參數(shù)資料
型號: LTC2411CMS
英文描述: Analog-to-Digital Converter, 24-Bit
中文描述: 模擬到數(shù)字轉(zhuǎn)換器,24比特
文件頁數(shù): 27/40頁
文件大?。?/td> 450K
代理商: LTC2411CMS
LTC2411
33
traditional normal mode rejection ratio results obtained
with a 5V peak-to-peak (full scale) input signal. In Figure
36, the LTC2411 uses the internal oscillator with the notch
set at 60Hz (FO = LOW) and in Figure 37 it uses the internal
oscillator with the notch set at 50Hz (FO = HIGH). It is clear
that the LTC2411 rejection performance is maintained with
no compromises in this extreme situation. When operat-
ing with large input signal levels, the user must observe
that such signals do not violate the device absolute maxi-
mum ratings.
BRIDGE APPLICATIONS
Typical strain gauge based bridges deliver only 2mV/Volt
of excitation. As the maximum reference voltage of the
LTC2411 is 5V, remote sensing of applied excitation
without additional circuitry requires that excitation be
limited to 5V. This gives only 10mV full scale, which can
be resolved to 1 part in 5000 without averaging. For many
solid state sensors, this is comparable to the sensor.
Averaging 64 samples however reduces the noise level by
a factor of eight, bringing the resolving power to 1 part in
40000, comparable to better weighing systems. Hyster-
esis and creep effects in the load cells are typically much
greater than this. Most applications that require strain
measurements to this level of accuracy are measuring
slowly changing phenomena, hence the time required to
average a large number of readings is usually not an issue.
For those systems that require accurate measurement of
a small incremental change on a significant tare weight,
the lack of history effects in the LTC2400 family is of great
benefit.
For those applications that cannot be fulfilled by the
LTC2411 alone, compensating for error in external ampli-
fication can be done effectively due to the “no latency”
feature of the LTC2411. No latency operation allows
samples of the amplifier offset and gain to be interleaved
with weighing measurements. The use of correlated double
sampling allows suppression of 1/f noise, offset and
thermocouple effects within the bridge. Correlated double
sampling involves alternating the polarity of excitation and
dealing with the reversal of input polarity mathematically.
Alternatively, bridge excitation can be increased to as
much as
±10V, if one of several precision attenuation
techniques is used to produce a precision divide operation
on the reference signal. Another option is the use of a
reference within the 5V input range of the LTC2411 and
developing excitation via fixed gain, or LTC1043 based
voltage multiplication, along with remote feedback in the
excitation amplifiers, as shown in Figures 43 and 44.
Figure 38 shows an example of a simple bridge connec-
tion. Note that it is suitable for any bridge application
where measurement speed is not of the utmost impor-
tance. For many applications where large vessels are
weighed, the average weight over an extended period of
time is of concern and short term weight is not readily
determined due to movement of contents, or mechanical
resonance. Often, large weighing applications involve load
cells located at each load bearing point, the output of
which can be summed passively prior to the signal pro-
cessing circuitry, actively with amplification prior to the
ADC, or can be digitized via multiple ADC channels and
summed mathematically. The mathematical summation
of the output of multiple LTC2411’s provides the benefit of
a root square reduction in noise. The low power consump-
tion of the LTC2411 makes it attractive for multidrop
communication schemes where the ADC is located within
the load-cell housing.
A direct connection to a load cell is perhaps best incorpo-
rated into the load-cell body, as minimizing the distance to
the sensor largely eliminates the need for protection
APPLICATIO S I FOR ATIO
WU
UU
REF+
REF
SDO
SCK
IN+
IN
CS
GND
VCC
FO
2
R1
8
3
350
BRIDGE
9
4
5
2411 F38
7
6
1
10
LTC2411
+
R2
R1 AND R2 CAN BE USED TO INCREASE TOLERABLE AC COMPONENT ON REF SIGNALS
LT1019
Figure 38. Simple Bridge Connection
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