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LT6300IGN Folha de dados(PDF) 12 Page - Linear Technology |
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LT6300IGN Folha de dados(HTML) 12 Page - Linear Technology |
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12 / 16 page ![]() 12 LT6300 APPLICATIO S I FOR ATIO Another compensation scheme for noninverting circuits is shown in Figure 10. The circuit is unity gain at low fre- quency and a gain of 1 + RF/RG at high frequency. The DC output offset is reduced by a factor of ten. The techniques of Figures 9 and 10 can be combined as shown in Fig- ure 11. The gain is unity at low frequencies, 1 + RF/RG at mid-band and for stability, a gain of 10 or greater at high frequencies. In differential driver applications, as shown on the first page of this data sheet, it is recommended that the gain setting resistor be comprised of two equal value resistors connected to a good AC ground at high frequencies. This ensures that the feedback factor of each amplifier remains less than 0.1 at any frequency. The midpoint of the resistors can be directly connected to ground, with the resulting DC gain to the VOS of the amplifiers, or just bypassed to ground with a 1000pF or larger capacitor. Line Driving Back-Termination The standard method of cable or line back-termination is shown in Figure 12. The cable/line is terminated in its characteristic impedance (50 Ω, 75Ω, 100Ω, 135Ω, etc.). A back-termination resistor also equal to the chararacteristic impedance should be used for maximum pulse fidelity of outgoing signals, and to terminate the line for incoming signals in a full-duplex application. There are three main drawbacks to this approach. First, the power dissipated in the load and back-termination resistors is equal so half of the power delivered by the amplifier is wasted in the termination resistor. Second, the signal is halved so the gain of the amplifer must be doubled to have the same overall gain to the load. The increase in gain increases noise and decreases bandwidth (which can also increase distortion). Third, the output swing of the amplifier is doubled which can limit the power it can deliver to the load for a given power supply voltage. An alternate method of back-termination is shown in Figure 13. Positive feedback increases the effective back- termination resistance so RBT can be reduced by a factor 6300 F10 RF RG Vi VO CC < 5MHz 1 2 πRGCC RG ≤ RF/9 = 1 (LOW FREQUENCIES) (HIGH FREQUENCIES) VO VI = 1 + RF RG Figure 10. Alternate Noninverting Compensation RC VO VI CC 6300 F11 RF RG CBIG RF RG = 1 AT LOW FREQUENCIES = 1 + AT MEDIUM FREQUENCIES RF (RC || RG) = 1 + AT HIGH FREQUENCIES VO VI Figure 11. Combination Compensation 6300 F12 RF RBT CABLE OR LINE WITH CHARACTERISTIC IMPEDANCE RL RG VO VI RL (1 + RF/RG) = VO VI 1 2 RBT = RL Figure 12. Standard Cable/Line Back Termination 6300 F13 RF RBT RP2 RP1 RG VI VA VP VO RL RF RG 1 + RL n = VO VI = 1 – – 1 n FOR RBT = () RF RG 1 + () RP1 RP1 + RP2 RP1 RP2 + RP1 RP2/(RP2 + RP1) () 1 + 1/n Figure 13. Back Termination Using Postive Feedback |
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