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AD4022BCPZ-R2 数据表(PDF) 25 Page - Analog Devices

部件名 AD4022BCPZ-R2
功能描述  20-Bit, 1.8 MSPS/1 MSPS/500 kSPS, Easy Drive, Differential SAR ADCs
PDF  39 Pages
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制造商  AD [Analog Devices]
网页  http://www.analog.com
标志 AD - Analog Devices

AD4022BCPZ-R2 数据表(HTML) 25 Page - Analog Devices

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Data Sheet
AD4020/AD4021/AD4022
Rev. B | Page 25 of 39
lower bandwidth amplifier can be chosen. The longer acquisition
phase means that a lower RC filter (represented by R and C in
Figure 40 to Figure 42 and Figure 44) cutoff can be used, which
means a noisier amplifier can also be tolerated. A larger value of
R can be used in the RC filter with a corresponding smaller
value of C, reducing amplifier stability concerns without affecting
distortion performance significantly. A larger value of R also
results in reduced dynamic power dissipation in the amplifier.
See Table 10 for details on setting the RC filter bandwidth and
choosing a suitable amplifier.
VOLTAGE REFERENCE INPUT
A 10 μF (X7R, 0805 size) ceramic chip capacitor is appropriate
for the optimum performance of the reference input.
For higher performance and lower drift, use a reference such as
the ADR4550. Using a low power reference such as the ADR3450
can result in a slight decrease in the noise performance. It is
recommended to use a reference buffer, such as the ADA4807-1,
between the reference and the ADC reference input. It is important
to consider the optimum capacitance necessary to keep the
reference buffer stable as well as to meet the minimum ADC
requirement stated previously in this section (that is, a 10 μF
ceramic chip capacitor, CREF).
POWER SUPPLY
The AD4020/AD4021/AD4022 use two power supply pins: a core
supply (VDD) and a digital input/output interface supply (VIO).
VIO allows direct interface with any logic between 1.8 V and
5.5 V. To reduce the number of supplies needed, VIO and VDD
can be tied together for 1.8 V operation. The ADP7118 low noise,
complementary metal-oxide semiconductor (CMOS), low dropout
(LDO) linear regulator is recommended to power the VDD and
VIO pins. The AD4020/AD4021/AD4022 are independent of
power supply sequencing between VIO and VDD. Additionally, the
AD4020/AD4021/AD4022 are insensitive to power supply
rejection variations over a wide frequency range, as shown in
Figure 33.
The AD4020/AD4021/AD4022 automatically power down at the
end of each conversion phase. Therefore, the power scales linearly
with the sampling rate. This feature makes the device ideal for
low sampling rates (even a few samples per second) and battery-
powered applications. Figure 35 shows the AD4020/AD4021/
AD4022 total power dissipation and individual power dissipation
for each rail.
DIGITAL INTERFACE
The AD4020/AD4021/AD4022 digital interface is used to
perform analog to digital conversions and to enable and disable
various features. The AD4020/AD4021/AD4022 are compatible
with SPI, QSPI™, and MICROWIRE digital hosts and DSPs.
SCK must be set with clock polarity (CPOL) = clock phase
(CPHA) = 0. A 3-wire interface using the CNV, SCK, and SDO
signals minimizes wiring connections, which is useful in
applications with digital isolation. A 4-wire interface using the
SDI, CNV, SCK, and SDO signals allows CNV, which initiates
the conversions, to be independent of the readback timing
(SDI). This interface is useful in low jitter sampling or
simultaneous sampling applications. In either 3-wire or 4-wire
CS mode, a busy signal can be enabled to indicate when the
conversion result is ready. The busy signal acts as an interrupt
to the digital host to initiate data readback.
The AD4020/AD4021/AD4022 digital interface also supports
daisy-chaining multiple devices to read back results from
multiple ADCs over a single SPI bus.
Timing diagrams and explanations for each digital interface
mode are given in the CS Mode, 3-Wire Turbo Mode section
through the Daisy-Chain Mode section.
Turbo mode allows the use of slower SPI clock rates by extending
the amount of time available to clock out conversion results.
Turbo mode is enabled by setting the turbo mode enable bit to 1 in
the configuration register (see Table 12), and replaces the busy
indicator feature when enabled. The maximum throughput of
1.8 MSPS for the AD4020 can only be achieved with turbo
mode enabled and a minimum SCK frequency of 71 MHz (see
the Serial Clock Frequency Requirements section). See the CS
Mode, 3-Wire Turbo Mode section, and CS Mode, 4-Wire
Turbo Mode section for descriptions of turbo mode operation.
Status bits can also be clocked out at the end of the conversion
data if the status bits are enabled in the configuration register
(see the Status Bits section).
For isolated systems, the ADuM141D is recommended to
support the 71 MHz SCK frequency required to run the
AD4020 at the full throughput of 1.8 MSPS.
The state of SDO on power-up is either low or high-Z, depending
on the states of CNV and SDI, as shown in Table 11.
Table 11. State of SDO on Power-Up
CNV
SDI
SDO
0
0
Low
0
1
Low
1
0
Low
1
1
High-Z
Configuration Register Details
The AD4020/AD4021/AD4022 features are controlled via the
configuration register. The configuration register is eight bits
wide and contains enable bits for the status bits, span compression,
high-Z mode, and turbo mode, as well as an overvoltage detection
flag. 16-bit SPI instructions are used to read from and write to
the contents in the configuration register (see the Configuration
Register Details section). Table 12 shows the locations and
descriptions of each field in the configuration register.



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