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AD6676EBZ 数据表(PDF) 31 Page - Analog Devices |
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AD6676EBZ 数据表(HTML) 31 Page - Analog Devices |
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31 / 90 page ![]() Data Sheet AD6676 Rev. A | Page 31 of 90 Σ-Δ ADC Adaptive Shuffler The AD6676 includes a programmable adaptive shuffler that improves the SFDR and IMD performance of the Σ-Δ ADC under large signal conditions. As shown in Figure 68, the adaptive shuffler randomizes the selection of the unit elements used by the feedback DACs to reconstruct the output signal of the quantizer. Both static and dynamic mismatch errors associated with the quantizer and feedback DACs are dithered such that the spurious contribution is spread across a wider frequency span. Figure 86 compares the improved IMD performance for a two tone excitation when the shuffler is enabled and disabled. 0 –120 –100 –80 –60 –40 –20 0 –120 –100 –80 –60 –40 –20 140 150 160 170 180 190 200 210 220 FREQUENCY (MHz) ADAPTIVE SHUFFLING DISABLED ADAPTIVE SHUFFLING ENABLED SHUFFLE EVERY ONE ADC CLOCK CYCLE (0x342 = 0xF5, 0x343 = 0xFF) Figure 86. IMD Performance when Shuffler Is Disabled vs. Enabled for Two CW Tones at −8 dBFS, (FIF =180 MHz, BW =80 MHz,FADC = 3.2GHz, LEXT= 43nH) Although the shuffler improves the SFDR and IMD performance, it does so at the expense of the in-band NSD performance. For this reason, both the degree of shuffling as well as the enabling threshold relative to the quantizer output code is user programmable, allowing optimization for a target application. The shuffling rate is variable from 1 to 4 ADC clock cycles (1/FADC). The shuffler remains enabled for a fixed amount of clock cycles from the instant that the input signal falls below this threshold and remains below it. The enabling threshold is relative to the quantizer code and represents the peak absolute value that triggers the shuffler. The quantizer can produce an output code ranging from −8 to +8, therefore the threshold can assume a value between 0 to 8. The 4-bit value is set via Register 0x342 or Register 0x343. A hexadecimal value of 0x0 sets the shuffler to always enabled whereas a value of 0xF effectively disables the shuffler. The 4-bit fields in Register 0x342 and Register 0x343 set the threshold value based on the shuffling rate selected. Set only the 4-bit field pertaining to the selected shuffling rate while the remaining nonapplicable 4-bit fields set to 0xF. Disable the shuffler by setting all the 4-bit fields to 0xF, the highest threshold setting. Table 9 shows the SPI register settings for the various shuffling modes when the threshold is set to its default setting of 5. Other threshold values ranging from 3 to 8 are also possible. Table 10 shows the input power level that triggers the shuffler for different threshold value settings when driven by a continuous wave tone. Table 9. Default SPI Register Settings for Adaptive Shuffling Shuffling Rate Register 0x342 Register 0x343 F ADC 0xF5 0xFF F ADC/2 0x5F 0xFF F ADC/3 0xFF 0xF5 F ADC/4 0xFF 0x5F Disable shuffler 0xFF 0xFF Table 10. Threshold Setting Values that Trigger the Shuffler for a Continuous Wave Tone P IN (dBFS) Threshold Setting −3 8 −5 7 −7 6 −10 5 −14 4 −20 3 When enabled, the shuffler can introduce colored noise into the pass band spectrum. This additional noise is a result of the increased switching activity within the Σ-Δ ADC core along with the pseudorandom element selection process, thus resulting in signal level dependent colored noise at frequency offsets related to the shuffling rate. Figure 87 highlights the effect of the colored noise between shuffle every four clock cycles vs. one cycle with and without a large signal continuous wave tone present and the shuffling threshold set to 0. Typically, the shuffling threshold is set in the range of 4 to 6. This example serves to highlight the colored noise effects of shuffling. Selecting a higher threshold setting is preferable when trying to preserve the NSD performance. For this reason, the AD6676 default threshold setting is 5 with the shuffle every clock cycle option. The four-cycle option introduces visible noise humps with a −1 dBFS signal level. This colored noise is at an offset of fCLK/128, resulting from the pseudorandom element selection process. Other shuffling options also introduce colored noise but at a greater frequency offset that are related to the shuffling rate factor (SRF) as described by the following equation: Frequency Offset = fCLK/(32 × SRF) (5) The effect of this colored noise is worthy of consideration when selecting the shuffling rate and threshold. For example, sweeping a −1 dBFS continuous wave tone across the usable IF pass band region while monitoring the NSD characteristics is helpful to identify what shuffling rate may have the least impact on the NSD performance. |
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