LTC1298CS8 Linear Technology, LTC1298CS8 Datasheet - Page 17

IC A/D CONV SAMPLING 12BIT 8SOIC

LTC1298CS8

Manufacturer Part Number
LTC1298CS8
Description
IC A/D CONV SAMPLING 12BIT 8SOIC
Manufacturer
Linear Technology
Datasheet

Specifications of LTC1298CS8

Number Of Bits
12
Sampling Rate (per Second)
11.1k
Data Interface
MICROWIRE™, Serial, SPI™
Number Of Converters
1
Power Dissipation (max)
1.8mW
Voltage Supply Source
Single Supply
Operating Temperature
0°C ~ 70°C
Mounting Type
Surface Mount
Package / Case
8-SOIC (0.154", 3.90mm Width)
Lead Free Status / RoHS Status
Contains lead / RoHS non-compliant

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Part Number:
LTC1298CS8
Manufacturer:
LINEAR/凌特
Quantity:
20 000
Input Leakage Current
Input leakage currents can also create errors if the source
resistance gets too large. For instance, the maximum
input leakage specification of 1 A (at 125 C) flowing
through a source resistance of 240 will cause a voltage
drop of 240 V or 0.2LSB. This error will be much reduced
at lower temperatures because leakage drops rapidly (see
typical curve of Input Channel Leakage Current vs Tem-
perature).
REFERENCE INPUTS
The reference input of the LTC1286 is effectively a 50k
resistor from the time CS goes low to the end of the
conversion. The reference input becomes a high impedence
node at any other time (see Figure 10). Since the voltage
on the reference input defines the voltage span of the A/D
APPLICATION INFORMATION
will slow the settling of the inputs. It is important that the
overall RC time constants be short enough to allow the
analog inputs to completely settle within the allowed time.
RC Input Filtering
It is possible to filter the inputs with an RC network as
shown in Figure 9. For large values of C
capacitive input switching currents are averaged into a net
DC current. Therefore, a filter should be chosen with a
small resistor and large capacitor to prevent DC drops
across the resistor. The magnitude of the DC current is
approximately I
proportional to V
time of 64 s, the input current equals 1.56 A at V
In this case, a filter resistor of 75 will cause 0.1LSB of
full-scale error. If a larger filter resistor must be used,
errors can be eliminated by increasing the cycle time.
V
IN
R
FILTER
DC
Figure 9. RC Input Filtering
IN
. When running at the minimum cycle
= 20pF
U
I
DC
C
FILTER
U
“–”
“+”
V
LTC1286
IN
/t
LTC1286/98 • F09
W
CYC
F
and is roughly
(e.g., 1 F), the
U
IN
= 5V.
converter, the reference input should be driven by a
reference with low R
or a voltage source with low R
Reduced Reference Operation
The minimum reference voltage of the LTC1298 is limited
to 4.5V because the V
nally tied together. However, the LTC1286 can operate
with reference voltages below 1V.
The effective resolution of the LTC1286 can be increased
by reducing the input span of the converter. The LTC1286
exhibits good linearity and gain over a wide range of
reference voltages (see typical curves of Change in Linear-
ity vs Reference Voltage and Change in Gain vs Reference
Voltage). However, care must be taken when operating at
low values of V
and the resulting higher accuracy requirement placed on
the converter. The following factors must be considered
when operating at low V
1. Offset
2. Noise
3. Conversion speed (CLK frequency)
Offset with Reduced V
The offset of the LTC1286 has a larger effect on the output
code. When the ADC is operated with reduced reference
voltage. The offset (which is typically a fixed voltage)
becomes a larger fraction of an LSB as the size of the LSB
is reduced. The typical curve of Change in Offset vs
Reference Voltage shows how offset in LSBs is related to
reference voltage for a typical value of V
a V
becomes 0.5LSB with a 1V reference and 2.5LSBs with a
OS
of 122 V which is 0.1LSB with a 5V reference
Figure 10. Reference Input Equivalent Circuit
R
V
OUT
REF
REF
REF
GND
1
4
because of the reduced LSB step size
+
OUT
CC
REF
(ex. LT1004, LT1019 and LT1021)
REF
LTC1286/LTC1298
supply and reference are inter-
values:
OUT
.
OS
LTC1286
. For example,
LTC1286/98 • F10
17

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