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CLC423 Datasheet(PDF) 5 Page - National Semiconductor (TI) |
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CLC423 Datasheet(HTML) 5 Page - National Semiconductor (TI) |
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5 / 8 page ![]() 5 http://www.national.com Load Termination Since the CLC423 design has been optimized for Single Supply Operation, it is more capable of sourcing rather than sinking current. For optimum performance, the load should be tied to VEE. When the load is tied to VEE, the output always sources current. Output Overdrive Recovery When the output range of an amplifier is exceeded, time is required for the amplifier to recover from this over driven condition. Figure 5 illustrates the overload recovery of the CLC423 when the output is overdriven. An input was applied in an attempt to drive the output to twice the supply rails (2 • (VCC -VEE) = 10V), but the output limits. An inverting gain topolgy was used, see Figure 2. As indicated, the CLC423 recovers within 25ns on the rising edge and within 10ns on the falling edge. Figure 5: Overdrive Recovery Driving Cables and Capacitive Loads When driving cables, double termination is used to prevent reflections. For capacitive load applications, a small series resistor at the output of the CLC423 will improve stability and settling performance. The Frequency Response vs. CL plot, in the typical performance section, gives the recommended series resistance value for optimum flatness at various capacitive loads. Transmission Line Matching One method for matching the characteristic impedance (Zo) of a transmission line or cable is to place the appropriate resistor at the input or output of the amplifier. Figure 6 shows typical inverting and non-inverting circuit configurations for matching transmission lines. Figure 6: Transmission Line Matching Non-inverting gain applications: s Connect Rg directly to ground. s Make R1, R2, R6, and R7 equal to Zo. s Use R3 to isolate the amplifier from reactive loading caused by the transmission line, or by parasitics. Inverting gain applications: s Connect R3 directly to ground. s Make the resistors R4, R6, and R7 equal to Zo. s Make R5 II Rg = Zo. The input and output matching resistors attenuate the signal by a factor of 2, therefore additional gain is needed. Use C6 to match the output transmission line over a greater frequency range. C6 compensates for the increase of the amplifier’s output impedance with frequency. Power Dissipation Follow these steps to determine the power consumption of the CLC423: 1. Calculate the quiescent (no-load) power: Pamp = ICC (VCC - VEE) 2. Calculate the RMS power at the output stage: Po = (VCC - Vload) (Iload), where Vload and Iload are the RMS voltage and current across the external load. 3. Calculate the total RMS power: Pt = Pamp + Po The maximum power that the DIP and SOIC packages can dissipate at a given temperature is illustrated in Figure 7. The power derating curve for any package can be derived by utilizing the following equation: where: Tamb = Ambient temperature (°C) θja = Thermal resistance, from junction to ambient, for a given package (°C/W) Figure 7: Power Derating Curves p Time (50ns/div) Input Output CLC423 + - Fi R3 Z0 R6 Vo Z0 R1 R2 + - Rg Z0 R4 R5 V1 V2 +- Rf C6 R7 Ambient Temperature ( °C) 0 0.2 0.4 0.6 0.8 1.0 0 20 40 60 80 100 120 140 160 180 AJP AJE (175 Tamb JA °− ) θ |
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