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AD6623S/PCB Scheda tecnica(PDF) 22 Page - Analog Devices |
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AD6623S/PCB Scheda tecnica(HTML) 22 Page - Analog Devices |
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22 / 40 page ![]() REV. 0 AD6623 –22– CIC Scaling The scale factor SCIC is a programmable unsigned integer between 4 and 32. This is a combined scaler for the CIC5 and rCIC2 stages. The overall gain of the CIC section is given by the equation below CIC Gain L L CIC rCIC S CIC _ – =× × 5 4 2 2 (10) CIC5 The first CIC filter stage, the CIC5, is a fifth order interpolating cascaded integrator comb whose impulse response is completely defined by its interpolation factor, LCIC5. The value LCIC5–1 can be independently programmed for each channel at location 0xn09. 2–SCIC MrCIC 2 LrCIC 2 LCIC5 CIC_SCALE rCIC2 CIC5 Figure 26. CIC5 While this control register is 8 bits wide, LCIC5 should be confined to the range from 1 to 32 to avoid the possibility of internal overflow for full scale inputs. The output rate of this stage is given by the equation below. ff L CIC CIC CIC 25 5 =× (11) The transfer function of the CIC5 is given by the following equations with respect to the CIC5 output sample rate, fsamp5. CIC z z z L CIC 5 1 1 5 1 5 () – – – – = (12) The SCIC value can be independently programmed for each channel at Control Register 0xn06. SCIC may be safely calculated according to equation (13) below to ensure the net gain through the CIC stages. SCIC serves to frame which bits of the CIC output are transferred to the NCO stage. This results in controlling the data out of the CIC stages in 6 dB Increments. For the best dynamic range, SCIC should be set to the smallest value possible (lowest attenuation) without creating an overflow condition. This can be safely accomplished using the equation below. To ensure the CIC output data is in range, equation (13) must always be met. The maximum total interpolation rate may be limited by the amount of scaling available. S ceil L L CIC CIC CIC ≥× ()+ () () 4 25 22 log log (13) 058 ≤≤ S CIC (14) This polynomial fraction can be completely reduced as follows demonstrating a finite impulse response with perfect phase linearity for all values of LCIC5. CIC z z z e k k L j k L k L CIC CIC CIC 5 0 1 5 1 2 1 1 5 5 5 5 () – – – – – = ∑ = ∑ == π (15) The frequency response of the CIC5 can be expressed as follows. The initial 1/LCIC5 factor normalizes for the increased rate, which is appropriate when the samples are destined for a DAC with a zero order hold output. The maximum gain is LCIC5 4 at baseband, but internal registers peak in response to various dynamic inputs. As long as LCIC5 is confined to 32 or less, there is no possibility of overflow at any register. CIC f L Lf f f f CIC CIC CIC CIC 5 1 5 5 5 5 5 () = × sin sin π π (16) The pass band droop of CIC5 should be calculated using this equation and can be compensated for in the RCF stage. The gain should be calculated from the CIC scaling section above. As an example, consider an input from the RCF whose bandwidth is 0.141 of the RCF output rate, centered at baseband. Interpolation by a factor of five reveals five images, as shown below. 10 –10 –30 –33 –2 –1 012 –50 –70 –90 –110 –130 –150 Figure 27. Interpolation Images The CIC5 rejects each of the undesired images while passing the image at baseband. The images of a pure tone at channel center (DC) are nulled perfectly, but as the bandwidth increases the rejection is diminished. The lower band edge of the first image always has the least rejection. In this example, the CIC5 is inter- polating by a factor of five and the input signal has a bandwidth of 0.141 of the RCF output sample rate. The plot below shows –110 dBc rejection of the lower band edge of the first image. All other image frequencies have better rejection. 10 –10 –30 –33 –2 –1 012 –50 –70 –90 –110 –130 –150 Figure 28. –110 dBc Rejection |
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