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ADRF6614ACPZ-R7 数据表(PDF) 36 Page - Analog Devices

部件名 ADRF6614ACPZ-R7
功能描述  700 MHz to 3000 MHz, Dual Passive Receive Mixer with Integrated PLL and VCO
PDF  61 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

ADRF6614ACPZ-R7 数据表(HTML) 36 Page - Analog Devices

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ADRF6614
Data Sheet
Rev. 0 | Page 36 of 61
For the VCO_0, VCO_1, VCO_2, and VCO_3 selections, it is
required to set VTUNE_DAC_SLOPE (Register 0x49, Bits[13:9]) =
11d, VTUNE_DAC_OFFSET (Register 0x49, Bits[8:0]) = 184d,
VCO_LDO_R2 (Register 0x22, Bits[11:8]) = 0d, and VCO_
LDO_R4 (Register 0x22, Bits[15:12]) = 5d. For VCO_4 and
VC0_5 selections, the required settings are VTUNE_DAC_
SLOPE (Register 0x49, Bits[13:9]) = 9d, VTUNE_DAC_OFFSET
(Register 0x49, Bits[8:0]) = 171d, VCO_LDO_R2 (Register 0x22,
Bits[11:8]) = 2d, and VCO_LDO_R4 (Register 0x22, Bits[15:12]) =
10d. In transitioning from a GSM VCO (VCO_4 and VCO_5)
to an octave VCO, the LDO settings must be changed before
changing the VCO selection.
The N-divider divides down the differential VCO signal to the PFD
frequency. The N-divider can be configured for fractional mode or
integer mode by addressing the DIV_MODE bit (Register 0x02,
Bit 15). The default configuration is set for fractional mode.
The following equations can be used to determine the N value and
the PLL frequency:
N
f
f
VCO
PFD
×
=
2
where:
fPFD is the phase frequency detector frequency.
fVCO is the voltage controlled oscillator frequency.
N is the fractional divide ratio.
MOD
FRAC
INT
N
+
=
where:
INT is the integer divide ratio programmed in Register 0x02.
FRAC is the fractional divide ratio programmed in Register 0x03.
MOD is the modulus divide ratio programmed in Register 0x04.
LO_DIVIDER
N
f
f
PFD
LO
×
×
=
2
where:
fLO is the LO frequency going to the mixer core when the loop is
locked.
LO_DIVIDER is the final divider block that divides the VCO
frequency down by 1, 2, 4, or 8 before it reaches the mixer
(see Table 21). This control is located in the LO_DIV bits
(Register 0x22, Bits[5:3]).
Table 21. LO Divider
LO_DIV (Register 0x22, Bits[5:3])
LO_DIVIDER
00
1
01
2
10
4
11
8
The lock detect signal is available as one of the selectable outputs
through the MUXOUT pin; a logic high indicates that the loop is
locked. The MUXOUT pin is controlled by the REF_MUX_SEL bits
(Register 0x21, Bits[14:13]); the PLL lock detect signal is the default
configuration.
To ensure that the PLL locks to the desired frequency, follow
the proper write sequence of the PLL registers. The PLL
registers must be configured accordingly to achieve the
desired frequency, and the last writes must be to Register 0x02
(INT_DIV in Table 26), Register 0x03 (FRAC_DIV in Table 26),
or Register 0x04 (MOD_DIV in Table 26). When one of these
registers is programmed, an internal VCO calibration is
initiated, which is the last step in locking the PLL.
The time it takes to lock the PLL after the last register is written
can be broken down into two parts: VCO band calibration and
loop settling.
After the last register is written, the PLL automatically performs
a VCO band calibration to choose the correct VCO band. This
calibration takes approximately 5120 PFD cycles. For a 40 MHz
fPFD, this corresponds to 128 µs. After calibration is complete, the
feedback action of the PLL causes the VCO to lock eventually to
the correct frequency. The speed with which this locking occurs
depends on the nonlinear cycle slipping behavior, as well as the
small signal settling of the loop. For an accurate estimation of
the lock time, download the ADIsimPLL™ tool, which correctly
captures these effects. In general, higher bandwidth loops tend
to lock faster than lower bandwidth loops.
Additional LO Controls
To access the LO signal going to the mixer core through the
LOOUT+ and LOOUT− pins (Pin 13 and Pin 14), enable the
LO_DRV_EN bit in Register 0x01, Bit 7. This setting offers direct
monitoring of the LO signal to the mixer for debug purposes; or the
LO signal can be used to daisy-chain many devices synchronously.
One ADRF6614 can serve as the master where the LO signal is
sourced, and the subsequent slave devices share the same LO signal
from the master. This flexibility substantially eases the LO
requirements of a system with multiple LOs.
The LO output drive level is controlled by the LO_DRV_LVL bits
(Register 0x22, Bits[7:6]). Table 22 shows the available drive levels.
Table 22. LO Drive Levels
LO_DRV_LVL (Register 0x22, Bits[7:6])
Amplitude (dBm)
00
−4
01
0.5
10
3
11
4.5



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