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ADRF6755ACPZ-R7 датащи(PDF) 21 Page - Analog Devices |
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ADRF6755ACPZ-R7 датащи(HTML) 21 Page - Analog Devices |
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21 / 48 page ![]() Data Sheet ADRF6755 Rev. B | Page 21 of 48 THEORY OF OPERATION OVERVIEW The ADRF6755 device can be divided into the following basic building blocks: • PLL synthesizer and VCO • Quadrature modulator • Attenuator • Voltage regulator • I2C/SPI interface Each of these building blocks is described in detail in the sections that follow. PLL SYNTHESIZER AND VCO Overview The phase-locked loop (PLL) consists of a fractional-N frequency synthesizer with a 25-bit fixed modulus, allowing a frequency resolution of less than 1 Hz over the entire frequency range. It also has an integrated voltage-controlled oscillator (VCO) with a fundamental output frequency ranging from 2310 MHz to 4800 MHz. An RF divider, controlled by Register CR28, Bits[2:0], extends the lower limit of the local oscillator (LO) frequency range to 100 MHz. See Table 6 for more details on Register CR28. Reference Input Section The reference input stage is shown Figure 52. SW1 and SW2 are normally closed switches. SW3 is normally open. When power- down is initiated, SW3 is closed, and SW1 and SW2 are open. This ensures that there is no loading of the REFIN pin at power-down. Figure 52. Reference Input Stage Reference Input Path The on-chip reference frequency doubler allows the input reference signal to be doubled. This is useful for increasing the PFD comparison frequency. Making the PFD frequency higher improves the noise performance of the system. Doubling the PFD frequency usually improves the in-band phase noise performance by up to 3 dBc/Hz. The 5-bit R-divider allows the input reference frequency (REFIN) to be divided down to produce the reference clock to the PFD. Division ratios from 1 to 32 are allowed. An additional divide-by-2 (÷2) function in the reference input path allows for a greater division range. Figure 53. Reference Input Path The PFD frequency equation is fPFD = fREFIN × [(1 + D)/(R × (1 + T))] (1) where: fREFIN is the reference input frequency. D is the doubler bit. R is the programmed divide ratio of the binary 5-bit programmable reference divider (1 to 32). T is the R/2 divider setting bit (CR10[6] = 0 or 1). If no division is required, it is recommended that the 5-bit R-divider and the divide-by-2 be disabled by setting CR5[4] = 0. If an even numbered division is required, enable the divide-by-2 by setting CR5[4] = 1 and CR10[6] = 1 and implement the remainder of the division in the 5-bit R-divider. If an odd number division is required, set CR5[4] = 1 and implement all of the division in the 5-bit R-divider. RF Fractional-N Divider The RF fractional-N divider allows a division ratio in the PLL feedback path that can range from 23 to 4095. The relationship between the fractional-N divider and the LO frequency is described in the INT and FRAC Relationship section. INT and FRAC Relationship The integer (INT) and fractional (FRAC) values make it possible to generate output frequencies that are spaced by fractions of the phase frequency detector (PFD) frequency. See the Example— Changing the LO Frequency section for more information. The LO frequency equation is LO = fPFD × (INT + (FRAC/225))/2RFDIV (2) where: LO is the local oscillator frequency. fPFD is the PFD frequency. INT is the integer component of the required division factor and is controlled by the CR6 and CR7 registers. FRAC is the fractional component of the required division factor and is controlled by the CR0 to CR3 registers. RFDIV is set in Register CR28, Bits[2:0], and controls the setting of the divider at the output of the PLL. Figure 54. RF Fractional-N Divider BUFFER TO R-DIVIDER REFIN 100 kΩ NC SW2 SW3 NC NC SW1 POWER-DOWN CONTROL ×2 DOUBLER 5-BIT R-DIVIDER FROM REFIN PIN TO PFD ÷2 N-COUNTER INT REG TO PFD RF N-DIVIDER N = INT + FRAC/225 FROM VCO OUTPUT DIVIDERS FRAC VALUE THIRD-ORDER FRACTIONAL INTERPOLATOR |
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