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UK EE 221 - Active Filters, Connections of Filters, and Midterm Project

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Slide 1Load EffectsFilter OrderTransfer Function ResultsPlot Comparison of Filter Order EffectSPICE Transfer Function AnalysisSpice Example:SPICE Results (Plot range 10 to 10 MHz)SPICE Results (Plot range 10 to 10 MHz)Circuits IIEE221Unit 6Instructor: Kevin D. DonohueActive Filters, Connections of Filters, and Midterm ProjectLoad EffectsIf the output of the filter is not buffered, then for different loads, the frequency characteristics of the filter will change.Example: Both low-pass filters below have fc = 1 kHz and GDC = 1 (or 0 dB). Find: fc and GDC when a 100  load is placed across the output vo(t).Result: fc = 11 kHz and GDC = 1/11 (or -21 dB) for the passive circuit, while fc and GDC remain unchanged for the active circuit. + - vi(t) vi(t) 1 k 1 k 12F 12F 10 k + vo(t) - + vo(t) -Filter OrderThe order of a filter is the order of its transfer function (highest power of s in the denominator). If the filter order is increased, a sharper transition between the stopband and passband of the filter is possible.Example: For the two low-pass filters, determine circuit parameters such that fc is 100 Hz, and GDC is Plot transfer function magnitudes to observe the transition near fc. 3 2 1 586  .-+vi(t)RR1RfC+vo(t)--+vi(t)RRCC(K-1)RfRf+vo(t)-First Order Second OrderGDC = 1+Rf / R1fc = 1 / (2RC) For GDC = K = , fc = 1 / (2RC)Formula not valid for any other value of K. Value of K was contrived so the cutoff would come out this way. For a general K value fc =  / (2RC) , where Transfer Function ResultsRCsRRsHf111)(ˆ12211)3(1)(ˆRCsRCsKKsH3 2 1 586  .   246767222KKKK0 100 200 300 400 500 600 700 800 900 10000.20.40.60.811.21.4first order (-), second order (---)HzgainPlot Comparison of Filter Order Effectw = [0:1024]*2*pi;s = j*w;h1 = (3-sqrt(2)) ./ (1 + (s / (2*pi*100)));h2 = (3-sqrt(2)) ./ (1 + (sqrt(2)*s / (2*pi*100)) + ( s / (2*pi*100)) .^2);plot(w/(2*pi),abs(h1),'b-', w/(2*pi), abs(h2), 'b:')title('first order (-), second order (---)'); xlabel('Hz'); ylabel('gain') 3dB cut-offSPICE Transfer Function Analysis The simulation option for “.AC Frequency Sweep” with plot transfer function for simulated circuit. The frequency range (in Hz) must be selected along with plot parameters such as log or linear scales. Both the phase and magnitude can be plotted if requested. The input can be a voltage or current source with amplitude of 1 and phase 0. Selection of the frequency range is critical. If a range is selected in an asymptotic region (missing the dynamic details of the transfer function) the plot will be misleading. The range can be determined by looking at large scale plots and making adjustments. Selecting a large range on a log scale may make it easier to identify the frequency range where change is happening, and then a smaller range can be selected to better show the details of the plot.Spice Example:Design the second order LPF so that it has a cutoff at 3.5 kHz with a gain of Verify the design with a SPICE simulation.The key design equations become:So let C = 0.01F and Rf = 10k. This implies R = 4.55k and (K-1)Rf = 5.86k-+vi(t)RRCC(K-1)RfRf+vo(t)-3 2 1 586  .RCK1)2(350023SPICE Results (Plot range 10 to 10 MHz)The magnitude plot in dB. Crosshair marker near 3 dB cutoff (What is happening near 100kHz)?TFLPF2ex-Small Signal AC-6-GraphFrequenc y (Hz)10.000 100.000 1.000k 10.000k 100.000k 1.000Meg 10.000Meg-40.000-20.0000.0FREQ 3.447k DB(v (IVm1)) 1.116 D(FREQ) 0.0D(PH_DEG(v (IVm1)))87.325SPICE Results (Plot range 10 to 10 MHz)The phase plot in degrees. Crosshair marker near 3 dB cutoff (What is happening near 100kHz)?TFLPF2ex-Small Signal AC-6-GraphFrequenc y (Hz)10.000 100.000 1.000k 10.000k 100.000k 1.000Meg 10.000Meg-300.000-200.000-100.000FREQ 3.548k PH_DEG(v (IVm1)) -91.852 D(FREQ) 0.0D(DB(v (IVm1)))


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UK EE 221 - Active Filters, Connections of Filters, and Midterm Project

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