參數(shù)資料
型號: EVAL-AD7610EDZ
廠商: Analog Devices Inc
文件頁數(shù): 15/32頁
文件大?。?/td> 0K
描述: BOARD EVAL FOR AD7610
標(biāo)準(zhǔn)包裝: 1
系列: *
AD7610
Data Sheet
Rev. A | Page 22 of 32
Power Sequencing
The AD7610 requires sequencing of the AVDD and DVDD
supplies. AVDD should come up prior to or simultaneously
with DVDD. This can be achieved using the configuration in
Figure 27 or sequencing the supplies in that manner. The
other supplies can be sequenced as desired as long as absolute
maximum ratings are observed. The AD7610 is very insensitive
to power supply variations on AVDD over a wide frequency
range, as shown in Figure 31.
80
30
1
10000
P
S
RR
(
d
B)
FREQUENCY (kHz)
10
100
1000
75
70
60
55
50
45
40
65
35
INT REF
EXT REF
06395-
031
Figure 31. AVDD PSRR vs. Frequency
Power Dissipation vs. Throughput
The AD7610 automatically reduces its power consumption at
the end of each conversion phase. During the acquisition phase,
the operating currents are very low, which allows a significant
power savings when the conversion rate is reduced (see Figure 32).
This feature makes the AD7610 ideal for very low power, battery-
operated applications.
It should be noted that the digital interface remains active even
during the acquisition phase. To reduce the operating digital supply
currents even further, drive the digital inputs close to the power
rails (that is, OVDD and OGND).
1000
1
1000000
PO
W
ER
D
ISSI
PA
T
IO
N
(m
W
)
SAMPLING RATE (kSPS)
100
10
100
1000
10000
100000
PDREF = PDBUF = HIGH
06395-
032
Figure 32. Power Dissipation vs. Sample Rate
Power Down
Setting PD = high powers down the AD7610, thus reducing
supply currents to their minimums as shown in Figure 23. When
the ADC is in power down, the current conversion (if any) is
completed and the digital bus remains active. To further reduce
the digital supply currents, drive the inputs to OVDD or OGND.
Power down can also be programmed with the configuration
register. See the Software Configuration section for details. Note
that when using the configuration register, the PD input is a
don’t care and should be tied to either high or low.
CONVERSION CONTROL
The AD7610 is controlled by the CNVST input. A falling edge
on CNVST is all that is necessary to initiate a conversion. Detailed
timing diagrams of the conversion process are shown in Figure 33.
Once initiated, it cannot be restarted or aborted, even by the
power-down input, PD, until the conversion is complete. The
CNVST signal operates independently of CS and RD signals.
BUSY
MODE
CONVERT
ACQUIRE
CONVERT
CNVST
t1
t2
t4
t3
t5
t6
t7
t8
06395-
033
Figure 33. Basic Conversion Timing
Although CNVST is a digital signal, it should be designed with
special care with fast, clean edges, and levels with minimum
overshoot, undershoot, or ringing.
The CNVST trace should be shielded with ground and a low value
(such as 50 ) serial resistor termination should be added close
to the output of the component that drives this line.
For applications where SNR is critical, the CNVST signal should
have very low jitter. This can be achieved by using a dedicated
oscillator for CNVST generation, or by clocking CNVST with a
high frequency, low jitter clock, as shown in Figure 27.
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