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Download Data Analysis Example Assume that you have the following circuit
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Data Analysis Example Assume that you have the following circuit: TOPEN = .1ms R1 2 50 1 1 U2 V1 1V V U1 C1 1uF 2 TCLOSE = .1ms 0 That is, a 1 Volt DC source has been connected across a resistor-capacitor combination as shown. At time t=0.1ms, the source is disconnected from the circuit and the resistorcapacitor combination is shorted to ground. When this occurs, the voltage across the capacitor decays to zero. Assume that you have measured the following: t (us) 0 10 20 30 40 50 60 70 80 90 100 110 120 130 140 150 V 1 0.8 0.7 0.55 0.45 0.4 0.3 0.25 0.2 0.15 0.14 0.1 0.08 0.07 0.06 0.05 I (mA) ? 17 13.5 11 9 8 6.5 5 4 3 2.5 2 1.6 1.4 1.2 0.9 We would like to use this information to confirm that the current-voltage equation for a capacitor, I = C dV dt , does indeed hold. For this expression, we can estimate the time dV V2 − V1 = dt t 2 − t1 . For each of derivative of the voltage by using the finite difference form the times where data was taken, we can find the finite difference derivative. The capacitance can then be found by dividing the current by the time derivative of the voltage. Since the finite difference expression is only approximate, the best answer can be determined by taking the average of all of the values determined. When doing this, the average value turns out to be very close to the value for the capacitance. Thus, the current-voltage expression is shown to be correct, at least on the average. dV/dt C 20000 10000 15000 10000 5000 10000 5000 5000 5000 1000 4000 2000 1000 1000 1000 0.00000085 0.00000135 7.33333E-07 0.0000009 0.0000016 0.00000065 0.000001 0.0000008 0.0000006 0.0000025 0.0000005 0.0000008 0.0000014 0.0000012 0.0000009 Average C 1.05222E-06 Using this information, we can check to see if the current tracks the capacitance times the time derivative of the voltage. Because the derivative is so crudely taken, the two curves do not match point-by-point, but they do look the same on the average. 25 20 15 I C dV/dt 10 5 0 14 0 12 0 10 80 60 40 20 0 0 Excel provides a method for finding the slopes of functions that can be more accurate than the simple finite difference derivative used here. The slope function (more details are provided below) finds the best fit line (using linear regression) to any number of data points. If you chose two data points, slope will produce the same result as the finite difference formula used above. However, by taking more points, the results become much smoother, primarily because the errors from point-to-point tend to be random. For the same data used above, the slope formula gives the following results: 25 20 I C dV/dt Using 2 Point Slope C dV/dt Using 3 Point Slope C dV/dt 4 Point Slope 15 10 5 0 14 0 12 0 10 80 60 40 20 0 0 Time The results are not perfect, since the slope is an approximation and is particularly less accurate near the ends of the curve. Ideally the slope value should be assigned to the middle of the range it is evaluated over. However, Excel does not do this easily. One can also fit the current and voltage expressions to exponential functions, then take the derivative of the voltage to check the capacitance current-voltage equation another way. The voltage measured as a function of time looks like Measured Voltage 1.2 1 0.8 0.6 Measured Voltage 0.4 0.2 13 5 11 5 95 75 55 35 15 -5 0 where the time scale is in microseconds. Note that the voltage drops from around 1Volt to a little less than 0.3Volt in about 50 microseconds. Thus, for exponential decay, the time constant is about 0.00005 seconds. If we assume that the voltage starts at 1 Volt, we can write it as a function of time as V = Vo e voltage, we obtain −t τ . Plotting this function on top of the measured 1.2 1 0.8 Measured Calc 0.6 0.4 0.2 5 13 5 11 95 75 55 35 15 -5 0 so the agreement is seen to be very good. Thus, the voltage does indeed decay exponentially.