Difference between revisions of "TF EIMLab3 Writeup"
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= 1-50 kHz filter (20 pnts)= | = 1-50 kHz filter (20 pnts)= | ||
− | + | 1.)Design a low-pass RC filter with a break point between 1-50 kHz. The break point is the frequency at which the filter starts to attenuate the AC signal. For a Low pass filter, AC signals with a frequency above 1-50 kHz will start to be attenuated (not passed). | |
− | + | ||
− | + | :<math>\omega_{break} = \frac{1}{RC}</math> | |
− | + | : <math>\Rightarrow R = \frac{1}{\omega_{break} C } = \frac{1}{25 \times 10^{3} \times 9.45 \times 10^{-9}} = 4,233 \Omega</math> | |
+ | |||
+ | 2.)Now construct the circuit using a non-polar capacitor. | ||
+ | 3.)use a sinusoidal variable frequency oscillator to provide an input voltage to your filter. | ||
+ | 4.)Measure the input <math>(V_{in})</math> and output <math>(V_{out})</math> voltages for at least 8 different frequencies<math> (\nu)</math> which span the frequency range from 1 Hz to 1 MHz. | ||
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Revision as of 06:06, 21 January 2011
- RC Low-pass filter
1-50 kHz filter (20 pnts)
1.)Design a low-pass RC filter with a break point between 1-50 kHz. The break point is the frequency at which the filter starts to attenuate the AC signal. For a Low pass filter, AC signals with a frequency above 1-50 kHz will start to be attenuated (not passed).
2.)Now construct the circuit using a non-polar capacitor. 3.)use a sinusoidal variable frequency oscillator to provide an input voltage to your filter. 4.)Measure the input
and output voltages for at least 8 different frequencies which span the frequency range from 1 Hz to 1 MHz.Hz | Volts | Volts | |
50 | 0.6 | 0.3 | |
100 | 0.5 | 0.18 | |
250 | 0.5 | 0.075 | |
500 | 0.45 | 0.04 | |
1000 | 0.4 | 0.017 | |
2500 | 0.28 | 0.005 | |
5056 | 0.16 | 0.005 | |
- Graph the -vs-
phase shift (10 pnts)
- measure the phase shift between and
Questions
1.)compare the theoretical and experimentally measured break frequencies. (5 pnts)
\omega_{break} = \frac{1}{RC} = \frac{1}{400 \times 10^{3} \times 9.45 \times 10^{-9}} = = 2.6 \times 10^{2}
Theory | Exp | %diff | |
- Calculate and expression for as a function of , , and . The Gain is defined as the ratio of to .(5 pnts)
- Compare the theoretical and experimental value for the phase shift . (5 pnts)
- Sketch the phasor diagram for , , , and . Put the current along the real voltage axis. (30 pnts)
- what is the phase shift for a DC input and a very-high frequency input?(5 pnts)
- calculate and expression for the phase shift as a function of , , and graph -vs . (20 pnts)