The bq2056 series ICs are low-cost
precision linear charge-control de
vices for Li-Ion batteries. With a
minimum number of external compo
nents, the bq2056 is a complete low-
dropout linear charger. The dropout
voltage is typically less than 0.5V
when the bq2056 is used with an ex
ternal PNP transistor or P-channel
FET. Features include proprietary
-
Functional Block Diagram
SNS
BAT
COMP
SNS
V
SS
INH
K
COMP
V
REG
100mV
automatic charge-rate compensation
(AutoComp) and a trickle-charger in
terface output for reviving deeply
discharged cells. The bq2056 sup
ports a single-cell 4.1V pack and the
2056T supports a two-cell 8.2V pack.
The bq2056V may be externally pro
grammed for supporting other volt
ages. All versions feature a sleep
mode for low-power applications.
-
+
2.0V
+
+
BDbq2056.eps
TRKL
CC
-
-
-
-
Pin Connections
1
INH
TRKL
COMP
2
V
3
SS
4
8-Pin DIP or Narrow SOIC
8
7
6
5
PN-205601.eps
V
CC
BAT
SNS
CC
Pin Names
INHCharge-inhibit input
TRKLTrickle-charge
V
SS
COMPCharge-rate
interface output
Ground
compensation input
1
SNSCurrent sense input
BATBattery voltage input
CCCharge control
output
V
CC
Supply input
10/98 B
bq2056/T/V
Pin Descriptions:
INHCharge-inhibit input
When input to this pin is high, the bq2056
suspends the charge in progress and places
the device in sleep mode. When input is low,
the bq2056 resumes operation.
TRKLTrickle-charge interface output
This output is driven low if the battery volt
age is less than an internal threshold level
and INH is low. This open-drain output can
enable an external trickle charger to revive a
deeply discharged battery.
V
SS
COMPCharge-rate compensation input
Ground
This input is used to set the charge-rate
compensation level. The voltage regulation
output may be programmed to vary as a
function of the charge current delivered to
the battery. This feature, called AutoComp,
provides compensation for internal cell impedance and voltage drops in protection
circuitry and therefore may be used to
safely reduce charging time. Connecting
this pin to V
ture.
disables the AutoComp fea-
SS
SNSCurrent sense input
Battery current is sensed via the voltage
developed on this pin by an external senseresistor, connected in series with the nega
tive terminal of the battery pack.
BATBattery voltage input
This is the battery voltage sense input. It is
tied directly to the positive side of the bat
-
CCCharge-control output
V
CC
tery pack on bq2056 and bq2056T versions.
A simple resistive divider is required to
generate this input for bq2056V.
CC is an open-collector output that is used
to control the charging current to the bat
tery.
VCCsupply input
-
-
-
2
bq2056/T/V
Q1
5 VDC
DC+
DC-
D1
1N5817
2N3906
R5
2.7K
1
INH
2
TRKL
3
VS
4
COMP
R1
1K
bq2056
R2 1K
Figure 1. Low-Dropout Single-Cell Li-Ion Charger
Functional Description
The bq2056 supports a precision current- and voltagelimited charging system for Li-Ion batteries. The no-load
voltage regulation references (V
bq2056T are maintained at 4.1V and 8.2V, respectively.
The bq2056V provides variable regulation to accommo
date a wide range of charge voltages and may be used to
meet tighter tolerance requirements through external
trimming. The functional block diagram for the bq2056
is on the first page of this data sheet, and Figure 1 illus
trates a typical application.
Charge Algorithm
The bq2056 completes the charge cycle in two phases. A
constant current phase replenishes approximately 70%
of battery capacity, while an accurate voltage regulation
phase completes the charge.
Figure 2 shows a typical charge algorithm for bq2056,
including charge qualification, current regulation, and
voltage regulation phases.
Charge Qualification
During charge qualification the bq2056 detects a low
battery and reports this status on pin TRKL. Detection
) for the bq2056 and
REG
R3
4.7K
2TX788B
Q2
R6
0.3
R5
2K
C1
10 F
10V
BAT+
BAT-
bq2056sc.eps
C2
0.1 F
VCC
BAT
SNS
CC
8
7
6
5
is accomplished by comparing pin BAT voltage to the internal threshold V
than V
and pin INH is low, the open-drain output
MIN
. While pin BAT voltage is less
MIN
TRKL is driven low and the voltage/current regulator is
disabled (CC=high-Z). In the bq2056V, low-voltage de
tection occurs when the voltage on pin BAT is less than
or equal to V
an external trickle-charge circuit to bring the battery
voltage up to V
. As shown in Figure 1, TRKL enables
MIND
or V
MIN
MIND.
Current Regulation
The bq2056 provides current regulation while the pack
voltage is below the voltage limit. Charge-current feed
back, applied through pin SNS, maintains regulation
around a threshold of V
lates the value of the sense-resistor connected in series
with the negative terminal of the battery pack (Figure 3):
where I
is the maximum charging current. I
MAX
should not exceed 1A.
An external PNP or power P-FET may be used as the se
ries pass element with control provided through output
pin CC.
. The following formula calcu
SNS
R
= 0.1/ I
SNS
MAX
-
-
-
MAX
-
3
bq2056/T/V
External
Trickle Charge
Enabled
I
MAX
Current
Current
Regulation
Figure 2. bq2056 Charge Algorithm
Voltage Regulation
Voltage regulation feedback is through pin BAT. This pin
is connected directly to the pack in the bq2056 and
bq2056T. This voltage is compared with the voltage
regulation reference, V
divider may be used to generate this input (Figure 4). In
this case, the voltage presented on pin BAT is compared
with the internal reference voltage V
values R
and RB2(Figure 4) are calculated based on
B1
the following equation:
. In the bq2056V, a resistive
REG
RRNV
B1
B2
CELL
∗
=
V
REF
1
−
. The resistor
REF
AutoComp™
Phase
V
V
REG
MIN
Voltage
Voltage
Voltage Regulation
Current
2056chg.eps
voltage to compensate for the battery’s internal impedance and undesired voltage drops in the circuit.
For bq2056 and bq2056T, the voltage across the battery
pack, V
,is
PAK
V
PAK=VREG
+ (K
∗ voltage on pin COMP)
COMP
For bq2056V, the compensation voltage is added to the
product of the internal voltage reference, V
, and the
REF
gain, KDIV, of the external resistive divider between the
battery pack and BAT input, (Figure 4).
To reduce charging time, the bq2056 series uses the pro
prietary AutoComp technique to compensate safely for
internal impedance of battery and any voltage drops in
the protection circuitry. This maximizes battery’s capac
ity while reducing charging time. Compensation is
through input pin COMP (Figure 5). A portion of the
current-sense voltage, presented through this pin, is
scaled by a factor of K
lation reference, V
REG
and summed with the regu
COMP
. This process increases the output
Sleep Mode
The charge function may be disabled through pin INH.
When INH is driven high, internal current consumption
is reduced, and pins CC and TRKL assumes a highimpedance output state.
-
-
-
4
bq2056/T/V
3
V
SS
bq2056
bq2056T
bq2056V
SNS
5
2056CSR.eps
BAT+
R
B1
6
BAT
R
BAT-
R
SNS
3
V
SS
5
SNS
B2
BAT-
bq2056V
R
SNS
2056BVD.eps
Figure 3. Current-Sensing Resistor
3
V
CC
4
COMP
bq2056
bq2056T
bq2056V
R
C2
Figure 5. AutoComp Circuit
SNS
R
C1
Figure 4. Battery Voltage Divider for
bq2056V
5
2056ACC.eps
BAT-
R
SNS
5
Absolute Maximum Ratings
SymbolParameterMinMaxUnitsNotes
bq2056/T/V
V
CC
V
T
T
OPR
T
STG
T
SOLDER
P
D
DC Thresholds (T
VCCrelative to V
SS
DC voltage applied on any pin
(excluding V
) relative to V
CC
Operating ambient temperature-2070
Storage temperature-40125
Soldering temperature-260
-0.3+18V
-0.3
SS
V
CC
+0.3
V
°C
°C
°C
Power dissipation300mW
A=TOPR
and VCC= 5–17V unless otherwise specified)
10s max.
SymbolParameterRatingUnit ToleranceNotes
V
REG
(bq2056)
V
REG
(bq2056T)
V
REF
(bq2056V)
V
SNS
V
MIN
(bq2056)
V
MIN
(bq2056T)
V
MIND
(bq2056V)
K
COMP
(bq2056)
K
COMP
(bq2056T)
K
COMP
(bq2056V)
Voltage regulation reference4.10V
Voltage regulation reference8.20V
Voltage regulation reference3.35V
Current regulation reference100mV
Trickle-charge voltage
reference
Trickle-charge voltage
reference
Trickle-charge voltage
reference
2.0V
4.0V
1.64V
AutoComp constant2.0-
AutoComp constant4.0-
±1%
±1%
±1%
±15%
±15%
±15%
±15%
±10%
±10%
AutoComp constant1.7-±10%
6
bq2056/T/V
Recommended DC Operating Conditions (T
=25°C)
A
SymbolParameterMinTypicalMaxUnitsNotes
V
I
I
V
V
V
I
I
CC
CC
CCS
IL
IH
OL
OH
SNK
Supply voltage relative to V
Supply current-12mAINH = LOW
Sleep current-1030
Input low--0.5VPin INH
Input high2.0--VPin INH
Output low--0.4VPin TRKL, IOL= 1mA
Leakage current--1
Sink current--40mAPin CC
5.0-17.0V
SS
µA
µA
INH = HIGH
Pin TRKL
Impedance
SymbolParameterMinTypicalMaxUnitsNotes
R
R
R
BAT
SNS
COMP
BAT pin input impedance-1-
SNS pin input impedance-100-
COMP pin input impedance-100-
MΩ
kΩ
kΩ
7
bq2056/T/V
8-Pin DIP(PN
E1
E
C
e
)
8-Pin PN(0.300" DIP
D
Dimension
A0.1600.1804.064.57
A10.0150.0400.381.02
B0.0150.0220.380.56
B10.0550.0651.401.65
A
A1
L
B1
C0.0080.0130.200.33
D0.3500.3808.899.65
E0.3000.3257.628.26
E10.2300.2805.847.11
e0.3000.3707.629.40
S
B
G
G0.0900.1102.292.79
L0.1150.1502.923.81
S0.0200.0400.511.02
Min.Max.Min.Max.
)
InchesMillimeters
8
8-Pin SOIC Narrow (SN)
bq2056/T/V
8-Pin SN(0.150" SOIC
InchesMillimeters
Dimension
A0.0600.0701.521.78
A10.0040.0100.100.25
B0.0130.0200.330.51
C0.0070.0100.180.25
D0.1850.2004.705.08
E0.1500.1603.814.06
e0.0450.0551.141.40
H0.2250.2455.726.22
L0.0150.0350.380.89
Min.Max.Min.Max.
)
9
bq2056/T/V
Data Sheet Revision History
Change No. Page No.DescriptionNature of Change
Changed tolerance for V
16
16
Note:Change 1 = Oct. 1998 B changes from March 1998.
DC Thresholds table
Changed value and tolerance for K
in DC Thresholds table
REG
and V
REF
COMP
in
Was: ±0.7% with ±0.5% variation over power
supply and temperature range
Is: ±1% over power supply and temperature
range
Was: 2.0, ±15%
Is: bq2056: 2.0, ±10%
bq2056T: 4.0, ±10%
bq2056V: 1.7, ±10%
10
Ordering Information
bq2056
bq2056/T/V
Package Option:
PN = 8-pin plastic DIP
SN = 8-pin narrow SOIC
Device:
bq2056 Li-Ion Fast-Charge IC for one cell
bq2056T Li-Ion Fast-Charge IC for two cells
bq2056V Programmable Li-Ion Fast-Charge IC
11
IMPORTANT NOTICE
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pertaining to warranty, patent infringement, and limitation of liability.
TI warrants performance of its semiconductor products to the specifications applicable at the time of sale in
accordance with TI’s standard warranty. Testing and other quality control techniques are utilized to the extent
TI deems necessary to support this warranty . Specific testing of all parameters of each device is not necessarily
performed, except those mandated by government requirements.
CERTAIN APPLICATIONS USING SEMICONDUCT OR PRODUCTS MAY INVOLVE POTENTIAL RISKS OF
DEATH, PERSONAL INJURY, OR SEVERE PROPERTY OR ENVIRONMENTAL DAMAGE (“CRITICAL
APPLICATIONS”). TI SEMICONDUCTOR PRODUCTS ARE NOT DESIGNED, AUTHORIZED, OR
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In order to minimize risks associated with the customer’s applications, adequate design and operating
safeguards must be provided by the customer to minimize inherent or procedural hazards.
TI assumes no liability for applications assistance or customer product design. TI does not warrant or represent
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Copyright 1999, Texas Instruments Incorporated
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