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AD4020BCPZ-R2 数据表(PDF) 36 Page - Analog Devices

部件名 AD4020BCPZ-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

AD4020BCPZ-R2 数据表(HTML) 36 Page - Analog Devices

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AD4020/AD4021/AD4022
Data Sheet
Rev. B | Page 36 of 39
DAISY-CHAIN MODE
Use this mode to daisy-chain multiple AD4020/AD4021/AD4022
devices on a 3-wire or 4-wire serial interface. This feature is useful
for reducing component count and wiring connections such as
cases with isolated multiconverter applications or for systems
with a limited interfacing capacity. Data readback is analogous
to clocking a shift register. A connection diagram example using
two AD4020/AD4021/AD4022 devices is shown in Figure 65,
and the corresponding timing diagram is shown in Figure 66.
Turbo mode must be disabled to use this mode. To disable turbo
mode, set the turbo mode enable bit in the configuration
register to 0 (see Table 12). Writing to the user configuration
register requires SDI to be connected to the digital host (see the
Register Read/Write Functionality section). Turbo mode is
disabled by default.
When SDI and CNV are low, SDO is driven low. A rising edge
on CNV initiates a conversion and SDO remains low. When
performing conversions in this mode, SDI and SCK must be
low during the CNV rising edge. CNV must be held high
throughout the conversion and data readback phase.
When the conversion is complete, the MSB is output onto SDO
of each device, and the AD4020/AD4021/AD4022 enter the
acquisition phase and power down. The remaining data bits are
clocked out on SDO by subsequent SCK falling edges. For each
ADC, SDI feeds the input of the internal shift register and is
clocked in on each SCK rising edge. Results are therefore passed
through each device until they are all received by the digital
host. When the status bits are disabled, 20 × N clocks are required
to read back N ADCs. When the status bits are enabled, 26 × N
clocks are required to read back the conversion data and status
bits for N ADCs. The data is valid on both SCK edges.
The maximum achievable conversion rate when using daisy-chain
mode is typically less than when reading a single device because
the number of bits to clock out is larger (see the Serial Clock
Frequency Requirements section).
It is possible to write to each ADC register in daisy-chain mode.
The timing diagram is shown in Figure 51. This mode requires
4-wire operation because data is clocked in on the SDI line with
CNV held low. The same command byte and register data can
be shifted through the entire chain to program all ADCs in the
chain with the same register contents, which requires 8 × (N + 1)
clocks for N ADCs. It is possible to write different register contents
to each ADC in the chain by first writing to the furthest ADC in
the chain first, using 8 × (N + 1) clocks, and then the second
furthest ADC with 8 × N clocks, and so forth until reaching the
nearest ADC in the chain, which requires 16 clocks for the
command and register data. It is not possible to read register
contents in daisy-chain mode.
CONVERT
DATA IN
CLK
DIGITAL HOST
DEVICE B
DEVICE A
AD4020/
AD4021/
AD4022
AD4020/
AD4021/
AD4022
SDI1
SDO
CNV
SCK
SDI
SDO
CNV
SCK
1SDI MUST BE CONNECTED TO THE DIGITAL HOST DATA OUT TO WRITE TO THE CONFIGURATION REGISTER.
Figure 65. Daisy-Chain Mode, Connection Diagram
DA19
DA18
DA17
SCK
12
3
38
39
40
tSSDISCK
tHSDISCK
CONVERSION
ACQUISITION
tCONV
tCYC
tACQ
ACQUISITION
CNV
DA1
18
19
tSCK
tSCKL
tSCKH
DA0
21
22
20
SDIA = 0
SDOB
DB19
DB18
DB17
DA1
DB1DB0DA19
DA18
tHSDO
tDSDO
tQUIET2
tHSCKCNV
DA0
tDIS
tQUIET2
tEN
SDOA = SDIB
Figure 66. Daisy-Chain Mode Serial Interface Timing Diagram (Status Bits Not Shown)



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