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ADL5501AKSZ-R2 数据表(PDF) 21 Page - Analog Devices |
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ADL5501AKSZ-R2 数据表(HTML) 21 Page - Analog Devices |
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21 / 28 page ![]() ADL5501 Rev. B | Page 21 of 2 8 The square-domain filter at FLTR can be reduced to improve response time, and the remaining ac residual can be decreased by using the output filter, which has a smaller time constant. OUTPUT DRIVE CAPABILITY AND BUFFERING The ADL5501 is capable of sourcing an output current of approx- imately 3 mA. The output current is sourced through the on-chip, 100 Ω series resistor; therefore, any load resistor forms a voltage divider with this on-chip resistance. It is recommended that the ADL5501 drive high resistive loads to preserve output swing. If an application requires driving a low resistance load, a simple buffering circuit can be used, as shown in Figure 49. Similar circuits can be used to increase or decrease the nominal conversion gain (see Figure 47 and Figure 48). In Figure 48, the AD8031 buffers a resistive divider to give half of the slope. In Figure 47, the op amp gain of two doubles the slope. Using other resistor values, the slope can be changed to an arbitrary value. The AD8031 rail-to-rail op amp, used in these examples, can swing from 50 mV to 4.95 V on a single 5 V supply and operates at supply voltages down to 2.7 V. If high output current is required (>10 mA), the AD8051, which also has rail-to-rail capability, can be used down to a supply voltage of 3 V. It can deliver up to 45 mA of output current. 100pF 0.1µF 0.01µF ADL5501 VRMS VPOS COMM 5kΩ 5kΩ 5V 12.6V/V rms AD8031 Figure 47. Output Buffering Options, Slope of 12.6 V/V rms at 900 MHz 100pF 0.1µF 0.01µF ADL5501 VRMS VPOS COMM 5V 3.2V/V rms AD8031 4kΩ 5kΩ Figure 48. Output Buffering Options, Slope of 3.2 V/V rms at 900 MHz 100pF 0.1µF 0.01µF ADL5501 VRMS VPOS COMM 5V 6.3V/V rms AD8031 Figure 49. Output Buffering Options, Slope of 6.3 V/V rms at 900 MHz VRMS OUTPUT OFFSET The ADL5501 has a ±1 dB error detection range of about 30 dB, as shown in Figure 10 to Figure 12 and Figure 16 to Figure 18. The error is referred to the best-fit line defined in the linear region of the output response. Below an input power of −20 dBm, the response is no longer linear and begins to lose accuracy. In addi- tion, depending on the supply voltage, saturation of the output limits the detection accuracy above 10 dBm. Calibration points should be chosen in the linear region, avoiding the nonlinear ranges at the high and low extremes. Figure 50 shows the distribution of the output response vs. the input power for multiple devices. The ADL5501 loses accuracy at low input powers as the output response begins to fan out. As the input power is reduced, the spread of the output response increases along with the error. Although some devices follow the ideal linear response at very low input powers, not all devices continue the ideal linear regression to a near 0 V y-intercept. Some devices exhibit output responses that rapidly decrease, and some flatten out. With no RF signal applied, the ADL5501 has a typical output offset of 50 mV (with a maximum of 150 mV). 10 0.01 0.1 1 –40 –35 –30 –25 –20 –15 –10 –5 0 5 10 15 INPUT (dBm) Figure 50. Output vs. Input Level Distribution of 50 Devices, Frequency = 900 MHz, Supply = 5.0 V |
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