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AD9516-2/PCBZ датащи(PDF) 47 Page - Analog Devices |
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AD9516-2/PCBZ датащи(HTML) 47 Page - Analog Devices |
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47 / 84 page ![]() AD9516-2 Rev. 0 | Page 47 of 84 Case 1 When Φx.1 ≤ 15 and Φx.2 ≤ 15: Δt = Φx.1 × TX.1 + ΦX.2 × Tx.2 Case 2 When Φx.1 ≤ 15 and Φx.2 ≥ 16: Δt = ΦX.1 × TX.1 + (ΦX.2 – 16 + MX.2 + 1) × TX.2 Case 3 When ΦX.1 ≥ 16 and ΦX.2 ≤ 15: Δt = (ΦX.1 − 16 + MX.1 + 1) × TX.1 + ΦX.2 × TX.2 Case 4 When ΦX.1 ≥ 16 and ΦX.2 ≥ 16: Δt = (ΦX.1 − 16 + MX.1 + 1) × TX.1 + (ΦX.2 − 16 + MX.2 + 1) × TX.2 Fine Delay Adjust (Divider 3 and Divider 4) Each AD9516 LVDS/CMOS output (OUT6 to OUT9) includes an analog delay element that can be programmed to give variable time delays (Δt) in the clock signal at that output. DIVIDER X.2 DIVIDER X.1 ΔT OUTM OUTM BYPASS FINE DELAY ADJUST CMOS LVDS CMOS ΔT OUTN OUTN BYPASS FINE DELAY ADJUST CMOS LVDS CMOS OUTPUT DRIVERS CLK VCO DIVIDER Figure 54. Fine Delay (OUT6 to OUT9) The amount of delay applied to the clock signal is determined by programming four registers per output (see Table 46). Table 46. Setting Analog Fine Delays OUTPUT (LVDS/CMOS) Ramp Capacitors Ramp Current Delay Fraction Delay Bypass OUT6 0xA1<5:3> 0xA1<2:0> 0xA2<5:0> 0xA0<0> OUT7 0xA4<5:3> 0xA4<2:0> 0xA5<5:0> 0xA3<0> OUT8 0xA7<5:3> 0xA7<2:0> 0xA8<5:0> 0xA6<0> OUT9 0xAA<5:3> 0xAA<2:0> 0xAB<5:0> 0xA9<0> Calculating the Fine Delay The following values and equations are used to calculate the delay of the delay block. IRAMP (μA) = 200 × (Ramp Current + 1) Number of Capacitors = Number of Bits = 0 in Ramp Capacitors + 1 Example: 101 = 1 + 1 = 2; 110 = 1 + 1 = 2; 100 = 2 + 1 = 3; 001 = 2 + 1 = 3; 111 = 0 + 1 = 1. Delay Range (ns) = 200 × ((No. of Caps + 3)/(IRAMP)) × 1.3286 () () 6 1 10 1600 0.34 ns 4 × ⎟⎟ ⎠ ⎞ ⎜⎜ ⎝ ⎛− + × − + = − RAMP RAMP I Caps of No. I Offset Delay Full Scale (ns) = Delay Range + Offset Fine Delay (ns) = Delay Range × Delay Fraction × (1/63) + Offset Note that only delay fraction values up to 47 decimal (101111b; 0x2F) are supported. In no case can the fine delay exceed one-half of the output clock period. If a delay longer than half of the clock period is attempted, the output stops clocking. The delay function adds some jitter greater than that specified for the nondelayed output. This means that the delay function should be used primarily for clocking digital chips, such as FPGA, ASIC, DUC, and DDC. An output with this delay enabled may not be suitable for clocking data converters. The jitter is higher for long full scales because the delay block uses a ramp and trip points to create the variable delay. A slower ramp time produces more time jitter. Synchronizing the Outputs—SYNC Function The AD9516 clock outputs can be synchronized to each other. Outputs can be individually excluded from synchronization. Synchronization consists of setting the nonexcluded outputs to a preset set of static conditions and subsequently releasing these outputs to continue clocking at the same instant with the preset conditions applied. This allows for the alignment of the edges of two or more outputs or for the spacing of edges according to the coarse phase offset settings for two or more outputs. |
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