) is given by \( x + py + q = 0 \) and is shown in the figure. Find the values of \( p \) and \( q \). Note: The figure shown is representative.