ACTIVE-SEMI ACT2823QJ-T1435 Dual cell li-ion battery charger and power bank manager Datasheet

ACT2823
REV 1, 01-DEC-2016
Dual Cell Li-Ion Battery Charger and Power Bank Manager
BENEFITS and FEATURES
APPLICATIONS

Simple Design
o Single chip charger and power bank control
o Power path and battery charge control
o Charge/Discharge/Power path control
o Automatic output plug-in detection wakeup
and no load detection sleep mode

USB Compatible
o Vin = 4.5V to 5.5V
o Vout = 5.07V +/- 1%
o Auto Detection support USB BC1.2, Chinese YD/T 1591-2009, Apple, and Samsung
o Pass MFi Test
o Automatically accommodates weak input
power sources.
 Backup Battery Pack
 Power Bank
 Dual Cell Boost Battery Charger
 Bluetooth Speaker
 Wearables
 POS Machine
 Standalone Battery Charger with USB Output

High Power Capability
o 3.3A Load Current
o 1.5A Charge Current
o Dual Li-Ion Cells – 8.4V/8.7V +/-0.5%

Built in Safety
o Over/Under-voltage Protection
o Low Power Short Circuit Protection
o Battery Over charge/discharge protection
o Charge/Discharge Thermal Regulation

Space Savings
o Single Chip Design - fully integrated FETs
o Integrated LED status reporting
o TQFN5x5-40 Package

Power Savings
o >92% Efficient
o 400kHz
o <10uA Battery drain current

Easy system level design
o I2C programmability 1MHz
o Configurable operating modes and fault
conditions
o Meets EN55022 Class B Radiated EMI
Standard
GENERAL DESCRIPTION
The ACT2823 is a space-saving, dedicated single-chip
solution for dual-cell battery charge and discharge
control. It is optimized for power bank and battery
backup systems. The ACT2823 operates in three
modes: charge mode, discharge mode and HZ mode.
It charges dual Li-Ion batteries from a USB input while
also delivering power to the load. Automatic power path
control always gives priority to the load.
When the USB input is not present, the ACT2823
powers the load at 5.07V from the batteries. The cycleby-cycle peak current mode control, constant current
regulation, short circuit protection and over voltage
protection maximize safe operation.
ACT2823’s HZ mode minimizes the batteries current
drain to less than 10µA to help maintain fully charged
batteries for products with long storage, shipping, and
shelf life.
ACT2823 provides 4 LED drive pins for battery capacity
level and charge status indication to indicate 25%, 50%,
75% and 100% battery charge levels. Multiple LED
indications patterns are programmable.
ACT2823 is available in a thermally enhanced
5mmx5mm QFN55-40 package with exposed pad.
1uF
22uF
LED4 LED3 LED2 LED1 VREG
VIN
BAT
V IN
22uF
25mΩ
CSN
4.7uH
47nF
22uF
SW
PGND
BATN
HSB
RIMC ICST
540 k
1
ACT2823
VOUT
22uF
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ActiveSwitcherTM is a trademark of Active-Semi.
BATP
CSP
20mΩ
VOUT
5.07V/3.3A
22uF
BATS
8k
10k
TH
PB AGND
ACT2823
REV 1, 01-DEC-2016
FUNCTIONAL BLOCK DIAGRAM
LED4
LED3
LED2
LED1
VREG
ACT2823
LEDLS1
LEDLS2
VREG
FUEL
GAUGE
LEDLS3
LEDLS4
PT
PUSH
BUTTON
DETECTOR
RIMC
HYST
VREG
SCL
POWER
MUX
I2C
CONTROL
SDA
USB Shielding
USB AUTO
DETECTOR
EXTERNAL FET
CONTROL
OVGATE
DP
+
D-
VIN
OUTPUT
CURRENT
CONTROL
TRICKLE
CHARGE
CONTROL
CSP
Q1 CONTROL
VOUT
BAT
BATS
RCS=25mΩ
HSB
SYSTEM
CONTROL
BATP
CHARGE
CONTROL
Q2
BOOST CHARGER
AND
BUCK DISCHARGER
BATN
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2
PGND
OPTIONAL
AGND
THERMISTOR
ICST
TH
SW
Q3
RCS=25mΩ
CSN
OPTIONAL
SECONDARY
BATTERY
PROTECTION
MCU
DM
OVSENS
To Adapter
or USB port
PB
D+
OUT
PORT
ACT2823
REV 1, 01-DEC-2016
ORDERING INFORMATION
PART NUMBER
BATTERY EOC VOLTAGE
JUNCTION TEMPERATURE
PACKAGE
PINS
ACT2823QJ-T1000
8.4V
-40˚C to 150˚C
QFN55-40
40
ACT2823QJ-T1435
8.7V
-40˚C to 150˚C
QFN55-40
40
Note 1: All Active-Semi components are RoHS Compliant and with Pb-free plating unless specified differently. The term Pb-free means semiconductor
products that are in compliance with current RoHS (Restriction of Hazardous Substances) standards.
Note 2: Package Code designator “Q” represents QFN
Note 3: Pin Count designator “J” represents 40 pins
LED4
LEDLS1
LEDLS2
LEDLS3
LEDLS4
PT
RIMC
DM
DP
Top View
HYST
PIN CONFIGURATION– QFN55-40
CSN
LED3
CSP
LED2
CSP
LED1
VOUT
PB
VOUT
AGND
ACT2823
VIN
VREG
TH
VIN
OVGATE
ICST
PGND
OVSENS
BATN
SCL
NC
BATP
BATS
BAT
BAT
SW
SW
HSB
NC
SDA
PGND
Figure 1: Pin Configuration – Top View – QFN55-40
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3
ACT2823
REV 1, 01-DEC-2016
PIN DESCRIPTIONS - QFN
PIN
NAME
DESCRIPTION
1
CSN
Output current sense negative input.
2,3
CSP
Output current sense positive input.
4, 5
VOUT
Power Output Pin.
6, 7
VIN
USB or AC Adapter input.
8
OVGATE
Output to drive optional external NMOS protect IC from over voltage.
9
OVSENS
USB or AC Adapter input sense pin.
10
SCL
I2C clock input.
11
SDA
I2C data input.
12
NC
Not connected. This pin must be floating. Do not connect this pin to any etch on the PCB.
13
HSB
High side bias pin used for high side FET gate drive. Connect a 47nF ceramic capacitor from HSB to SW.
14,15
SW
Internal switch connected to a terminal of the output inductor.
16,17
BAT
Charging output pin. Bypass to PGND with high quality ceramic capacitors placed as close to the IC as
possible. Connect to the charging current sense resistor.
18
BATS
Battery current sense positive input. Connect to CS resistor positive terminal with Kevin connection.
19
BATP
Battery current sense negative input. Connect to CS resistor negative terminal with Kevin connection.
20
NC
Not connected. This Pin must be floating. Do not connect this pin to any etch on the PCB.
21
PGND
Power ground.
22
BATN
Battery negative terminal. Connect directly to PGND.
23
ICST
Fast charge current setting pin. Connect a resistor from this pin to AGND to set the charging current. The
current setting ranges from 0.5A-1.5A. The voltage at this pin reflects the charge current and discharge
current in charge mode and discharge mode, respectively.
24
TH
Temperature sensing input. Connect to a battery thermistor terminal.
25
VREG
+5V Bias output. Connect a 1.0uF to this pin. This pin supplies up to 50mA output current. The bias turns on
in charge mode and discharge mode. Internal register bit can shut down the bias. Bias turns off in HZ mode.
26
AGND
Logic ground output. Connect this pin to the exposed PGND pad on same layer with IC.
27
PB
Push button input. When this pin is pushed for more than 40ms, LED1-4 indicators are enabled for 5
seconds.
28
LED1
Battery level indicator.
29
LED2
Battery level indicator.
30
LED3
Battery level indicator.
31
LED4
Battery level indicator.
32
LEDLS1
LED1 threshold level shift. Connect a resistor from the pin to AGND to shift LED1 threshold voltage.
33
LEDLS2
LED2 threshold level shift. Connect a resistor from the pin to AGND to shift LED2 threshold voltage.
34
LEDLS3
LED3 threshold level shift. Connect a resistor from the pin to AGND to shift LED3 threshold voltage.
35
LEDLS4
LED4 threshold level shift. Connect a resistor from the pin to AGND to shift LED4 threshold voltage.
36
PT
LED indication mode input. The 5 modes of LED indication patterns are set by a voltage at this pin. Connect
a resistor at the pin to set the voltage and an LED indication pattern.
37
RIMC
Battery impedance compensation input. Connect a resistor to this pin to offset the LED threshold voltages in
charge mode and discharge mode.
38
HYST
Hysteresis window setting input. Connect a resistor to ground to set LED1, 2, 3, 4 hysteresis windows.
39
DM
Output port auto detection input. Connected to portable device D-.
40
DP
Output port auto detection input. Connected to portable device D+.
Exposed Pad PGND
Electrically connected to AGND and PGND. Also used as thermal pad to remove heat from the IC. Connect
to the top layer ground plane and use recommended thermal vias to internal and back side PCB ground
planes.
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4
ACT2823
REV 1, 01-DEC-2016
ABSOLUTE MAXIMUM RATINGS
PARAMETER
VALUE
UNIT
LEDLS1, LEDLS2, LEDLS3, LEDLS4, RIMC, HYST and PT to GND
-0.3 to +6
V
LED1, LED2, LED3 and LED4 to GND
-0.3 to +6
V
PB, DM, DP, TH, SCL, SDA and ICST to GND
-0.3 to +6
V
OVSENS to GND
-0.3 to +16
V
OVGATE to GND
-0.3 to +12
V
VIN, VOUT and VREG to GND
-0.3 to +6
V
CSP to CSN, CSP to VOUT
-0.3 to +0.3
V
BAT to BATS, BATS to BATP
-0.3 to +0.3
V
BAT to BATN
-0.3 to +12
V
BATN to GND
-0.3 to +0.3
V
SW to PGND
-0.3 to +12
V
HSB to SW
-0.3 to +6
V
Junction to Ambient Thermal Resistance (θJA)
40
Operating Junction Temperature (TJ)
-40 to 150
Operating Temperature Range (TA)
-40 to 85
Store Temperature
-55 to 150
Lead Temperature (Soldering, 10 sec)
/W
300
Note1: Do not exceed these limits to prevent damage to the device. Exposure to absolute maximum rating conditions for long periods may affect
device reliability.
Note2: Measured on Active-Semi Evaluation Kit
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5
ACT2823
REV 1, 01-DEC-2016
ELECTRICAL CHARACTERISTICE TABLE
(VIN = 5V, TA = 25°C, unless otherwise specified.)
Input Current Limit, Over Voltage Protection, Output Under Voltage Protection
PARAMETER
TEST CONDITIONS
Input Voltage Range
MIN
TYP
4.5
Input Over Voltage Protection
VIN rising, VIN_OVP
Input Over Voltage Hysteresis
VIN falling, VIN_OVP_HYST
5.5
5.7
MAX
UNIT
5.5
V
6.0
V
290
mV
Input Under Voltage Lock-Out
VIN rising, VIN_UVLO
4.2
V
Input Under Voltage Lock-Out Hysteresis
VIN falling, VIN_UVLO_HYST
200
mV
3.8
A
Input Current Limit Setting Range
Output Under Voltage Protection (UVP)
VOUT falling, VOUT_UVP
3.65
V
Output Under Voltage Protection Hysteresis
VOUT rising, VOUT_UVP_HYST
200
mV
3
s
Q1 Wait Time in Hiccup Mode
Boost Mode/Charge Mode
PARAMETER
TEST CONDITIONS
Switching Frequency
MIN
TYP
MAX
UNIT
-15%
400
+15%
kHz
Precondition Voltage Threshold of Total Cells
VBAT rising
5.6
V
Preconditioning Current
Percentage of fast charge current
15
%
Boost Charger UVLO
VOUT rising, BST_UVLO
4.2
V
VBAT_EOC (ACT2823QJ-T1000)
-0.5%
8.4
+0.5%
V
VBAT_EOC (ACT2823QJ-T1435)
-0.5%
8.7
+0.5%
V
Fast Charge Current Setting
Ricst=8kΩ
-10%
1.0
+10%
A
End of Charge Detection Current
Percentage of fast charge current
Shielding cable Detection Threshold at PB
PB falling In charge mode. VIN = 5V
VIN-1.5V
V
Charge Current Foldback Threshold with VIN,
Without Shielding Cable Connected
Start point
4.7
V
End point
4.6
V
4.92
V
Battery End-Of-Charge Voltage
10
Charge Current Foldback Threshold with VIN, With Start point
Shielding Cable Connected
End point
Continuous Charging Time after EOC
TEOC
Charger Thermal Regulation Temperature
100
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6
%
4.82
V
45
min
110
120
ACT2823
REV 1, 01-DEC-2016
Buck mode/Discharge
PARAMETER
Buck Under Voltage Lock-Out
TEST CONDITIONS
MIN
TYP
MAX
UNIT
VBAT falling, VBAT1,2
5.8
V
REG3[1:0]=00,Default
5.07
V
REG3[1:0]=01
5.12
V
REG3[1:0]=10
5.17
V
REG3[1:0]=11
5.22
V
VOUT Current Limit
RCS=20mΩ
3.3
A
Buck Converter Under Voltage Protection Threshold
VOUT falling goes into hiccup
3.65
V
Buck Converter Over Voltage Protection Threshold
VOUT rising
5.7
V
3.4
s
VOUT Output Regulation Voltage
Buck Convert Hiccup Time
Buck Converter Light-Load Cut-off Current
5
Buck Converter Light-Load Cut-off Deglitch Time
10
15
12.5
High Side Switch Peak Current Limit
All condition
Over Temperature Protection
OTP
160
Over Temperature Protection Hysteresis
OTP_HYST
20
mA
s
4.5
A
Battery Protection
PARAMETER
TEST CONDITIONS
Battery Over Charge Current
Battery Over Voltage
Percentage of EOC Voltage
MIN
TYP
2.6
3
101
102.5
Battery Under Voltage and Short Circuit Protection
Preconditioning timer
TH Pull-up Current
TH High Threshold
UNIT
A
104
%
3.2
V
1
hr
Charge mode
140
µA
If timer expires, goes to latch-off
Discharge mode
100
µA
Charge mode
2.5
V
Discharge mode
2.5
V
1
V
0.57
V
Charge mode
TH Low Threshold
MAX
Discharge mode
System Management
PARAMETER
TEST CONDITIONS
VREG Output Current
MIN
TYP
MAX
UNIT
50
mA
V
PB Rising Threshold
PB Rising, discharge mode
0.95
PB Falling Threshold
PB Falling, discharge mode with VIN=5V
0.75
V
PB internal pull up resistance
Pull up to internal supply
1.2
MΩ
Fault Condition AlarmFrequency
0.5s on and 0.5s off
1.0
Hz
10
s
Fault Condition Alarm Timer
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ACT2823
REV 1, 01-DEC-2016
LED Indication
PARAMETER
TEST CONDITIONS
MIN
LED1-4 Indication Level Setting
TYP
5.5
LED1-4 Sink Current
LED1-4 Scan Interval
For each LED pattern before lighting LEDs
MAX
UNIT
8.8
V
3
mA
0.5
s
I2C Interface
SCL, SDA Input Low
VIN = 5V
SCL, SDA Input High
VIN = 5V
SDA Leakage Current
SDA=5V
SDA Output Low
IOL = 5mA
0.4
1.25
SCL Clock Frequency, fSCL
V
V
0
1
µA
0.35
V
1000
kHz
SCL Low Period, tLOW
0.5
µs
SCL High Period, tHIGH
0.26
µs
50
ns
0
ns
SDA Data Setup Time, tSU
SDA Data Hold Time, tHD
(Note1)
Start Setup Time, tST
For Start Condition
260
ns
Stop Setup Time, tSP
For Stop Condition
260
ns
Capacitance on SCL or SDA Pin
10
pF
SDA Fall Time SDA, Tof
Device requirement
120
ns
Rise Time of both SDA and SCL, tr
See Note: 3
120
ns
Fall Time of both SDA and SCL, tf
See Note: 3
120
ns
50
ns
Pulse Width of spikes must be suppressed on SCL
and SDA
0
Note1: No internal timeout for I2C operations.
Note2: This is an I2C system specification only. Rise and fall time of SCL & SDA not controlled by the device.
Note2: Device Address is 7’h5A
tSCL
SCL
tST
tHD
tSU
tSP
SDA
Start
condition
Stop
condition
Figure 2: I2C Data Transfer
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8
ACT2823
REV 1, 01-DEC-2016
I2C PROGRAMMABLE PARAMETER LIST
ITEMS
STEP/STATUS
DEFAULT
0.6A,1.25A, 2.75A, 3.8A
3.8A
4.2V, 4.5V
4.2V
5.4V, 5.6V, 5.8V, 6.0V
5.8V
5.07V, 5.12V, 5.17V, 5.22V
5.07V
8.7V, 8.4V, 8.3V, 8.2V
8.4V (ACT2823QJ-T1000)
8.7V (ACT2823QJ-T1435)
5.6V, 6.0V
5.6V
Pre-charge Current
10%, 15%, 20%, 25%
15%
EOC Current
6%, 10%, 14%, 18%
10%
60%, 80%, 100%, 120%
100%
ON, OFF
OFF
Input Current Limit and Q1
Input Current Limit
VIN UVLO
Buck Converter/Discharge Mode
Discharge Cut-Off Voltage
VOUT Voltage
Boost Converter/Charge Mode
Battery EOC Voltage
Pre-charge voltage threshold
Fast charge current
System
VREG ON/OFF in HZ Mode
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9
ACT2823
REV 1, 01-DEC-2016
CUSTOMER REGISTER MAP
The ACT2823 address is 7’h5A – Write address is 8’hB4 and read address is 8’hB5
Default values for the ACT2823QJ-T are in bold.
REG1: Config Discharge (R/W)
Bit
Name
Reset Value
Description
Spare
00
Spare
5
Force Standby
0
0: No Force 1: Force
4
Disable Light Load
0
0: Enable 1: Disable
3
Spare
0
Spare
2
Mask Faults
0
0: No Mask 1: Mask
1
Clear Faults
0
0: No Clear 1: Clear
0
Soft Reset
0
0: No Reset 1: Reset
Name
Reset Value
Description
Spare
000
Spare
4
LED Indication Lock-out
0
0: 0s 1: 30s
3
Spare
0
Spare
2
LED Scan Disable
0
0: Enable 1: Disable
1
LED Always Display During Discharge
0
0: Diable 1: Enable
0
LED Breathing PWM Period
0
0: 2s 1: 3s
Name
Reset Value
Description
VIN Current Limit
10
00: 2.75A 01: 0.6A
10: 3.8A 11: 1.15A
7
6
REG2: Config Discharge (R/W)
Bit
7
6
5
REG3: Config Discharge (R/W)
Bit
7
6
0: 4.2V
1: 4.5V
5
VIN UVLO Level
0
4
Spare
0
Spare
Battery Discharge Cut-off Voltage
10
00: 5.4V 01: 5.6V
10: 5.8V 11: 6.0V
Spare
00
Spare
Reset Value
Description
0: 0s 1: 45 mins
3
2
1
0
REG4: Config Discharge (R/W)
Bit
Name
7
Charging Time after EOC
1
6
Battery Pre-condition Voltage Level
0
0: 5.6V 1: 6.0V
01
00: 10% 01: 15%
10: 20% 11: 25%
5
4
Battery Pre-condition Current Level
00: 8.2V 01: 8.3V
10: 8.4V 11: 8.7V
3
Battery EOC Voltage Level
10
Battery EOC Current Level
01
ACT2823QJ-T1000 default = 8.4V (10)
ACT2823QJ-T1435 default = 8.7V (11)
2
1
0
00: 6% 01: 10%
10: 14% 11: 18%
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ACT2823
REV 1, 01-DEC-2016
REG5: Config Discharge (R/W)
Bit
7
6
Name
Reset Value
Description
Battery Fast Charge Current Level
10
00: 60% 01: 80%
10: 100% 11: 120%
5
VREG ON/OFF in HZ Mode
0
0: OFF 1: ON
4
HZ Latch-off
1
0: No Latch-off 1: Latch-off
Spare
00
Spare
3
2
1
Thermistor Thresholds
1
0: Single 1: Dual
0
Spare
0
Spare
REG6: Config Discharge (R/W)
Bit
7
6
5
4
3
Name
Reset
Value
Description
Operation Mode
00
00: Disabled 01: Charge
10: Discharge 11: Not Used
Battery Charging Status
00
00: Trickle 01: Pre-condition
10: Fast Charge 11: Top Off
USB Device Status
0
0: Not Connected
1: Connected
Spare
000
Spare
Reset Value
Description
2
1
0
REG7: Config Discharge (R/W)
Bit
Name
7
VIN UV/OV
0
0: No Fault 1: Fault
6
VOUT UV/OV
0
0: No Fault 1: Fault
5
OTP
0
0: No Fault 1: Fault
4
Charge Thermal Foldback
0
0: No Fault 1: Fault
Spare
0000
Spare
3
2
1
0
REG8: Config Discharge (R/W)
Bit
Name
Reset Value
Description
7
Battery Over Temperature
0
0: No Fault 1: Fault
6
Battery Under Temperature
0
0: No Fault 1: Fault
5
Battery Over Voltage
0
0: No Fault 1: Fault
4
Battery Cut-off
0
0: No Fault 1: Fault
3
Battery Short & Pin Fault
0
0: No Fault 1: Fault
2
Battery Over Current
0
0: No Fault 1: Fault
1
Battery Trickle/Pre-condition Timer Expire
0
0: No Fault 1: Fault
0
Battery Low
0
0: No Fault 1: Fault
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11
ACT2823
REV 1, 01-DEC-2016
GENERAL INFORMATION
ACT2823 is a complete battery charging and
discharging
power
management
solution
for
applications of duel-cell, lithium-based backup battery
pack or power bank. With a USB input, the ACT2823
charges a dual cell Li-Ion battery and provides power to
the output. When USB power is removed, it powers the
output from the battery. The ACT2823 contains a fully
integrated, advanced, bidirectional, synchronous
boost/buck converter. The converter automatically
configures itself as a boost or a buck, depending on the
system level conditions. No microprocessor or user
intervention is needed to switch between operating
modes.
programmed fast charge current. This prevents damage
to a heavily discharged battery. When the battery
voltage increases above the precondition threshold, the
charger transitions to Fast Charge mode. The battery
voltage is measured between the BATP and BATN pins.
Fast Charge
When the battery voltage is above precondition
threshold, the charger operates in Fast Charge mode.
Fast Charge mode charges the battery with a constant
current set to the programmed fast charge current. The
fast charge current is set by the resistor on the ICST pin.
The charger stays in Fast Charge mode until the battery
voltage reaches the End-of-Charge Voltage, typically
8.4V or 8.7V.
ACT2823 operates in three modes: charge mode,
discharge mode, and high-impedance (HZ) mode. It
operates in charge mode when an input voltage is
present. It operates in discharge mode when the input
source is not present. It also contains a High Impedance
(HZ) Mode to minimize standby power when input
power is not present and a load is not connected.
Figure 3 shows a block diagram with current sensing.
Io
Iin
Input
VIN
L
Cin
The ACT2823 automatically prioritizes power to the load.
If the input voltage drops due to a weak input source,
the charger reduces charging current to ensure the load
can continue to operate.
Output
VOUT
Cout1
SW
ACT2823
ICST
RCS
BAT
RICST
Ic
BATP
Battery1
BATN
Battery2
FEATURES
Charger
Figure 3: Battery Current Monitoring
The ACT2823 charger contains a boost converter that
charges a dual Li-Ion battery from a USB input. If a
battery is connected, charging is accomplished with a
fully integrated boost converter and consists of five
phases: trickle charge, preconditioning, fast charge, top
off, and end of charge. It contains full, built in charging
protection, including over-charge protection, over
discharge protection, thermal regulation, and automatic
power path priority to the load.
The following equation calculates the fast charge
current, Ic.
Ic( A) 
200
RCS * RICST
(1)
Where RCS is the current sense resistor in mΩand
RICSTis the fast charge current setting resistor in kΩ. As
an example, setting RCS=25mΩ and RICST=8kΩ results
in a 1A fast charge current. Always design for a current
sense resistor voltage between 20mV-75mV in fast
charge mode.
Trickle Charge
When the battery is over-discharged, it must be charged
with a very small current to prevent battery damage.
The ACT2823 provides this protection by charging the
battery with 40mA directly from VIN when the battery
voltage is lower than 96% of VIN. When the battery
voltage increases to greater than 96% of VIN, the
charger transitions to Precondition Charge mode. Note
that Q1 is turned off and VOUT is not present in Trickle
Charge mode.
During discharge mode, the IC inverts the inputs to the
battery current sense amp and the voltage on ICST can
be used to measure the discharge current. The
following equation calculates the discharge current.
I DISCHARGE 
Precondition Charge
20  VICST
RICST
( 2)
Where VICST is the voltage on the ICST pin in volts, RICST
is the fast charge current setting resistor in kΩ, and
IDISCHARGE is the battery discharge current in amps. As
an example, measuring VICST=0.4V with RICST=8kΩ
indicates 1A discharge current.
When the battery voltage is below the precondition
threshold, typically 5.6V, the charger operates in
Precondition mode. In this mode, it charges the battery
with a constant current that is set to 15% of the
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The following table provides the recommended RICST
values based on RCS=25mΩ and 50mΩ.
110°C. If the die temperature increases above 110°C,
the IC reduces charging current at a rate of -10%/°C.
This ensures that the output voltage on VOUT has
priority over charging the battery. In discharge mode,
the IC delivers full current at rated voltage when the
temperature is below 130°C. If the die temperature
increases above 130°C, the IC decreases the output
voltage by -115mV/°C.
RICST
IC (A)
Units
RCS=25mΩ
RCS=50mΩ
0.8
10
5
kΩ
0.9
8.89
4.44
kΩ
1
8
4
kΩ
1.1
7.27
3.64
kΩ
1.2
6.67
3.33
kΩ
1.3
6.15
3.08
kΩ
1.4
5.71
2.86
kΩ
1.5
5.33
2.67
kΩ
End-of-Charge Timer
When the charger enter the End-of-Charge mode, it
either immediately stops charging or continues to
charge for 45 minutes. If register 0x04h, bit 7 = 0, the
charger immediately turns off. If this bit = 1, the charger
continues to charge in constant voltage mode for 45
minutes.
Top Off
Power Path Priority
When the battery voltage reaches the End-of-Charge
Voltage, the ACT2823 transitions to Top Off mode. Top
Off mode charges the battery with a constant voltage.
In Top Off mode, the charging current slowly decreases
as the actual battery voltage increases and the voltage
across the battery’s ESR decreases. The charger stays
in Top Off mode until the charging current drops below
the EOC (End-of-Charge) current which is 10% of the
programmed fast charge current. At this point the
battery is considered fully charged and the charger
transitions into the End of Charge mode.
The ACT2823 always gives priority to the system
voltage on VOUT. If the input voltage source is current
limited and cannot simultaneously provide the full
charge current plus the full system current (current out
of VOUT), the input voltage would drop and cause a
brownout situation on VOUT. The ACT2823 avoids the
brownout condition by reducing the charging current if
the input voltage drops. If the IC detects that a USB
cable is connected, the Charge Current Foldback
Threshold voltage starts at 4.92V. If no USB cable is
detected, the starting voltage is 4.7V. The charger
linearly reduces charge current from full charge current
to 0A as the voltage on VIN drops from 4.7V to 4.6V or
from 4.92V to 4.82V, depending on whether or not a
USB cable is detected.
End-of-Charge
When the charging current drops to 10% of the fast
charge current, the charger enters End-of-Charge mode.
If register 0x04h, bit 7 = 0, the charger immediately turns
off. If this bit = 1, the charger continues to charge in
constant voltage mode for 45 minutes. In this case, the
charge current continues to drop while the battery
voltage is held at the End-of-Charge voltage. If the
battery voltage drops below 95% of the End-of-Charge
voltage, the charger transitions back into Top Off mode.
The charger automatically transitions between these
four charging modes as the battery voltage increases
and decreases during charging and discharging cycles.
The charger also reduces the charging current if the
total input current (charging current plus system current)
exceeds 80% of the programmed input current limit
(ILIM) threshold of 3.8A. Charging current is linearly
reduced from full charge current to 0A as the input
current increases from 80% of ILIM to 100% of ILIM.
Operating Modes
The ACT2823 automatically switches between several
different operating modes, depending on circuit
conditions.
If a battery is not present during charging mode, the
charger regulates its output to the End-of-Charge
voltage. If a battery is then connected, the charger
automatically transitions to the proper operating mode
that is appropriate for the battery’s voltage. If the battery
disconnected from the charger, it regulates its output to
the End-of-Charge voltage
Charge Mode
When input power is applied and there are no faults, the
IC operates in Charge Mode. Charge Mode turns on Q1
to power VOUT with the input voltage. Note that Q1
stays off and VOUT is not present in Trickle Charge
mode. Charge mode configures the switches Q2 and
Q3 as a boost converter to charge the battery. The IC
automatically enters Charge Mode when input power is
applied. There is a 2s delay when transitioning from
Discharge Mode to charge mode. During this time, the
IC goes into HZ mode
Thermal Regulation
The charger contains a thermal regulation feature that
prevents the IC from reaching thermal shutdown in high
temperature environments. It works in both charge and
discharge modes. The charger operates at full charging
current when the ACT2823 die temperature is below
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Discharge Mode
Conventional – Always On Mode
In Discharge Mode, the ACT2823 turns off Q1 and
reconfigures Q2 and Q3 as a buck converter. It powers
the VOUT pin from the battery. The default VOUT
voltage is 5.07V and current limit is set at 3.3A. If a
charged battery is present when input power is removed,
the IC enters Discharge Mode. There is a 2s transition
between Charge Mode and Discharge Mode. During
this time, the IC goes into HZ mode.
Setting RPT=4kΩ programs Conventional – Always On
Mode. The LEDs are always active when the IC is in
Charge or Discharge Mode. The LEDs are solid to
indicate Charge Mode and flash to indicate Discharge
Mode. Figure 4 shows each LED function relative to the
VBAT voltage.
Conventional Mode
HZ Mode
Setting RPT=12kΩ programs Conventional Mode. The
LEDs are always active when the IC is in Charge Mode.
They only turn on for 5s when PB is pulled low for
greater than 40ms in Discharge Mode. The LED pattern
is identical to Conventional – Always On Mode. Figure
4 shows each LED function relative to the VBAT voltage.
HZ mode is a low power mode that minimizes current
draw from the battery. All switches are turned off, and
only the push button circuit is kept alive. The IC draws
less than 10uA current from VBAT in HZ Mode. The IC
transitions from Discharge Mode to HZ Mode when the
load current is less than 10mA for greater than 12.5s or
when the pushbutton is pressed for greater than 5s. The
IC also enters HZ Mode when a battery fault is detected.
The IC stays in HZ Mode indefinitely until input voltage
is applied. When input voltage is applied and there are
no faults, it enters Charge Mode. The user can force a
transition from HZ Mode to Discharge Mode by
asserting the push button for greater than 40ms.
Breathing Mode
Setting RPT=24kΩ programs Breathing Mode. The LEDs
are always active when the IC is in Charge Mode. They
only turn on for 5s when PB is pulled low for greater than
40ms in Discharge Mode.In Charge Mode, the LEDs
appear to “breath” as the IC ramps the current back and
forth between 0mA and 3mA at a 2s rate. In Discharge
mode, the LED pattern is identical to Conventional
Mode. Figure 4 shows each LED function relative to the
VBAT voltage.
Push Button
The ACT2823 push button serves several purposes. It
can be automatically pulled low when a shielded cable
or a portable device is connected to VOUT. When in HZ
Mode, and PB is pulled low for greater than 40ms, it
turns on the LEDs for 5s and the IC transitions to
Discharge Mode. This allows the user to wake up the IC
to power a portable device. The PB falling threshold is
0.95V when in HZ Mode.
Bottom Charging Mode
Setting RPT=40kΩ programs Bottom Charging Mode.
The LEDs are always active when the IC is in Charge
Mode. They only turn on for 5s when PB is pulled low
for greater than 40ms in Discharge Mode. In Charge
Mode, the LED cycle starts with all LEDs off. LED1 turns
on, then LED2 turns on, etc. until the highest LED
corresponding to the battery voltage turns on. Then all
LEDs turn off. This cycle repeats every 0.5s. In
Discharge mode, the LED pattern is identical to
Conventional Mode. Figure 4 shows each LED function
relative to the VBAT voltage.
When in Charge Mode, pulling PB below 3.5V tells the
IC that a shielded USB cable or a downstream portable
device is connected to VOUT. This changes the Charge
Current Foldback Voltage threshold from 4.7V to 4.92V.
Increasing this threshold gives more current priority to
the portable device connected to VOUT. If the portable
device is removed and PB rises above 3.5V, the Current
Foldback Threshold drops back to 4.7V.
Circulating Mode
Figure 8 shows the recommended circuit for
automatically detecting the shielded cable or portable
device connection. R26, R14 and C16 form the
detection circuit. Connect R14 and C16 to the USB
output connector shield to detect the insertion of a
shielded cable. Connect to the USB cable’s output
voltage to detect insertion of a portable device.
Setting RPT greater than 56kΩ programs Circulating
Mode. RPT can be left open to program Circulating
Mode.The LEDs are always active when the IC is in
Charge Mode. They only turn on for 5s when PB is
pulled low for greater than 40ms in Discharge Mode. In
Charge Mode, when the battery voltage is over an
LED’s threshold, that LED stays on. The higher
threshold LEDs turn on one at a time until they are all
on. They then turn off. The cycle repeats every 0.5s. In
Discharge mode, the LED pattern is identical to
Conventional Mode. Figure 4 shows each LED function
relative to the VBAT voltage.
LED Indication
ACT2823 has 4 LED inputs to visually communicate the
battery status. A resistor from PT to AGND programs the
LED mode. In all modes, when the battery is
discharging, LED1 flashes to indicate a low battery
when the battery voltage is lower than the VLED1
threshold. In all modes, all LEDs turn on solid when the
battery charger is in the End-of-Charge Mode.
LED1-4 Refresh Cycle
Every time VIN is applied or PB is pulled low, the LEDs
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turn on sequentially in a 0.5s interval prior to entering
the mode programmed by the PT pin.
LED1-4 Fault Alarm Signal
When a fault is detected, all four LEDs turn on/off with
0.5s on and 0.5s off time for 10 seconds. The fault
conditions include battery OVP, UVP, OTP.
Bottom
Charging
Conventional
Circulating
EOC
Flash
Circulating on
Breathing on /off
Off
Always on
Figure 4: LED Indication Patterns
LED Threshold Setting
LED1, LED2, LED3 and LED4 thresholds are adjustable
with external resistors RLS1, RLS2, RLS3, and RLS4
connected from LEDLS1, LEDLS2, LEDLS3, LEDLS4
to AGND respectively, as shown in Figure 5. The LED
threshold voltage, Battery Impedance Compensation
voltage, and LED Hysteresis Window Setting voltage all
work together to program when the LEDs turn on and
off. Each of these three voltage are programmed
independently. Note that the battery voltage is
measured between the BATP and BATN pins.
8.75
8.32
7.94
7.61
7.33
7.09
6.87
6.69
105
121
140
162
187
215
249
287
6.53
6.39
6.27
6.17
6.08
6.00
5.93
5.88
RIMC ( k)  2160 k 
RBAT
(mΩ)
Figure 5: LED Threshold Setting
The following equation calculates the VLEDx threshold in
HZ mode. This threshold can be programmed between
5.5V to 8.8V.
108k
R LSx (k)
( 4)
The following table calculates the proper RIMC resistor
for typical battery impedances and current sense
resistors.
RLS4
ACT2823
VLEDx (V )  5.5V 
RCS ( m)
RBAT ( m )
Where RCS is the current sense resistor in mΩ and RBAT
is the battery impedance in mΩ. For example, if
RCS=50mΩ and the battery impedance, RBAT, is 500mΩ,
then RIMC=216kΩ.
LEDLS1
R LS3
LEDLS2
RLS2
LEDLS3
RLS1
LEDLS 4
RIMC
33.2
38.3
44.2
51.1
59
68.1
78.7
90.9
The ACT2823 battery impedance function compensates
for the battery voltage changes due to changing battery
current. The battery current, charging or discharging,
interacts with the battery’s internal impedance to create
voltage increase or drop in battery voltage. The battery
impedance compensation circuitry counteracts this
changing voltage by adjusting the LED voltage
thresholds. This minimizes the number of LEDs that
change states as battery loading changes. Connecting
a resistor between the RIMC pin and AGND adjusts for
battery impedances between 100mΩ to 800mΩ. If
battery impedance compensation is not used, leave
RIMC open. The following equation calculates the
proper RIMC resistor value
50%≤SOC<75%
75%≤SOC<100%
HYST
VLEDx(V)
Battery Impedance Compensation
25%≤SOC<50%
RIMC
RLSx (kΩ)
Breathing
<25%
RHYST
RLSx (kΩ)
VLEDx(V)
(3)
RIMC(kΩ)
RCS=25mΩ
RCS=50mΩ
100
540kΩ
1280kΩ
200
270kΩ
540kΩ
300
180kΩ
360kΩ
400
135kΩ
270kΩ
500
108kΩ
216kΩ
600
90kΩ
180kΩ
700
77kΩ
154kΩ
800
67.5kΩ
135kΩ
The equation below calculates the ACT2823 LED
voltage threshold shift due to battery impedance
compensation.
Where RLSx is the resistance from LEDLSx to AGND in
kΩ. For example, setting RLS1 = 215kΩ results in
VLED1=6V
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V IMC ( mV )  2160 k  I BAT 
RCS ( m )
R IMC ( k )
Charging LED
Threshold - Rising
(5)
As an example, if RCS=50mΩ, RIMC=216kΩ, and the
battery charging current is 1.5A, then the ACT2813
increases the LED voltage threshold by 750mV.
VLEDx
The LED Hysteresis Window compensates for the
increase and decrease in battery voltage associated
with charging and discharging. It provides fixed voltage
adjustment to the LED threshold settings. When in the
battery is charging, the LED threshold settings are
increased by the LED hysteresis voltage. When the
battery is discharging, the LED threshold settings are
decreased by the LED hysteresis voltage. This setting
has no effect in HZ Mode. Connecting a resistor
between the HYST pin and AGND program the
hysteresis between adjusts for battery impedances
between 0mV and 720mV. Note that the ACT2823 has
100mV of built in hysteresis that cannot be changed.
VHYST
Discharging LED
Threshold - Rising
Figure 6: LED threshold setting
BATTERY TEMPERATURE MONITERING
The ACT2823 monitors the battery pack temperature by
measuring the voltage at the TH pin. The TH pin is
connected to the thermistor resistor network which
includes a negative temperature coefficient thermistor.
An internal current source provides a bias current to
generate a voltage on the TH pin. The ACT2823
compares the voltage at the TH pin with the internal
VTHH and VTHL thresholds to determine if charging or
discharging is allowed. Charging latches off and triggers
a fault in the I2C register 0x08h when VTH<VTHL or
VTH >VTHH. Charging cannot be started until the fault
condition goes away. After VTH returns to the normal
range, one of the following three conditions can restart
charging.
( 6)
(7 )
Where VHYST is the desired LED hysteresis in volts.
RHYST(1) = 54kΩ to set LED1 hysteresis equal to 600mV.
RHYST(3) = 45kΩ to set LED3 hysteresis equal to 600mV.
The following table provides RHYSTvalues for different
hysteresis voltages.
RHYST (kΩ)
Floating
LED1
VHYST
0mV
LED2
VHYST
0mV
LED3
VHYST
0mV
1. Assert PB when the latch off bit in register 0x05h = 0
2. Clear the fault status bits in register 0x08h standby
3. Recycle input power
LED4
VHYST
0mV
270
120mV
120mV
100mV
100mV
135
240mV
240mV
200mV
200mV
90
360mV
360mV
300mV
300mV
67.5
480mV
480mV
400mV
400mV
54
600mV
600mV
500mV
500mV
45
720mV
720mV
600mV
600mV
VIMC
100mV Internal
Hysteresis
Discharging LED
Threshold - Falling
The following equations calculate the proper RHYST
resistance. Note that LED1 and LED2 use one equation
while LED3 and LED4 use another equation.
32.4k
V HYST 1:2 (V )
27k 
R HYST 3:4 k  
V HYST 3:4  (V )
VIMC
VHYST
LED Hysteresis Window Setting
R HYST 1:2 k  
100mV Internal
Hysteresis
Charging LED
Threshold - Falling
ACT2823
CHG_HOT
+
ICHG=140uA
V TCL=1V
–
CHG_COLD
+
–
DIS_HOT
+
VTCH=2.5V
IDIS=100 uA
The battery voltage that triggers each LED to turn on
and off is a function of the LED voltage threshold, the
impedance compensation voltage, the LED hysteresis
setting, and whether the battery is charging or
discharging. The figure below graphically shows the
LED trip points as a function of these inputs.
DIS_COLD
Rb
VTDL=0.57V
–
LED Trigger Voltage
TH
Li+ Battery
Pack
NTC
Ra
+
–
VTDH=2.5V
Figure 7: Thermistor Resistor Network
RNTCc : NTC Resistor at cold temperature (Tcold)
RNTCh : NTC Resistor at hot temperature (Thot)
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The following equations calculate the proper external
resistor network to set the upper and lower charging
temperature thresholds.
VTCL  I CHG  Rchot
(8)
V TCH I CHG  Rcold
(9)
Rchot  Rb 
Ra  R NTCh
Ra  R NTCh
Rcold  Rb 
Ra  R NTCc
Ra  R NTCc
maximum output current. The following equation
calculates the inductor ripple current is
∆
1
∗
∗
12
Where VOUT is the 5V output voltage, VBAT is the battery
voltage, FSW is the switching frequency, and L is the
inductor value.
(10)
Output Capacitor Selection
(11)
VOUT requires high quality, low-ESR, ceramic
capacitors. Three 22uF capacitors are typically suitable.
An additional smaller 0.1uF capacitor assists with high
frequency filtering. Smaller capacitors can be used with
smaller loads but the capacitance should not go below
44uF for stability reasons. Choose the capacitance to
keep the output ripple voltage less than approximately
50mV. The following equation calculates the output
voltage ripple.
From (7) (8) (9) and (10) calculate Ra and Rb in charge
mode, as the same method, the resistors in discharge
mode can be calculated.
For example, using an NXRT15XH103 NTC resistor
and a temperature charging range of 0 to 45 ,we
know RNTCC=27.219k and 4.917k at 0 and 45
respectively. We can calculate Ra=33kΩ and
Rb=2.87kΩ based on the above formulas. Follow this
procedure for any other NTC and charging temperature
range. If temperature sensing is not used, connect TH
to ground through a 10kΩ resistor.
VRIPPLE
∆
8∗
∗
13
Be sure to consider the capacitor’s DC bias effects and
maximum ripple current rating when using capacitors
smaller than 0805.
I2C Serial Interface
A capacitor’s actual capacitance is strongly affected by
its DC bias characteristics. The output capacitor is
typically an X5R, X7R, or similar dielectric. Use of Y5U,
Z5U, or similar dielectrics are not recommended due to
their wide variation in capacitance over temperature and
voltage ranges.
The ACT2823 provides the user with the ability to
change operating parameters via I2C commands. The
Customer Register Map section of the datasheet shows
the parameters that can be modified. All changes to I2C
registers are volatile. All registers reset to their default
settings when power is recycled.
The ACT2823 operates as a slave device, and is addressed using a 7-bit slave address of 0x5Ah, followed
by an eighth bit, which indicates whether the transaction
is a read-operation or a write-operation, 1011010x. “x”
is a 0 for write operation and 1 for a read operation. Use
address 0xB4h for write operations and 0xB5h for read
operations.
Input Capacitor Selection
The input capacitor on VIN requires a high quality, lowESR, ceramic input capacitor. A 22uF capacitor is
typically suitable, but this value can be increased
without limit. Smaller capacitor values can be used with
lighter output loads. Choose the input capacitor value to
keep the input voltage ripple less than 50mV.
There is no timeout function in the I2C packet processing state machine, however, any time the I2C state
machine receives a start bit command, it immediately
resets the packet processing, even if it is in the middle
of a valid packet.
Battery Capacitor Selection
The BAT pin requires high quality, low-ESR, ceramic
capacitors. Two 22uF capacitors are typically suitable.
An additional smaller 0.1uF capacitor assists with high
frequency filtering. Smaller capacitors can be used with
smaller loads but the capacitance should not go below
22uF. These capacitors are the output capacitors to the
charging boost converter and the input capacitors to a
discharging buck converter, so they must be placed as
close as possible to the BAT pin and be directly to the
PGND plane. Choose the capacitance to keep the
ripple voltage less than 50mV. Use the following
equation to calculate the minimum input capacitance.
APPLICATION INFORMATION
Inductor Selection
The ACT2823 uses current-mode control and a
proprietary internal compensation scheme to simplify
external component selection. It is optimized for
operation with 4.7μH inductors. Choose an inductor with
a low DC-resistance, and avoid inductor saturation by
choosing inductors with DC ratings that exceed the
maximum output current by at least 30%. Design for an
inductor ripple current that is approximately 30% of the
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∗
∗ 1
the VIN pin. Connect the ground side to the PGND
plane.
14
∗
5. Use Kevin sense connections from the output current
sense resistor to CSP and CSN pins, and from the
battery charging current sense resistor to BATS and
BATP.
Where IOUT is the load current, VOUT is the 5V output
voltage, VBAT is the battery voltage, FSW is the switching
frequency, and VRIPPLE is the desired ripple voltage.
6. SW node is noisy and should be isolated from other
sensitive circuitry. Make the connection from SW to the
inductor with a short, wide trace for good EMI and low
noise operation.
Charge Current Sense Resistor
Choose a charge current sense resistor so the fast
charge current through it results in a current sense
voltage between 20mV-75mV. Typical resistor values
are 25mΩ to 50mΩ. The traces to the BATP and BATS
pins must be Kelvin sensed to ensure accuracy. In
noisy environments placing a 100nF capacitor between
BATP and BATS will improve noise immunity.
7. The exposed pad is must be connected to the top
layer GND plane. Connect it to the internal and bottom
layer ground planes using thermal vias. PGND and
AGND should be single-point connected to the exposed
pad under the IC.
Output Sense Resistor
8. An RC snubber and external Schottky diode across
SW to PGND can be added as needed for reducing
switching spikes and better EMI performance.
Choose an output current sense resistor so the
maximum load current through it results in a current
sense voltage greater than 10mV. The traces to the
CSP and CSN pins must be Kelvin sensed to ensure
accuracy. The following equation sets the output
current limit
IOUT_CL
0.066
15
Where RCS is the current sense resistor between CSN
and CSP.
PCB Board Layout Guidance
When laying out the printed circuit board, the following
checklist should be used to ensure proper operation of
the IC.
1. Place the BAT decoupling capacitors as close to the
Bat pin as possible. Minimize the loop area between
the BAT pin to the capacitors to the PGND pin. If using
different sized capacitors, place the physically smaller
capacitors closer to the IC to get better high frequency
filtering.
2. Arrange the power components to reduce the overall
AC loop area.
3. Place the VOUT decoupling ceramic capacitors close
to the VOUT pin. Connect the ground side to the PGND
plane.
4. Place the VIN decoupling ceramic capacitors close to
Application Circuit
The following schematic represents a typical application circuit.
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Schematic
R26
R14
R1 1 R10 R15 R9 R8 R7 R6
R2
Output
USB
+
DD+
-
C19
L ED4
LEDLS 1
LEDLS 2
LEDLS 3
CSN
LEDLS 4
PT
RIMC
DM
HYST
DP
C16
LED3
CSP
LED 2
CSP
LED1
VOUT
C3
TH
VIN
ICST
PGND
OVSENS
BATN
PGND
NC
B ATP
B ATS
B AT
B AT
SW
SW
MCU
NC
R1
HSB
+
DD+
-
S DA
SCL
Input
USB
LED1
S1
C2
R3
C4
L1
BAT1
R17
C20
C1
D1
C13 C12 C11 C10
R12
C6
C7 C8
C14
Figure 8: Typical Application Circuit
Innovative PowerTM
ActiveSwitcherTM is a trademark of Active-Semi.
19
C15
VREG
OVGATE
R27
LED2
AGND
ACT2823
VIN
Q1
LED3
PB
VOUT
Input OVP
LED4
BAT2
R32
R5
R33 R NTC
ACT2823
REV 1, 01-DEC-2016
BOM
Item
Reference
Description
QTY
Manufacturer
1
L1
SWPA8040S4R7NT 4.7uH 5.9A(8*8*4mm)
1
Sunlord
2
D1
MBR1020VL, 20V/1A Schottky, SMA, Optional
1
Panjit
3
Q1
AO3400A, Rds(on)<32mΩ at VGS=4.5V, optional
1
AOS
4
C1,C7,C8
Ceramic capacitor, 22uF/16V, X7R, 1206
3
Murata/TDK
5
C2
Ceramic capacitor, 4.7uF/10V, X7R, 0805
1
Murata/TDK
6
C3,C10,C11,C12
Ceramic capacitor, 22uF/10V, X7R, 1206
4
Murata/TDK
7
C4
Ceramic capacitor, 47nF/16V, X7R, 0603
1
Murata/TDK
8
C6,C13
Ceramic capacitor, 0.1uF/16V, X7R, 0603
2
Murata/TDK
9
C14
Ceramic capacitor, 2.2nF/10V, X7R, 0603
1
Murata/TDK
10
C15
Ceramic capacitor, 1uF/10V, X7R, 0603
1
Murata/TDK
11
C16
Ceramic capacitor, 2.2uF/10V, X7R, 0603
1
Murata/TDK
12
C19
Ceramic capacitor, 3.3uF/10V, X7R, 0603
1
Murata/TDK
13
C20
Ceramic capacitor, 100nF/10V, X7R, 0603
1
Murata/TDK
14
R1
Chip Resistor, 2.7Ω, 1/8W, 5%, 0805
1
Murata/TDK
15
R2
Chip Resistor, 20mΩ, 1/2W, 1%, 1206
1
SART
16
R3
Chip Resistor, 25mΩ, 1/2W, 1%, 1206
1
SART
17
R5
Chip Resistor, 8kΩ, 1/10W, 1%, 0603
1
Murata/TDK
18
R6
Chip Resistor, 83kΩ, 1/10W, 1%, 0603
1
Murata/TDK
19
R7
Chip Resistor, 63.5kΩ, 1/10W, 1%, 0603
1
Murata/TDK
20
R8
Chip Resistor, 51.4kΩ, 1/10W, 1%, 0603
1
Murata/TDK
21
R9
Chip Resistor, 41.5kΩ, 1/10W, 1%, 0603
1
Murata/TDK
22
R10,R11
Chip Resistor, 540kΩ, 1/10W, 1%, 0603
2
Murata/TDK
23
R12
Chip Resistor, 0.47Ω, 1/8W, 1%, 0805
1
Murata/TDK
24
R14,R26
Chip Resistor, 715kΩ, 1/10W, 5%, 0603
2
Murata/TDK
25
R15
Chip Resistor, 12kΩ, 1/10W, 1%, 0603
1
Murata/TDK
26
R17
Chip Resistor, 10Ω, 1/10W, 5%, 0603
1
Murata/TDK
27
R27
Chip Resistor, 100Ω, 1/10W, 1%, 0603
1
Murata/TDK
28
R32
Chip Resistor, 3kΩ, 1/10W, 1%, 0603
1
Murata/TDK
29
R33
Chip Resistor, 32kΩ, 1/10W, 1%, 0603
1
Murata/TDK
30
RNTC
103AT NTC Thermistor, NXRT15XH103V
1
Murata/TDK
31
LED1,LED2,
LED3,LED4
LED, 0603, Blue
4
LED Manu
32
PB
Push Button Switch
1
33
Output USB
10.2*14.6*7mm,4P
1
34
Micro-USB
MICRO USB 5P/F SMT B
1
35
U1
IC, ACT2823 QFN 5X5-40
1
Innovative PowerTM
ActiveSwitcherTM is a trademark of Active-Semi.
20
ACT
ACT2823
REV 1, 01-DEC-2016
Typical Performance Characteristics
(Schematic as shown in Figure 8, Ta=25°C unless otherwise specified)
Innovative PowerTM
ActiveSwitcherTM is a trademark of Active-Semi.
21
ACT2823
REV 1, 01-DEC-2016
Innovative PowerTM
ActiveSwitcherTM is a trademark of Active-Semi.
22
ACT2823
REV 1, 01-DEC-2016
Innovative PowerTM
ActiveSwitcherTM is a trademark of Active-Semi.
23
ACT2823
REV 1, 01-DEC-2016
PACKAGE OUTLINE AND DIMENSIONS QFN55-40
PIN #1 DOT BY
MARKING
Top View
SYMBOL
D
MAX
MIN
MAX
A
0.700
0.800
0.028
0.031
A1
0.000
0.050
0.000
0.002
A3
E
Bottom View
L
b
0.008 REF
0.150
0.250
0.006
0.010
D
4.924
5.076
0.194
0.200
E
4.924
5.076
0.194
0.200
D1
3.300
3.500
0.130
0.138
E1
3.300
3.500
0.130
0.138
e
D1
0.203 REF
b
L
e
DIMENSION IN
INCHES
MIN
D/2
E/2
DIMENSION IN MILLIMETERS
k
0.400TYP
0.324
0.476
0.200 MIN
0.016 TYP
0.013
0.019
0.008 MIN
E1
k
A3
A
A1
Active-Semi, Inc. reserves the right to modify the circuitry or specifications without notice. Users should evaluate each product to
make sure that it is suitable for their applications. Active-Semi products are not intended or authorized for use as critical components
in life-support devices or systems. Active-Semi, Inc. does not assume any liability arising out of the use of any product or circuit
described in this datasheet, nor does it convey any patent license.
Active-Semi and its logo are trademarks of Active-Semi, Inc. For more information on this and other products, contact [email protected] or visit http://www.active-semi.com.
is a registered trademark of Active-Semi.
Innovative PowerTM
ActiveSwitcherTM is a trademark of Active-Semi.
24
ACT2823
REV 1, 01-DEC-2016
REVISION HISTORY
REVISION
1
DATE
05-DEC-2016
DESCRIPTION
General clarification of device functionality. No IC functional
changes or EC table changes from Rev 0 to Rev 1
Innovative PowerTM
ActiveSwitcherTM is a trademark of Active-Semi.
25
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