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AD9266-80EBZ датащи(PDF) 21 Page - Analog Devices |
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AD9266-80EBZ датащи(HTML) 21 Page - Analog Devices |
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21 / 32 page ![]() Data Sheet AD9266 Rev. A | Page 21 of 32 Input Clock Divider The AD9266 contains an input clock divider with the ability to divide the input clock by integer values between 1 and 8. Optimum performance can be obtained by enabling the internal duty cycle stabilizer (DCS) when using divide ratios other than 1, 2, or 4. Clock Duty Cycle Typical high speed ADCs use both clock edges to generate a variety of internal timing signals and, as a result, may be sensitive to clock duty cycle. Commonly, a ±5% tolerance is required on the clock duty cycle to maintain dynamic performance characteristics. The AD9266 contains a duty cycle stabilizer (DCS) that retimes the nonsampling (falling) edge, providing an internal clock signal with a nominal 50% duty cycle. This allows the user to provide a wide range of clock input duty cycles without affecting the performance of the AD9266. Noise and distortion perform- ance are nearly flat for a wide range of duty cycles with the DCS on, as shown in Figure 51. 80 79 78 77 76 70 71 72 73 74 75 30 35 40 45 50 55 60 65 70 POSITIVE DUTY CYCLE (%) DCS OFF DCS ON Figure 51. SNR vs. DCS On/Off Jitter in the rising edge of the input is still of concern and is not easily reduced by the internal stabilization circuit. The duty cycle control loop does not function for clock rates less than 20 MHz nominally. The loop has a time constant associated with it that must be considered in applications in which the clock rate can change dynamically. A wait time of 1.5 µs to 5 µs is required after a dynamic clock frequency increase or decrease before the DCS loop is relocked to the input signal. Jitter Considerations High speed, high resolution ADCs are sensitive to the quality of the clock input. The degradation in SNR from the low frequency SNR (SNRLF) at a given input frequency (fINPUT) due to jitter (tJRMS) can be calculated by SNRHF = −10 log[(2π × fINPUT × tJRMS)2 + 10 ) 10 / ( LF SNR − ] In the previous equation, the rms aperture jitter represents the clock input jitter specification. IF undersampling applications are particularly sensitive to jitter, as illustrated in Figure 52. 80 75 70 65 60 55 50 45 1 10 100 1k FREQUENCY (MHz) 0.5ps 0.2ps 0.05ps 1.0ps 1.5ps 2.0ps 2.5ps 3.0ps Figure 52. SNR vs. Input Frequency and Jitter The clock input should be treated as an analog signal when aperture jitter may affect the dynamic range of the AD9266. To avoid modulating the clock signal with digital noise, keep power supplies for clock drivers separate from the ADC output driver supplies. Low jitter, crystal-controlled oscillators make the best clock sources. If the clock is generated from another type of source (by gating, dividing, or another method), it should be retimed by the original clock at the last step. For more information, see the AN-501 Application Note and the AN-756 Application Note available at www.analog.com. |
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