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LM2408 Datasheet(PDF) 5 Page - National Semiconductor (TI) |
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LM2408 Datasheet(HTML) 5 Page - National Semiconductor (TI) |
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5 / 8 page ![]() EFFECT OF LOAD CAPACITANCE The output rise and fall times will be slower than specified if the load capacitance at the output is more than 8 pF as shown in Figure 8 TLH12683 – 9 FIGURE 8 Effect of Load Capacitance on RiseFall Time The monitor designer should ensure that stray capacitance applied to the LM2408 is as low as possible THERMAL CONSIDERATIONS Power supply current increases as the input signal increas- es and consequently power dissipation also increases The LM2408 cannot be used without heat sinking Typical ‘‘average’’ power dissipation with the device output voltage at one half the supply voltage is 19W per channel for a total dissipation of 57W package dissipation The power dissipa- tion does not vary much as output voltage varies The LM2408 case temperature must be maintained below 100 C If the maximum expected ambient temperature is 50 C then a maximum heat sink thermal resistance can be calculated Rth e 100 C b 50 C 57W e 88 CW This example assumes a typical CRT capacitive load and is without a resistive load Note that this thermal resistance must be achieved when the heat sink is operating in the monitor PC BOARD LAYOUT CONSIDERATIONS For optimum performance an adequate ground plane isola- tion between channels good supply bypassing and minimiz- ing unwanted feedback are necessary Also the length of the signal traces from the preamplifier to the LM2408 and from the LM2408 to the CRT cathode should be as short as possible The following references are recommended Ott Henry W ‘‘Noise Reduction Techniques in Electronic Systems’’ John Wiley and Sons New York 1976 ‘‘Guide to CRT Video Design’’ National Semiconductor Ap- plication Note 861 ‘‘Video Amplifier Design for Computer Monitors’’ National Semiconductor Application Note 1013 Because of its high small signal bandwidth the part may oscillate when it is used in a typical application with a preamp in a monitor if feedback occurs around the video amplifier through the chassis wiring To prevent this leads to the input circuit should be shielded and input circuit wir- ing should be spaced as far as possible from output circuit wiring Power should be removed as quickly as possible from an amplifier that is oscillating since power dissipation in the part is very high in this mode and the part may be damaged if oscillations continue and the power supply can supply more than 250 mA Capacitive loading on the output will cause some overshoot and peaking This can be controlled by placing a resistor in series with the output of the part Because of differences in stray capacitance in different pc board layouts the best val- ue of resistance to use must be determined separately for each application Typical values between 50X and 200X provide good performance with the larger values resulting in less peaking and slower rise and fall times Driving the output voltage of the part outside of its linear range will cause distorted signal waveforms and recovery times that are very much longer than the specified rise and fall times When the amplifier output voltage is being driven from positive saturation into the linear range an overshoot of several volts for up to 50 ns may occur In a typical moni- tor design this may occur if blanking pulses are applied to the video signal The output voltage range should be limited so this does not happen and will be approximately no lower than 25V and no higher than VCCb5V TYPICAL APPLICATION A typical application of the LM2408 is shown in Figure 9 Used in conjunction with an LM1205 a complete video channel from monitor input to CRT cathode can be achieved Performance is satisfactory for all applications up to 1280 c 1024 non-interfaced and pixel clock frequencies up to 160 MHz http www nationalcom 5 |
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