- #1
iiiiaann
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Homework Statement
In the figure below, R1 = 13.0 kΩ, R2 = 18.0 kΩ, C = 0.600 µF, and the ideal battery has emf = 20.0 V. First, the switch is closed a long time so that the steady state is reached. Then the switch is opened at time t = 0. What is the current in resistor 2 at t = 4.00 ms?
Homework Equations
V = IR
V_{Capacitor}(t) = V_{0}(1-e^{-t/\tau})
The Attempt at a Solution
Okay so i put a decent amount into this one but the answer I'm coming up with is wrong and I can't figure out why. Here's what I've done:
When the capacitor is fully charged, the current through the battery is \frac{\xi}{R_{1} + R_{2}} which is \frac{20}{13 * 10^{3} + 18 * 10^{3}} = 6.45e-4
The current through R2 would be the same as this, 6.45e-4, so the potential difference over R2 = IR = 6.45e-4 * 18e3 = 11.61 V
When the switch is first opened, the potential difference across the capacitor would be the same as this, 11.61.
The time constant for the capacitor would be RC = 18e3 * .6e-6 = 0.0108
so to calculate the potential difference at t = 4 ms, you would use the following equation:
V_{capacitor}(0.004) = 11.61 * (1 - e^{-0.004 / 0.0108}) which comes out to 3.59
This is the same as the potential difference in R2, and so current through R2 should be 3.59 / 18e3 = 1.99e-4, but that is not right. Can someone let me know where I went wrong?
