Find the average power delivered by the ideal current source in the circuit in Fig. P10.6 if ig = 30 cos 25,000t mA. 8 bsol sit Figure P10.6 sonsboqmi 20 lebiozunie inco od 5001 ilmoi 5Ω ww (80 40 μF 40 μΗ

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Circuits 1 HW 7 Q5
**Problem Statement:**

Find the average power delivered by the ideal current source in the circuit shown in Fig. P10.6 if \( i_g = 30 \cos 25,000t \) mA.

**Figure P10.6:**

- Circuit Description:
  - The circuit includes a current source denoted as \( i_g \) on the left.
  - The current \( i_g \) is given by the equation \( i_g = 30 \cos 25,000t \) mA, representing an AC current source with a frequency of 25,000 radians per second.
  - Series Components:
    - A resistor with a resistance of \( 2 \ \Omega \).
    - Another resistor with a resistance of \( 5 \ \Omega \).
  - Parallel Components:
    - A capacitor with a capacitance of \( 40 \ \mu F \).
    - An inductor with an inductance of \( 40 \ \mu H \).
  
  The arrangement of components indicates that the resistors are in series, with the parallel combination of the capacitor and the inductor connected between them.
Transcribed Image Text:**Problem Statement:** Find the average power delivered by the ideal current source in the circuit shown in Fig. P10.6 if \( i_g = 30 \cos 25,000t \) mA. **Figure P10.6:** - Circuit Description: - The circuit includes a current source denoted as \( i_g \) on the left. - The current \( i_g \) is given by the equation \( i_g = 30 \cos 25,000t \) mA, representing an AC current source with a frequency of 25,000 radians per second. - Series Components: - A resistor with a resistance of \( 2 \ \Omega \). - Another resistor with a resistance of \( 5 \ \Omega \). - Parallel Components: - A capacitor with a capacitance of \( 40 \ \mu F \). - An inductor with an inductance of \( 40 \ \mu H \). The arrangement of components indicates that the resistors are in series, with the parallel combination of the capacitor and the inductor connected between them.
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