Question
Download Solution PDFAn ideal diode is connected in series with a 1 kΩ load resistor and the input voltage is given as V(t) = sin2(t) + cos2(t) V. What is the average output voltage across the load resistor?
Answer (Detailed Solution Below)
Detailed Solution
Download Solution PDFGiven:
- Input voltage: V(t) = sin²(t) + cos²(t) V
- Load resistor: 1 kΩ
- Ideal diode (no voltage drop when conducting)
Key Analysis:
- Input Voltage Simplification:
Using the trigonometric identity:
sin2(t) + cos2(t) = 1
Therefore, V(t) = 1 V (constant DC voltage at all times)
- Diode Behavior:
Since the input is always positive (1V):
- The diode remains continuously forward-biased
- Acts as a short circuit (0V drop)
- Output Voltage:
The entire input appears across the resistor:
\( V_{out}(t) = V(t) = 1 \text{ V} \)
Average Voltage Calculation:
For a constant DC voltage:
\(V_{avg} = \frac{1}{T}\int_0^T 1\ dt = 1 \text{ V} \)
Final Answer:
4) +1 V
Last updated on Jun 7, 2025
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