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CLC446AMC Datenblatt(PDF) 4 Page - National Semiconductor (TI) |
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CLC446AMC Datenblatt(HTML) 4 Page - National Semiconductor (TI) |
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4 / 12 page ![]() http://www.national.com 4 The CLC446 has a current-feedback architecture built in an advanced complementary bipolar process. The key features of current-feedback are: s AC bandwidth is independent of voltage gain s Unity-gain stability s Frequency response may be adjusted with Rf s High slew rate s Low variation in performance for a wide range of gains, signal levels and loads s Fast settling Current-feedback operation can be explained with a simple model. The voltage gain for the circuits in Figures 1 and 2 is approximately: where s Av is the DC voltage gain s Rf is the feedback resistor s Z(j ω) is the CLC446’s open-loop transimpedance gain s is the loop-gain The denominator of the equation above is approximately 1 at low frequencies. Near the -3dB corner frequency, the interaction between Rf and Z(jω) dominates the circuit performance. Increasing Rf does the following: s Decreases loop-gain s Decreases bandwidth s Lowers pulse response overshoot s Reduces gain peaking s Affects frequency response phase linearity CLC446 Operation The following topics will supply you with: s Design parameters, formulas and techniques s Interfaces s Application circuits s Layout techniques s SPICE model information DC Gain (non-inverting) The non-inverting DC voltage gain for the configuration shown in Figure 1 is . The normalized gain plots in the Typical Performance Characteristics section show different feedback resistors (Rf) for different gains. These values of Rf are recommended for obtaining the highest bandwidth with minimal peaking. The resistor Rt provides DC bias for the non-inverting input. For Av < 5, use linear interpolation on the nearest Av val- ues to calculate the recommended value of Rf. For Av ≥ 5, the minimum recommended Rf is 200Ω. Select Rg to set the DC gain: . DC gain accuracy is usually limited by the tolerance of Rf and Rg. Figure 1: Non-Inverting Gain + - CLC446 Fi Rf 0.1 µF 6.8 µF Vo Vin VCC 0.1 µF 6.8 µF VEE 3 2 4 7 6 + + Rg Rt Typical Performance Characteristics (VCC = ±5V, Av = +2, R f = 249Ω Ω,, R L = 100Ω Ω; unless specified) Short Term Settling Time Time (sec) 0.2 0.1 -0.2 1n 10n 100n 0 -0.1 1 µ 10 µ VO = 2V step Long Term Settling Time Time (s) 0.2 0.1 -0.2 1 µ 10 µ 100 µ 0 -0.1 1m 10m 100m 1 VO = 2V step V V A 1 R Zj o in v f = + ()ω Zj Rf ω () A1 R R v f g =+ R R A1 g f v = − CLC446 Design Information |
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