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ADL5565ACPZ-R7 Datasheet(PDF) 20 Page - Analog Devices |
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ADL5565ACPZ-R7 Datasheet(HTML) 20 Page - Analog Devices |
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20 / 29 page ![]() Data Sheet ADL5565 The single-ended gain can be determined using the following formula. The values of RG and RX for each gain configuration are shown in Table 9. L L X S X S S S G V R R R R R R R R R R R R R A + × + × + × + × + = 10 2 2 2 2 200 1 (2) In Equation 2, RG is the gain setting resistor (see Figure 1). Table 9. Values of RG and RX for Single-Ended Gain Gain (dB) R G (Ω) 1 R X (Ω) 5.3 100 R2 || 1582 10.3 50 R2 || 962 13 33.5 R2 || 742 1 R G is the gain setting resistor (see Figure 1). 2 These values are based on a 50 Ω input match. GAIN ADJUSTMENT AND INTERFACING The effective gain of the ADL5565 can be reduced using a number of techniques. A matched attenuator network can reduce the effective gain; however, this requires the addition of a separate component that can be prohibitive in size and cost. Instead, a simple voltage divider can be implemented using the combination of additional series resistors at the amplifier input and the input impedance of the ADL5565, as shown in Figure 36. A pair of resistors is used to match to the impedance of the previous stage. 0.1µF 1/2 RSHUNT 1/2 RS 1/2 RS AC 0.1µF 1/ 2 RSERIES VIP1 VIN2 VIN1 VIP2 1/2 RSERIES 1/2 RSHUNT ADL5565 Figure 36. Gain Adjustment Using a Series Resistor Figure 36 shows a typical implementation of the divider concept that effectively reduces the gain by adding attenuation at the input. For frequencies less than 100 MHz, the input impedance of the ADL5565 can be modeled as a real 66 Ω, 100 Ω, or 200 Ω resistance (differential) for maximum, middle, and minimum gains, respectively. Assuming that the frequency is low enough to ignore the shunt reactance of the input and high enough so that the reactance of moderately sized ac coupling capacitors can be considered negligible, the insertion loss, Il, due to the shunt divider can be expressed as + = G SERIES G R R R dB Il log 20 ) ( (3) In Equation 3, RG is the gain setting resistor (see Figure 1). Adjusted Gain (dB) = 6 dB, 12 dB, or 15.5 dB Gain – Il (dB) (4) The necessary shunt component, RSHUNT, to match to the source impedance, RS, can be expressed as G SERIES S SHUNT R R R R + − = 1 1 1 (5) In Equation 5, RG is the gain setting resistor (see Figure 1). The insertion loss and the resultant power gain for multiple shunt resistor values are summarized in Table 10. The source resistance and input impedance need careful attention when using Equation 3, Equation 4, and Equation 5. The reactance of the input impedance of the ADL5565 and the ac coupling capacitors must be considered before assuming that they make a negligible contribution. Table 10. Differential Gain Adjustment Using Series Resistor Gain (dB) Differential R G (Ω) 4 R S (Ω) Differential R SERIES (Ω) Differential R SHUNT (Ω) 5 01 200 50 200 57.6 11 200 50 154 57.6 21 200 50 118 59 31 200 50 84.5 60.4 41 200 50 52.3 61.9 51 200 50 24.9 64.9 61 200 50 0 66.5 72 100 50 78.7 69.8 82 100 50 59 73.2 92 100 50 42.2 76.8 102 100 50 26.7 82.5 112 100 50 12.7 88.7 122 100 50 0 100 133 66.7 50 23.7 113 143 66.7 50 13.7 133 15.53 66.7 50 0 200 1 Amplifier is configured for 6 dB gain setting. 2 Amplifier is configured for 12 dB gain setting. 3 Amplifier is configured for 15.5 dB gain setting. 4 R G is the gain setting resistor (see Figure 1). 5 The resistor values are rounded to the nearest real resistor value. Rev. E | Page 19 of 28 |
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