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AD8451 Scheda tecnica(PDF) 20 Page - Analog Devices

Il numero della parte AD8451
Spiegazioni elettronici  Low Cost, Precision Analog Front End and Controller for Battery Test/Formation Systems
PDF  33 Pages
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Produttore elettronici  AD [Analog Devices]
Homepage  http://www.analog.com
Logo AD - Analog Devices

AD8451 Scheda tecnica(HTML) 20 Page - Analog Devices

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Data Sheet
AD8451
When the ISREFH pin is tied to the VREF pin with the ISREFL
pin grounded, the voltage at the ISMEA pin is increased by 20 mV,
guaranteeing that the output of the IA is always positive for zero
differential inputs. Other voltage shifts can be realized by tying
the ISREFH pin to an external voltage source. The gain from the
ISREFH pin to the ISMEA pin is 8 mV/V. For zero offset, tie
the ISREFL and ISREFH pins to ground.
Battery Reversal and Overvoltage Protection
The AD8451 IA can be configured for high-side or low-side
current sensing. If the IA is configured for high-side current
sensing (see Figure 43) and the battery is connected backward,
the IA inputs may be held at a voltage that is below the negative
power rail (AVEE), depending on the battery voltage.
To prevent damage to the IA under these conditions, the IA
inputs include overvoltage protection circuitry that allows them
to be held at voltages of up to 55 V from the opposite power
rail. In other words, the safe voltage span for the IA inputs
extends from AVCC − 55 V to AVEE + 55 V.
DIFFERENCE AMPLIFIER (DA)
Figure 45 is a block diagram of the DA, which is used to monitor
the battery voltage. The architecture of the DA is a subtractor
amplifier with a fixed gain of 0.8. This gain value allows the DA to
funnel the voltage of a 5 V battery to a level that can be read by
a 5 V ADC with a 4.096 V reference.
BVREFL
BVP
BVN
100kΩ
100kΩ
100kΩ
50kΩ
80kΩ
79.9kΩ
DA
+
BVREFH
VREF
BVMEA
Figure 45. DA Simplified Block Diagram
The resistors that form the DA gain network are laser trimmed
to a matching level better than ±0.1%. This level of matching
minimizes the gain error and gain error drift of the DA while
maximizing the CMRR of the DA. This matching also allows
the controller to set a stable target voltage for the battery over
temperature while rejecting the ground bounce in the battery
negative terminal.
Like the IA, the DA can also level shift its output voltage via an
internal resistor divider that is tied to the DA reference node. This
resistor divider is connected to the BVREFH and BVREFL pins.
When the BVREFH pin is tied to the VREF pin with the BVREFL
pin grounded, the voltage at the BVMEA pin is increased by 5 mV,
guaranteeing that the output of the DA is always positive for
zero differential inputs. Other voltage shifts can be realized by
tying the BVREFH pin to an external voltage source. The gain
from the BVREFH pin to the BVMEA pin is 2 mV/V. For zero
offset, tie the BVREFL and BVREFH pins to ground.
CC AND CV LOOP FILTER AMPLIFIERS
The CC and CV loop filter amplifiers are high precision, low
noise specialty amplifiers with very low offset voltage and very
low input bias current. These amplifiers serve two purposes:
Using external components, the amplifiers implement active
loop filters that set the dynamics (transfer function) of the
CC and CV loops.
The amplifiers perform a seamless transition from CC to
CV mode after the battery reaches its target voltage.
Figure 46 is the functional block diagram of the AD8451 CC
and CV feedback loops for charge mode (MODE logic pin is high).
For illustration purposes, the external networks connected to
the loop amplifiers are simple RC networks configured to form
single-pole inverting integrators. The outputs of the CC and CV
loop filter amplifiers are coupled to the VINT pins via an analog
NOR circuit (minimum output selector circuit), such that they can
only pull the VINT node down. In other words, the loop amplifier
that requires the lowest voltage at the VINT pins is in control of
the node. Thus, only one loop amplifier, CC or CV, can be in
control of the system charging control loop at any given time.
Rev. 0 | Page 19 of 32



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