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CLC418 Datasheet(PDF) 10 Page - National Semiconductor (TI) |
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CLC418 Datasheet(HTML) 10 Page - National Semiconductor (TI) |
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10 / 12 page ![]() http://www.national.com 10 Component Value Ideal Pre-distorted R1A 238 Ω 211 Ω C2A 67pF RfA 3.01k Ω R1B 314 Ω 300 Ω C2B 67pF R3B 953 Ω RfB 953 Ω R1C 108 Ω 100 Ω R3C 1.06k Ω 1.07k Ω C4C 22pF C5C 100pF RfC 3.01k Ω R1D/αD 256 Ω 227 Ω R1D/(1-αD) 256 Ω 227 Ω R3D 900 Ω 850 Ω C4D 22pF C5D 100pF RfD 953 Ω RgD 953 Ω Table 1: Filter Component Values The nearest standard values for capacitors and resistors were used to build this filter. The resistors were 1% tolerance, and the capacitors 5% tolerance. The ideal and measured gains are shown in Figure 8. Figure 8: Lowpass Anti-aliasing Filter Response To change the cutoff frequency of this filter, do the following: s Determine the new cutoff frequency: , where f3dB(418) is the bandwidth of the CLC418 s Scale (multiply) all frequency specifications and plot axes by fc(new)/fc s Make sure that your system requirements are met s Scale (multiply) all capacitor values by fc/fc(new) s Set the resistors to the Ideal Values in the table above (the pre-distorted values do not linearly scale with frequency) For more information on the design of Sallen-Key filters and filter pre-distortion, see Comlinear’s App Notes on filters. Precision Full-Wave Rectifier Figure 9 shows a precision full-wave rectifier using the CLC418. When Vin > 0, D1 is on, D2 is off, V2 = 0 and an overall non-inverting gain is achieved. When Vin < 0, D1 is off, D2 is on, both V1 and V2 are positive, and an over- all inverting gain is achieved. The output voltage of the rectifier is: Figure 9: Precision Full-Wave Rectifier Diodes D1 and D2 need to be Schottky or PIN diodes to minimize delay. Select the voltage gain for U1a (G1 < 0) and U1b (G2). G2 needs to be ≤ 1, approximately, to ensure realizable values of R4. The overall gain is: Set R2 = R3 to the recommended feedback resistor value for the gain Av = R2. You may need to increase R2 and R3 slightly to compensate for the delays through D1 and D2. Set R7 to the recommended feedback resistor value for the gain Av = (1 + G2). Calculate the ratio: If this ratio is negative, reduce G2 and recalculate the values up to this point. Frequency (MHz) 418 Fig8 0 -30 -20 -10 -60 1 10 -40 -50 Measured Ideal V R R R R 1 R R R 1 R R R R R R V ,V 0 V ,V 0 o 2 5 7 1 2 5 3 4 6 2 1 7 5 in in in in = + + + + ⋅ + ⋅ ⋅ > ⋅ < R3 - + 20 Ω 1/2 CLC418 418 Fig9 R1 Vin R4 R6 - + 1/2 CLC418 R2 R5 R7 U1a U1b Vo C1 V2 V1 D2 D1 V V G G V 0 o in 1 2 in = > , R R 1+ R R 1 1 G 1 R R G R R R R R R G 4 6 7 2 2 2 3 2 7 3 7 3 2 3 2 = + − + − + ⋅ f f 10 c(new) 3dB(418) ≤ |
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