Initially, for the circuit shown, the switch S is open and the capacitor is uncharged. The switch S is closed at time t = 0. In the figure shown, when the time t is equal to 8.0 s, the charge on the capacitor (in mC), is closest to: a. 4.06 b. 13.2 c. 0.23 d. 2.26 e. 1.33 70 V L www 0.20 ΜΩ 90 μF

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Initially, for the circuit shown, the switch S is open and the capacitor is uncharged. The switch S is closed at time t = 0. In the figure shown, when the time t is equal to 8.0 s, the charge on the capacitor (in mC), is closest to:

**a.** 4.06  
**b.** 13.2  
**c.** 0.23  
**d.** 2.26  
**e.** 1.33  

### Diagram Explanation:

- A simple RC charging circuit is depicted in the diagram.
- The circuit consists of a 70 V battery, a switch (S), a 90 µF capacitor, and a 0.20 MΩ resistor connected in series.
- Initially, the switch S is open, and the capacitor is uncharged. When the switch is closed, the capacitor starts charging through the resistor.

### Calculation Context:

The goal is to determine the charge on the capacitor at time t = 8.0 s.
Transcribed Image Text:Initially, for the circuit shown, the switch S is open and the capacitor is uncharged. The switch S is closed at time t = 0. In the figure shown, when the time t is equal to 8.0 s, the charge on the capacitor (in mC), is closest to: **a.** 4.06 **b.** 13.2 **c.** 0.23 **d.** 2.26 **e.** 1.33 ### Diagram Explanation: - A simple RC charging circuit is depicted in the diagram. - The circuit consists of a 70 V battery, a switch (S), a 90 µF capacitor, and a 0.20 MΩ resistor connected in series. - Initially, the switch S is open, and the capacitor is uncharged. When the switch is closed, the capacitor starts charging through the resistor. ### Calculation Context: The goal is to determine the charge on the capacitor at time t = 8.0 s.
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