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 NCP1835B
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Integrated Li-Ion Charger
NCP1835B is an integrated linear charger specifically designed to charge 1-cell Li-Ion batteries with a constant current, constant voltage (CCCV) profile. Its low input voltage capability, adjustable charge current, ability to maintain regulation without a battery, and its onboard thermal foldback make it versatile enough to charge from a variety of wall adapters. The NCP1835B can charge from a standard wall adapter or from the USB port. It has been optimized to charge low capacity batteries such as those found in wireless headsets and flash memory-based MP3 players. It's recommended charge current rate is 30-300 mA.
Features
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1
* * * * * * * * * * * * * * * * * * *
1 DFN 3x3 MN SUFFIX CASE 485C 1835B A L Y W = Device Code = Assembly Location = Wafer Lot = Year = Work Week
1835B ALYW
Integrated Voltage and Current Regulation No External MOSFET, Sense Resistor or Blocking Diode Required Charge Current Thermal Foldback Integrated Pre-charge Current for Conditioning a Deeply Discharged Battery Integrated End-of-Charge (EOC) Detection 1% Voltage Regulation 4.2 V Regulated Output Voltage Regulation Maintained without a Battery Present Programmable Full Charge Current Open-Drain Charger Status and Fault Alert Flags 2.8 V Output for AC Present Indication and Powering Charging Subsystems Minimum Input Voltage of 2.4 V Allows Use of Current Limited Adapters Automatically Recharging if Battery Voltage Drops after Charging Cycle is Completed Low Profile 3x3 mm DFN Package Pb-Free Package is Available
PIN CONNECTIONS
VCC FAULT CFLG TIMER GND 1 2 3 4 5 (Top View) DFN 3x3 10 BAT 9 8 7 6 VSNS ISEL V2P8 EN
Typical Applications
ORDERING INFORMATION
Device NCP1835BMNR2 NCP1835BMNR2G Package DFN-10 DFN-10 (Pb-Free) Shipping 3000 Units/Reel 3000 Units/Reel
Wireless Headsets MP3 Players USB Appliances Battery Operated Devices
For information on tape and reel specifications, including part orientation and tape sizes, please refer to our Tape and Reel Packaging Specification Brochure, BRD8011/D.
(c) Semiconductor Components Industries, LLC, 2005
1
June, 2005 - Rev. 0
Publication Order Number: NCP1835B/D
NCP1835B
Vin www..com
CFLG NCP1835B
EN V2P8 VSNS BAT GND
Microprocessor
FAULT Vin 4.7 mF Cin VCC
ISEL TIMER 15 nF CT
0.1 mF C2p8
4.7 mF Cout
1.6 M RISEL GND
Figure 1. Typical 50 mA Application Circuit
PIN FUNCTION DESCRIPTION
Pin 1 2 3 Symbol VCC FAULT CFLG Description Input Supply Voltage. Provides power to the charger. This pin should be bypassed with at least a 4.7 mF ceramic capacitor to ground. An open-drain output indicating fault status. This pin is pulled LOW under any fault conditions. A FAULT condition resets the counter. An open-drain output indicating charging or end-of-charge states. The CFLG pin is pulled LOW when the charger is charging a battery. It is forced open when the charge current drops to IEOC. This high impedance mode will be latched until a recharge cycle or a new charge cycle starts. Connecting a timing capacitor, CTIME between this pin and ground to set end-of-charge timeout timer. TIMEOUT = 14*CTIME/1.0 nF (minute). The total charge for CC and CV mode is limited to the length of TIMEOUT. Trickle Charge has a time limit of 1/8 of the TIMEOUT period. Ground pin of the IC. For thermal consideration, it is recommended to solder the exposed metal pad on the backside of the package to ground. Enable logic input. Connect the EN pin to LOW to disable the charger or leave it floating to enable the charger. 2.8 V reference voltage output. This pin outputs a 2.8 V voltage source when an adapter is present. The maximum loading for this pin is 2.0 mA. The full charge current (IFCHG) can be set by connecting a resistor, RISEL, from the ISEL pin to ground. For best accuracy, a resistor with 1% tolerance is recommended. Battery voltage sense pin. Connect this as close as possible to the battery input connection. Charge current output. A minimum 4.7 mF capacitor is needed for stability when the battery is not attached.
4
TIMER
5 6 7 8 9 10
GND EN V2P8 ISEL VSNS BAT
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NCP1835B
MAXIMUM RATINGS
Rating Supply Voltage Status Flag Output Pins Voltage Range for Other Pins Current Out from BAT Pin Thermal Characteristics Thermal Resistance, Junction-to-Air (Note 3) Power Dissipation, TA = 25C (Note 3) Moisture Sensitivity (Note 4) Operating Ambient Temperature Storage Temperature ESD Human Body Model Machine Model Symbol VCC VFAULT, VCFLG Vio IO RqJA PD MSL TA Tstg HBM MM Value 7.0 7.0 5.5 1.2 68.5 1.09 Level 1 -20 to 70 -55 to 125 2000 200 C C V V Unit www..com V V V A C/W W
Maximum ratings are those values beyond which device damage can occur. Maximum ratings applied to the device are individual stress limit values (not normal operating conditions) and are not valid simultaneously. If these limits are exceeded, device functional operation is not implied, damage may occur and reliability may be affected. 1. This device series contains ESD protection and is tested per the following standards: Human Body Model (HBM) per JEDEC standard: JESD22-A114. Machine Model (MM) per JEDEC standard: JESD22-A115. 2. Latchup Current Maximum Rating: 150 mA per JEDEC standard: JESD78. 3. Measure on 1 inch sq. of 1 oz. copper area. RqJA is highly dependent on the PCB heatsink area. For example, RqJA can be 38C/W on 1 inch sq. of 1 oz. copper area on 4 layer PCB that has 1 single signal layer with the additional 3 solid ground or power planes. The maximum package power dissipation limit must not be exceeded:
PD +
TJ(max) * TA RqJA
with RqJA = 68.5C/W, TJ(max) = 100C, PD = 1.09 W. 4. Moisture Sensitivity Level per IPC/JEDEC standard: J-STD-020A.
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NCP1835B
ELECTRICAL CHARACTERISTICS (Typical values are tested at VCC = 5.0 V and room temperature, maximum and minimum values are guaranteed over 0C to 70C with a supply voltage in the range of 4.3 V to 6.5 V, unless otherwise noted.) www..com
Characteristic VCC SUPPLY Operating Supply Range Rising VCC Threshold Falling VCC Lockout Threshold Quiescent VCC Pin Supply Current Shutdown (EN = Low) Normal Operation (EN = High) Battery Drain Current Manual Shutdown (VCC = 5.0 V, VSNS = 4.0 V, EN = Low) CHARGING PERFORMANCE Regulated Output Voltage in Constant Voltage (CV) Mode, ICHG = 10 mA Dropout Voltage (VBAT = 3.7 V, ICHG = 0.1 A) Pre-Charge Threshold Voltage Pre-Charge Current (RISEL = 2.7 MW, VBAT = 2.0 V) Pre-Charge Current (RISEL = 270 kW, VBAT = 2.0 V) Recommended Full Charge Current Full-Charge Current in Constant Current (CC) Mode (RISEL = 2.7 MW, VBAT = 3.7 V) Full-Charge Current in Constant Current (CC) Mode (RISEL = 270 kW, VBAT = 3.7 V) End-of-Charge Threshold (RISEL = 2.7 MW, VBAT = VREG) End-of-Charge Threshold (RISEL = 270 kW, VBAT = VREG) Recharge Voltage Threshold Thermal Foldback Limit (Junction Temperature) (Note 5) OSCILLATOR Oscillation Period (CTIME = 15 nF) STATUS FLAGS CFLG Pin Recommended Maximum Operating Voltage FAULT Pin Recommended Maximum Operating Voltage CFLG Pin Sink Current (VCFLG = 0.8 V) FAULT Pin Sink Current (VFAULT = 0.8 V) 5. Guaranteed by design. Not tested in production. VCFLG VFAULT ICFLG IFAULT - - 5.0 5.0 - - - - 6.5 6.5 - - V V mA mA TOSC 2.4 3.0 3.6 ms VREG - VPC IPC IPC IFCHG IFCHG IFCHG IEOC IEOC VRECH TLIM 4.158 - 2.52 1.0 30 30 30 280 1.0 26 3.80 - 4.200 80 2.8 20 50 - 45 310 4.0 34 4.03 100 4.242 120 3.08 30 65 300 58 360 11 42 4.155 - V mV V mA mA mA mA mA mA mA V C VCC VRISE VFALL IVCC IVCC IBMS 2.8 3.0 2.0 - - - - 3.4 2.4 30 600 - 6.5 3.95 2.8 - - 3.0 V V V mA mA mA Symbol Min Typ Max Unit
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NCP1835B
TYPICAL OPERATING CHARACTERISTICS
VREG, REGULATED OUTPUT VOLTAGE (V) VREG, REGULATED OUTPUT VOLTAGE (V) 4.30 4.25 4.20 4.15 4.10 4.05 VCC = 5 V 4.00 0 0.06 0.12 0.18 0.24 0.3 ICHG, CHARGE CURRENT (A) 4.30 4.25 4.20 4.15 4.10 4.05 4.00 4.5 www..com
5
5.5 VCC, INPUT VOLTAGE (V)
6
6.5
Figure 2. Regulated Output Voltage vs. Charge Current
VREG, REGULATED OUTPUT VOLTAGE (V) 4.30 4.25 4.20 4.15 4.10 4.05 VCC = 5 V VBAT floating -25 0 25 50 75 100 125
Figure 3. Regulated Output Voltage (floating) vs. Input Voltage
0.80
VISEL, ISEL VOLTAGE (V)
0.78
0.76
0.74
0.72 VBAT = 3.7 V 0.70 4.5 5.0 5.5 6.0 6.5
4.00 -50
TA, AMBIENT TEMPERATURE (C)
VCC, INPUT VOLTAGE (V)
Figure 4. Regulated Output Voltage vs. Temperature
Figure 5. ISEL Voltage vs. Input Voltage
3.00 2.95 2.90 2.85 2.80 2.75 2.70 4.5 VBAT floating RISEL = 270 k IV2P8 = 0
V2P8, V2P8 VOLTAGE (V)
5.0
5.5
6.0
6.5
VCC, INPUT VOLTAGE (V)
Figure 6. V2P8 Voltage vs. Input Voltage
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NCP1835B
TYPICAL OPERATING CHARACTERISTICS
IPC, TRICKLE CHARGE CURRENT (mA) 3.0 2.5 2.0 1.5 1.0 0.5 0.0 3.7 VBAT = 3.7 V RISEL = 270 k 3.9 4.1 4.3 4.5 4.7 4.9 5.1 5.3 5.5 50 RISEL = 270 kW www..com
V2P8, V2P8 VOLTAGE (V)
40
30
20 RISEL = 2.7 kW 10 VBAT = 3.7 V 0 4.5 5.0 5.5 6.0 6.5
VCC, INPUT VOLTAGE (V)
VCC, INPUT VOLTAGE (V)
Figure 7. V2P8 Voltage vs. Input Voltage
Figure 8. Trickle Charge Current vs. Input Voltage
IPC, TRICKLE CHARGE CURRENT (mA)
IFCHG, FULL CHARGE CURRENT (mA)
100 90 80 70 60 50 40 30 20 10 VBAT = 3.7 V RISEL=270 kW -25 0 25 50 75 100 125
400 350 300 250 200 150 100 50 0 4.5 5.0 RISEL = 2.7 MW VBAT = 2.0 V RISEL = 270 kW
0 -50
5.5
6.0
6.5
TA, AMBIENT TEMPERATURE (C)
VCC, INPUT VOLTAGE (V)
Figure 9. Trickle Charge Current vs. Temperature
Figure 10. Full Charge Current vs. Input Voltage
4.10 VRECH, RECHARGE VOLTAGE (V) ICHG, CHARGE CURRENT (mA)
500
4.05
400
300
4.00
200
3.95 RISEL = 270 k 3.90 4.5 5.0 5.5 6.0 6.5
100 VCC = 5 V 0 2.5 3.0 3.5 4.0 4.5
VCC, INPUT VOLTAGE (V)
VBAT, BATTERY VOLTAGE (V)
Figure 11. Recharge Voltage vs. Input Voltage
Figure 12. Charge Current vs. Battery Voltage
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NCP1835B
DETAILED OPERATING DESCRIPTION
Overview
Rechargeable Li-Ion/Polymer batteries are normally charged with a constant current (CC) until the terminal voltage reaches a fixed voltage threshold, at which point a constant voltage (CV) is applied and the current drawn by the battery decays. The charging rate is determined by the specific rating of the battery. For example, if the battery is rated at 800 mA-hours, then the recommended maximum charge rate is 800 mA. For a severely discharged cell, it takes approximately 2.5-3.5 hours to recharge the battery at the maximum rate. So, when one charges at less than the maximum charge rate, the recharge time increases. Also, the battery should not be continuously charged or the battery could age faster than necessary. Because of this, Li-Ion charging systems need to stop charging within a prescribed time limit regardless of the charge rate. The NCP1835B is a fully integrated, stand-alone 1-cell Li-Ion charger which performs the primary battery charging functions and includes a timer which will terminate charging if the battery has not completed charging within a prescribed time period. The charging rate is user programmable up to 1.0 A and the end-of-charge timer is also programmable. The NCP1835B has a thermal foldback loop which reduces the charge rate if the junction temperature is exceeded. The device also includes several outputs which can be used to drive LED indicators or interface to a microprocessor to provide status information. The adapter providing power to the charger can be a standard fixed output voltage such as a 5.0 V wall adapter or it can be a simple current limited adapter. The NCP1835B comes in two versions with output voltage regulation thresholds of 4.2 or 4.242 V depending on the requirements of the specific battery pack being used. The user determines the charge current by selecting the resistor RISEL and determines the length of the end-of-charge timeout timer by selecting the capacitor, CTIME.
Charging Operation
Figure 13 outlines the charging algorithm of the NCP1835B and Figure 14 graphically illustrates this. When the charger is powered up and the input voltage rises above the power-on, rising threshold (nominally 3.4 V), the charger initiates the charging cycle. The NCP1835B first determines the cell voltage. If it is less than the pre-charge threshold (2.8 V), the IC
recognizes the battery as severely discharged. In this state, the NCP1835B pre-conditions (trickle charges) the battery by charging it at 10% of the full charge rate (IPC). This slow charge prevents the battery from being damaged from high fast charge currents when it is in a deeply discharged state. The battery voltage should be trickle charged up to 2.8 V before 1/8 of the preset end-of-charge time is expired. If it cannot reach this voltage, than the battery is possibly shorted or damaged. Therefore, the NCP1835B stops charging and the pre-charge timeout signal asserts the FAULT flag. Once the cell voltage crosses the pre-charge threshold, the device will transition to normal (full-rate) charging at 100% of the programmed full rate charge current (IFCHG). As the NCP1835B charges the battery, the cell voltage rises until it reaches the VREG threshold, (4.2 or 4.242 V). At the maximum charge rate, it normally takes about 1 hour to reach this point from a fully discharged state, and the battery will be approximately 70-80% recharged. At this point, the charge transitions to constant voltage mode where the IC forces the battery to remain at a constant voltage, VREG. During this constant voltage state, the current required to maintain VREG steadily decreases as the battery approaches full charge. Charge current eventually falls to a very low value as the battery approaches a fully charged condition. The NCP1835B monitors the current into the battery until it drops to 10% of the full charge rate. This is the End-of-Charge (EOC) threshold. Normally it takes 1.5-2.5 hours to reach this point. Once the NCP1835B reaches end-of-charge it opens the CFLG pin and enters the EOC state. The IC continues to charge the battery until it reaches TIMEOUT. At that point, the NCP1835B stops charging. If the system does not reach EOC during the TIMEOUT period, the NCP1835B views this as a system fault and asserts the FAULT flag. If the battery voltage drops below the recharge threshold (which can occur if the battery is loaded), the IC reinitializes the charging sequence and begins a new charge cycle. The recharge voltage threshold, VRECH, is nominally 4.03 V. In the inhibit state, the NCP1835B continues to monitor the battery voltage, but does not charge the battery. Again, if the battery voltage drops below the recharge threshold the IC reinitializes the charging sequence and begins a new charge cycle.
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NCP1835B
Power Up
Charging Flow Chart
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VCC > VPOR?
N
Y POR
Initialization Reset Counter
Trickle Charge
CC Charge
CV Charge
VSNS VREG? VSNS > VPC? Y N N
Y
Ich < IEOC?
Y
N
N N 1/8 TIMEOUT? Constant Current Charge Y Constant Voltage Charge Y N TIMEOUT? TIMEOUT?
Trickle Charge
Y
EOC Indication; Set CFLG High Keep FAULT High Set FAULT Low Latch Up Charger Y VSNS < VRECH?
Charger Inhibited Reset Counter
N N EN Toggled? Y End-of-Charge or FAULT N Inhibit TIMEOUT? Y
VSNS < VRECH? Y Start Recharge
N
Figure 13. Charging Flow Chart http://onsemi.com
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NCP1835B
Trickle Charge CC Charge CV Charge End of Charge Inhibit Recharging
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Vin
VRISE
Time VBAT
VREG VRECH VREG
VPC
Time Icharge
ICHG ICHG
IPC
IEOC
Time CFLG
Time FAULT
Time V2P8
2.8 V
Time 0 Figure 14. Typical Charging Diagram Table 1. Charge Status
Condition Trickle, Constant Current and Constant Voltage Charge End-of-Charge or Shutdown Mode Timeout Fault, VISEL < 0.35 V or VISEL > 1.4 V CFLG Low High High FAULT High High Low
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NCP1835B
Charge Status Indicator (CFLG) Enable/Disable (EN)
CFLG is an open-drain output that indicates battery charging or End-of-Charge (EOC) status. It is pulled low when charging in constant current mode and constant voltage mode. It will be forced to a high impedance state when the charge current drops to IEOC. When the charger is in shutdown mode, CFLG will also stay in the high impedance state.
Fault Indicator (FAULT)
Pulling the EN pin to GND disables the www..com NCP1835B. In shutdown mode, the internal reference, oscillator, and control circuits are all turned off. This reduces the battery drain current to less than 3.0 mA and the input supply current to 30 mA. Floating the EN pin enables the charger.
Thermal Foldback
ICHG, CHARGE CURRENT
FAULT is an open-drain output that indicates that a charge fault has occurred. It has two states: low or high impedance. In a normal charge cycle, it stays in a high impedance state. At fault conditions, it will be pulled low and terminate the charge cycle. A timeout fault occurs when the full charge or pre-charge timeouts are violated, or if the voltage on ISEL is greater than 1.4 V or lower than 0.35 V. There are two ways to get the charger out of a fault condition and back to a normal charge cycle. One can either toggle the EN pin from GND to a floating state or reset the input power supply.
Adapter Present Indicator (V2P8)
An internal thermal foldback loop reduces the programmed charge current proportionally if the die temperature rises above the preset thermal limit (nominally 100C). This feature provides the charger protection from over heating or thermal damage. Figure 15 shows the full charge current reduction due to die temperature increase across the thermal foldback limit. For a charger with a 1.0 A constant charge current, the charge current starts decreasing when the die temperature hits 100C and is reduced to zero when the die temperature rises to 110C.
IFCHG X-100 mA/C
V2P8 is an input power supply presence indicator. When the input voltage, VCC, is above the power on threshold (VRISE, nominally 3.4 V) and is also 100 mV above the battery voltage, it provides a 2.8 V reference voltage that can source up to 2.0 mA. This voltage can also be used to power a microprocessor I/O.
100C TJ, JUNCTION TEMPERATURE
Figure 15. Full Charge Current vs. Junction Temperature
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NCP1835B
APPLICATION INFORMATION
Input and Output Capacitor Selection Thermal Considerations
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A 4.7 mF or higher value ceramic capacitor is recommended for the input bypass capacitor. For the output capacitor, when there is no battery inserted and the NCP1835B is used as an LDO with 4.2 V or 4.242 V output voltage, a 4.7 mF or higher value tantalum capacitor is recommended for stability. With the battery attached, the output capacitor can be any type with the value higher than 0.1 mF.
CTIME Selection for Programming Charge Time
The NCP1835B is housed in a thermally enhanced 3x3 mm DFN package. In order to deliver the maximum power dissipation under all conditions, it is very important that the user solders exposed metal pad under the package to the ground copper area and then connect this area to a ground plane through thermal vias. This can greatly reduce the thermal impedance of the device and further enhance its power dissipation capability and thus its output current capability.
Charging with Constant Voltage Adapters or Current Limited Adapters
The NCP1835B offers an end-of-charge timeout timer to prevent the battery from continuously charging which can cause premature aging or safety issues. The timing capacitor between TIMER pin and ground, CTIME, sets the end-of-charge time, TIMEOUT, and the pre-charge timeout. This capacitor is required for proper device operation. The internal oscillator charges CTIME to 1.2 V and then discharges it to 0.6 V with 6 mA current in one period. Therefore, the period of the oscillator is:
TOSC + 2 CTIME dVc + 0.2 IC 10 6 CTIME (sec)
(eq. 1)
The NCP1835B can be powered from two types of regulated adapters: a traditional constant voltage type or a current limited type. Figure 16 illustrates the operation of the linear charger powered with a standard constant voltage adapter. The power dissipation in the linear charger is:
Pdis + (VCC * VBAT) ICHG
(eq. 3)
A 22-binary counter counts every oscillator period until it reaches the maximum number corresponding to end-of-charge time, TIMEOUT.
TIMEOUT + 2 22 TOSC + 14 CTIME (minute) 1 nF
(eq. 2)
The NCP1835B will terminate charging and give a timeout signal if the battery has not completed charging within the TIMEOUT period. The timeout signal then forces the FAULT pin low. The following Table 2 shows the desired TIMEOUT vs. CTIME sizes. The CTIME is required for proper device operation.
Table 2. TIMEOUT vs. CTIME Size
CTIME (nF) 0.47 1 5.6 8.2 10 15 33 56 TIMEOUT (minute) 6.6 14 78 115 140 210 462 784
The maximum power dissipation P1 happens at the beginning of a full current charge, since this is the point that the power supply and the battery voltage have the largest difference. As the battery voltage rises during charging, the power dissipation drops. After entering the constant voltage mode, the power dissipation drops further due to the decreasing charge current. The maximum power that the linear charger can dissipate is dependent on the thermal resistance of the device. In case the device can not handle the maximum power P1, the thermal foldback loop reduces the charge current which limits the power dissipation to the sustained level P2. Figure 16 shows this. Using the adapter's current limit can provide better thermal performance than the above example. A current limited adapter operates as a constant voltage adapter before the charge current reaches the current limit. ILIM must be less than the programmed full charge current IFCHG. Once the current limit is reached, the adapter will source the current limit ILIM while its output voltage will drop to follow the battery voltage. If the application uses the adapter to power its systems while the battery is being charged, this drooping voltage can be an issue. The worst case power dissipation with a current limited adapter occurs at the beginning of the constant voltage mode, which is shown at point P3 in Figure 17. If P3 is higher than P2, the maximum power dissipation that the charger can handle, then the thermal foldback function will be activated.
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NCP1835B
Trickle Charge CC Charge CV Charge Trickle Charge CC Charge CV Charge Inhibit
Inhibit
www..com Vin
Vin Time
VBAT
VPC
VREG
VBAT
VPC
VREG
Time
Icharge
Time
IFCHG
Icharge
Time
IFCHG ILIM
IPC
IPC
Pdis
Time
P1 P2
Pdis
P3
Time
0
Time
0
Time
Figure 16. Typical Charge Curves with a Constant Voltage Adapter
Figure 17. Typical Charge Curves with a Current Limited Adapter
PCB Layout Recommendations The recommended footprint for the 3x3 mm DFN package is included on the Package Dimension page. It is critical that the exposed metal pad is properly soldered to the ground copper area and then connected to a ground plane through thermal vias. The maximum recommended thermal via diameter is 12 mils (0.305 mm). Limited by the size of the pad, six thermal vias should allow for proper thermal regulation without sacrificing too much copper area within the pad. The copper pad is the primary heatsink and should be connected to as much top layer metal as possible to minimize the thermal impedance. Figure 18 illustrates graphically the recommended connection for the exposed pad with vias.
GND
Figure 18. Recommended Footprint
The following is a NCP1835B Demo Board Schematic and suggested Bill of Materials.
NCP1835B VCC (T8) R4 C5 D1 R5 D2 TIMER (T10) VCC FAULT CFLG TIMER GND VCC 2 R3 JP2 1 1 BAT VSNS ISEL V2P8 EN C3 R8 2 JP1 V2P8 (T4) D3 R2 C4 CFLG (T6) GND (T9) C1 C2 GND (T2) R9 R1 + - VSNS (T7) Li-Ion Battery VBAT (T1)
FAULT (T5)
Figure 19. Demo Board Schematic
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NCP1835B
Table 3. Bill of Materials
Item 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 Qty. 1 1 2 1 2 1 1 1 1 1 1 1 1 1 1 5 2 Part Description NCP1835B Integrated Li-Ion Charger (DFN-10) Chip Resistor "1% 0 W (0603) Chip Resistor "1% 2.67 MW (0603) Chip Resistor "1% 100 kW (0603) Chip Resistor "1% 1.0 kW (0603) Chip Resistor "1% 432 W (0603) Chip Resistor "1% 274 kW (0603) Chip Capacitor 1.0 mF/16 V, "20% (0805) Chip Capacitor 4.7 mF/10 V, "20% (3528-21) Chip Capacitor 0.1 mF/10 V, "10% (0402) Chip Capacitor 15 nF/16 V, "10% (0402) Chip Capacitor 4.7 mF/25 V, "20% (0805) SMT Chip LED Red SMT Chip LED Green SMT Chip LED Yellow Test Pin Header Pin Pinch = 2.54 mm Designators U1 R1 R2 R3 R4, R5 R8 R9 C1 C2 C3 C4 C5 D1 D2 D4 T1, T2, T7, T8, T9, T10 JP1, JP2 Suppliers ON Semiconductor Vishay Vishay Vishay Vishay Vishay Vishay Panasonic Kemet Panasonic Panasonic Panasonic Agilent Agilent Agilent AMP/Tyco AMP/Tyco Part Number www..com NCP1835B CRCW06030R00F CRCW06032674 CRCW06031003F CRCW06031001F CRCW06034320F CRCW06032743F ECJGVB1C105M T491A475K016AS ECJ0EB1A104K ECJ0EB1C153K ECJ2FB1E475M HSMH-C150 HSMG-C150 HSMY-C150 4-103747-0 4-103747-0
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NCP1835B
PACKAGE DIMENSIONS
DFN 3x3 MN SUFFIX CASE 485C-01 ISSUE O
-X- A M -Y- N B www..com
NOTES: 1. DIMENSIONING AND TOLERANCING PER ANSI Y14.5M, 1982. 2. CONTROLLING DIMENSION: MILLIMETERS. 3. DIMENSION D APPLIES TO PLATED TERMINAL AND IS MEASURED BETWEEN 0.25 AND 0.30 MM FROM TERMINAL. 4. COPLANARITY APPLIES TO THE EXPOSED PAD AS WELL AS THE TERMINALS. DIM A B C D E F G H J K L M N P R MILLIMETERS MIN MAX 3.00 BSC 3.00 BSC 0.80 1.00 0.20 0.30 2.45 2.55 1.75 1.85 0.50 BSC 1.23 1.28 0.20 REF 0.00 0.05 0.35 0.45 1.50 BSC 1.50 BSC 0.88 0.93 0.60 0.80 INCHES MIN MAX 0.118 BSC 0.118 BSC 0.031 0.039 0.008 0.012 0.096 0.100 0.069 0.073 0.020 BSC 0.048 0.050 0.008 REF 0.000 0.002 0.014 0.018 0.059 BSC 0.059 BSC 0.035 0.037 0.024 0.031
2 PL
0.25 (0.010) T
2 PL
0.25 (0.010) T R J C K E H L
10 SEATING PLANE
-T-
SOLDERING FOOTPRINT*
3.31 0.130 1.65 0.065
G
F
0.500 0.0196 0.280 0.011
2.50 0.098
P
1 10 PL
D
NOTE 3 M
0.10 (0.004)
TXY
0.630 0.025
SCALE 10:1
mm inches
*For additional information on our Pb-Free strategy and soldering details, please download the ON Semiconductor Soldering and Mounting Techniques Reference Manual, SOLDERRM/D.
ON Semiconductor and are registered trademarks of Semiconductor Components Industries, LLC (SCILLC). SCILLC reserves the right to make changes without further notice to any products herein. SCILLC makes no warranty, representation or guarantee regarding the suitability of its products for any particular purpose, nor does SCILLC assume any liability arising out of the application or use of any product or circuit, and specifically disclaims any and all liability, including without limitation special, consequential or incidental damages. "Typical" parameters which may be provided in SCILLC data sheets and/or specifications can and do vary in different applications and actual performance may vary over time. All operating parameters, including "Typicals" must be validated for each customer application by customer's technical experts. SCILLC does not convey any license under its patent rights nor the rights of others. SCILLC products are not designed, intended, or authorized for use as components in systems intended for surgical implant into the body, or other applications intended to support or sustain life, or for any other application in which the failure of the SCILLC product could create a situation where personal injury or death may occur. Should Buyer purchase or use SCILLC products for any such unintended or unauthorized application, Buyer shall indemnify and hold SCILLC and its officers, employees, subsidiaries, affiliates, and distributors harmless against all claims, costs, damages, and expenses, and reasonable attorney fees arising out of, directly or indirectly, any claim of personal injury or death associated with such unintended or unauthorized use, even if such claim alleges that SCILLC was negligent regarding the design or manufacture of the part. SCILLC is an Equal Opportunity/Affirmative Action Employer. This literature is subject to all applicable copyright laws and is not for resale in any manner.
PUBLICATION ORDERING INFORMATION
LITERATURE FULFILLMENT: N. American Technical Support: 800-282-9855 Toll Free Literature Distribution Center for ON Semiconductor USA/Canada P.O. Box 61312, Phoenix, Arizona 85082-1312 USA Phone: 480-829-7710 or 800-344-3860 Toll Free USA/Canada Japan: ON Semiconductor, Japan Customer Focus Center 2-9-1 Kamimeguro, Meguro-ku, Tokyo, Japan 153-0051 Fax: 480-829-7709 or 800-344-3867 Toll Free USA/Canada Phone: 81-3-5773-3850 Email: orderlit@onsemi.com ON Semiconductor Website: http://onsemi.com Order Literature: http://www.onsemi.com/litorder For additional information, please contact your local Sales Representative.
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NCP1835B/D


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