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PDF AD8451 Data sheet ( Hoja de datos )

Número de pieza AD8451
Descripción Precision Analog Front End and Controller
Fabricantes Analog Devices 
Logotipo Analog Devices Logotipo



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Data Sheet
Low Cost, Precision Analog Front End and
Controller for Battery Test/Formation Systems
AD8451
FEATURES
Integrated constant current and voltage modes with
automatic switchover
Charge and discharge modes
Precision voltage and current measurement
Integrated precision control feedback blocks
Precision interface to PWM or linear power converters
Fixed gain settings
Current sense gain: 26 V/V (typ)
Voltage sense gain: 0.8 V/V (typ)
Excellent ac and dc performance
Maximum offset voltage drift: 0.9 µV/°C
Maximum gain drift: 3 ppm/°C
Low current sense amplifier input voltage noise: 9 nV/√Hz typ
Current sense CMRR: 108 dB min
TTL compliant logic
APPLICATIONS
Battery cell formation and testing
Battery module testing
GENERAL DESCRIPTION
The AD8451 is a precision analog front end and controller for
testing and monitoring battery cells. A precision fixed gain
instrumentation amplifier (IA) measures the battery charge/
discharge current, and a fixed gain difference amplifier (DA)
measures the battery voltage (see Figure 1). Internal laser
trimmed resistor networks set the gains for the IA and the DA,
optimizing the performance of the AD8451 over the rated
temperature range. The IA gain is 26 V/V and the DA gain is
0.8 V/V.
Voltages at the ISET and VSET inputs set the desired constant
current (CC) and constant voltage (CV) values. CC to CV
switching is automatic and transparent to the system.
A TTL logic level input, MODE, selects the charge or discharge
mode (high for charge, and low for discharge). An analog output,
VCTRL, interfaces directly with the Analog Devices, Inc.,
ADP1972 pulse-width modulation (PWM) controller.
The AD8451 simplifies designs by providing excellent accuracy,
performance over temperature, flexibility with functionality,
and overall reliability in a space-saving package. The AD8451 is
available in an 80-lead, 14 mm × 14 mm × 1.40 mm LQFP and
is rated for an operating temperature of −40°C to +85°C.
ISVP
ISVN
MODE
BVP
BVN
FUNCTIONAL BLOCK DIAGRAM
ISREFH/
ISREFL ISMEA ISET IVE0/IVE1
VINT
MUX
26
CURRENT
SENSE IA
VOLTAGE
SENSE DA
0.8
CONSTANT
CURRENT LOOP
FILTER
(CHARGE/
DISCHARGE)
SWITCHING
CONSTANT
VOLTAGE LOOP
FILTER
AD8451
VCLP
×1 VCTRL
VCLN
VOLTAGE
REFERENCE
VREF
BVREFH/
BVREFL
BVMEA
VSET VVE0/
VVE1
Figure 1.
VVP0
VSETBF VINT
Rev. 0
Document Feedback
Information furnished by Analog Devices is believed to be accurate and reliable. However, no
responsibilityisassumedbyAnalogDevices for itsuse,nor foranyinfringementsofpatentsor other
rights of third parties that may result from its use. Specifications subject to change without notice. No
license is granted by implication or otherwise under any patent or patent rights of Analog Devices.
Trademarksandregisteredtrademarksarethepropertyoftheirrespectiveowners.
One Technology Way, P.O. Box 9106, Norwood, MA 02062-9106, U.S.A.
Tel: 781.329.4700
©2014 Analog Devices, Inc. All rights reserved.
Technical Support
www.analog.com
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AD8451 pdf
Data Sheet
Parameter
Voltage Noise
Voltage Noise, Peak to Peak
Current Noise
Current Noise, Peak to Peak
Small Signal −3 dB Bandwidth
Slew Rate
VOLTAGE REFERENCE
Nominal Output Voltage
Output Voltage Error
Temperature Drift
Line Regulation
Load Regulation
Output Current, Sourcing
Voltage Noise
Voltage Noise, Peak to Peak
DIGITAL INTERFACE, MODE INPUT
Input Voltage High, VIH
Input Voltage Low, VIL
Mode Switching Time
POWER SUPPLY
Operating Voltage Range
AVCC
AVEE
Analog Supply Range
DVCC
Quiescent Current
AVCC
AVEE
DVCC
TEMPERATURE RANGE
For Specified Performance
Operational
Test Conditions/Comments
f = 1 kHz
f = 0.1 Hz to 10 Hz
f = 1 kHz, CV buffer only
f = 0.1 Hz to 10 Hz
ΔVOUT = 10 V
With respect to AGND
TA = TMIN to TMAX
ΔVS = 10 V
ΔIVREF = 1 mA (source only)
f = 1 kHz
f = 0.1 Hz to 10 Hz
MODE pin (Pin 39)
With respect to DGND
With respect to DGND
AVCC − AVEE
Min
2.0
DGND
AD8451
Typ Max
10
0.3
80
5
3
1
2.5
±1
10
40
400
10
100
5
DVCC
0.8
500
Unit
nV/√Hz
µV p-p
fA/√Hz
pA p-p
MHz
V/µs
V
%
ppm/°C
ppm/V
ppm/mA
mA
nV/√Hz
µV p-p
V
V
ns
5 36 V
−31 0 V
5 36 V
3 5V
7 10
6.5 10
40 70
mA
mA
µA
−40 +85 °C
−55
+125
°C
Rev. 0 | Page 5 of 32
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AD8451 arduino
Data Sheet
DA CHARACTERISTICS
60
50
40
30
20
10
0
–10
–20
–30
–40
–10
–5
0
AVCC = +25V
AVEE = −5V
5 10 15 20 25 30
OUTPUT VOLTAGE (V)
Figure 15. Input Common-Mode Voltage vs. Output Voltage
for AVCC = +25 V and AVEE = −5 V
0
–10
–20
–30
–40
VALID FOR ALL RATED
–50 SUPPLY VOLTAGES
100 1k
10k
100k
FREQUENCY (Hz)
Figure 16. Gain vs. Frequency
0
VALID FOR ALL RATED
SUPPLY VOLTAGES
–20
–40
–60
–80
–100
–120
100
1k 10k 100k
FREQUENCY (Hz)
Figure 17. CMRR vs. Frequency
1M
1M
AD8451
50
40
30
20
10
0
–10
–20
–30
–40
–50
–20 –15 –10
–5
0
AVCC = +15V
AVEE = −15V
5 10 15 20
OUTPUT VOLTAGE (V)
Figure 18. Input Common-Mode Voltage vs. Output Voltage
for AVCC = +15 V and AVEE = −15 V
50
0
–50
–100
–150
–200
–40 –30 –20 –10 0 10 20 30 40 50 60 70 80 90
TEMPERATURE (°C)
Figure 19. Gain Error vs. Temperature
3
2
1
0
–1
–2
–3
–40 –30 –20 –10 0 10 20 30 40 50 60 70 80 90
TEMPERATURE (°C)
Figure 20. Normalized CMRR vs. Temperature
Rev. 0 | Page 11 of 32
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