LTC2494IUHF#PBF Linear Technology, LTC2494IUHF#PBF Datasheet - Page 33

IC ADC 16BIT W/PGA 38-QFN

LTC2494IUHF#PBF

Manufacturer Part Number
LTC2494IUHF#PBF
Description
IC ADC 16BIT W/PGA 38-QFN
Manufacturer
Linear Technology
Datasheet

Specifications of LTC2494IUHF#PBF

Number Of Bits
16
Sampling Rate (per Second)
15
Data Interface
MICROWIRE™, Serial, SPI™
Number Of Converters
1
Power Dissipation (max)
480µW
Voltage Supply Source
Single Supply
Operating Temperature
-40°C ~ 85°C
Mounting Type
Surface Mount
Package / Case
38-WFQFN, Exposed Pad
Lead Free Status / RoHS Status
Lead free / RoHS Compliant

Available stocks

Company
Part Number
Manufacturer
Quantity
Price
Company:
Part Number:
LTC2494IUHF#PBFLTC2494IUHF
Manufacturer:
LT
Quantity:
10 000
applications inForMation
The user can expect to achieve this level of performance
using the internal oscillator, as shown in Figures 23, 24
and 25. Measured values of normal mode rejection are
shown superimposed over the theoretical values in all
three rejection modes.
Traditional high order delta-sigma modulators suffer
from potential instabilities at large input signal levels.
The proprietary architecture used for the LTC2494 third
order modulator resolves this problem and guarantees
stability with input signals 150% of full-scale. In many
industrial applications, it is not uncommon to have mi-
crovolt level signals superimposed over unwanted volt
level error sources with several volts of peak-to-peak
noise. Figures 26 and 27 show measurement results for
the rejection of a 7.5V peak-to-peak noise source (150%
of full-scale) applied to the LTC2494. From these curves,
it is shown that the rejection performance is maintained
even in extremely noisy environments.
Using the 2x speed mode of the LTC2494 alters the rejec-
tion characteristics around DC and multiples of f
device bypasses the offset calibration in order to increase
the output rate. The resulting rejection plots are shown
in Figures 28 and 29. 1x type frequency rejection can be
achieved using the 2x mode by performing a running
average of the conversion results (see Figure 30).
Output Data Rate
When using its internal oscillator, the LTC2494 produces up
to 15 samples per second (sps) with a notch frequency of
60Hz. The actual output data rate depends upon the length
of the sleep and data output cycles which are controlled
by the user and can be made insignificantly short. When
operating with an external conversion clock (f
to an external oscillator), the LTC2494 output data rate
can be increased. The duration of the conversion cycle is
41036/f
as if the internal oscillator is used.
An increase in f
into a proportional increase in the maximum output data
rate (up to a maximum of 100sps). The increase in output
rate leads to degradation in offset, full-scale error, and ef-
fective resolution as well as a shift in frequency rejection.
When using the integrated temperature sensor, the internal
EOSC
. If f
EOSC
EOSC
over the nominal 307.2kHz will translate
= 307.2kHz, the converter behaves
O
connected
S
. The
Figure 23. Input Normal Mode Rejection vs Input Frequency with
Input Perturbation of 100% (60Hz Notch)
Figure 24. Input Normal Mode Rejection vs Input Frequency with
Input Perturbation of 100% (50Hz Notch)
Figure 25. Input Normal Mode Rejection vs Input Frequency with
Input Perturbation of 100% (50Hz/60Hz Notch)
oscillator should be used (f
applied to f
A change in f
internal notch position. This leads to reduced differential
mode rejection of line frequencies. The common mode
–100
–120
–100
–120
–100
–120
–20
–40
–60
–80
–20
–40
–60
–80
–20
–40
–60
–80
0
0
0
0
0
0
12.5 25 37.5 50 62.5 75 87.5 100 112.5 125 137.5 150 162.5 175 187.5 200
15
20
O
30
, f
EOSC
40
EOSC
45
60
results in a proportional change in the
60
, should be set to 307.2kHz Max.
75
80
90
INPUT FREQUENCY (Hz)
INPUT FREQUENCY (Hz)
INPUT FREQUENCY (Hz)
105 120 135 150 165 180 195 210 225 240
O
100
= 0) or an external oscillator
120
MEASURED DATA
CALCULATED DATA
MEASURED DATA
CALCULATED DATA
MEASURED DATA
CALCULATED DATA
140
LTC2494
160
180
V
V
V
V
T
V
V
V
V
T
V
V
V
V
T
A
CC
REF
IN(CM)
IN(P-P)
A
CC
REF
IN(CM)
IN(P-P)
A
CC
REF
IN(CM)
IN(P-P)
= 25°C
= 25°C
= 25°C

= 5V
= 5V
= 5V
= 5V
= 5V
200
= 5V
= 2.5V
= 2.5V
= 2.5V
= 5V
= 5V
= 5V
2494 F23
2494 F24
2494 F25
2494fd
220

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