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ADF5355 Datasheet(PDF) 17 Page - Analog Devices |
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ADF5355 Datasheet(HTML) 17 Page - Analog Devices |
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17 / 38 page ![]() Data Sheet ADF5355 Rev. A | Page 17 of 38 The FRAC2 and MOD2 fraction result in outputs with zero frequency error for channel spacings when fPFD/GCD(fPFD, fCHSP) = MOD2 < 16,383 (6) where: fPFD is the frequency of the phase frequency detector. fCHSP is the desired channel spacing. GCD is a greatest common divisor function. If zero frequency error is not required, the MOD1 and MOD2 denominators operate together to create a 38-bit resolution modulus. INT N Mode When FRAC1 and FRAC2 are 0, the synthesizer operates in integer-N mode. R Counter The 10-bit R counter allows the input reference frequency (REFIN) to be divided down to produce the reference clock to the PFD. Division ratios from 1 to 1023 are allowed. PHASE FREQUENCY DETECTOR (PFD) AND CHARGE PUMP The PFD takes inputs from the R counter and N counter and produces an output proportional to the phase and frequency difference between them. Figure 34 is a simplified schematic of the phase frequency detector. The PFD includes a fixed delay element (INT = 1.6 ns, FRAC = 2.6 ns) that sets the width of the anti-backlash pulse. This pulse ensures that there is no dead zone in the PFD transfer function and provides a consistent reference spur level. Set the phase detector polarity to positive on this device because of the positive tuning of the VCO. Figure 34. PFD Simplified Schematic MUXOUT AND LOCK DETECT The output multiplexer on the ADF5355 allows the user to access various internal points on the chip. The M3, M2, and M1 bits in Register 4 control the state of MUXOUT. Figure 35 shows the MUXOUT section in block diagram form. Figure 35. MUXOUT Schematic INPUT SHIFT REGISTERS The ADF5355 digital section includes a 10-bit R counter, a 16-bit RF integer-N counter, a 24-bit FRAC1 counter, a 14-bit auxiliary fractional counter, and a 14-bit auxiliary modulus counter. Data clocks into the 32-bit shift register on each rising edge of CLK. The data clocks in MSB first. Data transfers from the shift register to one of 13 latches on the rising edge of LE. The state of the four control bits (C4, C3, C2, and C1) in the shift register determines the destination latch. As shown in Figure 2, the four LSBs are DB3, DB2, DB1, and DB0. The truth table for these bits is shown in Table 5. Figure 39 and Figure 40 summarize the programming of the latches. Table 5. Truth Table for the C4, C3, C2, and C1 Control Bits Control Bits Register C4 C3 C2 C1 0 0 0 0 Register 0 0 0 0 1 Register 1 0 0 1 0 Register 2 0 0 1 1 Register 3 0 1 0 0 Register 4 0 1 0 1 Register 5 0 1 1 0 Register 6 0 1 1 1 Register 7 1 0 0 0 Register 8 1 0 0 1 Register 9 1 0 1 0 Register 10 1 0 1 1 Register 11 1 1 0 0 Register 12 U3 CLR2 Q2 D2 U2 DOWN UP HIGH HIGH CP –IN +IN CHARGE PUMP DELAY CLR1 Q1 D1 U1 DGND DVDD CONTROL MUX MUXOUT ANALOG LOCK DETECT DIGITAL LOCK DETECT R DIVIDER OUTPUT N DIVIDER OUTPUT DGND RESERVED THREE-STATE OUTPUT DVDD |
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