LTC2492 Linear Technology, LTC2492 Datasheet - Page 27

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LTC2492

Manufacturer Part Number
LTC2492
Description
24-Bit 2-/4-Channel ADC
Manufacturer
Linear Technology
Datasheet

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APPLICATIONS INFORMATION
Driving the Input and Reference
The input and reference pins of the LTC2492 are connected
directly to a switched capacitor network. Depending on
the relationship between the differential input voltage and
the differential reference voltage, these capacitors are
switched between these four pins. Each time a capacitor
is switched between two of these pins, a small amount
of charge is transferred. A simplifi ed equivalent circuit is
shown in Figure 12.
When using the LTC2492’s internal oscillator, the input
capacitor array is switched at 123kHz. The effect of the
charge transfer depends on the circuitry driving the input/
reference pins. If the total external RC time constant is less
than 580ns the errors introduced by the sampling process
are negligible since complete settling occurs.
Typically, the reference inputs are driven from a low
impedance source. In this case, complete settling occurs
even with large external bypass capacitors. The inputs (CH0
to CH3, COM), on the other hand, are typically driven from
larger source resistances. Source resistances up to 10k
may interface directly to the LTC2492 and settle completely;
however, the addition of external capacitors at the input
SWITCHING FREQUENCY
f
f
SW
SW
REF
REF
I
I
IN +
I
I
IN
REF
REF
IN
IN
= 123kHz INTERNAL OSCILLATOR
= 0.4 • f
+
+
+
EOSC
MULTIPLEXER
INPUT
100Ω
100Ω
EXTERNAL OSCILLATOR
Figure 12. LTC2492 Equivalent Analog Input Circuit
10k
10k
10k
10k
INTERNAL
NETWORK
SWITCH
2492 F12
terminals in order to fi lter unwanted noise (anti-aliasing)
results in incomplete settling.
Automatic Differential Input Current Cancellation
In applications where the sensor output impedance is
low (up to 10kΩ with no external bypass capacitor or up
to 500Ω with 0.001μF bypass), complete settling of the
input occurs. In this case, no errors are introduced and
direct digitization is possible.
For many applications, the sensor output impedance
combined with external input bypass capacitors produces
RC time constants much greater than the 580ns required
for 1ppm accuracy. For example, a 10kΩ bridge driving a
0.1μF capacitor has a time constant an order of magnitude
greater than the required maximum.
The LTC2492 uses a proprietary switching algorithm that forces
the average differential input current to zero independent of
external settling errors. This allows direct digitization of high
impedance sensors without the need of buffers.
The switching algorithm forces the average input current
on the positive input (I
current on the negative input (I
C
12pF
EQ
I IN
I I REF
where
R
R
R
V
V
V
V
( )
( )
REF
REF CM
IN
IN CM
EQ
EQ
EQ
(
=
+
(
=
=
=
=
IN
+
)
AVG
:
2 71
2.98M INTERNAL OSCILLATOR 50Hz/60
(
REF
0.833 10
) )
+
=
.
AVG
=
=
M INTERNAL OSCILLATOR
IN
+
IN WHERE IN AN
REF
I IN
Ω
+
Ω
( )
1 5
REF
,
– –
2
.
+
IN
12
V
2
REF
AVG
)
IN
REF
/f
EOSC
+
+
=
(
) to be equal to the average input
0 5
V
V
+
. •
IN CM
REF CM
EXTERNAL OSCIL
(
R
. 0 5
(
D D IN ARE THE SELECTED INPUT CHANNELS
E E Q
)
)
R
V
REF CM
EQ
V
IN
IN CM
(
(
6
0 0 Hz MODE
). Over the complete
)
)
)
L L ATOR
V
H H z MODE
LTC2492
REF
V
IN
2
R
EQ
27
2492fb

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