參數(shù)資料
型號(hào): LTC2410IGN
廠商: LINEAR TECHNOLOGY CORP
元件分類: ADC
英文描述: 24-Bit No Latency ADC with Differential Input and Differential Reference
中文描述: 1-CH 24-BIT DELTA-SIGMA ADC, SERIAL ACCESS, PDSO16
封裝: 0.150 INCH, PLASTIC, SSOP-16
文件頁數(shù): 25/44頁
文件大?。?/td> 778K
代理商: LTC2410IGN
LTC2410
25
APPLICATIU
W
U
U
The magnitude of the dynamic reference current depends
upon the size of the very stable internal sampling capaci-
tors and upon the accuracy of the converter sampling
clock. The accuracy of the internal clock over the entire
temperature and power supply range is typical better than
0.5%. Such a specification can also be easily achieved by
an external clock. When relatively stable resistors
(50ppm/
°
C) are used for the external source impedance
seen by REF
+
and REF
, the expected drift of the dynamic
current gain error will be insignificant (about 1% of its
value over the entire temperature and voltage range). Even
for the most stringent applications a one-time calibration
operation may be sufficient.
In addition to the reference sampling charge, the reference
pins ESD protection diodes have a temperature dependent
leakage current. This leakage current, nominally 1nA
(
±
10nA max), results in a small gain error. A 100
source
resistance will create a 0.05
μ
V typical and 0.5
μ
V maxi-
mum full-scale error.
Output Data Rate
When using its internal oscillator, the LTC2410 can pro-
duce up to 7.5 readings per second with a notch frequency
of 60Hz (F
O
= LOW) and 6.25 readings per second with a
notch frequency of 50Hz (F
O
= HIGH). The actual output
data rate will depend upon the length of the sleep and data
output phases which are controlled by the user and which
can be made insignificantly short. When operated with an
external conversion clock (F
O
connected to an external
oscillator), the LTC2410 output data rate can be increased
as desired. The duration of the conversion phase is 20510/
f
EOSC
. If f
EOSC
= 153600Hz, the converter behaves as if the
internal oscillator is used and the notch is set at 60Hz.
There is no significant difference in the LTC2410 perfor-
mance between these two operation modes.
An increase in f
EOSC
over the nominal 153600Hz will
translate into a proportional increase in the maximum
output data rate. This substantial advantage is neverthe-
less accompanied by three potential effects, which must
be carefully considered.
First, a change in f
EOSC
will result in a proportional change
in the internal notch position and in a reduction of the
converter differential mode rejection at the power line
frequency. In many applications, the subsequent perfor-
mance degradation can be substantially reduced by rely-
ing upon the LTC2410’s exceptional common mode rejec-
tion and by carefully eliminating common mode to differ-
ential mode conversion sources in the input circuit. The
user should avoid single-ended input filters and should
maintain a very high degree of matching and symmetry in
the circuits driving the IN
+
and IN
pins.
Second, the increase in clock frequency will increase
proportionally the amount of sampling charge transferred
through the input and the reference pins. If large external
input and/or reference capacitors (C
IN
, C
REF
) are used, the
previous section provides formulae for evaluating the
effect of the source resistance upon the converter perfor-
mance for any value of f
EOSC
. If small external input and/
or reference capacitors (C
IN
, C
REF
) are used, the effect of
the external source resistance upon the LTC2410 typical
performance can be inferred from Figures 17, 18, 22 and
23 in which the horizontal axis is scaled by 153600/f
EOSC
.
Third, an increase in the frequency of the external oscilla-
tor above 460800Hz (a more than 3
×
increase in the output
data rate) will start to decrease the effectiveness of the
internal autocalibration circuits. This will result in a pro-
gressive degradation in the converter accuracy and linear-
Figure 26. INL vs Differential Input Voltage (V
IN
= IN
+
– IN
)
and Reference Source Resistance (R
SOURCE
at REF
+
and REF
for
Large C
REF
Values (C
REF
1
μ
F)
V
INDIF
/V
REFDIF
–0.5–0.4–0.3–0.2–0.1 0
0.1 0.2 0.3 0.4 0.5
I
R
)
15
12
9
6
3
0
–3
–6
–9
–12
–15
V
CC
= 5V
REF+ = 5V
REF– = GND
V
INCM
= 0.5 (IN
+
+ IN
) = 2.5V
F
O
= GND
C
REF
= 10
μ
F
T
A
= 25
°
C
R
SOURCE
= 1000
R
SOURCE
= 500
R
SOURCE
= 100
2410 F26
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