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CLC418 Datasheet(PDF) 9 Page - National Semiconductor (TI) |
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CLC418 Datasheet(HTML) 9 Page - National Semiconductor (TI) |
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9 / 12 page ![]() 9 http://www.national.com SPICE Models SPICE models provide a means to evaluate op amp designs. Free SPICE models are available that: s Support Berkeley SPICE 2G and its many derivatives s Reproduce typical DC, AC, Transient, and Noise performance s Support room temperature simulations The readme file that accompanies the models lists the released models, and provides a list of modeled parameters. The application note Simulation SPICE Models for Comlinear’s Op Amps contains schematics and detailed information. Differential Line Driver With Load Impedance Conversion The circuit shown in the Typical Application schematic on the front page operates as a differential line driver. The transformer converts the load impedance to a value that best matches the CLC418’s output capabilities. The single-ended input signal is converted to a differential signal by the CLC418. The line’s characteristic impedance is matched at both the input and the output. The schematic shows Unshielded Twisted Pair for the transmission line; other types of lines can also be driven. Set up the CLC418 as a difference amplifier: Make the best use of the CLC418’s output drive capability as follows: where Req is the transformed value of the load impedance, Vmax is the Output Voltage Range, and Imax is the maximum Output Current. Match the line’s characteristic impedance: Select the transformer so that it loads the line with a value very near Zo over your frequency range. The out- put impedance of the CLC418 also affects the match. With an ideal transformer we obtain: where Zo(418)(jω) is the output impedance of the CLC418, and |Zo(418)(jω)| << Rm. The load voltage and current will fall in the ranges: The CLC418’s high output drive current and low distortion make it a good choice for this application. Lowpass Anti-aliasing Filter with Delay Equalization The circuit shown in Figure 7 is a 5th-order Butterworth lowpass filter with group delay equalization. Vin needs to be a voltage source with low output impedance. Section A is a simple single-pole filter. Section B provides a single-pole allpass function for group delay equalization. Sections C and D are Sallen-Key lowpass biquad sections. Figure 7: Lowpass Anti-aliasing Filter The filter specifications we built to are: fc = 10MHz (passband corner frequency) fs = 20MHz (stopband corner frequency) Ap = 3.01dB (maximum passband attenuation) As = 30dB (minimum stopband attenuation) Ho = 0dB (DC gain) The designed component values are in the table below. The pre-distorted values compensate for the finite band- width of the CLC418. CLC418 Applications V V 2 1 R R 2 R R d in f1 g1 f2 g2 = ⋅ + = ⋅ R R 2 V I m eq max max + = ⋅ R Z R R n R R L o m eq L eq = = = Return Loss -20 log n Z (j ) Z , dB 10 2 o(418) o ≈ ⋅ ⋅ ω V n V I I n o max o max ≤ ⋅ ≤ 418 Fig7 + - 1/2 CLC418 RfA VoA Vin R1A C2A + - 1/2 CLC418 RfB VoB R1B C2B R3B + - 1/2 CLC418 RfC VoC R3C R1C C4C + - 1/2 CLC418 RfD Vo R3D C4D C5C U1A U1B U2C U2D C5D RgD R1D 1- αD R1D αD |
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