參數(shù)資料
型號: DC939A
廠商: Linear Technology
文件頁數(shù): 10/42頁
文件大小: 0K
描述: BOARD DELTA SIGMA ADC LTC2484
軟件下載: QuikEval System
設計資源: DC939A Design File
DC939A Schematic
標準包裝: 1
系列: Easy Drive™, QuikEval™
ADC 的數(shù)量: 1
位數(shù): 24
采樣率(每秒): 6.8
數(shù)據(jù)接口: MICROWIRE?,串行,SPI?
工作溫度: 0°C ~ 70°C
已用 IC / 零件: LTC2484
已供物品:
相關產品: LTC2484CDD#TRPBF-ND - IC ADC 24BIT 10-DFN
LTC2484IDD#TRPBF-ND - IC ADC 24BIT 10-DFN
LTC2484IDD#PBF-ND - IC ADC 24BIT 10-DFN
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LTC2484
18
2484fd
APPLICATIONS INFORMATION
rst conversion result following POR is accurate within
the specications of the device if the power supply volt-
age is restored within the operating range (2.7V to 5.5V)
before the end of the POR time interval.
On-Chip Temperature Sensor
The LTC2484 contains an on-chip PTAT (proportional
to absolute temperature) signal that can be used as a
temperature sensor. The internal PTAT has a typical
value of 420mV at 27°C and is proportional to the abso-
lute temperature value with a temperature coefcient of
420/(27 + 273) = 1.40mV/°C (SLOPE), as shown in Figure 4.
The internal PTAT signal is used in a single-ended mode
referenced to device ground internally. The 1x speed mode
with automatic offset calibration is automatically selected
for the internal PTAT signal measurement as well.
to adjust the SLOPE value. The converter output of the
PTAT signal, R0SDO, is measured at a known temperature
T0 (in °C) and the SLOPE is calculated as:
SLOPE
=
R0SDO VREF
T0
+ 273
This calibrated SLOPE can be used to calculate the
temperature.
If the same VREF source is used during calibration and
temperature measurement, the actual value of the VREF
is not needed to measure the temperature as shown in
the calculation below:
TC =
RSDO VREF
SLOPE
– 273
=
RSDO
R0SDO
T0
+ 273
() – 273
Reference Voltage Range
The LTC2484 external reference voltage range is 0.1V
to VCC. The converter output noise is determined by the
thermal noise of the front-end circuits, and as such, its
value in nanovolts is nearly constant with reference voltage.
A reduced reference voltage will improve the converter
performance when operated with an external conversion
clock (external fO signal) at substantially higher output
data rates (see the Output Data Rate section). VREF must
be ≥1.1V to use the internal temperature sensor.
The negative reference input to the converter is internally
tied to GND. GND (Pin 8) should be connected to a ground
plane through as short a trace as possible to minimize
voltage drop. The LTC2484 has an average operational
current of 160μA and for 0.1Ω parasitic resistance, the
voltage drop of 16μV causes a gain error of 3.2ppm for
VREF = 5V.
Input Voltage Range
The analog input is truly differential with an absolute/com-
mon mode range for the IN+ and INinput pins extending
from GND – 0.3V to VCC+0.3V.Outsidetheselimits,theESD
protection devices begin to turn on and the errors due to
input leakage current increase rapidly. Within these limits,
the LTC2484 converts the bipolar differential input signal,
TEMPERATURE (°C)
–60
V
PTAT
(mV)
500
600
120
2484 F04
400
200
30
090
–30
60
300
VCC = 5V
IM = 1
fO = GND
SLOPE = 1.40mV/°C
Figure 4. Internal PTAT Signal vs Temperature
When using the internal temperature sensor, if the output
code is normalized to RSDO = VPTAT/VREF, the temperature
is calculated using the following formula:
TK =
RSDO VREF
SLOPE
in Kelvin
and
TC =
RSDO VREF
SLOPE
–273 in
°C
where SLOPE is nominally 1.4mV/°C
Since the PTAT signal can have an initial value variation
which results in errors in SLOPE, to achieve better tem-
perature measurements, a one-time calibration is needed
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